EP4569748A1 - Élément de services de bâtiment, système de commande de bâtiment le comprenant, et procédé de commande d'un dispositif - Google Patents

Élément de services de bâtiment, système de commande de bâtiment le comprenant, et procédé de commande d'un dispositif

Info

Publication number
EP4569748A1
EP4569748A1 EP23748991.9A EP23748991A EP4569748A1 EP 4569748 A1 EP4569748 A1 EP 4569748A1 EP 23748991 A EP23748991 A EP 23748991A EP 4569748 A1 EP4569748 A1 EP 4569748A1
Authority
EP
European Patent Office
Prior art keywords
building
data
control system
technology element
building technology
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.)
Pending
Application number
EP23748991.9A
Other languages
German (de)
English (en)
Inventor
Stefan Muth
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.)
Steinel GmbH and Co KG
Original Assignee
Steinel GmbH and Co KG
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 Steinel GmbH and Co KG filed Critical Steinel GmbH and Co KG
Publication of EP4569748A1 publication Critical patent/EP4569748A1/fr
Pending legal-status Critical Current

Links

Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L12/00Data switching networks
    • H04L12/28Data switching networks characterised by path configuration, e.g. LAN [Local Area Networks] or WAN [Wide Area Networks]
    • H04L12/2803Home automation networks
    • H04L12/283Processing of data at an internetworking point of a home automation network
    • H04L12/2832Interconnection of the control functionalities between home networks
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L12/00Data switching networks
    • H04L12/28Data switching networks characterised by path configuration, e.g. LAN [Local Area Networks] or WAN [Wide Area Networks]
    • H04L12/2803Home automation networks
    • H04L12/2807Exchanging configuration information on appliance services in a home automation network
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L12/00Data switching networks
    • H04L12/28Data switching networks characterised by path configuration, e.g. LAN [Local Area Networks] or WAN [Wide Area Networks]
    • H04L12/2803Home automation networks
    • H04L2012/284Home automation networks characterised by the type of medium used
    • H04L2012/2841Wireless
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L12/00Data switching networks
    • H04L12/28Data switching networks characterised by path configuration, e.g. LAN [Local Area Networks] or WAN [Wide Area Networks]
    • H04L12/2803Home automation networks
    • H04L2012/2847Home automation networks characterised by the type of home appliance used
    • H04L2012/285Generic home appliances, e.g. refrigerators

Definitions

  • the invention relates to a building technology element, a building control system with this and a method for controlling a device, as well as wireless communication of the building technology element with the device.
  • building technology elements are networked using communication lines with the building control system for monitoring, control, regulation and/or optimization.
  • the building technology elements can be sensors (such as motion and/or presence detectors, brightness and/or air pressure sensors, air quality sensors such as temperature, humidity, VOC, CO2, or their combinatorics), actuators (such as lighting control, alarm systems, heating and roller shutters). -controls) and other technical systems (e.g. multimedia devices such as televisions, DVD players, or a stereo system).
  • the building control system can be connected to an external communication network, such as the Internet or a cellular network, which makes it possible to control and adjust the building technology elements externally (for example via a homeowner's mobile device).
  • the building control system can have a control center for connection to external networks, for example a KNX IP gateway.
  • the building control system can also autonomously regulate or control technical processes in a building system or within a company, according to the data recorded by sensor elements.
  • Frequently used building control systems are based on bus systems such as the decentralized KNX bus system, which connects the sensors and actuators in a building control system through the communication lines (i.e. networked using the communication lines that enable wired communication).
  • the communication lines i.e. networked using the communication lines that enable wired communication.
  • integrating wirelessly communicating devices into such a KNX bus system outside of a KNX-RF radio system is not easily possible.
  • the object of the present invention is therefore to provide an improved integration of wirelessly communicating devices into a wired building control system.
  • a building technology element in a wired building control system having the following: a radio network transmitter-receiver with a limited transmitter range, a radio network interface, which allows the building technology element to wirelessly exchange data with an in A system of wirelessly connected devices within transmitter range connects, a communication interface that connects the building technology element for the wired exchange of data with the wired building control system, and a processing unit. It is provided that the processing unit is adapted to control an exchange of data between the system of wirelessly connected devices and the building control system and to manage the data assigned to the respective devices.
  • Such a building technology element serves as an intermediary or as a gateway that enables data to be exchanged between the wired building control system and the system of wirelessly connected devices. It integrates the devices that communicate wirelessly with each other into the building control system. Or to put it another way, the building technology element makes it possible Wired building control system to access the devices and exchange information. Furthermore, the building technology element manages the data assigned to the devices in order to efficiently transmit corresponding information from the central control unit to corresponding devices.
  • the building technology element can advantageously function as a master device, which controls the devices of the system as slave devices.
  • the building technology element represents the building control system (or an interface gateway) and can regulate, monitor, manage, mediate, manage the data exchange between the devices and the central control unit, or act as an intermediary in the data exchange.
  • the processing unit can process the data received from a device in the system.
  • the processing unit can be adapted to translate the wireless protocol of the system assigned to the received data into a wired protocol of the building control system and to transmit the processed data to the wired building control system via the communication interface.
  • the data received by the device can include, for example, current operating parameters of the device.
  • the processing unit can therefore have the function of a software-based protocol converter, which makes it possible to provide data such as operating parameters of a device from a wireless system in the wired building control system.
  • the processing unit can also process the data from the wired building control system. It can be adapted to translate the wired protocol of the building control system assigned to the received data into a wireless protocol of the system and to transmit the processed data to a device in the system via the radio interface.
  • the received data may include control signals for the device.
  • the processing unit serving as a protocol converter can therefore also transmit or transmit control signals from the wired building control system into the system of wirelessly connected devices.
  • the building technology element can act as a master, which controls the devices (slaves) using the control signals.
  • the integration of the software-based gateway functionality in the building technology element can make it possible to implement information between the wired protocol and the wireless protocol of the building technology element without additional hardware. In other words, there is no need for hardware-based gateways that have to be subsequently installed in the building technology elements or introduced into the building control system as top-hat rail devices.
  • the processing unit can further be adapted to assign an identification (for example an address) that is uniquely assigned to the building control system to the functions of a device in the system in a registration process and to send this via the communication interface to the building control system for registration or for registration or for login to be transferred in a register. Furthermore, the processing unit can store the identifications assigned to the devices of the system in an association table together with the respective system addresses of the devices. This allows any number of new devices to be integrated into the system, with the processing unit managing the corresponding device data using the association table.
  • an identification for example an address
  • the building control system can have a registration unit for integrating additional building technology elements.
  • the registration unit can receive the identification or group identification uniquely assigned to a device in the system via a system communication interface and register it.
  • the registration unit can be designed as a further computer unit that can be temporarily integrated into the building control system and registers corresponding devices. It can also be designed as a control unit that is stationarily integrated into the building control system.
  • the processing unit can also be adapted to receive control commands sent by the building control system and addressed to a device in the system and to forward them to the corresponding device.
  • the association table can be used or assisted in transmitting the data to appropriate devices.
  • the group address that is assigned to the corresponding function can easily be linked via the association table.
  • the building technology element can be designed as an actuator and/or as a sensor.
  • the actuator can be set up to act on a lighting system, a heating system or a ventilation system in a room of a building assigned to the actuator and/or an environment of the building assigned to the actuator.
  • the sensor can also be a brightness sensor, a temperature sensor, an air humidity sensor, an air pressure sensor, a CO2 sensor, a VOC sensor, a motion and/or presence detector, or a combination of various sensors.
  • the system of wirelessly connected devices can be designed as a mesh radio network and include a lighting system, a heating system, or a ventilation system.
  • such a mesh radio network can be a “Bluetooth Mesh” network, which is a standard for computer mesh networks and is based on Bluetooth Low Energy (BLE).
  • Bluetooth Mesh enables many-to-many device communication via the Bluetooth wireless protocol.
  • the radio interface of the building technology element can be a Bluetooth mesh interface, via which data can be received from and sent to the devices in the system.
  • the communication interface can be a KNX bus interface or an IP interface.
  • a protocol of the building control system can be a KNX protocol and a protocol of the system of wirelessly connected devices can be a Bluetooth mesh protocol.
  • the data received from the devices of the system are transmitted to the building control system by a building technology element acting as an intermediary.
  • This allows the data and devices of the wireless system to be efficiently integrated into the building technology element Implement building control system. No additional expensive hardware is required, reducing additional costs.
  • a computer-implemented method for controlling a device in a system of wirelessly connected devices comprising the steps: connecting a radio interface of the device to a radio interface of a building technology element in a building control system for exchanging data, Receiving the data from the building technology element of the building control system via the radio interface of the device, the data having control signals for controlling the device.
  • the building technology element acts as a master, which transmits the control signals to the devices or slaves or makes the data from the radio network available to the wired building control system.
  • the above object is also achieved by a data processing device comprising means for carrying out the above method.
  • Figure 1 is a schematic view of an embodiment of a building technology element in a building control system according to the present invention
  • Figure 2 is a schematic view of an embodiment of a building control system according to the present invention.
  • Figure 3 is a flowchart of an embodiment of a method for controlling a device in a system of wirelessly interconnected devices in accordance with the present invention.
  • FIG. 4 shows a schematic view of an embodiment of an association table.
  • FIG. 1 shows a simplified schematic view of an embodiment of a building technology element 10 in a wired building control system 100 according to the present invention.
  • the building technology element 10 has a radio network transceiver 12, a radio interface 14, a communication interface 16 and a processing unit 18.
  • the radio network transceiver 12 has a limited transmitter range (or a defined limited transmission power) and receives/transmits data D only within a specific area surrounding the building technology element 10.
  • the radio interface 14 connects the radio network transceiver 12 with a system 200, which is within transmitter range, of devices 20 that are wirelessly or wirelessly connected to one another for the wireless or wireless exchange of data D.
  • a system 200 which is within transmitter range, of devices 20 that are wirelessly or wirelessly connected to one another for the wireless or wireless exchange of data D.
  • the building technology element 10 can communicate with any device 20 of the system 200. In Fig. 1 two devices 20 connected to the building technology element 10 are shown. For example, control commands can be transmitted to the devices 20 via the building technology element 10, which will be described in detail later.
  • the building technology element 10 Via the communication interface 16, the building technology element 10 is further connected to the wired building control system 100 for the wired or wired exchange of data D.
  • the building control system 100 can be designed as a decentralized system with further building technology elements 10, which exchanges data D with the building technology element (10). This is illustrated in FIG. 1 by corresponding arrows. Also possible is a central building control system 100 with a stationary control unit 120, which will be described later.
  • the processing unit controls an exchange of data D between the system 200 of wirelessly connected devices 20 and the building control system 100. In addition, it manages the data assigned to the respective devices 20.
  • the processing unit 18 establishes and regulates data exchange between the system 200 based on wireless or wireless communication and the building control system 100 based on wired or wired communication.
  • the building technology element 10 therefore serves as an intermediary (or gateway or bridge) between these two systems 100, 200. This allows data D to be transferred from the system 200 to the building control system 100 and vice versa, or the devices 20 of the system 200 to be integrated into the building control system 100 become. No additional hardware is required.
  • the radio network transceiver 12, the radio network interface 14 and the communication interface 16 together with the processing unit 18 enable efficient data exchange.
  • the building technology element 10 can function as a master device, which controls the devices 20 of the system 200 as slave devices. This is also simplified by the corresponding arrows in Fig. 1.
  • the processing unit 18 can process the data D received from a device 20 of the system 200, translating the wireless protocol of the system 200 associated with the received data D into a wired protocol of the building control system 100. It can then transmit the processed data D to the building control system 100 via the communication interface 16.
  • the building control system 100 which is designed as a central system, can be processed Data D is transmitted to the control unit 120.
  • the data D processed in the building control system 100 which is designed as a decentralized system, can be transmitted to other building technology elements 10.
  • the data D received by the device 20 may include current operating parameters of the device 20.
  • operating parameters of a device 20 designed as a lamp can be transmitted to a building technology element 10, which is designed, for example, as a motion and/or presence detector be forwarded to the building control system 100 after protocol translation.
  • a building technology element 10 which is designed, for example, as a motion and/or presence detector be forwarded to the building control system 100 after protocol translation.
  • 2 shows a simplified representation of the building control system 100 with the lamp 20 and the motion and/or presence detector 10 in a room R1 of a building G.
  • the wireless data exchange between the lamp 20 and the motion and/or presence detector 10 is included indicated by the wavy lines. This example will be explained in detail later.
  • the processing unit 18 can process the data D received from the building control system 100, translating the wired protocol of the building control system 100 assigned to the received data D into a wireless protocol of the system 200.
  • the processed data D can then be transmitted to a device 20 of the system 200 via the radio interface 14.
  • the received data D may include control signals for the device 20.
  • a control signal for the dimming level of the lamp 20 to the lamp 20 via the motion and/or presence detector 10.
  • the processing unit 18 (not shown in FIG. 2) of the motion and/or presence detector 10 can translate the control signal for the lamp 20 contained in the wired protocol into the wireless protocol of the system 200 and forward this to the radio interface 14 (not in 2) of the motion and/or presence detector 10.
  • the processing unit 18 can thus serve as a protocol converter (ie, have software-based gateway functionality) that converts the wireless protocol of the data D from the system 200 into the wired protocol of the building control system 100 transferred and vice versa.
  • a protocol converter ie, have software-based gateway functionality
  • the radio connection between the devices 20 and the building technology element 10 is also better than in conventional solutions with a gateway designed as a top-hat rail in a control cabinet.
  • additional building technology elements 10 can be dispensed with, which additionally saves control lines.
  • the processing unit 18 can, in a registration process, assign a device 20 of the system 200 an identification that is uniquely assigned to the building control system 100 and transmit this via the communication interface 16 to the building control system 100 for registration.
  • a universally unique identifier UUID
  • a group address ADD_200_1, ..., ADD_200_4 of the system 200 can be assigned an address of the building control system ADD_100_1, ..., ADD_100_4.
  • a UUID or group address ADD_200_1, ..., ADD_200_4 of a Bluetooth mesh system 200 assigned to a group of devices 20 such as a hallway group or ground floor group can have a UUID or KNX address ADD_100_1, . .. , ADD_100_4 can be assigned.
  • the processing unit 18 can store the identifications ADD_100_1, ..., ADD_100_4 assigned to the devices 20 of the system 200 in an association table Tab together with the respective UUlD or group addresses of the devices 20.
  • Such an association table Tab is shown schematically in FIG. 4.
  • the building technology element 10 acting as a master can send requests to the system 200 at fixed intervals to check whether new devices 20 have been added and need to be registered. Likewise, new devices 20 can send a corresponding registration request to the building technology element 10 after installation.
  • the processing unit 18 can then store the data D of the new devices such as the UUlD or group addresses ADD_200_1, ..., ADD_200_4 in the association table Tab.
  • the building control system 100 can have a registration unit 120 for integrating additional building technology elements 10.
  • the registration unit 120 can receive the identification or group identification uniquely assigned to a device 20 of the system 200 via a system communication interface 110 and register it.
  • the registration unit 120 can be designed as a computer unit that is temporarily connected to the decentralized building control system 100. As already described above, in another embodiment it can be designed as a control unit 120, with the building control system then functioning as a central system.
  • the processing unit 18 can receive the control commands sent by the building control system 100 and addressed to a device 20 of the system 200 and forward them to the corresponding device 20.
  • the processing unit 18 can assign the data D received from the building control system 100, such as the control unit 120, to the corresponding devices 20 and pass them on to the devices 20 after the protocol translation.
  • the building technology element 10 can be designed as an actuator and/or as a sensor.
  • the building technology element 10 designed as an actuator can, for example, act on a lighting system, a heating system or a ventilation system in a room R1, R2 of a building G assigned to the actuator and/or an environment of the building G assigned to the actuator.
  • the senor can be a brightness sensor, a temperature sensor, an air humidity sensor, an air pressure sensor, a CO2 sensor, a VOC sensor, a motion and/or presence detector, or a combination of various sensors, as described above.
  • the system 200 of devices 20 that are wirelessly connected to one another can be designed as a mesh radio network, which is shown in simplified form in FIG. It can include a lighting system, a heating system, or a ventilation system. However, this is only an example and other wirelessly connected devices 20 can form the system 200.
  • the radio interface 14 can also be a Bluetooth mesh interface.
  • Bluetooth Mesh is based on Bluetooth Low Energy (BLE), formerly Bluetooth Smart, a radio technology with which the devices 20 can be networked in an environment, i.e. with a range, of approximately 10 meters.
  • BLE Bluetooth Low Energy
  • the communication interface 16 can be a KNX bus interface or an IP interface.
  • a protocol of the building control system 100 can be a KNX protocol and a protocol of the system 200 of wirelessly connected devices 20 can be a Bluetooth mesh protocol.
  • the processing unit 18 can mediate between the KNX protocol and the Bluetooth mesh protocol with the software-based gateway functionality in order to efficiently control communication between the system 200 and the building control system 100.
  • FIG. 2 shows an exemplary embodiment of the building control system 100 according to the invention with several building technology elements 10.
  • the building control system 100 can be designed as a central or decentralized system as described above.
  • the system communication interface 110 can connect the building control system 100 with building technology elements 10. This is also illustrated in FIG. 1, with the other building technology elements 10 being shown in dashed lines. These elements 10 can also exchange data D with devices 20 via their respective radio interfaces 14 (not shown in FIG. 1) and transmit it to the control unit 120, i.e. work as a data hub or data transmission interface. This is connected to the devices 20 1 is representative of the other building technology elements 10.
  • the system 200 can also include additional devices 20 or there can be several systems 200 with which a building technology element 10 according to the invention can communicate.
  • the building technology element therefore works as a central data distribution interface or as a central data distribution point or as a central post office between the system 200 and the control unit 120. In doing so, it collects the data from the devices 20 transmitted via the radio protocol and transmits it to the control unit 120, the building technology element 10 here represents the control unit 120. Furthermore, the building technology element 10 intercepts control or command data packets via the wired protocol, which is preferably transmitted via a data bus system, from the central control unit 120, which are addressed to specific devices 20 (in the wired protocol), in order to then send them to them to forward these devices 20 via radio.
  • the wired protocol which is preferably transmitted via a data bus system
  • the control unit 120 can exchange data D with the building technology element 10 via the system communication interface 110.
  • Data D from the system 200 from wirelessly connected devices 20 is received from the building technology element 10 via the system communication interface 110.
  • data D can be transmitted via the system communication interface 110 or via the communication interface 16 of the other building technology elements 10 to the building technology element 10 for controlling a device 20 of the system 200.
  • operating parameters can be forwarded from a device 20 such as a lamp 20 to the control unit 120 or another motion and/or presence detector 10 by means of the building technology element 10 according to the invention, for example the motion and/or presence detector 10 described above.
  • the wireless protocol e.g. Bluetooth mesh
  • a wired protocol e.g. KNX
  • FIG. 2 whereby the lamp 20 and the motion and/or presence detector 10 are located in the room R1.
  • the motion and/or presence detector can also have 10 operating parameters receive and pass on another device 20 such as a heater 20, which is located in another room R2.
  • the building control system 100 can be a KNX bus system.
  • Bluetooth lights 20 can wirelessly transmit data D such as brightness and light status (on/off, dimming level) to the motion and/or presence detectors 10 installed in the offices, which are integrated in the KNX bus. These can then use their processing units 18 with the software-based gateway functionality described above to translate the data D into a corresponding KNX protocol.
  • the motion and/or presence detectors can also forward their own data, for example the presence of people, together with the processed data D of the Bluetooth lights 20 to the control unit 120.
  • Control commands can also be transmitted from the control unit 120 (for example, a central OFF in the evening in the office building) to these Bluetooth products using the motion and/or presence detectors 10, since these support both communication media.
  • corresponding Bluetooth lights 20 can also be arranged in the outside area of the building G, which can exchange data D with a motion and/or presence detector 10 attached to an outside wall of the building G, which is simplified in FIG is illustrated. Similar to the example above, the Bluetooth lights 20 can be integrated into the building control system 100 without a complex KNX installation. Individual switching of lights 20 via the KNX bus would result in a very high amount of cabling.
  • a mesh radio network of devices 20 as a system 200 has the great advantage that the range can be extended as desired through appropriate hops or forwarding processes in the mesh radio network, provided that this Mesh radio network is close-meshed enough so that a device 20 is always in radio communication with at least one other device 20. So a solar light can be controlled in an area of a large garden away from the house using KNX. whereby the KNX commands from the central control unit 120 to the building technology element 10 and then via multiple jumps or hops via several devices 20 of the system 200 finally reach the addressed device 20. This is also possible because the amount of data to be transmitted / the required bandwidth is not restrictive for this application.
  • FIG. 3 shows a flowchart of an embodiment of a method 300 for controlling a device 20 in a system 200 of wirelessly connected devices 20 according to the present invention.
  • step S310 a radio interface 24 of the device 20 is connected to the radio interface 14 of the building technology element 10 described above in the building control system 100 for the exchange of data D.
  • step S320 data D is received from the building technology element 10 of the building control system 100 via the radio interface 24 of the device 20.
  • the data D can contain control signals for controlling the device 20.
  • the device 20, for example the lamp 20 described above, can carry out a corresponding control such as on/off based on the control signals. No additional actuator is required for control.
  • a computer program which comprises commands which, when the program is executed by a device 20 of a system 200 made up of wirelessly connected devices 20, cause the latter to carry out the method 300 described above.
  • a computer-readable medium comprising instructions which, when executed by a device 20 of a system 200 of wirelessly interconnected devices 20, cause it to carry out the method described above.
  • a device for data processing which includes means for carrying out the method 300 described above.
  • the building technology element 12 By means of the building technology element 12 according to the invention, the building control system 100 and the method 300, KNX products do not have to be installed at all positions in or around the building G.
  • the building technology element 10 makes it possible to provide information from “non-KNX products” (for example, presence, brightness values, status of lights 20, dimming level, or other sensor values such as temperature or air) in the KNX bus system, or control signals (for example, Switching off, switching on, dimming) from the KNX bus system to the “non-KNX products”.
  • non-KNX products for example, presence, brightness values, status of lights 20, dimming level, or other sensor values such as temperature or air
  • control signals for example, Switching off, switching on, dimming
  • the limited use of the Bluetooth interface in the area of KNX products is expanded by the present invention.
  • This is only used to display values of the KNX products and to start the KNX programming mode.
  • the KNX products are expanded to include a software-based gateway that makes it possible to implement communication from the Bluetooth or Bluetooth mesh environment into the KNX environment and vice versa. Commands and settings from the KNX bus system can be brought into the Bluetooth products and groups.
  • gateway functionality between the KNX protocol and the Bluetooth protocol in motion and/or presence detectors allows information to be implemented between the protocols without additional hardware (classic gateways).

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  • Engineering & Computer Science (AREA)
  • Automation & Control Theory (AREA)
  • Computing Systems (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Selective Calling Equipment (AREA)

Abstract

L'invention concerne un élément de services de bâtiment (10) dans un système de commande de bâtiment câblé (100), l'élément de services de bâtiment (10) présentant : un émetteur-récepteur de réseau radio (12) ayant une portée d'émission limitée ; une interface de réseau radio (14) qui connecte l'élément de services de bâtiment (10) à un système (200) de dispositifs interconnectés sans fil (20) situés dans la portée de l'émetteur afin d'échanger des données (D) sans fil ; une interface de communication (16) qui connecte l'élément de services de bâtiment (10) au système de commande de bâtiment câblé (100) afin d'échanger des données (D) de manière câblée ; et une unité de commande (18). Selon l'invention, l'unité de commande (18) est conçue pour commander un échange de données (D) entre le système (200) de dispositifs (20) interconnectés sans fil et le système de commande de bâtiment (100) et pour gérer les données associées auxdits dispositifs (20).
EP23748991.9A 2022-08-10 2023-07-26 Élément de services de bâtiment, système de commande de bâtiment le comprenant, et procédé de commande d'un dispositif Pending EP4569748A1 (fr)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
DE102022120159.7A DE102022120159A1 (de) 2022-08-10 2022-08-10 Gebäudetechnikelement, Gebäudesteuerungssystem mit diesem und Verfahren zur Steuerung eines Geräts
PCT/EP2023/070751 WO2024033088A1 (fr) 2022-08-10 2023-07-26 Élément de services de bâtiment, système de commande de bâtiment le comprenant, et procédé de commande d'un dispositif

Publications (1)

Publication Number Publication Date
EP4569748A1 true EP4569748A1 (fr) 2025-06-18

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EP23748991.9A Pending EP4569748A1 (fr) 2022-08-10 2023-07-26 Élément de services de bâtiment, système de commande de bâtiment le comprenant, et procédé de commande d'un dispositif

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EP (1) EP4569748A1 (fr)
DE (1) DE102022120159A1 (fr)
WO (1) WO2024033088A1 (fr)

Family Cites Families (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN103763187B (zh) * 2014-02-17 2017-02-22 南京天溯自动化控制系统有限公司 EnOcean与KNX的IP网关及通讯网络和方法
WO2016094921A1 (fr) * 2014-12-19 2016-06-23 Tridonic Gmbh & Co Kg Système de communication domotique
DE102017121252B4 (de) * 2017-09-13 2020-12-31 Deuta Controls GmbH System, Verfahren und Funkmodul zur Anwesenheitserkennung zwecks Energieeinsparung
CA3108929C (fr) 2021-02-15 2022-05-31 Envio Systems Gmbh Systeme d'automatisation infonuagique et methodes connexes pour ameliorer le rendement energetique de batiments

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