WO2012165672A1 - Chargement sans fil en fonction de caractéristiques de chargement - Google Patents

Chargement sans fil en fonction de caractéristiques de chargement Download PDF

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Publication number
WO2012165672A1
WO2012165672A1 PCT/KR2011/003983 KR2011003983W WO2012165672A1 WO 2012165672 A1 WO2012165672 A1 WO 2012165672A1 KR 2011003983 W KR2011003983 W KR 2011003983W WO 2012165672 A1 WO2012165672 A1 WO 2012165672A1
Authority
WO
WIPO (PCT)
Prior art keywords
power
information
wireless power
power transmission
charging
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/KR2011/003983
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English (en)
Korean (ko)
Inventor
곽봉식
정기현
이성훈
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
LG Electronics Inc
Original Assignee
LG Electronics Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by LG Electronics Inc filed Critical LG Electronics Inc
Priority to PCT/KR2011/003983 priority Critical patent/WO2012165672A1/fr
Publication of WO2012165672A1 publication Critical patent/WO2012165672A1/fr
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or discharging batteries or for supplying loads from batteries
    • H02J7/40Circuit arrangements for charging or discharging batteries or for supplying loads from batteries characterised by the exchange of charge or discharge related data
    • H02J7/47Arrangements for checking compatibility or authentication between one component, e.g. a battery or a battery charger, and another component, e.g. a power source
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J50/00Circuit arrangements or systems for wireless supply or distribution of electric power
    • H02J50/10Circuit arrangements or systems for wireless supply or distribution of electric power using inductive coupling
    • H02J50/12Circuit arrangements or systems for wireless supply or distribution of electric power using inductive coupling of the resonant type
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J50/00Circuit arrangements or systems for wireless supply or distribution of electric power
    • H02J50/20Circuit arrangements or systems for wireless supply or distribution of electric power using microwaves or radio frequency waves
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J50/00Circuit arrangements or systems for wireless supply or distribution of electric power
    • H02J50/40Circuit arrangements or systems for wireless supply or distribution of electric power using two or more transmitting or receiving devices
    • H02J50/402Circuit arrangements or systems for wireless supply or distribution of electric power using two or more transmitting or receiving devices the two or more transmitting or the two or more receiving devices being integrated in the same unit, e.g. power mats with several coils or antennas with several sub-antennas
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J50/00Circuit arrangements or systems for wireless supply or distribution of electric power
    • H02J50/80Circuit arrangements or systems for wireless supply or distribution of electric power involving the exchange of data, concerning supply or distribution of electric power, between transmitting devices and receiving devices
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J50/00Circuit arrangements or systems for wireless supply or distribution of electric power
    • H02J50/90Circuit arrangements or systems for wireless supply or distribution of electric power involving detection or optimisation of position, e.g. alignment
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or discharging batteries or for supplying loads from batteries
    • H02J7/60Circuit arrangements for charging or discharging batteries or for supplying loads from batteries including safety or protection arrangements
    • H02J7/62Circuit arrangements for charging or discharging batteries or for supplying loads from batteries including safety or protection arrangements against overcurrent
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or discharging batteries or for supplying loads from batteries
    • H02J7/60Circuit arrangements for charging or discharging batteries or for supplying loads from batteries including safety or protection arrangements
    • H02J7/64Circuit arrangements for charging or discharging batteries or for supplying loads from batteries including safety or protection arrangements against overvoltage
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M10/00Secondary cells; Manufacture thereof
    • H01M10/42Methods or arrangements for servicing or maintenance of secondary cells or secondary half-cells
    • H01M10/425Structural combination with electronic components, e.g. electronic circuits integrated to the outside of the casing
    • H01M10/4257Smart batteries, e.g. electronic circuits inside the housing of the cells or batteries
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E60/00Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
    • Y02E60/10Energy storage using batteries

Definitions

  • the present specification relates to wireless charging, and more specifically to wireless charging according to charging characteristics.
  • An electronic device that receives energy wirelessly may be driven directly by the received wireless power, or it may be powered by the charged power to charge the battery using the received wireless power.
  • the embodiments disclosed herein are intended to suggest a method for transmitting power in consideration of a characteristic of an electronic device in which a device for transmitting wireless power receives power. To this end, the embodiments disclosed herein provide a way of adjusting the characteristics of a power supply supplied to form a power transmission signal based on information about the identification information or required power of a device receiving power.
  • the embodiments disclosed herein are intended to suggest a method of transmitting power differently according to each device in consideration of the characteristics of each electronic device when one or more electronic devices receiving power are present.
  • the embodiments disclosed herein provide a method for controlling the characteristics of the power supplied to each electronic device based on the identification information or the requested power of the power receiving devices detected by the power transmitting device.
  • a power receiving apparatus includes: a power receiving unit that receives a wireless power signal from the power transmission apparatus and modulates the wireless power signal; A charging unit charging the battery using the received wireless power signal; And a controller for transmitting control information for power control to the power transmission apparatus through the wireless power signal, wherein power transmitted through the received wireless power signal is adjusted based on control information included in the message .
  • the one or more aspects may include one or more of the following features.
  • the controller may control the power receiver to generate a packet including the control information, and may modulate the wireless power signal to include the generated packet.
  • the control information may be identification information of the power receiving apparatus.
  • the identification information may include a value indicating a charging characteristic of the power receiving apparatus.
  • the identification information of the power receiving apparatus may be transmitted in an Identification and Configuration Phase.
  • control information may be an expected maximum use power of the power receiving apparatus.
  • controller may transmit the estimated maximum used power in response to a detection signal received from the power transmission apparatus.
  • control information may include charge related information of the power receiving apparatus.
  • the charging-related information may include information on a charging characteristic of the battery.
  • the information on the charging characteristic of the battery is a basic characteristic or a current characteristic of the battery
  • the basic characteristic of the battery includes information on the type of the battery cell, the temperature characteristic information or the number of battery cells,
  • the characteristic may include the degree of charging of the battery.
  • the controller may acquire information on the charging characteristic from the charging unit.
  • the charging-related information may include information on a charging characteristic of the charging unit.
  • the information on the charging characteristic of the charger may include information indicating a charging mode, and the charging mode may be any of a constant voltage charging mode and a constant current charging mode.
  • the information on the charging characteristics of the charger may include information indicating a charging rate, and the charging rate may include rapid charging or normal charging.
  • the information on the charging characteristics of the charging unit may include a charging mode change reference or a charging termination method. Further, the information on the charging characteristics of the charging unit can be selected by receiving an input signal. Further, the information on the charging characteristics of the charging unit may be selected according to the position on the interface surface of the power transmission apparatus.
  • a power transmitting apparatus includes a power conversion unit for forming a wireless power signal using a power supplied from a power supply unit and receiving a modulated wireless power signal; And detecting a power receiving device using the wireless power signal, obtaining control information for power control of the supplied power source, and determining a characteristic value of the power source for the detected power receiving device based on the control information And a control unit for adjusting the supplied power according to the determined characteristics of the power source, wherein the control information for power control is transmitted from the power receiving apparatus based on the modulated wireless power signal.
  • the other or other aspects may include one or more of the following features.
  • the control information may be identification information of the power receiving apparatus.
  • the identification information may include a value indicating a charging characteristic of the power receiving apparatus.
  • the power transmitting apparatus further comprises a memory for storing characteristic values of the power source, wherein the controller extracts a characteristic value of the power source from the memory based on the identification information, Value can be determined.
  • the controller stores characteristic values of the power source corresponding to the identification information and the identification information of the power receiving device in the memory, and the characteristic value of the power source corresponding to the identification information is used to transmit power to the power receiving device It can be used for.
  • the power transmission device further comprises a memory for storing characteristic values of the power source in the form of a power profile, the control information being identification information of the power profile,
  • the power characteristic value for the detected power receiving device can be determined by extracting the characteristic value of the power source.
  • the control information may include charge related information of the power receiving apparatus.
  • the charging-related information may include information on a charging characteristic of the battery or the charging unit of the power receiving apparatus.
  • the power transmitting apparatus may further include a sensor unit that obtains position information of the power receiving apparatus, and the controller may determine a characteristic value of a power source for the power receiving apparatus based on the position information obtained by the sensor unit have.
  • the controller may determine whether to operate as a power control host based on the modulated wireless power signal received by the power converter. If the power transmission apparatus is not operated as a host, the control unit may receive the charging-related information of the power receiving apparatus as the control information, and transmit the detected power- Can be determined.
  • the power transmission apparatus can transmit power considering characteristics of an electronic device that receives power wirelessly.
  • a power transmission apparatus according to an embodiment disclosed herein is provided to form a wireless power signal based on identification information of an electronic device, profile information on a power characteristic, or information on power required in an electronic device The characteristics of the power supply can be adjusted.
  • the power transmission device may adjust the characteristics of the power source according to the position of the electronic device or the input of the user. As a result, the power transmission apparatus can transmit the necessary power to the electronic apparatus, so that efficient power transmission can be achieved.
  • the power transmission apparatus can determine whether or not to perform the role of a host that determines the characteristics of the power supplied to form the wireless power signal in relation to the electronic apparatus.
  • FIG. 1 is an exemplary diagram conceptually illustrating a wireless power transmission device and an electronic device according to embodiments of the present invention.
  • FIGS. 2 (a) and 2 (b) are block diagrams illustrating a configuration of a wireless power transmission apparatus 100 and an electronic device 200 that can be employed in the embodiments disclosed herein, respectively.
  • FIG. 3 illustrates a concept that power is transmitted from a wireless power transmission apparatus to an electronic apparatus wirelessly according to an inductive coupling scheme.
  • FIG. 4 is a block diagram exemplarily showing a part of the configuration of the electromagnetic induction type wireless power transmission device 100 and the electronic device 200 that can be employed in the embodiments disclosed herein.
  • FIG. 5 is a block diagram of a wireless power transmission apparatus configured to have one or more transmission coils that receive power in accordance with an inductive coupling scheme employable in the embodiments disclosed herein.
  • FIG. 6 shows a concept that power is transferred from a wireless power transmission device to an electronic device wirelessly according to a resonant coupling scheme.
  • FIG. 7 is a block diagram exemplarily showing a part of the configuration of the electronic apparatus 200 and the wireless power transmission apparatus 100 of the resonance type that can be employed in the embodiments disclosed herein.
  • FIG. 8 is a block diagram of a wireless power transmission apparatus configured to have one or more transmission coils that receive power in accordance with a resonant coupling scheme employable in the embodiments disclosed herein.
  • FIG. 9 is a block diagram showing a wireless power transmission apparatus further including an additional configuration in addition to the configuration shown in FIG. 2 (a).
  • FIG. 10 shows a configuration in which the electronic device 200 according to the embodiments disclosed herein is implemented in the form of a mobile terminal.
  • 11 illustrates the concept of transmitting and receiving packets between a wireless power transmission device and an electronic device through modulation and demodulation of a wireless power signal in the wireless power transmission disclosed herein.
  • FIG. 12 shows a method of displaying data bits and bytes constituting a power control message by the wireless power transmission apparatus 100.
  • FIG. 13 illustrates a packet including a power control message used in a wireless power transfer method in accordance with the embodiments disclosed herein.
  • FIG. 14 illustrates operating states of a wireless power transmission device 100 and an electronic device 200 in accordance with the embodiments disclosed herein.
  • FIG. 15 to 19 illustrate the structure of packets including the power control message between the wireless power transmission apparatus 100 and the electronic apparatus 200.
  • FIG. 15 to 19 illustrate the structure of packets including the power control message between the wireless power transmission apparatus 100 and the electronic apparatus 200.
  • FIG. 21 shows a process of setting a power characteristic using the identification information of an electronic device by the wireless power transmission device.
  • FIG. 22 shows a process of setting a power characteristic based on information on a required power received from an electronic device by the wireless power transmission device.
  • FIG. 23 shows a process of setting a power characteristic based on a profile of a power characteristic received from an electronic device by the wireless power transmission device.
  • 24 and 25 illustrate how an electronic device receiving wireless power acts as a host for managing a wireless power transfer process.
  • Figures 26 and 27 illustrate how a wireless power transmission device acts as a host to manage a wireless power transfer process.
  • FIG. 28 is a flowchart illustrating a method for controlling a power characteristic of a wireless power transmission apparatus in consideration of a newly detected electronic apparatus during wireless power transmission.
  • 29 shows a method for the wireless power transmission apparatus to adjust power characteristics for a newly detected electronic device.
  • first, second, etc. used in this specification can be used to describe various elements, but the elements should not be limited by the terms. The terms are used only for the purpose of distinguishing one component from another.
  • first component may be referred to as a second component, and similarly, the second component may also be referred to as a first component.
  • FIG. 1 is an exemplary diagram conceptually showing a wireless power transmission apparatus and an electronic apparatus according to the embodiments disclosed herein.
  • the wireless power transmission apparatus 100 may be a power transmission apparatus that wirelessly transmits power required for the electronic apparatus 200.
  • the wireless power transmission apparatus 100 may be a wireless charging apparatus that charges the battery of the electronic device 200 by transmitting power wirelessly. An embodiment implemented by the wireless power transmission apparatus 100 will be described below with reference to FIG.
  • the wireless power transmission apparatus 100 may be implemented in various types of devices that transmit power to the electronic device 200 that requires power in a non-contact state.
  • the electronic device 200 is a device capable of operating by receiving power wirelessly from the wireless power transmission device 100. Also, the electronic device 200 can charge the battery using the received wireless power.
  • the electronic apparatus for receiving power wirelessly described in the present specification can be applied to any portable electronic apparatus such as an input / output apparatus such as a keyboard, a mouse, an auxiliary output apparatus for video or audio, a cellular phone, a cellular phone, smart phone, PDA (Personal Digital Assistants), PMP (Portable Multimedia Player), tablet, or multimedia device.
  • an input / output apparatus such as a keyboard, a mouse, an auxiliary output apparatus for video or audio
  • a cellular phone such as a keyboard, a mouse, an auxiliary output apparatus for video or audio
  • a cellular phone such as a cellular phone, a cellular phone, smart phone, PDA (Personal Digital Assistants), PMP (Portable Multimedia Player), tablet, or multimedia device.
  • PDA Personal Digital Assistants
  • PMP Portable Multimedia Player
  • the electronic device 200 may be a mobile communication terminal (e.g., a cellular phone, a cellular phone, a tablet) or a multimedia device, as will be described later.
  • a mobile communication terminal e.g., a cellular phone, a cellular phone, a tablet
  • a multimedia device as will be described later.
  • An embodiment in which the electronic device 200 is implemented as a mobile terminal will be described below with reference to FIG.
  • the wireless power transmission apparatus 100 may use one or more wireless power transmission methods to wirelessly transmit power to the electronic device 200 without mutual contact. That is, the wireless power transmission apparatus 100 includes an inductive coupling scheme based on an electromagnetic induction phenomenon generated by the wireless power signal, a resonant coupling scheme based on an electromagnetic resonance phenomenon generated by a wireless power signal of a specific frequency, (Electromagnetic Resonance Coupling) method.
  • an inductive coupling scheme based on an electromagnetic induction phenomenon generated by the wireless power signal
  • a resonant coupling scheme based on an electromagnetic resonance phenomenon generated by a wireless power signal of a specific frequency
  • the inductively coupled wireless power transmission is a technique for wirelessly transmitting power using a primary coil and a secondary coil.
  • the current is transmitted to the other coil by a varying magnetic field generated by electromagnetic induction in one coil. And the electric power is transmitted.
  • electromagnetic resonance occurs in the electronic device 200 by a wireless power signal transmitted from the wireless power transmission apparatus 100, and the wireless power transmission Refers to the transmission of electric power from the device 100 to the electronic device 200.
  • FIG. 2 is a block diagram exemplarily illustrating a configuration of a wireless power transmission apparatus 100 and an electronic device 200 that can be employed in the embodiments disclosed herein.
  • the wireless power transmission apparatus 100 is configured to include a power transmission unit 110.
  • the power transmission unit 110 may include a power conversion unit 111 and a power transmission control unit 112.
  • the power conversion unit 111 converts the power supplied from the transmission power supply unit 190 into a wireless power signal and transmits the wireless power signal to the electronic device 200.
  • the radio power signal transmitted by the power converter 111 is formed in the form of a magnetic field or an electro-magnetic field having oscillation characteristics.
  • the power conversion unit 111 may be configured to include a coil for generating the wireless power signal.
  • the power conversion unit 111 may include components for forming different types of wireless power signals according to each power transmission scheme.
  • the power conversion unit 111 may be configured to include a primary coil that forms a varying magnetic field to induce a current in the secondary coil of the electronic device 200 according to an inductive coupling scheme .
  • the power conversion unit 111 includes a coil (or antenna) that forms a magnetic field having a specific resonance frequency to generate a resonance phenomenon in the electronic device 200 according to a resonance coupling scheme. .
  • the power conversion unit 111 may transmit power using one or more of the above-described inductive coupling method and resonant coupling method.
  • the power conversion unit 111 may further include a circuit for adjusting characteristics of a frequency, an applied voltage, and a current used for forming the wireless power signal.
  • the power transmission control unit 112 controls each component included in the power transmission unit 110.
  • the power transmission control 112 may be implemented to be integrated with another control (not shown) that controls the wireless power supply 100.
  • an area where the wireless power signal can reach can be divided into two types.
  • an active area refers to a region through which a wireless power signal that transmits power to the electronic device 200 passes.
  • a semi-active area refers to an area of interest in which the wireless power transmission apparatus 100 can detect the presence of the electronic device 200.
  • the power transmission control unit 112 may detect whether the electronic device 200 is placed in or removed from the active area or the sensing area. Specifically, the power transmission control unit 112 determines whether the electronic device 200 is located in the active area or the sensing area by using a wireless power signal formed in the power conversion unit 111 or a sensor provided separately Or not.
  • the power transmission control unit 112 receives the wireless power signal due to the electronic device 200 existing in the sensing area, and controls the power for the wireless power signal of the power conversion unit 111
  • the presence of the electronic device 200 can be detected by monitoring whether or not the characteristics of the electronic device 200 change.
  • the active area and the sensing area may differ depending on a wireless power transmission scheme such as an inductive coupling scheme and a resonant coupling scheme.
  • the power transmission control unit 112 may perform the process of identifying the electronic device 200 or may determine whether to start the wireless power transmission according to a result of detecting the presence of the electronic device 200.
  • the power transmission control unit 112 may determine at least one of a frequency, a voltage, and a current of the power conversion unit 111 for forming the wireless power signal. The determination of the characteristics may be made according to conditions on the side of the wireless power transmission apparatus 100 or on conditions of the electronic device 200 side. In some embodiments, the power transmission control unit 112 may determine the characteristics based on the device identification information of the electronic device 200. [ In some embodiments, the power transmission control unit 112 can determine the characteristics based on the requested power information of the electronic device 200 or the profile information of the requested power. A method by which the power transmission control unit 112 determines the characteristics of the power supply will be described with reference to Figs. 20 to 27. Fig.
  • the power transmission control unit 112 may receive a power control message from the electronic device 200. [ The power transmission control unit 112 may determine one or more characteristics of the frequency, voltage, and current of the power conversion unit 111 based on the received power control message, Operation can be performed.
  • the power transmission control unit 112 may be used to form the wireless power signal according to a power control message including at least one of the rectified power amount information, the charging status information and the identification information of the electronic device 200 One or more characteristics of the frequency, current, and voltage can be determined.
  • the wireless power transmission apparatus 100 may perform a general control operation related to wireless power transmission based on the power control message.
  • the wireless power transmission apparatus 100 may receive information to be audibly or visually output related to the electronic device 200 through the power control message, or may receive information necessary for authentication between devices .
  • the power transmission control unit 112 may receive the power control message through the wireless power signal. In some embodiments, the power transmission control unit 112 may receive the power control message through a method of receiving user data.
  • the wireless power transmission apparatus 100 may further include a power communication modulation / demodulation unit 113 electrically connected to the power conversion unit 111 .
  • the modem unit 113 may be used to demodulate the wireless power signal modulated by the electronic device 200 and receive the power control message.
  • a method for the power conversion unit 111 to receive the power control message using the wireless power signal will be described below with reference to FIGS. 11 to 13.
  • FIG. 11 A method for the power conversion unit 111 to receive the power control message using the wireless power signal will be described below with reference to FIGS. 11 to 13.
  • the power transmission control unit 112 may acquire a power control message by receiving user data including a power control message by communication means (not shown) included in the wireless power transmission apparatus 100 have.
  • the electronic device 200 is configured to include a power supply unit 290.
  • the power supply unit 290 supplies power required for the operation of the electronic device 200.
  • the power supply unit 290 may include a power receiving unit 291 and a power receiving control unit 292.
  • the power receiving unit 291 receives power transmitted from the wireless power transmission apparatus 100 wirelessly.
  • the power receiving unit 291 may include components necessary for receiving the wireless power signal according to a wireless power transmission scheme.
  • the power receiver 291 may receive power according to one or more wireless power transmission schemes.
  • the power receiver 291 may include necessary components according to each scheme.
  • the power receiving unit 291 may be configured to include a coil for receiving a radio power signal transmitted in the form of a magnetic field or an electromagnetic field having an oscillating characteristic.
  • the power receiving unit 291 may include a secondary coil through which a current is induced by a magnetic field that varies as a component according to an inductive coupling scheme.
  • the power receiving unit 291 may include a coil and a resonant circuit that generate a resonance phenomenon by a magnetic field having a specific resonance frequency as a component according to a resonant coupling scheme.
  • the power receiver 291 may receive power according to one or more wireless power transfer schemes.
  • the power receiver 291 may be configured to receive using one coil, May be implemented to receive using a coil formed differently depending on the power transmission scheme.
  • Embodiments according to the inductive coupling scheme among the components included in the power receiving unit 291 will be described with reference to FIG. 4, and embodiments according to the resonant coupling scheme will be described later with reference to FIG.
  • the power receiving unit 291 may further include a rectifier and a regulator for converting the radio power signal into a direct current.
  • the power receiving unit 291 may further include a circuit for preventing an overvoltage or an overcurrent from occurring due to the received power signal.
  • the power reception control unit 292 controls the components included in the power supply unit 290.
  • the power receiving control unit 292 may transmit a power control message to the wireless power transmission apparatus 100.
  • the power control message may instruct the wireless power transmission apparatus 100 to start or terminate the transmission of the wireless power signal.
  • the power control message may also direct the wireless power transmission apparatus 100 to adjust the characteristics of the wireless power signal.
  • the power reception control unit 292 may transmit the power control message through the wireless power signal. Also, in some embodiments, the power control unit 292 may transmit the power control message through a method of transmitting through the user data.
  • the electronic device 200 may further include a power communication modulation / demodulation unit 293 electrically connected to the power receiving unit 291.
  • the modem unit 293 can be used to transmit the power control message through the wireless power signal, as in the case of the wireless power transmission apparatus 100 described above.
  • the modem unit 293 may be used as a means for adjusting the current and / or voltage flowing through the power conversion unit 111 of the wireless power transmission apparatus 100.
  • a method in which the modulation and demodulation units 113 and 293 on the side of the wireless power transmission apparatus 100 and the side of the electronic device 200 are used for transmission and reception of a power control message through a wireless power signal will be described.
  • the wireless power signal formed by the power conversion unit 111 is received by the power receiving unit 291.
  • the power reception control unit 292 controls the modem unit 293 of the electronic device 200 to modulate the wireless power signal.
  • the power reception control unit 292 may modify the reactance of the modem unit 293 connected to the power reception unit 291 so that the amount of power received from the wireless power signal changes accordingly have.
  • a change in the amount of power received from the wireless power signal results in a change in the current and / or voltage of the power conversion unit 111 forming the wireless power signal.
  • the modulation / demodulation unit 113 of the wireless power transmission apparatus 100 detects a change in the current and / or voltage of the power conversion unit 111 and performs a demodulation process.
  • the power reception controller 292 generates a packet including a power control message to be transmitted to the wireless power transmission apparatus 100, modulates the wireless power signal to include the packet,
  • the transmission control unit 112 can obtain the power control message included in the packet by decoding the packet based on the demodulation process result of the modulation / demodulation unit 113. A specific method by which the wireless power transmission apparatus 100 acquires the power control message will be described later with reference to FIGS. 11 to 13. FIG.
  • the power reception control unit 292 transmits user control data including a power control message by communication means (not shown) included in the electronic device 200 To the wireless power transmission apparatus 100.
  • the power supply unit 290 may be configured to further include a charging unit 298 and a battery 299.
  • the electronic apparatus 200 receiving power for operation from the power supply unit 290 operates by the power transmitted from the wireless power transmission apparatus 100 or by using the transmitted power to operate the battery 299
  • the battery 299 can be operated by the electric power charged in the battery 299.
  • the power receiving control unit 292 may control the charging unit 298 to perform charging using the transmitted power.
  • Figure 3 illustrates the concept that power is transferred from a wireless power transmission device to an electronic device wirelessly in accordance with embodiments that support an inductive coupling scheme.
  • the power conversion section 111 of the wireless power transmission apparatus 100 is configured to include a transmission coil (Tx coil) 1111a that operates as a primary coil in magnetic induction.
  • the power receiving unit 291 of the electronic device 200 is configured to include a receiving coil (Rx coil) 2911a that operates as a secondary coil in magnetic induction.
  • the wireless power transmission apparatus 100 and the electronic apparatus 200 are arranged so that the transmission coil 1111a on the wireless power transmission apparatus 100 side and the reception coil on the electronic apparatus 200 side are close to each other.
  • the power transmission control unit 112 controls the current of the transmission coil 1111a to be changed
  • the power receiving unit 291 transmits the power to the electronic device 200 using the electromotive force induced in the receiving coil 2911a. As shown in FIG.
  • the efficiency of the wireless power transmission by the inductively coupled system has a small influence on the frequency characteristics but is influenced by the alignment and distance between the wireless power transmission apparatus 100 including the coils and the electronic apparatus 200, (distance).
  • the wireless power transmission apparatus 100 may be configured to include an interface surface (not shown) in the form of a flat surface for wireless power transmission by the inductive coupling method.
  • One or more electronic devices may be placed on the interface surface, and the transmission coil 1111a may be mounted on the interface surface.
  • the vertical spacing between the transmission coil 1111a mounted on the lower surface of the interface and the reception coil 2911a of the electronic device 200 located above the interface surface is small, Is sufficiently small so that wireless power transmission by the inductive coupling scheme can be efficiently performed.
  • an arrangement indicator may be formed on an upper surface of the interface to indicate a position where the electronic device 200 is to be placed.
  • the arrangement instruction unit indicates a position of the electronic device 200 in which the arrangement between the transmission coil 1111a mounted on the lower surface of the interface and the reception coil 2911a can be made suitable.
  • the arrangement indicator may be a simple mark.
  • the arrangement indication portion may be formed in the form of a protruding structure for guiding the position of the electronic device 200.
  • the arrangement directing part is formed in the form of a magnetic body such as a magnet mounted on the lower part of the interface surface, and by the mutual attractive force with other magnetic bodies mounted inside the electronic device 200, May be guided to form an appropriate arrangement.
  • the wireless power transmission apparatus 100 may be formed to include one or more transmission coils.
  • the wireless power transmission apparatus 100 may selectively increase the power transmission efficiency by selectively using a part of the coils appropriately arranged with the reception coil 2911a of the electronic device 200 among the one or more transmission coils.
  • the wireless power transmission apparatus 100 including the one or more transmission coils will be described below with reference to Fig.
  • FIG. 4 is a block diagram exemplarily showing a part of the configuration of the electromagnetic induction type wireless power transmission device 100 and the electronic device 200 that can be employed in the embodiments disclosed herein.
  • the configuration of the power transfer unit 110 included in the wireless power transmission apparatus 100 will be described with reference to FIG. 4A.
  • the power conversion unit 111 of the wireless power transmission apparatus 100 may be configured to include a transmission coil (Tx coil) 1111a and an inverter 1112.
  • the transmission coil 1111a forms a magnetic field corresponding to a radio power signal in accordance with a change in current.
  • the transmission coil 1111a may be implemented as a planar spiral type.
  • the transmission coil 1111a may be implemented as a cylindrical solenoid type.
  • the inverter 1112 transforms a DC input obtained from the power supply unit 190 into an AC waveform.
  • An alternating current deformed by the inverter 1112 is formed in the transmission coil 1111a by driving a resonant circuit including the transmission coil 1111a and a capacitor (not shown) .
  • the power conversion unit 111 may be further configured to include a positioning unit 1114.
  • the positioning unit 1114 may move or rotate the transmission coil 1111a to increase the efficiency of the wireless power transmission by the inductive coupling scheme. This is because, as described above, the power transmission by the inductively coupled method is performed by the arrangement and distance between the wireless power transmission apparatus 100 including the primary and secondary coils and the electronic apparatus 200, . Particularly, the positioning unit 1114 can be used when the electronic device 200 is not present in the active area of the wireless power transmission apparatus 100.
  • the positioning unit 1114 may determine that the distance between the center of the transmission coil 1111a of the wireless power transmission device 100 and the reception coil 2911a of the electronic device 200 is within a certain range And a driving unit (not shown) for moving the transmission coil 1111a so that the center of the transmission coil 1111a and the reception coil 2911a overlap with each other or rotating the transmission coil 1111a so as to overlap the center of the transmission coil 1111a and the reception coil 2911a .
  • the wireless power transmission apparatus 100 may further include a position detection unit (not shown) configured to detect a position of the electronic device 200, and the power transmission control unit 112 May control the positioning unit 1114 based on positional information of the electronic device 200 received from the position sensor.
  • a position detection unit (not shown) configured to detect a position of the electronic device 200
  • the power transmission control unit 112 May control the positioning unit 1114 based on positional information of the electronic device 200 received from the position sensor.
  • the power transmission control unit 112 receives control information on the arrangement or distance with the electronic device 200 through the modulation / demodulation unit 113, and based on the received control information on the arrangement or distance, The positioning unit 1114 can be controlled.
  • the positioning unit 1114 can determine which of the plurality of transmission coils is to be used for power transmission.
  • the configuration of the wireless power transmission apparatus 100 including the plurality of transmission coils will be described later with reference to Fig.
  • the power conversion unit 111 may be configured to further include a power sensing unit 1115.
  • the power sensing unit 1115 on the side of the wireless power transmission apparatus 100 monitors the current or voltage flowing in the transmission coil 1111a.
  • the power sensing unit 1115 detects a voltage or current of a power source supplied from outside and determines whether the detected voltage or current exceeds a threshold value Can be confirmed.
  • the power sensing unit 1115 compares a voltage or current value of the detected power source with a threshold value and outputs a result of the comparison. And a comparator. Based on the result of the detection by the power sensing unit 1115, the power transmission control unit 112 may control the switching unit (not shown) to cut off the power applied to the transmission coil 1111a.
  • the power supply unit 290 of the electronic device 200 may be configured to include a reception coil (Rx coil) 2911a and a rectification circuit 2913.
  • a current is induced in the reception coil 2911a by a change in the magnetic field formed from the transmission coil 1111a.
  • the embodiment of the receiving coil 2911a may be in the form of a flat spiral or a cylindrical solenoid, according to embodiments as in the case of the transmitting coil 1111a.
  • series and parallel capacitors may be connected to the receiving coil 2911a to enhance reception efficiency of the wireless power or to detect resonance.
  • the receiving coil 2911a may be in the form of a single coil or a plurality of coils.
  • the rectifying circuit 2913 performs full-wave rectification on the current to convert the alternating current into direct current.
  • the rectifier circuit 2913 may be implemented by, for example, a full bridge rectifier circuit including four diodes or a circuit using active components.
  • the rectifying circuit 2913 may further include a regulator for converting the rectified current into a more flat and stable direct current.
  • the output power of the rectifying circuit 2913 is supplied to the respective components of the power supply unit 290.
  • the rectifying circuit 2913 is a DC-DC converter that converts the output DC power to an appropriate voltage to match the power required for each component of the power supply unit 290 (for example, a circuit similar to the charging unit 298) (DC-DC converter).
  • the modulation and demodulation unit 293 may be constituted by a resistive element connected to the power receiving unit 291 and having a resistance varying with respect to a direct current and a capacitive element whose reactance is changed with respect to an alternating current .
  • the power receiving control unit 292 may modulate the wireless power signal received by the power receiving unit 291 by changing the resistance or reactance of the modem unit 293.
  • the power supply unit 290 may further include a power sensing unit 2914.
  • the power sensing unit 2914 of the electronic device 200 monitors the voltage and / or current of the power source rectified by the rectifying circuit 2913, and if the voltage and / or current of the rectified power source If the threshold value is exceeded, the power reception control unit 292 transmits a power control message to the wireless power transmission apparatus 100 to transmit appropriate power.
  • a wireless power transmission apparatus configured with one or more transmission coils
  • FIG. 5 is a block diagram of a wireless power transmission apparatus configured to have one or more transmission coils that receive power in accordance with an inductive coupling scheme employable in the embodiments disclosed herein.
  • the power conversion section 111 of the wireless power transmission apparatus 100 may be configured with one or more transmission coils 1111a-1 to 1111a-n.
  • the one or more transmission coils 1111a-1 to 1111a-n may be an array of partly overlapping primary coils.
  • An active area may be determined by a portion of the one or more transmission coils.
  • the one or more transmission coils 1111a-1 to 1111a-n may be mounted below the interface surface.
  • the power conversion unit 111 may further include a multiplexer 1113 for establishing and releasing connection of some of the one or more transmission coils 1111a-1 to 1111a-n .
  • the power transmission control unit 112 controls the power of the one or more transmission coils 1111a-1 to 1111a-1, considering the sensed position of the electronic device 200.
  • [ 1111a-n may be connected to the receiving coil 2911a of the electronic device 200. In this case,
  • the power transmission control unit 112 may acquire position information of the electronic device 200.
  • the power transmission control unit 112 can acquire the position of the electronic device 200 on the interface surface by the position sensing unit (not shown) provided in the wireless power transmission device 100 have.
  • the power transmission control unit 112 uses a power control message indicating the strength of the wireless power signal from an object on the interface surface using the one or more transmission coils 1111a-1 to 1111a-n, respectively,
  • the position information of the electronic device 200 can be obtained by receiving a power control message indicating the identification information of the object and determining which coil of the one or more transmission coils is close to the position based on the received result have.
  • the active area may be a part of the interface surface, and may refer to a portion where a high efficiency magnetic field can pass when the wireless power transmission apparatus 100 transmits power wirelessly to the electronic device 200 .
  • a single transmission coil or a combination of one or more transmission coils for forming a magnetic field passing through the active region may be referred to as a primary cell.
  • the power transmission control unit 112 determines an activity area based on the sensed position of the electronic device 200, establishes connection of major cells corresponding to the active area, The multiplexer 1113 can be controlled so that the coil 2911a and the coils belonging to the main cell can be placed in an inductive coupling relationship.
  • the power transmission control unit 112 may control the multiplexer 1113 such that the coils belonging to the main cell corresponding to the position of each electronic device are in an inductive coupling relationship. Accordingly, the wireless power transmission apparatus 100 can wirelessly transmit power to one or more electronic devices by forming wireless power signals using different coils.
  • the power transmission control unit 112 may be configured to supply power having different characteristics to the coils corresponding to the electronic apparatuses.
  • the wireless power transmission apparatus 100 can transmit power by setting a different power transmission mode, efficiency, and characteristics for each electronic device. Power delivery for one or more electronic devices is described below with reference to FIG.
  • the power conversion unit 111 may further include an impedance matching unit (not shown) that adjusts the impedance to form a resonant circuit with the coils connected thereto.
  • an impedance matching unit (not shown) that adjusts the impedance to form a resonant circuit with the coils connected thereto.
  • Figure 6 illustrates the concept that power is transmitted from a wireless power transmission device to an electronic device wirelessly according to embodiments that support the resonant coupling scheme.
  • Resonance refers to a phenomenon in which the vibration system receives an external force periodically having the same frequency as its natural frequency, and the amplitude thereof increases sharply.
  • Resonance is a phenomenon occurring in all vibrations, such as mechanical vibration and electrical vibration.
  • the natural frequency of the vibration system is equal to the frequency of the external force, the vibration becomes larger and the amplitude becomes larger.
  • an inductor and a capacitor can be used to make a resonant circuit.
  • a magnetic field having a specific vibration frequency is formed by the AC power source in the power transmission unit 110.
  • a resonance phenomenon occurs in the electronic device 200 due to the magnetic field, power is generated in the electronic device 200 by the resonance phenomenon.
  • the resonance frequency can be determined by, for example, the following equation (1).
  • the resonance frequency f is determined by the inductance L and the capacitance C in the circuit.
  • the inductance is determined by the number of revolutions of the coil and the like, and the capacitance can be determined by an interval, an area, or the like between the coils.
  • a capacitive resonance circuit may be connected to the coil to determine the resonance frequency.
  • the power conversion unit 111 of the wireless power transmission apparatus 100 includes a transmission coil Tx coil And a resonance circuit 1116 connected to the transmission coil 1111b and for determining a specific oscillation frequency.
  • the resonant circuit 1116 can be implemented using capacitors and the specific oscillation frequency is determined based on the inductance of the transmission coil 1111b and the capacitance of the resonant circuit 1116.
  • the configuration of the circuit elements of the resonant circuit 1116 may be variously configured to form a magnetic field by the power conversion unit 111 and may be connected in parallel with the transmission coil 1111b as shown in FIG. It is not limited.
  • the power receiving unit 291 of the electronic device 200 includes a resonant circuit 2912 and a receiving coil 2911b that are configured to cause a resonance phenomenon by a magnetic field formed in the wireless power transmission apparatus 100 ). That is, the resonance circuit 2912 may be implemented using a capacitive circuit, and the resonance circuit 2912 is determined based on the inductance of the reception coil 2911b and the capacitance of the resonance circuit 2912 And the resonance frequency is equal to the resonance frequency of the magnetic field formed.
  • the configuration of the circuit elements of the resonant circuit 2912 may be variously configured to allow the power receiving unit 291 to resonate by the magnetic field and may be connected in series with the receiving coil 2911b as shown in FIG. But is not limited to.
  • the specific vibration frequency in the wireless power transmission apparatus 100 may be obtained using Equation 1 with L Tx , C Tx .
  • L RX and C RX of the electronic device 200 into Equation 1 when the result of substituting L RX and C RX of the electronic device 200 into Equation 1 is equal to the specific vibration frequency, resonance occurs in the electronic device 200.
  • the efficiency of the wireless power transmission by the resonance coupling method is largely influenced by the frequency characteristics.
  • the arrangement and distance between the wireless power transmission apparatus 100 including the coils and the electronic apparatus 200 The effect of the inductive coupling is relatively small compared to the inductive coupling method.
  • FIG. 7 is a block diagram exemplarily showing a part of the configuration of the electronic apparatus 200 and the wireless power transmission apparatus 100 of the resonance type that can be employed in the embodiments disclosed herein.
  • the configuration of the power transmission unit 110 included in the wireless power transmission apparatus 100 will be described with reference to FIG.
  • the power conversion unit 111 of the wireless power transmission apparatus 100 may be configured to include a transmission coil (Tx coil) 1111b, an inverter 1112, and a resonant circuit 1116.
  • Tx coil transmission coil
  • the inverter 1112 may be configured to be connected to the transmission coil 1111b and the resonant circuit 1116.
  • the transmission coil 1111b may be mounted separately from the transmission coil 1111a for transmitting electric power according to the inductive coupling scheme, but it may also transmit power using an inductive coupling scheme or a resonant coupling scheme using one single coil.
  • the transmission coil 1111b forms a magnetic field for transmitting electric power, as described above.
  • the transmission coil 1111b and the resonant circuit 1116 may be vibrated when the AC power is applied and at this time the oscillation frequency is set to a value based on the inductance of the transmission coil 1111b and the capacitance of the resonant circuit 1116 Can be determined.
  • the inverter 1112 transforms a DC input obtained from the power supply unit 190 into an AC waveform, and the transformed AC current is applied to the transmission coil 1111b and the resonance circuit 1116.
  • the power conversion unit 111 may further include a frequency adjustment unit 1117 for changing the resonance frequency value of the power conversion unit 111. Since the resonance frequency of the power conversion unit 111 is determined based on the inductance and the capacitance in the circuit constituting the power conversion unit 111 according to Equation 1, the power transmission control unit 112 controls the inductance and / The resonance frequency of the power converter 111 can be determined by controlling the frequency adjuster 1117 so that the capacitance is changed.
  • the frequency adjuster 1117 may be configured to include a motor that can adjust the distance between the capacitors included in the resonant circuit 1116 to change the capacitance. Also, in some embodiments, the frequency adjuster 1117 may be configured to include a motor that can change the inductance by adjusting the number of turns or the diameter of the transmission coil 1111b. Also, in some embodiments, the frequency adjuster 1117 may be configured to include active elements that determine the capacitance and / or inductance.
  • the power conversion unit 111 may be configured to further include a power sensing unit 1115.
  • the operation of the power sensing unit 1115 is the same as described above.
  • the configuration of the power supply unit 290 included in the electronic device 200 will be described with reference to FIG. 7 (b).
  • the power supply 290 may be configured to include the receive coil (Rx coil) 2911b and the resonant circuit 2912, as described above.
  • the power receiving unit 291 of the power supply unit 290 may be configured to further include a rectifying circuit 2913 that converts the alternating current generated by the resonance phenomenon to direct current.
  • the rectifying circuit 2913 may be constructed in the same manner as described above.
  • the power receiving unit 291 may further include a power sensing unit 2914 for monitoring the voltage and / or current of the rectified power.
  • the power sensing unit 2914 may be configured as described above.
  • a wireless power transmission apparatus configured with one or more transmission coils
  • FIG. 8 is a block diagram of a wireless power transmission apparatus configured to have one or more transmission coils that receive power in accordance with embodiments that support a resonant coupling scheme.
  • the power conversion section 111 of the wireless power transmission apparatus 100 includes one or more transmission coils 1111b-1 to 1111b-n and a plurality of transmission coils And may be configured to include resonant circuits 1116-1 through 1116-n.
  • the power conversion unit 111 may further include a multiplexer 1113 for establishing and releasing a connection of some of the one or more transmission coils 1111b-1 to 1111b-n .
  • the one or more transmission coils 1111b-1 to 1111b-n may be set to have the same resonance frequency. In some embodiments, a portion of the one or more transmission coils 1111b-1 through 1111b-n may be set to have different resonant frequencies, which may include one or more of the transmission coils 1111b-1 through 1111b- Or the capacitances of the resonant circuits 1116-1 through 1116-n, respectively, which are connected to the resonant circuits 1116-1 through 1116-n, respectively.
  • the control unit 112 may control the multiplexer 1113 so as to be placed in a different resonant coupling relationship with respect to each electronic device. Accordingly, the wireless power transmission apparatus 100 can wirelessly transmit power to one or more electronic devices by forming wireless power signals using different coils.
  • the power transmission control unit 112 may be configured to supply power having different characteristics to the coils corresponding to the electronic apparatuses.
  • the wireless power transmission apparatus 100 can transmit power by setting different power transmission modes, resonance frequencies, efficiencies, characteristics, and the like for each electronic device. Power delivery for one or more electronic devices is described below with reference to FIG.
  • the frequency adjuster 1117 may change the inductance and / or capacitance of the resonant circuits 1116-1 through 1116-n connected to the one or more transmission coils 1111b-1 through 1111b-n, Or < / RTI >
  • FIG. 9 is a block diagram showing a wireless power transmission apparatus further including an additional configuration in addition to the configuration shown in FIG. 2 (a).
  • the wireless power transmission apparatus 100 includes a power transmission unit 110 and a power supply unit 190 that support at least one of the inductive coupling method and the resonant coupling method described above, And may further include a sensor unit 120, a communication unit 130, an output unit 140, a memory 150, and a control unit 180.
  • the control unit 180 controls the power conversion unit 110, the sensor unit 120, the communication unit 130, the output unit 140, the memory 150, and the power supply unit 190.
  • the control unit 180 may be realized as a separate module from the power transmission control unit 112 in the power conversion unit 110 described with reference to FIG. 2, or may be implemented as a single module.
  • the sensor unit 120 may be configured to include a sensor for sensing the position of the electronic device 200.
  • the position information sensed by the sensor unit 120 may be used to allow the power conversion unit 110 to efficiently transmit power.
  • the sensor unit 120 may operate as a position sensing unit, and the position information sensed by the sensor unit 120 may be And may be used to move or rotate the transmission coil 1111a in the power conversion unit 110.
  • the wireless power transmission apparatus 100 may be configured to transmit, based on position information of the electronic device 200, It is possible to determine coils that can be placed in an inductive coupling relationship or a resonant coupling relationship with the receiving coils of the coil 200.
  • the sensor unit 120 may be configured to monitor whether the electronic device 200 is approaching a chargeable area.
  • the accessibility detection function of the sensor unit 120 may be performed separately or in combination with the function of the power transmission control unit 112 in the power transmission unit 110 to detect whether the electronic device 200 is approaching .
  • the communication unit 130 performs wire / wireless data communication with the electronic device 200.
  • the communication unit 130 may include electronic components for at least one of Bluetooth TM , Zigbee, Ultra Wide Band (UWB), Wireless USB, Near Field Communication (NFC), and Wireless LAN.
  • the output unit 140 includes at least one of a display unit 141 and an audio output unit 142.
  • the display unit 141 may be a liquid crystal display (LCD), a thin film transistor-liquid crystal display (TFT LCD), an organic light-emitting diode (OLED) a flexible display, and a 3D display.
  • the display unit 141 may display a state of charge according to the control of the controller 180.
  • the memory 150 may be a flash memory type, a hard disk type, a multimedia card micro type, a card type memory (for example, SD or XD memory) (Random Access Memory), a static random access memory (SRAM), a read-only memory (ROM), an electrically erasable programmable read-only memory (EEPROM), a programmable read-only memory (PROM) A magnetic disk, and / or an optical disk.
  • the wireless power transmission apparatus 100 may operate in association with a web storage that performs a storage function of the memory 150 on the Internet.
  • the memory 150 may store programs or commands that perform the above-described functions of the wireless power transmission apparatus 100.
  • the controller 180 may execute programs or commands stored in the memory 150 to transmit power wirelessly. Other components (e.g., controller 180) included in the wireless power transmission apparatus 100 may use a memory controller (not shown) to access the memory 150. [
  • the configuration of the wireless power transmission apparatus may be applied to devices such as a docking station, a cradle device, and other electronic devices, May be readily apparent to those skilled in the art.
  • a wireless power receiving device implemented as a mobile terminal
  • FIG. 10 shows a configuration in which the electronic device 200 according to the embodiments disclosed herein is implemented in the form of a mobile terminal.
  • the mobile communication terminal 200 includes the power supply unit 290 shown in FIG. 2, FIG. 4, or FIG.
  • the terminal 200 includes a wireless communication unit 210, an audio / video input unit 220, a user input unit 230, a sensing unit 240, an output unit 250, a memory 260, An interface unit 270, and a control unit 280.
  • the components shown in Fig. 10 are not essential, and a terminal having more or fewer components may be implemented.
  • the wireless communication unit 210 can perform wireless communication between the terminal 200 and the wireless communication system or between the terminal 200 and the network where the terminal 200 is located or between the terminal 200 and the wireless power transmission apparatus 100 One or more modules.
  • the wireless communication unit 210 may include a broadcast receiving module 211, a mobile communication module 212, a wireless Internet module 213, a short distance communication module 214, and a location information module 215 .
  • the broadcast receiving module 211 receives broadcast signals and / or broadcast-related information from an external broadcast center through a broadcast channel.
  • the broadcast channel may include a satellite channel and a terrestrial channel.
  • the broadcast center may be a server for generating and transmitting broadcast signals and / or broadcast-related information, or a server for receiving broadcast signals and / or broadcast-related information generated by the broadcast center and transmitting the generated broadcast signals and / or broadcast- related information.
  • the broadcast signal may include a TV broadcast signal, a radio broadcast signal, a data broadcast signal, and a broadcast signal in which a data broadcast signal is combined with a TV broadcast signal or a radio broadcast signal.
  • the broadcast-related information may refer to a broadcast channel, a broadcast program, or information related to a broadcast service provider.
  • the broadcast-related information may also be provided through a mobile communication network. In this case, it may be received by the mobile communication module 212.
  • the broadcast-related information may exist in various forms.
  • an EPG Electronic Program Guide
  • DMB Digital Multimedia Broadcasting
  • ESG Electronic Service Guide
  • DVB-H Digital Video Broadcast-Handheld
  • the broadcast receiving module 211 may be a Digital Multimedia Broadcasting-Terrestrial (DMB-T), a Digital Multimedia Broadcasting-Satellite (DMB-S), a Media Forward Link Only (DVF-H) And a Digital Broadcasting System (ISDB-T) (Integrated Services Digital Broadcast-Terrestrial).
  • DMB-T Digital Multimedia Broadcasting-Terrestrial
  • DMB-S Digital Multimedia Broadcasting-Satellite
  • DMF-H Media Forward Link Only
  • ISDB-T Digital Broadcasting System
  • the broadcast receiving module 211 may be adapted to other broadcasting systems as well as the digital broadcasting system described above.
  • the broadcast signal and / or broadcast related information received through the broadcast receiving module 211 may be stored in the memory 260.
  • the mobile communication module 212 transmits and receives a radio signal to at least one of a base station, an external terminal, and a server on a mobile communication network.
  • the wireless signal may include various types of data depending on a voice call signal, a video call signal or a text / multimedia message transmission / reception.
  • the wireless Internet module 213 is a module for wireless Internet access, and may be built in or externally attached to the terminal 200.
  • WLAN Wi-Fi
  • Wibro Wireless broadband
  • Wimax Worldwide Interoperability for Microwave Access
  • HSDPA High Speed Downlink Packet Access
  • the short range communication module 214 is a module for short range communication.
  • Bluetooth Radio Frequency Identification (RFID), infrared data association (IrDA), Ultra Wideband (UWB), ZigBee, etc. can be used as a short range communication technology.
  • RFID Radio Frequency Identification
  • IrDA infrared data association
  • UWB Ultra Wideband
  • ZigBee ZigBee
  • USB Universal Serial Bus
  • IEEE 1394 IEEE 1394
  • Thunderbolt (TM ) Thunderbolt
  • the wireless Internet module 213 or the local area communication module 214 may establish a data communication connection with the wireless power transmission apparatus 100.
  • the audio signal is transmitted through the short- To the wireless power transmission apparatus 100.
  • the wireless Internet module 213 or the local area communication module 214 may transmit the information to the wireless power transmission apparatus 100 through the established data communication.
  • the wireless Internet module 213 or the short-range communication module 214 may receive an audio signal input through a microphone built in the wireless power transmission apparatus 100.
  • the wireless Internet module 213 or the local area communication module 214 may transmit identification information (e.g., a telephone number or a device name in the case of a mobile phone) of the mobile terminal 200 to the wireless power To the transmission apparatus 100.
  • the position information module 215 is a module for acquiring the position of the terminal, for example, a Global Position System (GPS) module.
  • GPS Global Position System
  • an A / V (Audio / Video) input unit 220 is for inputting an audio signal or a video signal, and may include a camera 221 and a microphone 222.
  • the camera 221 processes an image frame such as a still image or a moving image obtained by the image sensor in the video communication mode or the photographing mode.
  • the processed image frame can be displayed on the display unit 251.
  • the image frame processed by the camera 221 may be stored in the memory 260 or may be transmitted to the outside via the wireless communication unit 210. [ At least two cameras 221 may be provided depending on the use environment.
  • the microphone 222 receives an external sound signal by a microphone in a communication mode, a recording mode, a voice recognition mode, or the like, and processes it as electrical voice data.
  • the processed voice data may be converted into a form that can be transmitted to the mobile communication base station through the mobile communication module 212 when the voice data is in the call mode, and output.
  • Various noise elimination algorithms may be implemented in the microphone 222 to remove noise generated in receiving an external sound signal.
  • the user input unit 230 generates input data for a user to control the operation of the terminal.
  • the user input unit 230 may include a key pad dome switch, a touch pad (static / static), a jog wheel, a jog switch, and the like.
  • the sensing unit 240 may include a proximity sensor 241, a pressure sensor 242, a motion sensor 243, and the like.
  • the proximity sensor 241 can detect an object approaching the mobile terminal 200 or the presence of an object in the vicinity of the mobile terminal 200 without mechanical contact.
  • the proximity sensor 241 can detect a nearby object by using the change of the alternating magnetic field or the change of the static magnetic field, or the rate of change of the capacitance.
  • the proximity sensor 241 may include two or more sensors according to the configuration.
  • the pressure sensor 242 can detect whether pressure is applied to the mobile terminal 200, the magnitude of the pressure, and the like.
  • the pressure sensor 242 may be installed at a position where the pressure of the mobile terminal 200 needs to be detected according to the use environment. If the pressure sensor 242 is installed on the display unit 251, a touch input through the display unit 251 and a pressure greater than a touch input To identify the applied pressure touch input.
  • the magnitude of the pressure applied to the display unit 251 when the pressure touch is input can be determined according to the signal output from the pressure sensor 242.
  • the motion sensor 243 detects the position or movement of the mobile terminal 200 using an acceleration sensor, a gyro sensor, or the like.
  • An acceleration sensor that can be used in the motion sensor 243 is an element that converts an acceleration change in one direction into an electric signal. Acceleration sensors are usually constructed by mounting two or three axes in one package. Depending on the usage environment, only one axis of Z axis is required. Therefore, when the acceleration sensor in the X-axis direction or the Y-axis direction is used instead of the Z-axis direction for some reason, the acceleration sensor may be mounted on the main substrate by using a separate piece substrate.
  • the gyro sensor is a sensor for measuring the angular velocity of the mobile terminal 200, which is rotating, and can sense a rotated angle with respect to each reference direction.
  • the gyro sensor may sense azimuth, pitch and roll angles based on axes in three directions.
  • the output unit 250 includes a display unit 251, an audio output module 252, an alarm unit 253, a haptic module 254, and the like, for generating output related to visual, auditory, .
  • the display unit 251 displays (outputs) information processed by the terminal 200.
  • a UI User Interface
  • GUI Graphic User Interface
  • the terminal 200 is in the video communication mode or the photographing mode, the photographed and / or received image, UI, or GUI is displayed.
  • the display unit 251 may be a liquid crystal display (LCD), a thin film transistor-liquid crystal display (TFT LCD), an organic light-emitting diode (OLED) display, and a 3D display.
  • LCD liquid crystal display
  • TFT LCD thin film transistor-liquid crystal display
  • OLED organic light-emitting diode
  • Some of these displays may be transparent or light transmissive so that they can be seen through. This can be referred to as a transparent display, and a typical example of the transparent display is TOLED (Transparent OLED) and the like.
  • the rear structure of the display unit 251 may also be of a light transmission type. With this structure, the user can see an object located behind the terminal body through the area occupied by the display unit 251 of the terminal body.
  • a plurality of display units may be spaced apart from one another or may be disposed integrally with each other, or may be disposed on different surfaces.
  • a 'touch screen' in which a display unit 251 and a sensor (hereinafter, referred to as a 'touch sensor') for sensing a touch operation form a mutual layer structure, It can also be used as an input device.
  • the touch sensor may have the form of, for example, a touch film, a touch sheet, a touch pad, or the like.
  • the touch sensor may be configured to convert a change in a pressure applied to a specific portion of the display portion 251 or a capacitance generated in a specific portion of the display portion 251 to an electrical input signal.
  • the touch sensor can be configured to detect not only the position and area to be touched but also the pressure at the time of touch.
  • the corresponding signal (s) is sent to the touch controller.
  • the touch controller processes the signal (s) and transmits the corresponding data to the control unit 280.
  • the control unit 280 can know which area of the display unit 251 is touched or the like.
  • a proximity sensor 241 may be disposed in an inner region of the terminal to be wrapped by the touch screen or in the vicinity of the touch screen.
  • the proximity sensor refers to a sensor that detects the presence or absence of an object approaching a predetermined detection surface or a nearby object without mechanical contact using the force of an electromagnetic field or infrared rays.
  • the proximity sensor has a longer life span than the contact sensor and its utilization is also high.
  • the proximity sensor examples include a transmission type photoelectric sensor, a direct reflection type photoelectric sensor, a mirror reflection type photoelectric sensor, a high frequency oscillation type proximity sensor, a capacitive proximity sensor, a magnetic proximity sensor, and an infrared proximity sensor. And to detect the proximity of the pointer by the change of the electric field along the proximity of the pointer when the touch screen is electrostatic. In this case, the touch screen (touch sensor) may be classified as a proximity sensor.
  • proximity touch the act of recognizing that the pointer is positioned on the touch screen while the pointer is not in contact with the touch screen is referred to as " proximity touch &
  • contact touch The act of actually touching the pointer on the screen is called “ contact touch. &Quot;
  • the position where the pointer is proximately touched on the touch screen means a position where the pointer is vertically corresponding to the touch screen when the pointer is touched.
  • the proximity sensor detects a proximity touch and a proximity touch pattern (e.g., a proximity touch distance, a proximity touch direction, a proximity touch speed, a proximity touch time, a proximity touch position, a proximity touch movement state, and the like).
  • a proximity touch and a proximity touch pattern e.g., a proximity touch distance, a proximity touch direction, a proximity touch speed, a proximity touch time, a proximity touch position, a proximity touch movement state, and the like.
  • Information corresponding to the detected proximity touch operation and the proximity touch pattern may be output on the touch screen.
  • the audio output module 252 can output audio data received from the wireless communication unit 210 or stored in the memory 260 in a call signal reception mode, a call mode or a recording mode, a voice recognition mode, a broadcast reception mode, The sound output module 252 also outputs sound signals related to functions (e.g., call signal reception sound, message reception sound, etc.) performed in the terminal 200.
  • the sound output module 252 may include a receiver, a speaker, a buzzer, and the like.
  • the alarm unit 253 outputs a signal for notifying the terminal 200 of an event occurrence. Examples of events that occur in the terminal include call signal reception, message reception, key signal input, touch input, and the like.
  • the alarm unit 253 may output a signal for informing occurrence of an event in a form other than the video signal or the audio signal, for example, vibration.
  • the video signal or the audio signal may be output through the display unit 251 or the audio output module 252 so that they may be classified as a part of the alarm unit 253.
  • the haptic module 254 generates various tactile effects that the user can feel.
  • a typical example of the haptic effect generated by the haptic module 254 is vibration.
  • the intensity and pattern of the vibration generated by the hit module 254 and the like are controllable. For example, different vibrations may be synthesized and output or sequentially output.
  • the haptic module 254 can be used for a variety of applications including, but not limited to, a pin arrangement vertically moving with respect to the contact skin surface, a spraying force or suction force of the air through the injection port or the suction port, And various tactile effects such as an effect of reproducing a cold sensation using an endothermic or exothermic element can be generated.
  • the haptic module 254 can be implemented not only to transmit the tactile effect through direct contact but also to allow the user to feel the tactile effect through the muscular sensation of the finger or arm.
  • the haptic module 254 may include two or more haptic modules according to the configuration of the terminal 200.
  • the memory 260 may store a program for the operation of the control unit 280 and temporarily store input / output data (e.g., a phone book, a message, a still image, a moving picture, etc.).
  • the memory 260 may store data on vibration and sound of various patterns output when a touch is input on the touch screen.
  • the memory 260 may include an operating system (not shown), a module that performs the function of the wireless communication unit 210, a module that operates in conjunction with the user input unit 230, an A / V input unit 220, A module that operates in conjunction with the output module 250, and a module that operates in conjunction with the output module 250.
  • the operating system e.g., LINUX, UNIX, OS X, WINDOWS, Chrome, Symbian, iOS, Android, VxWorks or other embedded operating systems
  • provides various software for controlling system tasks such as memory management, power management, Components and / or drivers.
  • the memory 260 may also store a configuration program associated with wireless power transmission or wireless charging.
  • the setting program may be executed by the control unit 280.
  • the memory 260 may store an application related to wireless power transmission (or wireless charging) downloaded from an application providing server (e.g., an application store).
  • the wireless power transmission related application is a program for controlling wireless power transmission, and the electronic device 200 receives power wirelessly from the wireless power transmission apparatus 100 via the corresponding program, ) And a data communication link.
  • the memory 260 may be a flash memory type, a hard disk type, a multimedia card micro type, a card type memory (e.g., SD or xD memory), a RAM (Random Access Memory), SRAM (Static Random Access Memory), ROM (Read Only Memory), EEPROM (Electrically Erasable Programmable Read-Only Memory), PROM A disk, and / or an optical disk.
  • the terminal 200 may operate in association with a web storage that performs the storage function of the memory 260 on the Internet.
  • the interface unit 270 serves as a path for communication with all external devices connected to the terminal 200.
  • the interface unit 270 receives data from an external device or supplies power to each component in the terminal 200 or transmits data in the terminal 200 to an external device.
  • a wired / wireless headset port, an external charger port, a wired / wireless data port, a memory card port, a port for connecting a device having an identification module, an audio I / O port, A video input / output (I / O) port, an earphone port, and the like may be included in the interface unit 270.
  • the identification module is a chip for storing various information for authenticating the usage right of the terminal 200 and includes a user identification module (UIM), a subscriber identity module (SIM), a universal user authentication module A Subscriber Identity Module (USIM), and the like.
  • UIM user identification module
  • SIM subscriber identity module
  • USIM universal user authentication module
  • Devices with identification modules can be manufactured in a smart card format. Accordingly, the identification device can be connected to the terminal 200 through the port.
  • the interface unit When the terminal 200 is connected to an external cradle, the interface unit may be a path through which the power from the cradle is supplied to the terminal 200, or various command signals input from the cradle by the user are transmitted to the terminal .
  • the various command signals input from the cradle or the power source may be operated as a signal for recognizing that the terminal is correctly mounted on the cradle.
  • the controller 280 typically controls the overall operation of the terminal. For example, voice communication, data communication, video communication, and the like.
  • the control unit 280 may include a multimedia module 281 for multimedia playback.
  • the multimedia module 281 may be implemented in the control unit 280 or may be implemented separately from the control unit 280.
  • the controller 180 may be implemented as a separate module from the power receiving controller 292 in the power supply unit 290 described with reference to FIG. 2, or may be implemented as a single module.
  • the control unit 280 may perform pattern recognition processing to recognize handwriting input or drawing input performed on the touch screen as characters and images, respectively.
  • the control unit 280 performs wired charging or wireless charging according to a user input or an internal input.
  • the internal input is a signal indicating that the induced current generated in the secondary coil in the terminal is detected.
  • control unit 280 The operation of the control unit 280 to control the respective components when the above-described wireless charging is performed will be described in detail with reference to the operation state in FIG.
  • the power reception control unit 292 in the power supply unit 290 may be included in the control unit 280, and operation by the power reception control unit 292 may be performed by the control unit 280 ) Can be understood as being performed.
  • the power supply unit 290 receives an external power supply and / or an internal power supply under the control of the controller 280 and supplies power necessary for operation of the respective components.
  • the power supply unit 290 may include a battery 299 for supplying power to each component of the terminal 200 and may include a charging unit 298 for wired or wirelessly charging the battery 299.
  • the present specification discloses a mobile terminal as an example of a device for receiving power wirelessly
  • the configuration according to the embodiments described herein may be applied to a fixed terminal such as a digital TV, a desktop computer, It will be readily apparent to those skilled in the art that the present invention may be applied to the present invention.
  • FIG. 11 illustrates a concept of transmitting and receiving packets between a wireless power transmission device and an electronic device through modulation and demodulation of a wireless power signal in wireless power transmission in accordance with the embodiments disclosed herein.
  • the wireless power signal formed by the power conversion unit 111 forms a closed-loop in a magnetic field or an electro-magnetic field. Therefore, when the electronic device 200 modulates the wireless power signal while receiving the wireless power signal, the wireless power transmission device 100 can sense the modulated wireless power signal. Demodulation unit 113 demodulates the detected radio power signal and decodes the packet from the demodulated radio power signal.
  • a modulation method used for communication between the wireless power transmission apparatus 100 and the electronic device 200 may be amplitude modulation.
  • the modulation / demodulation unit 293 of the electronic device 200 side changes the amplitude of the wireless power signal 10a formed by the power conversion unit 111
  • the modulation and demodulation unit 293 of the base station 100 may be a backscatter modulation method for detecting the amplitude of the modulated radio power signal 10b.
  • the power reception control unit 292 of the electronic device 200 transmits the wireless power signal 10a received through the power reception unit 291 to the modulation / demodulation unit 293 ) By varying the load impedance (Impedance) in the input signal.
  • the power reception control unit 292 modulates the wireless power signal 10a so that a packet including a power control message to be transmitted to the wireless power transmission apparatus 100 is included.
  • the power transmission control unit 112 of the wireless power transmission apparatus 100 demodulates the modulated wireless power signal 10b through an envelope detection process, and transmits the detected signal 10c And decodes it into digital data 10d.
  • the demodulation process detects that a current or a voltage flowing through the power conversion unit 111 is divided into two states according to a modulated wireless power signal, that is, a HI state and an LO state,
  • the electronic device 200 obtains a packet to be transmitted by the electronic device 200 based on the digital data classified according to the type of the digital data.
  • FIG. 12 shows a method of displaying data bits and bytes constituting a power control message by the wireless power transmission apparatus 100.
  • the power transmission control unit 112 detects an encoded bit using a clock signal CLK from an envelope-detected signal.
  • the detected encoded bits are encoded according to the bit encoding method used in the modulation process on the electronic device 200 side.
  • the bit encoding method may be NRZ (non-return to zero).
  • the bit encoding method may be bi-phase encoding.
  • the detected bits may be differential bi-phase (DBP) encoded.
  • DBP differential bi-phase
  • the power reception control unit 292 of the electronic device 200 has two state transitions to encode the data bit 1, and one state transition to encode the data bit 0, . That is, the data bit 1 is encoded such that the transition between the HI state and the LO state occurs at the rising edge and the falling edge of the clock signal, and the data bit 0 is at the rising edge of HI State and the LO state may be encoded to occur.
  • the power transmission control unit 112 can obtain data in units of bytes by using a byte format that forms a packet from the bit stream detected according to the bit encoding method.
  • the detected bit stream may be transmitted using an 11-bit asynchronous serial format as shown in FIG. 12 (c). That is, it may include a start bit indicating the start of the byte and a stop bit indicating the end, and may include data bits (b0 through b7) between the start bit and the end bit.
  • a parity bit for checking the error of the data may be added.
  • the byte-by-byte data constitutes a packet including a power control message.
  • FIG. 13 illustrates a packet including a power control message used in a wireless power transfer method in accordance with the embodiments disclosed herein.
  • the packet 500 may be configured to include a preamble 510, a header 520, a message 530 and a checksum 540.
  • the preamble 510 is used for the wireless power transmission apparatus 100 to perform synchronization with the received data and accurately detect the start bit of the header 520.
  • the preamble 510 may be configured to repeat the same bits.
  • the preamble 510 may be configured such that the data bit 1 according to the DBP encoding is repeated 11 to 25 times.
  • the header 520 is used to indicate the type of the packet 500.
  • the size and type of the message 530 may be determined based on the value indicated by the header 520.
  • the header 520 is a value having a predetermined size and is located after the preamble 510. For example, the header 520 may be one byte in size.
  • the message (530) is configured to include data determined based on the header (520).
  • the message 530 has a predetermined size according to the type.
  • the checksum 540 is used to detect an error that may occur in the header 520 and the message 530 during transmission of a power control message.
  • the header 520 and the message 530 excluding the preamble 510 for synchronization and the checksum 540 for error checking may be called an instruction packet (command_packet).
  • FIG. 14 illustrates operating states of a wireless power transmission device 100 and an electronic device 200 in accordance with the embodiments disclosed herein.
  • 15 to 19 show the structure of packets including the power control message between the wireless power transmission apparatus 100 and the electronic apparatus 200.
  • the operational states of the wireless power transmission apparatus 100 and the electronic device 200 for wireless power transmission include a selection state 610, a ping state 620, An Identification and Configuration State 630, and a Power Transfer State 640.
  • FIG. 14 the operational states of the wireless power transmission apparatus 100 and the electronic device 200 for wireless power transmission include a selection state 610, a ping state 620, An Identification and Configuration State 630, and a Power Transfer State 640.
  • the wireless power transmission apparatus 100 100 sends a detection signal to the sensed object, and the electronic device 200 sends a response to the detection signal.
  • the wireless power transmission apparatus 100 identifies the selected electronic device 200 through the previous states and acquires setting information for power transmission.
  • the wireless power transmission apparatus 100 transmits power to the electronic device 200 while adjusting power to be transmitted corresponding to the control message received from the electronic device 200 .
  • the wireless power transmission apparatus 100 in the selected state 610 performs a detection process to select the electronic device 200 existing in the sensing area.
  • the sensing area refers to an area where an object in the area can affect the characteristics of the power of the power conversion part 111.
  • the detection process for selecting the electronic device 200 in the selected state 610 may be performed in a similar manner to the method for receiving a response from the electronic device 200 using the power control message,
  • the power conversion unit of the wireless power transmission apparatus 100 detects a change in the amount of power for forming a wireless power signal and determines whether an object exists within a predetermined range.
  • the detection process in the selected state 610 may be referred to as an analog detection process (analog ping) in that an object is detected using a wireless power signal without using a digital format packet in a detection state 620 to be described later .
  • the wireless power transmission apparatus 100 in the selected state 610 can sense that an object enters and exits the sensing area. Also, the wireless power transmission apparatus 100 can distinguish among the objects in the sensing area the electronic device 200 capable of wirelessly transmitting power and other objects (e.g., keys, coins, etc.) .
  • the sensing area where the object is detected in the selected state 610 may be different from each other.
  • the wireless power transmission apparatus 100 of the selected state 610 may monitor the interface surface (not shown) to detect placement and removal of objects have.
  • the wireless power transmission apparatus 100 may sense the position of the electronic device 200 on the upper surface of the interface. As described above, the wireless power transmission apparatus 100 formed to include one or more transmission coils enters the detection state 620 in the selected state 610 and uses each coil in the detection state 620 A method for confirming whether or not a response to the detection signal is transmitted from the object, or thereafter entering the identification state 630 and checking whether the identification information is transmitted from the object. The wireless power transmission apparatus 100 may determine a coil to be used for wireless power transmission based on the position of the sensed electronic device 200 obtained through the above process.
  • the wireless power transmission apparatus 100 in the selected state 610 may receive at least one of the frequency, current, and voltage of the power conversion unit due to an object in the sensing area So that the object can be detected.
  • the wireless power transmission apparatus 100 in the selected state 610 can detect an object by at least one of the inductive coupling method and the resonant coupling method detection method.
  • the wireless power transmission apparatus 100 performs an object detection process according to each power transmission method and then detects the object among the combining methods for wireless power transmission in order to proceed to other states 620, 630, and 640 You can choose one method.
  • the wireless power transmission apparatus 100 in the selected state 610 can detect a wireless power signal to detect an object and digital detection, identification, setting, and power transmission in the following states 620, 630, and 640
  • the characteristics of the wireless power signal such as frequency, intensity, etc., may be different. This is because the selected state 610 of the wireless power transmission apparatus 100 corresponds to an idle state for detecting an object so that the wireless power transmission apparatus 100 can reduce the power consumption in the air, So that it is possible to generate a specialized signal for object detection.
  • the wireless power transmission apparatus 100 in the detection state 620 performs a process of detecting an electronic device 200 existing in the sensing area through a power control message.
  • the detection process in the detection state 620 may be referred to as digital ping in comparison with the detection process of the electronic device 200 using the characteristic of the wireless power signal in the selected state 610.
  • the wireless power transmission apparatus 100 forms a wireless power signal for detecting the electronic device 200, demodulates the wireless power signal modulated by the electronic device 200, And obtains a power control message in the form of digital data corresponding to the response to the detection signal from the demodulated wireless power signal.
  • the wireless power transmission apparatus 100 may recognize the electronic device 200 that is the object of power transmission by receiving a power control message corresponding to a response to the detection signal.
  • the detection signal formed by the wireless power transmission apparatus 100 in the detection state 620 to perform the digital detection process is a wireless power signal generated by applying a power signal of a specific operating point for a predetermined time .
  • the operating point may refer to a frequency, a duty cycle and an amplitude of a voltage applied to the Tx coil.
  • the wireless power transmission apparatus 100 may generate the detection signal generated by applying the power signal of the specific operating point for a predetermined time and may attempt to receive the power control message from the electronic device 200.
  • the power control message corresponding to the response to the detection signal may be a message indicating the strength of the wireless power signal received by the electronic device 200.
  • the electronic device 200 may transmit a signal strength packet 5100 including a message indicating the strength of the received wireless power signal as a response to the detection signal as shown in FIG. 15 Lt; / RTI >
  • the packet 5100 may be configured to include a header 5120 indicating that the packet is a packet representing the signal strength and a message 5130 indicating the strength of the power signal received by the electronic device 200.
  • the strength of the power signal in the message 5130 may be a value indicative of the degree of coupling of inductive coupling or resonant coupling for power transmission between the wireless power transmission device 100 and the electronic device 200.
  • the wireless power transmission apparatus 100 may receive the response message to the detection signal and detect the electronic device 200 and then extend the digital detection process to enter the identification and detection state 630. [ That is, the wireless power transmission apparatus 100 may receive the power control message required in the identification and detection state 630 by maintaining the power signal of the specific operation point after discovery of the electronic device 200.
  • the operation state of the wireless power transmission apparatus 100 may be returned to the selected state 610 .
  • the wireless power transmission apparatus 100 in the identification and setting state 630 may receive the identification information and / or the setting information transmitted by the electronic device 200 and control the power transmission to be performed efficiently.
  • the electronic device 200 may transmit a power control message including its own identification information.
  • the electronic device 200 can transmit an identification packet (Identification Packet) 5200 including a message indicating the identification information of the electronic device 200 as shown in FIG. 16A, for example have.
  • the packet 5200 may be configured to include a header 5220 indicating that it is a packet indicating identification information and a message 5230 including identification information of the electronic device.
  • the message 5230 includes information 2531 and 5232 indicating the protocol version for wireless power transmission, information 5233 identifying the manufacturer of the electronic device 200, information 5234 indicating the presence or absence of the extension device identifier And a base unit identifier 5235.
  • an Extended Identification Packet including the extension device identifier as shown in FIG. 16B, may be separately transmitted.
  • the packet 5300 may be configured to include a header 5320 indicating that the packet is an extension device identifier, and a message 5330 including an extension device identifier.
  • information based on the manufacturer's identification information 5233, the base device identifier 5235, and the extension device identifier 5330 is used to identify the electronic device 200 Can be used.
  • the electronic device 200 may transmit a power control message including information on the estimated maximum power.
  • the electronic device 200 can transmit, for example, a configuration packet (Configuration Packet) 5400 as shown in FIG.
  • the packet may be configured to include a header 5420 indicating that it is a configuration packet and a message 5430 containing information on the expected maximum power.
  • the message 5430 includes a power class 5431, information 5432 about the expected maximum power, an indicator 5433 indicating how to determine the current of the primary cell on the wireless power transmission side, 5434).
  • the indicator 5433 may indicate whether or not the current of the main cell of the wireless power transmission apparatus side is to be determined as specified in the protocol for wireless power transmission.
  • the electronic device 200 may transmit a power control message including its required power information or its profile information to the wireless power transmission device 100.
  • the requested power information of the electronic device 200 or the profile information thereof may be transmitted in a configuration packet 5400 as shown in Fig.
  • the requested power information of the electronic device 200 or its profile information may be transmitted in a packet for setting.
  • the wireless power transmission apparatus 100 may generate a power transfer contract to be used for power charging with the electronic device 200 based on the identification information and / or the setting information.
  • the power transfer protocol may include limits of parameters that determine the power transfer characteristics in the power transfer state 640.
  • the wireless power transmission apparatus 100 may terminate the identification and setting state 630 and return to the selection state 610 before entering the power delivery state 640.
  • the wireless power transmission device 100 may terminate the identification and setting state 630 to look for other electronic devices capable of receiving power wirelessly.
  • the wireless power transmission apparatus 100 in the power transmission state 640 transmits power to the electronic device 200.
  • the wireless power transmission apparatus 100 may receive a power control message from the electronic device 200 during power transmission and may adjust the characteristics of power applied to the transmission coil in response to the received power control message .
  • a power control message used to adjust the power characteristic of the transmission coil may be included in a control error packet 5500 as shown in FIG.
  • the packet 5500 may be configured to include a header 5520 indicating that the packet is a control error packet and a message 5530 including a control error value.
  • the wireless power transmission apparatus 100 may adjust the power applied to the transmission coil according to the control error value. That is, the current applied to the transmission coil is maintained when the control error value is 0, decreased when the control value is a negative value, and can be adjusted to increase when the control value is a positive value.
  • the wireless power transmission apparatus 100 may monitor parameters in a power transfer contract generated based on the identification information and / or the setting information. As a result of monitoring the parameters, when the power transmission to the electronic device 200 violates the limitations contained in the power transfer protocol, the wireless power transmission apparatus 100 cancels the power transmission, State 610. < / RTI >
  • the wireless power transmission apparatus 100 may terminate the power transmission state 640 based on the power control message transmitted from the electronic device 200.
  • a power control request to stop the wireless power transmission to the wireless power transmission apparatus 100 Message.
  • the wireless power transmission apparatus 100 may terminate the wireless power transmission and return to the selected state 610 after receiving the message requesting the suspension of the power transmission.
  • the electronic device 200 may deliver a power control message requesting renegotiation or reconfiguration to update the already generated power transfer protocol.
  • the electronic device 200 may transmit a message requesting renegotiation of the power transfer protocol when a power amount that is more or less than the currently transmitted power amount is required.
  • the wireless power transmission apparatus 100 may terminate the wireless power transmission and return to the identification and setting state 630 after receiving the message requesting renegotiation of the power transfer protocol.
  • the message transmitted by the electronic device 200 may be, for example, an End Power Transfer Packet 5600 as shown in FIG.
  • the packet 5600 may be configured to include a header 5620 indicating that the packet is a power transmission interruption packet and a message 5630 including a power transmission interruption code indicating the reason for the interruption.
  • the power transmission interruption code may be a code for determining whether or not the power transmission interruption code is in a state of charge completion, an internal fault, an over temperature, an over voltage, an over current, a battery failure, a reconfigure, No Response, or Unknown.
  • a method for distinguishing and setting characteristics of power transmitted by a wireless power transmission apparatus according to an electronic apparatus according to embodiments disclosed herein is disclosed.
  • the wireless power transmission apparatus 100 determines one or more characteristics of the frequency, voltage, and current of the power supplied to the power conversion unit 111 that forms the wireless power signal, as described above .
  • the wireless power transmission apparatus 100 may perform the characteristic determination process based on the control information transmitted from the electronic device 200.
  • the control information may be identification information of the electronic device 200, identification information of a profile indicating a power characteristic, or information on characteristics of the required power of the electronic device 200.
  • the wireless power transmission apparatus 100 may perform the characteristic determination process based on the identification information of the electronic device 200. That is, the wireless power transmission apparatus 100 can determine the characteristics of the power supplied to the power conversion unit 111 based on the identification information of the electronic device 200. For this, the wireless power transmission apparatus 100 may use a profile of characteristics of power to be transmitted to the electronic device 200 stored in the memory 150.
  • the wireless power transmission apparatus 100 may perform the characteristic determination process based on information on characteristics of power that the electronic device 200 requires based on consumed power.
  • the wireless power transmission apparatus 100 may be configured to determine the characteristics (e.g., the characteristics) of the electronic device 200 based on the information about the characteristics of the required power based on the position, orientation, user's input, A decision process can be performed. For this, the wireless power transmission apparatus 100 may acquire information on the characteristics of the required power from the electronic device 200.
  • the power required by the electronic device 200 may be the power required for the operation of the electronic device 200 or the power required for charging the electronic device 200.
  • the wireless power transmission apparatus 100 may receive information on the expected maximum power from the electronic device 200 to determine characteristics of the power supplied to the power conversion unit 111.
  • the information on the estimated maximum power may be about the power required for operation or charging of the electronic device 200.
  • the wireless power transmission apparatus 100 may receive information about the charging characteristics of the electronic device 200 from the electronic device 200 in order to determine characteristics of the power supplied to the power conversion unit 111 Lt; / RTI >
  • the charging characteristics of the electronic device 200 may include characteristics for the charger 298 or the battery 299.
  • the characteristic of the charging unit 298 may include information indicating a charging mode.
  • the charging mode may be, for example, a constant voltage (CV) charging mode or a constant current (CC) charging mode.
  • the characteristic of the charging unit 298 may include necessary parameters according to the charging mode.
  • the required parameters according to the charging mode may be the charging voltage in the constant voltage charging mode or the charging current in the constant current charging mode.
  • the characteristic of the charging unit 298 may include a change criterion of the charging mode.
  • the characteristic of the charging unit 298 may include information indicating a charging termination method. In addition, the characteristics of the charging unit 298 may include information indicating an end-of-charge detection method.
  • the characteristics of the battery 299 may include a type of a battery cell (for example, Ni-Cd, Ni-MH, Li-Ion, etc.).
  • the characteristics of the battery 299 may include a charge rate (e.g., fast charge or normal charge).
  • the characteristics of the battery 299 may include voltage-temperature characteristic information according to charging time.
  • the characteristics of the battery 299 may include temperature information of the battery.
  • the characteristics of the battery 299 may include the number of battery cells.
  • the position of the electronic device 200, the orientation of the electronic device 200, and the position of the electronic device 200 may be determined by the wireless power transmission device 100 from the electronic device 200, Information about the user's input, power transmission related settings, and the like.
  • the information on the position of the electronic device 200 may include information on the position of the electronic device 200 disposed on the interface surface of the wireless power transmission device 100, Lt; / RTI > Alternatively, the information on the position of the electronic device 200 may be information on the distance from the wireless power transmission apparatus 100 or the intensity of the wireless power signal when the wireless power transmission scheme by resonance coupling is used.
  • the information on the placement direction is a direction in which the electronic device 200 is disposed on the interface surface of the wireless power transmission apparatus 100.
  • the main body (not shown) of the electronic device 200 has a reference position
  • the angle of rotation may be information about a direction determined by an angle that is relatively rotated with respect to the direction.
  • the information on the placement direction may be a portrait, a landscape, or an orientation angle from a portrait orientation.
  • the information on the placement direction may be information on the angle between the transmission coil and the reception coil, which can be determined based on the wireless power signal used for power transmission.
  • the power property setting methods described with reference to FIGS. 20 and 21 are the same as those of FIG. 20 and FIG. 21, except that the electronic device 200 does not transmit information about its required power to determine the characteristics of the power supply at the wireless power transmission apparatus 100 side Passive modes.
  • the wireless power transmission apparatus 100 may form a wireless power signal for sensing the electronic device 200. If the wireless power transmission apparatus 100 detects the electronic apparatus 200 but the electronic apparatus 200 does not receive a response 631 or a response that the wireless power transmission apparatus 100 can not recognize is transmitted
  • the wireless power transmission apparatus 100 may arbitrarily determine at least one of a frequency, a voltage, and a current of a power source supplied to the power conversion unit 111. In this case, Thereafter, the wireless power transmission apparatus 100 sets a power to be supplied to the power conversion unit 111 according to the arbitrarily determined characteristic (635). Thereafter, a wireless power signal transmitted to the electronic device 200 is formed according to the set power (640).
  • the wireless power transmission apparatus 100 can perform the process of detecting the electronic device 200 in the selected state 610 and / or the detected state 620 in FIG.
  • the wireless power transmission apparatus 100 senses the electronic device 200 (i.e., detects it as an analog detection process) during the detection process in the selected state 610 and / or the detection state 620,
  • a basic power characteristic setting process as described above can be performed when a response is not received from the electronic device 200 within a predetermined time or when an unrecognizable response is received.
  • FIG. 21 shows a process of setting a power characteristic using the identification information of an electronic device by the wireless power transmission device.
  • the wireless power transmission apparatus 100 may receive the identification information of the electronic device 200 receiving the power wirelessly.
  • the identification information of the electronic device 200 may be configured to include a value (e.g., a battery characteristic, a charging mode, and the like) indicative of a characteristic of a power required by the electronic device 200.
  • the wireless power transmission apparatus 100 may determine the characteristics of the power supplied to the power conversion unit 111 based on the identification information of the electronic device 200.
  • the memory 150 of the wireless power transmission apparatus 100 may store a property value of a power source corresponding to the identification information of the electronic device 200.
  • the wireless power transmission apparatus may extract a power supply property value for the electronic device 200 from the memory 150 based on the identification information.
  • the characteristic value of the power stored in the memory 150 may be stored at the time of manufacture of the wireless power transmission device 100, or received from the electronic device 200 provider and stored.
  • the property values of the power stored in the memory 150 may be recorded based on values used for the electronic device 200.
  • the wireless power transmission apparatus 100 determines whether or not to perform wireless power transmission based on the identification information of the electronic device 200. If the determination result is that the wireless power transmission is prohibited It may not perform the wireless power transmission.
  • the wireless power transmission apparatus 100 performs the process of detecting the electronic device 200 in the selected state 610 and / or the detected state 620 of FIG. 14,
  • the identification information 631 of the electronic device 200 can be received.
  • the identification information of the electronic device 200 may be received included in the identification packet 5200 or the extended identification packet 5300.
  • the wireless power transmission apparatus 100 may perform the process of setting the power characteristics as described above based on the identification information of the electronic device 200 received in the identification and setting state 630.
  • the electronic device 200 transmits its required power information or its profile information to the wireless power transmission apparatus 100, Are active modes that allow the characteristics of the power supply to be determined.
  • FIG. 22 shows a process of setting a power characteristic based on information on a required power received from an electronic device by the wireless power transmission device.
  • the wireless power transmission apparatus 100 may receive information 634a about the characteristics of the power required by the electronic device 200. [ The wireless power transmission apparatus 100 may determine the characteristics of the power supplied to the power conversion unit 111 on the basis of the information about the characteristics of the power required by the electronic device 200. The information about the characteristics of the electric power required by the electronic device 200 may be about the power required for operation or charging of the electronic device 200, as described above.
  • the wireless power transmission apparatus 100 performs the process of detecting the electronic device 200 in the selected state 610 and / or the detected state 620 in FIG. 14, and then, in the identifying and setting state 630 Information 634a on the characteristics of the power can be received from the electronic device 200.
  • information about the characteristics of the power may be received in the configuration packet 5400 for setting 632 among the identifying and setting state 630.
  • information about the characteristics of the power may be received in a packet (not shown) different from the configuration packet 5400 as a separate process from the configuration 632 step.
  • the wireless power transmission apparatus 100 may perform the process of setting the power characteristics as described above based on the information about the characteristics of the power received from the electronic device 200.
  • FIG. 23 shows a process of setting a power characteristic based on a profile of a power characteristic received from an electronic device by the wireless power transmission device.
  • the profile of the power characteristics represents a set of information classified by operation of the electronic device 200 described above with reference to FIG. 22 or information on power required for charging. 23, the information on the characteristics of the power required by the electronic device 200 is transmitted specifically, as described with reference to FIG. 22, , And information on the classified profile (e.g., profile identification information) is transmitted.
  • the profile may be classified based on the estimated maximum power of the electronic device 200.
  • the profile may be classified based on the charging characteristics of the electronic device 200.
  • the profiles classified on the basis of the charging characteristics are classified into a charging mode, a changing criterion of the charging mode, a charging termination method, a detection method of the charging termination, a type of battery cell, a charge rate, a charging time, And may be a profile classified based on the number of battery cells.
  • the wireless power transmission apparatus 100 performs a process of detecting the electronic device 200 in a selected state 610 and / or a detected state 620 shown in FIG. 14, And information 634b about the profile from the electronic device 200 in the set state 630.
  • the information on the profile may be received in the configuration packet 5400 for setting 632 among the identification and setting state 630 or may be received in a packet (not shown) different from the setting packet 5400 .
  • the wireless power transmission apparatus 100 may perform the process of setting the power characteristics as described above based on the information about the profile received from the electronic device 200.
  • 24 and 25 illustrate how an electronic device receiving wireless power acts as a host for managing a wireless power transfer process.
  • the electronic device 200 may perform the identification and / or setting process in the identification and setting state 630 after the selection state 610 and / or the detection state 620 in FIG. In this case, the electronic device 200 may transmit a message to the wireless power transmission apparatus 100 indicating that the electronic device 200 plays a role of the host in the identifying and setting state 630.
  • the radio power transmission apparatus 100 includes a flag indicating that the electronic device 200 acts as a host in a message for transmitting the identification information 631-1 or the setting information 632-1, Thereby informing that the wireless power transfer process will be managed by itself.
  • the electronic device 200 may include the power mode setting methods of the passive mode described with reference to FIGS. 20 and 21, and FIGS. 22 and 23 It is possible to select one of the power mode setting methods of the active mode described above and notify the radio power transmission apparatus 100 of the selection. That is, when the electronic device 200 functions as a host, the electronic device 200 may select to set the power characteristic using the identification information as shown in FIG. 21, or may use the information about the specific required power as shown in FIGS. 22 and 23, You can choose to set the properties.
  • a power property setting method is selected, and information on the selected power property setting method May be included in the message for transmitting the identification information 631-1 or the setting information 632-1 so as to inform that the host is acting as a host.
  • the electronic device 200 may select to set the power characteristics by using the identification information 631 performed in the previous step, or may output the information 634a, 634b ) To set the power characteristics.
  • Figures 26 and 27 illustrate how a wireless power transmission device acts as a host to manage a wireless power transfer process.
  • the wireless power transmission apparatus 100 may arbitrarily determine the characteristics of the power.
  • the wireless power transmission apparatus 100 When the wireless power transmission apparatus 100 performs the role of the host as described above, the wireless power transmission apparatus 100 performs a process 635 of adjusting the charging characteristic using the power mode setting method of the passive mode described with reference to FIG. 20 . That is, in this case, the wireless power transmission apparatus 100 may arbitrarily determine the characteristics of the power supply.
  • the wireless power transmission apparatus 100 performs the process of detecting the electronic device 200 in the selected state 610 and / or the detected state 620 shown in FIG. 14, When the wireless power transmission apparatus 100 does not receive a notification from the electronic device 200 that the electronic device 200 performs a role as a host for a predetermined period of time in the set state 630, .
  • the wireless power transmission apparatus 100 may perform the step 635 of adjusting the charging characteristic using any one of the manual power mode setting methods described with reference to FIGS. 20 and 21 . That is, in this case, the wireless power transmission apparatus 100 may arbitrarily determine the characteristics of the power source, or may determine the characteristics of the power source using the received identification information 631 when the identification information 631 is received.
  • the power characteristics are adjusted using other information besides the manual power mode setting methods described with reference to FIGS. 20 and 21 Process can be performed.
  • the power characteristic is adjusted using the position information or the placement direction information of the electronic device 200 sensed by the sensor unit 120 .
  • the location information of the electronic device 200 is transmitted to the wireless power transmission apparatus 100 located on the interface surface of the wireless power transmission apparatus 100 sensed by the sensor unit 120, And may be information on the position of the electronic device 200.
  • the information on the position of the electronic device 200 may be the distance information from the wireless power transmission device 100 sensed by the sensor unit 120. For example, have.
  • the information on the placement direction may be information on a relative direction in which the electronic device 200 is disposed on the interface surface of the wireless power transmission apparatus 100.
  • the information on the placement direction may be a portrait, a landscape, or an orientation angle from a portrait orientation.
  • the wireless power transmission apparatus 100 may obtain information about the placement direction by determining the angle between the transmission coil and the reception coil based on the wireless power signal used by the sensor unit 120 or for power transmission have.
  • 28 is a flowchart illustrating a method for controlling a power characteristic of a wireless power transmission apparatus in consideration of a newly detected electronic apparatus during wireless power transmission. 29 shows a method for the wireless power transmission apparatus to adjust power characteristics for a newly detected electronic device.
  • the wireless power transmission apparatus 100 detects a new electronic device 200 (S10).
  • the detecting process S10 may be an electronic device detecting process in the selected state 610 or the detecting state 620 in FIG.
  • the wireless power transmission apparatus 100 determines whether there is another electronic device capable of transmitting power using the wireless power signal (S20). For this, the wireless power transmission apparatus 100 may determine whether the electronic device 200 is disposed in an active area or a semi-active area.
  • the wireless power transmission device 100 performs the process of adjusting the power characteristics for the detected electronic device 200 as described with reference to FIGS. 20 to 27 (S30).
  • a process of determining a device that acts as a host for managing a wireless power transfer process between the wireless power transmission device 100 and the electronic devices may be performed (S41).
  • the host determination process S41 may be performed in the same manner as described with reference to FIGS.
  • the host determination process S41 may be performed in consideration of a relationship with other electronic devices that are already present, or may be performed irrespective of the relationship.
  • the wireless power transmission apparatus 100 acquires power information of the electronic apparatus (S42).
  • the process of acquiring the power information S42 may include a process 631 of receiving identification information of the electronic device described with reference to FIGS. 20 to 23, a process of receiving the requested power information 634a, Gt; 634b < / RTI > As described with reference to FIGS. 24 to 27, the step of acquiring the power information S42 may be performed differently depending on the result of the host determining step S41.
  • the wireless power transmission device 100 may acquire power information of other electronic devices.
  • the wireless power transmission apparatus 100 transmits position information of the electronic apparatus 200 sensed by the sensor unit 120, May be used to obtain power information for the electronic device.
  • the wireless power transmission apparatus 100 compares the obtained power information of the respective electronic apparatuses, determines power characteristics to be set for the respective electronic apparatuses based on the comparison result (S43), and determines And adjusts the power supplied to the power conversion unit 111 to form the wireless power (S44).
  • the wireless power transmission apparatus 100 may perform the determination of the power supply characteristic (S43) as follows.
  • the wireless power transmission apparatus 100 may determine the power characteristics for each electronic device by comparing the detected device identifiers of the electronic device 200 and other electronic devices or comparing some values of the device identifiers. For example, based on the detected device identifier of the electronic device 200, it is possible to determine the power characteristics for distinguishing the charging speed such as rapid charging or normal charging.
  • the wireless power The transmission apparatus 100 compares the device identifiers of the newly disposed electronic device 200 and the other electronic devices 200 'to determine power characteristics (for example, power characteristics for rapid charging or normal charging) Can be determined. In this case, the wireless power transmission apparatus 100 may display the information on the power characteristics determined for each device on the display unit 141.
  • the wireless power transmission apparatus 100 may compare the detected position information of the electronic device 200 and other electronic devices to determine power characteristics for the respective electronic devices. For example, the wireless power transmission apparatus 100 may determine a power characteristic for distinguishing a charging rate, such as rapid charging or normal charging, depending on whether the detected electronic device 200 is present at a specific position on the interface surface . In addition, the wireless power transmission apparatus 100 may determine a power supply characteristic for distinguishing a charging rate such as rapid charging or normal charging depending on whether the detected electronic device 200 is within a specific distance.
  • a power characteristic for distinguishing a charging rate such as rapid charging or normal charging
  • the wireless power The transmission device 100 compares the position information of the newly disposed electronic device 200 and the other electronic device 200 'to determine the power characteristics for each electronic device (for example, power characteristics for rapid charging or normal charging) Can be determined. That is, the wireless power transmission apparatus 100 determines a power supply characteristic so that rapid charging is performed for the newly arranged electronic device 200 located in the first area 161 on the interface surface 160, The power supply characteristic can be determined so that the general charge is performed for the other electronic device 200 'located in the region 162.
  • the method described above can be implemented in a recording medium that can be read by a computer or similar device using, for example, software, hardware, or a combination thereof.
  • the methods described so far can be applied to various types of application specific integrated circuits (ASICs), digital signal processors (DSPs), digital signal processing devices (DSPDs), programmable logic devices (PLDs), field programmable gate arrays microprocessors, microprocessors, and other electronic units for performing other functions.
  • ASICs application specific integrated circuits
  • DSPs digital signal processors
  • DSPDs digital signal processing devices
  • PLDs programmable logic devices
  • field programmable gate arrays microprocessors microprocessors, and other electronic units for performing other functions.
  • the methods may be implemented using the wireless Or may be implemented in the control unit 180 or the power transmission control unit 112 of the power transmission apparatus 100 or the methods may be implemented in the control unit 280 or the power reception control unit 292 of the electronic apparatus 200 have.
  • embodiments such as the procedures and functions described herein may be implemented with separate software modules. Each of the software modules may perform one or more of the functions and operations described herein.
  • Software code can be implemented in a software application written in a suitable programming language. The software code may be stored in the memory 150 of the wireless power transmission apparatus 100 and may be executed by the control unit 180 or the power transmission control unit 112, 260 and may be executed by the control unit 280 or the power reception control unit 292.

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  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Charge And Discharge Circuits For Batteries Or The Like (AREA)

Abstract

La présente invention concerne, selon un mode de réalisation, un dispositif de réception d'électricité qui comprend une unité de réception d'électricité qui reçoit un signal électrique sans fil provenant d'un dispositif d'émission d'électricité, et module le signal électrique sans fil ; une unité de chargement qui charge une batterie à l'aide du signal électrique sans fil reçu ; une unité de commande qui émet des informations de commande pour une commande d'électricité dans le dispositif d'émission d'électricité par l'intermédiaire du signal électrique sans fil, et l'électricité transmise par l'intermédiaire du signal électrique sans fil reçu est commandée sur la base d'informations de commande incluses dans le message.
PCT/KR2011/003983 2011-05-31 2011-05-31 Chargement sans fil en fonction de caractéristiques de chargement Ceased WO2012165672A1 (fr)

Priority Applications (1)

Application Number Priority Date Filing Date Title
PCT/KR2011/003983 WO2012165672A1 (fr) 2011-05-31 2011-05-31 Chargement sans fil en fonction de caractéristiques de chargement

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
PCT/KR2011/003983 WO2012165672A1 (fr) 2011-05-31 2011-05-31 Chargement sans fil en fonction de caractéristiques de chargement

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WO2012165672A1 true WO2012165672A1 (fr) 2012-12-06

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EP2955813B1 (fr) * 2014-06-13 2020-08-26 LG Electronics Inc. Procédé, appareil et système de transfert de puissance sans fil
KR20240018531A (ko) * 2021-07-02 2024-02-13 엘지전자 주식회사 무선 전력 전송 시스템에서 프로파일 간 호환성 확보 방법 및 장치

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Publication number Priority date Publication date Assignee Title
US10547209B2 (en) 2014-06-13 2020-01-28 Lg Electronics Inc. Wireless power transfer method, apparatus and system
EP2955813B1 (fr) * 2014-06-13 2020-08-26 LG Electronics Inc. Procédé, appareil et système de transfert de puissance sans fil
KR20240018531A (ko) * 2021-07-02 2024-02-13 엘지전자 주식회사 무선 전력 전송 시스템에서 프로파일 간 호환성 확보 방법 및 장치
EP4354703A4 (fr) * 2021-07-02 2024-10-23 LG Electronics Inc. Procédé et dispositif permettant d'obtenir une compatibilité entre des profils dans un système de transmission de puissance sans fil
KR102926469B1 (ko) * 2021-07-02 2026-02-10 엘지전자 주식회사 무선 전력 전송 시스템에서 프로파일 간 호환성 확보 방법 및 장치
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