WO2023284811A1 - 天线结构及电子设备 - Google Patents
天线结构及电子设备 Download PDFInfo
- Publication number
- WO2023284811A1 WO2023284811A1 PCT/CN2022/105631 CN2022105631W WO2023284811A1 WO 2023284811 A1 WO2023284811 A1 WO 2023284811A1 CN 2022105631 W CN2022105631 W CN 2022105631W WO 2023284811 A1 WO2023284811 A1 WO 2023284811A1
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- WIPO (PCT)
- Prior art keywords
- radiator
- antenna
- section
- open end
- edge
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Classifications
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q1/00—Details of, or arrangements associated with, antennas
- H01Q1/52—Means for reducing coupling between antennas; Means for reducing coupling between an antenna and another structure
- H01Q1/521—Means for reducing coupling between antennas; Means for reducing coupling between an antenna and another structure reducing the coupling between adjacent antennas
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q1/00—Details of, or arrangements associated with, antennas
- H01Q1/12—Supports; Mounting means
- H01Q1/22—Supports; Mounting means by structural association with other equipment or articles
- H01Q1/24—Supports; Mounting means by structural association with other equipment or articles with receiving set
- H01Q1/241—Supports; Mounting means by structural association with other equipment or articles with receiving set used in mobile communications, e.g. GSM
- H01Q1/242—Supports; Mounting means by structural association with other equipment or articles with receiving set used in mobile communications, e.g. GSM specially adapted for hand-held use
- H01Q1/243—Supports; Mounting means by structural association with other equipment or articles with receiving set used in mobile communications, e.g. GSM specially adapted for hand-held use with built-in antennas
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q1/00—Details of, or arrangements associated with, antennas
- H01Q1/48—Earthing means; Earth screens; Counterpoises
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q25/00—Antennas or antenna systems providing at least two radiating patterns
- H01Q25/04—Multimode antennas
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q9/00—Electrically-short antennas having dimensions not more than twice the operating wavelength and consisting of conductive active radiating elements
- H01Q9/04—Resonant antennas
- H01Q9/30—Resonant antennas with feed to end of elongated active element, e.g. unipole
- H01Q9/42—Resonant antennas with feed to end of elongated active element, e.g. unipole with folded element, the folded parts being spaced apart a small fraction of the operating wavelength
Definitions
- the present application relates to the technical field of communication, in particular to antenna structures and electronic equipment.
- the present application provides an antenna and an electronic device, aiming at improving the isolation between the antennas, thereby improving the communication effect of the electronic device.
- the present application provides an antenna structure, which includes a first radiator, a second radiator, a floor, and a decoupling circuit.
- the floor includes adjacent and intersecting first and second edges.
- the first radiator includes a first section and a second section intersecting, the first section is located on one side of the first edge of the floor and is spaced apart from the first edge, the The second section is located on one side of the second edge of the floor and is spaced apart from the second edge.
- the first radiator includes a first open end
- the second radiator includes a second open end
- a gap is formed between the first open end and the second open end, and the first radiator as a whole
- the second radiator is located on one side of the gap, and the second radiator is entirely located on the other side of the gap; the decoupling circuit is connected to the first open end and the second open end.
- an equivalent capacitance will be formed between the first open end and the second open end of the interval, and by connecting a decoupling circuit between the first open end and the second open end, the decoupling circuit can be connected with the first
- the equivalent capacitance formed between the open end and the second open end forms a band stop filter, thereby preventing the current coupling between the first antenna and the second antenna, thereby improving the isolation between the first antenna and the second antenna.
- the first radiator includes a first section and a second section that intersect, and the first section and the second section are respectively located on two adjacent sides of the floor, and the first radiator
- the ground current generated by the body excitation floor and the ground current generated by the second radiator excitation floor do not have a large area of reverse. Therefore, after connecting the decoupling circuit between the first radiator and the second radiator, after lifting the first antenna At the same time as the isolation between the second antennas, the performance of the first antenna or the second antenna will not be greatly affected.
- the first radiator includes intersecting first section and second section, so the ground current generated by the first radiator exciting the floor and the ground current generated by the second radiator exciting the floor can intersect at a certain angle instead of The excitation ground generates two opposite currents respectively, so that the isolation between the first antenna and the second antenna can be further improved.
- the radiation patterns of the first antenna and the second antenna can be complementary, therefore, the envelope correlation coefficient (ECC) between the first antenna and the second antenna can be relatively small.
- the floor further includes a third edge, the first edge is connected between the second edge and the third edge, and the third edge is adjacent to the first edge and Intersect, wherein the angle at which the first edge intersects with the second edge, and the angle at which the first edge intersects with the third edge are in the range of 80° to 100°.
- the end of the first radiator includes a first end and a second end, the first end is an end of the first section of the first radiator away from the second section, and the second end It is an end of the second section of the first radiator away from the first section.
- the first end is the first open end, the second end is connected to the floor or the second end is the third open end of the first radiator.
- the first end is the first open end, and when the second end is connected to the floor, that is, one end of the first radiator is an open end (that is, the first open end). , not connected to the floor; the other end (that is, the second end) is the ground terminal, connected to the floor.
- the first antenna can generate an antenna mode of a 1/4 wavelength mode.
- both ends of the first radiator are open ends (ie, the first open end and the third open end), namely Both ends of the first radiator are not connected to the floor.
- the first antenna is capable of generating an antenna mode of a 1/4 wavelength mode and an antenna mode of a 1/2 wavelength mode.
- the second radiator includes the third section and the fourth section intersecting; the third section of the second radiator is located on one side of the first edge and spaced from the first edge, the fourth section of the second radiator is located on one side of the third edge and spaced from the third edge.
- the end of the second radiator includes a third end and a fourth end, and the third end is the fourth area where the third section of the second radiator is far away from the second radiator.
- the fourth end is an end of the fourth section of the second radiator that is far away from the third section of the second radiator.
- the third end is the second open end, the fourth end is connected to the floor or the fourth end is the fourth open end of the second radiator.
- the first radiator includes intersecting first section and second section
- the second radiator includes intersecting third section and fourth section
- one end of the first radiator may be an open end 1.
- the other end is a structure with a grounding end, or both ends are open ends;
- the second radiator has a structure with one end being an open end and the other end being a grounding end, or a structure with both ends being open ends.
- the ground current generated by the first radiator exciting the floor and the ground current generated by the second radiator exciting the floor do not have a large area of reverse. Therefore, after the decoupling circuit is connected between the first radiator and the second radiator, after lifting While the isolation between the first antenna and the second antenna does not have a large impact on the performance of the first antenna or the second antenna.
- the ground current generated by the first radiator exciting the floor and the ground current generated by the second radiator exciting the floor can intersect at a certain angle, instead of exciting the floor to generate two opposite currents respectively, thus the second radiator can be further improved.
- the second antenna can also generate an antenna mode of a 1/4 wavelength mode and/or an antenna mode of a 1/2 wavelength mode.
- the whole of the second radiator is located on one side of the second edge and spaced apart from the second edge, and the second radiator is located on the side of the first radiator.
- the second section is away from the side of the first section.
- the end of the first radiator includes a first end and a second end, the first end is an end of the first section of the first radiator away from the second section, and the second end It is an end of the second section of the first radiator away from the first section.
- the end portion of the second radiator includes a third end and a fourth end, and the third end is closer to the first radiator than the fourth end.
- the second end of the first radiator is the first open end, and the third end of the second radiator is the second open end.
- the decoupling circuit is connected to the second terminal of the first radiator and the third terminal of the second radiator.
- the first radiator includes the intersecting first section and the second section
- the second radiator is a linear structure.
- the ground current generated by the first radiator exciting the floor and the ground current generated by the second radiator exciting the floor do not have a large area of reverse. Therefore, after the decoupling circuit is connected between the first radiator and the second radiator, after lifting While the isolation between the first antenna and the second antenna does not have a large impact on the performance of the first antenna or the second antenna.
- the ground current generated by the first radiator exciting the floor and the ground current generated by the second radiator exciting the floor can intersect at a certain angle, instead of exciting the floor to generate two opposite currents respectively, thus the second radiator can be further improved.
- the second antenna can also generate an antenna mode of a 1/4 wavelength mode and an antenna mode of a 1/2 wavelength mode.
- the first radiator further includes a third open end, and the first end is the third open end; the fourth end of the second radiator is connected to the floor.
- the first radiator is a structure with both ends being open; the second radiator includes an open terminal and a ground terminal.
- the working frequency band of the first working mode of the first radiator is the same as or less than 1 GHz different from the working frequency band of the second working mode of the second radiator.
- the working frequency band of the first working mode of the first radiator and the working frequency band of the second working mode of the second radiator are any working frequency band of sub-6G.
- one of the first radiator or the second radiator includes a first sub-radiator and a second sub-radiator arranged at intervals, and the whole of the first sub-radiator is located at the One side of the second sub-radiator, the whole of the first radiator or the other of the second radiator is located on the other side of the second sub-radiator, the first The sub-radiator is coupled to the second sub-radiator, and an end of the second sub-radiator away from the first sub-radiator is the first open end or the second open end.
- the first radiator or the second radiator includes the first sub-radiator and the second sub-radiator arranged at intervals.
- the user's hand or other structures block the first radiator and the second radiator The gap between the antennas, so that when the user's hand or other structure connects the open end of the first radiator to the open end of the second radiator, the isolation between the first antenna and the second antenna will not deteriorate sharply .
- the electrical length of the second sub-radiator is less than 1/4 of the wavelength of the decoupling frequency band of the antenna structure, and the decoupling frequency band and the first working mode of the first radiator
- the working frequency band is the same as that of the second radiator, or the same as the working frequency band of the second working mode of the second radiator, so as to avoid the excessive length of the second sub-radiator from affecting the discharge of the first sub-radiator and the second radiator. cloth, to ensure that at least one of the first sub-radiator and the second radiator can include the first section and the second section.
- the second sub-radiator is provided with a feed point, and the feed point is used to receive signal feed-in, so that the second sub-radiator can perform signal radiation as a separate radiation branch, increasing the working mode of the antenna. .
- the decoupling circuit is inductive, and the equivalent inductance value of the decoupling circuit is the same as the working frequency band of the first working mode of the first radiator, and/or the second radiator The working frequency band of the second working mode is related.
- the decoupling circuit includes lumped inductors or distributed inductors.
- the decoupling circuit includes a first branch and a second branch arranged in parallel, and the equivalent inductance of the first branch is different from the equivalent inductance of the second branch.
- the first branch is an inductive filter circuit
- the second branch includes lumped inductance or distributed inductance, so as to ensure that when the operating frequency of the first radiator and the second radiator are changed, , the inductance value of the decoupling circuit connected between the first open end of the first radiator and the second open end of the second radiator can be changed accordingly, so as to ensure that there is always an Better isolation.
- the first branch includes a capacitor, a first inductor, and a second inductor, and the capacitor is connected in parallel with the first inductor and then connected in series with the second inductor; the second branch includes a third inductor.
- the decoupling circuit is connected to the first connection point of the first open end, and the first connection point is within a range of 0-2mm from the end face of the first open end, and/or the decoupling The circuit is connected to the second connection point of the second open end, and the distance between the second connection point and the end surface of the second open end is within a range of 0-2 mm.
- the decoupling circuit respectively connects the ends of the open ends of the two radiators, and the connection points are located within the range of 0-2mm within the end face, which can ensure better isolation between the first antenna and the second antenna, and save the cost of electronic equipment space.
- the present application also provides an electronic device, which includes a radio frequency front end and the above-mentioned antenna structure, a first feeding point is provided on the first radiator, and a first feeding point is provided on the second radiator. Two feed points, the radio frequency front end is connected to the first feed point and the second feed point. Since the antenna structure of the present application can have better isolation between the first antenna and the second antenna, and the antenna efficiency of a single antenna will not be greatly reduced, thereby ensuring that the antenna of the electronic device of the present application can be designed It is more compact, and the electronic equipment can have better radio frequency signal transmission function.
- the electronic device includes a metal frame, and the metal frame includes the first radiator and the second radiator, so that the space occupied by the antenna structure in the electronic device can be reduced.
- the floor includes any one of one or more grounded midplanes, one or more ground planes of circuit boards, one or more grounded metal parts, or any two or more combination.
- the electronic device includes a mainboard, the mainboard is a circuit board, and the ground layer of the mainboard can be used as a floor.
- the ground plane of the main board is connected to the mid-plane, and the mid-plane and the ground plane of the main board together serve as a floor.
- the electronic device further includes a small board, and the small board is also a circuit board, and both the ground layers of the main board and the small board can be used as the floor, or the ground layer of the main board and/or the ground layer of the small board and/or The middle plate serves as the floor.
- FIG. 1 is a schematic structural diagram of an electronic device according to an embodiment of the present application.
- FIG. 2 is a schematic diagram of the internal structure of the electronic device shown in FIG. 1 .
- FIG. 3 is a schematic diagram of a topology structure of an antenna structure according to an embodiment of the present application.
- Fig. 4a is a schematic topology diagram of an antenna structure according to another embodiment of the present application.
- Fig. 4b is a schematic topology diagram of an antenna structure according to another embodiment of the present application.
- FIG. 5 is a schematic diagram of an internal structure of an electronic device according to another embodiment of the present application.
- Fig. 6a is a schematic structural diagram of a decoupling circuit according to another embodiment of the present application.
- Fig. 6b is a schematic structural diagram of a decoupling circuit according to another embodiment of the present application.
- Fig. 6c is a schematic structural diagram of a decoupling circuit according to another embodiment of the present application.
- FIG. 7 is a return loss curve and an isolation curve of the antenna structure shown in FIG. 3 .
- FIG. 8 is a comparison diagram of the efficiency of the first antenna when the antenna structure of the embodiment shown in FIG. 3 works and the efficiency of the first antenna working alone.
- FIG. 9 is a graph comparing the efficiency of the second antenna when the antenna structure of the embodiment shown in FIG. 3 works and the efficiency when the second antenna works alone.
- FIG. 10 is a radiation pattern diagram of the first antenna of the antenna structure in the embodiment shown in FIG. 3 .
- FIG. 11 is a radiation pattern diagram of the second antenna of the antenna structure in the embodiment shown in FIG. 3 .
- FIG. 12 is a schematic topology diagram of an antenna structure according to another implementation manner of the present application.
- FIG. 13 is a return loss curve diagram and an isolation degree curve diagram of the antenna structure of the embodiment shown in FIG. 12 .
- FIG. 14 is a comparison diagram of the antenna efficiency of the first antenna when the antenna structure shown in FIG. 12 works and the antenna efficiency when the first antenna works alone.
- FIG. 15 is a radiation pattern diagram when the working mode of the first antenna of the antenna structure shown in FIG. 12 is the 1/4 wavelength mode.
- FIG. 16 is a radiation pattern when the working mode of the second antenna of the antenna structure shown in FIG. 12 is the 1/4 wavelength mode.
- FIG. 17 is a schematic topology diagram of an antenna structure according to another implementation manner of the present application.
- FIG. 18 is a return loss curve and an isolation curve of the antenna structure shown in FIG. 17 .
- Fig. 19 is a comparison diagram between the efficiency of the first antenna when the antenna structure shown in Fig. 17 works and the efficiency when the first antenna works alone.
- FIG. 20 is a graph comparing the efficiency of the second antenna when the antenna structure shown in FIG. 17 works and the efficiency of the second antenna working alone.
- FIG. 21 is a radiation pattern diagram of the first antenna of the antenna structure in the embodiment shown in FIG. 17 .
- FIG. 22 is a radiation pattern diagram of the second antenna of the antenna structure in the embodiment shown in FIG. 17 .
- FIG. 23 is a schematic structural diagram of an antenna structure according to another embodiment of the present application.
- FIG. 24 is a return loss diagram and an isolation curve diagram of the antenna structure shown in FIG. 23 .
- FIG. 25 is a graph comparing the antenna efficiency of the first antenna when the antenna structure shown in FIG. 23 works and the antenna efficiency when the first antenna works alone.
- FIG. 26 is a radiation pattern diagram of the first antenna of the antenna structure in the embodiment shown in FIG. 23 .
- FIG. 27 is a radiation pattern diagram of the second antenna of the antenna structure in the embodiment shown in FIG. 23 .
- FIG. 28 is a schematic structural diagram of an antenna structure according to another embodiment of the present application.
- FIG. 29 is a schematic structural diagram of an antenna structure according to another embodiment of the present application.
- FIG. 30 is a return loss diagram and an isolation curve diagram of the antenna structure shown in FIG. 28 .
- FIG. 31 is an antenna efficiency diagram of the first antenna and an antenna efficiency diagram of the second antenna of the antenna structure shown in FIG. 28 .
- FIG. 32 is a comparison diagram of the antenna efficiency of the first antenna when the antenna structure shown in FIG. 28 works and the antenna efficiency when the first antenna works alone.
- FIG. 33 is a comparison diagram of the antenna efficiency of the second antenna of the antenna structure shown in FIG. 28 and when the second antenna works alone.
- Fig. 34 is a radiation pattern diagram of the first antenna of the antenna structure in the embodiment shown in Fig. 28 working in the 1/4 wavelength mode.
- FIG. 35 is a radiation pattern diagram of the second antenna of the antenna structure in the embodiment shown in FIG. 28 .
- Fig. 36 is a schematic structural diagram of an antenna structure according to another embodiment of the present application.
- FIG. 37 is a return loss diagram and an isolation curve diagram of the antenna structure shown in FIG. 36 .
- FIG. 38 is an antenna efficiency diagram of the first antenna and an antenna efficiency diagram of the second antenna of the antenna structure shown in FIG. 36 .
- Fig. 39 is a schematic structural diagram of an antenna structure according to another embodiment of the present application.
- FIG. 40 is a return loss curve and an isolation curve of the antenna structure shown in FIG. 39 .
- FIG. 41 is an antenna efficiency diagram of the first antenna and an antenna efficiency diagram of the second antenna of the antenna structure shown in FIG. 39 in a free state.
- FIG. 42 is a graph of return loss and isolation of the antenna structure shown in FIG. 39 when the gap between the first radiator and the second radiator of the antenna structure shown in FIG. 39 is blocked.
- FIG. 43 is a return loss curve diagram and an isolation curve diagram of the antenna structure when the gap between the first sub-radiator and the second sub-radiator of the first radiator of the antenna structure shown in FIG. 39 is blocked.
- Fig. 44 is a schematic topology diagram of an antenna structure according to another embodiment of the present application.
- the present application provides an electronic device, the electronic device includes an antenna, and the electronic device can perform signal transmission through the antenna.
- the electronic device may be a mobile phone, a tablet computer, a PC, a router, a wearable device, and the like.
- the electronic device of the present application is described by taking the electronic device as a mobile phone as an example.
- FIG. 1 is a schematic structural diagram of an electronic device 1000 according to an embodiment of the present application
- FIG. 2 is a schematic internal structural diagram of the electronic device 1000 shown in FIG. 1
- the electronic device 1000 includes a middle frame 110, a main board 120, a display screen 130, a rear cover (not shown) and an antenna structure. Both the display screen 130 and the rear cover are fixed to the middle frame 110 .
- the display screen 130 , the rear cover and the middle frame 110 are fixed to form a storage space, and the main board 120 can be stored in the storage space.
- the middle frame 110 includes a frame 111 and a middle plate 112 , and the frame 111 is arranged around the middle plate 112 and connected with the middle plate 112 .
- the frame 111 and the middle plate 112 can be integrally formed as an integral structure; or the frame 111 and the middle plate 112 can also be independent structures formed separately, and connected by screws, buckles, shrapnel, etc. connected or connected by welding, bonding, etc.
- the protruding piece extending inward from the inner side of the frame 111 can also be used as a connecting piece, or the protruding piece extending from the edge of the middle plate 112 to the frame 111 can be used as a connecting piece, so as to connect the frame 111 through the connecting piece with the middle plate 112 .
- the main board 120 is fixed to the middle board 112 so that the main board 120 is fixed in the electronic device 1000 .
- the middle frame 110 may also only include the frame 111 without the middle board 112 , and the main board 120 is fixed in the electronic device 1000 in other ways.
- the main board 120 is provided with a radio frequency front end 140, and the radio frequency front end 140 can be connected to the antenna structure signal, so as to transmit the processed radio frequency signal to the antenna structure and send it out, or to transmit the radio frequency signal received by the antenna structure deal with.
- the radio frequency front end 140 may include a transmission path and a reception path.
- the transmission path includes devices such as power amplification and filtering, which are used to transmit the radio frequency signal to the antenna structure after power amplification, filtering, etc., and send the processed radio frequency signal out through the antenna structure.
- the receiving path includes low-noise amplifiers, filters and other devices. Through the receiving path, the radio frequency signal received by the antenna structure is processed to ensure that the useful radio frequency signal can be picked up from the space without distortion and sent to the frequency conversion and intermediate frequency amplification of the subsequent stage. Wait for the circuit.
- FIG. 3 is a schematic topology diagram of an antenna structure 100 according to an embodiment of the present application.
- the antenna structure 100 includes a first antenna 10 , a second antenna 20 , a decoupling circuit 30 and a floor 40 .
- the floor 40 can be used as a reference ground of the electronic device 1000 .
- the floor 40 can be formed by any one of the grounded middle board 112, the ground layer of the circuit board, and the grounding metal parts built in the electronic device 1000, or by the grounded middle board 112, the grounding layer of the circuit board. In the ground layer, two or more ground metal parts built in the electronic device 1000 are formed in combination.
- the middle plate 112 of the middle frame 110 is grounded, and the middle plate 112 serves as the floor 40 of the antenna structure 100 in this embodiment.
- the main board 120 in the electronic device 1000 includes a grounding layer, and the grounding layer of the main board 120 can be used as the floor 40, or the grounding layer of the main board 120 and the middle board 112 are electrically connected together as the floor 40 at least part of .
- the electronic device 1000 may include one or more middle boards 112, and/or ground layers of one or more circuit boards, and/or one or more ground metal parts, and the floor in this application may is a combination of any two or more of them.
- the electronic device 1000 may also include a small board, and the small board is also a circuit board including a ground layer, so the small board in the electronic device 1000 may be used as a ground layer, and the ground layer of the small board is connected to the ground layer or the floor of the main board 120
- the ground layer of the small board is electrically connected with the ground layer of the main board 120 or the middle board 112 and can serve as the floor 40 of the electronic device 1000 together.
- the floor 40 includes a first edge 41, a second edge 42 and a third edge 43, the first edge 41 is connected between the second edge 42 and the third edge 43, and the The second edge 42 intersects the first edge 41 , and the third edge 43 intersects the first edge 41 .
- the floor 40 is a rectangular board.
- the first edge 41 , the second edge 42 and the third edge 43 are three adjacent sides of the rectangular floor.
- the first edge 41 is a short side of the floor 40
- the second edge 42 and the third edge 43 are two opposite long sides of the floor 40 .
- Both the first edge 42 and the third edge 43 perpendicularly intersect with the first edge 41 .
- the first edge 41 , the second edge 42 and the third edge 43 in this embodiment are named for the sides of the floor 40 for the convenience of describing the floor 40 .
- one long side of the floor 40 can also be named as the first edge 41
- two opposite short sides of the floor 40 can be named as the second edge 42 and the third edge 43 respectively.
- FIG. 4a and FIG. 4b show a schematic diagram of the topological structure of an antenna structure 100 according to another embodiment of the present application
- FIG. 4b shows a schematic diagram of an antenna structure 100 according to another embodiment of the present application. Schematic diagram of the topology.
- one long side of the floor 40 is the first edge 41
- two opposite short sides of the floor 40 are the second edge 42 and the third edge 43 respectively.
- the floor 40 being rectangular means that the overall outline of the floor 40 is rectangular, and the edges of the floor 40 can have regular or irregular openings according to actual needs. Slits/grooves or protrusions/protrusions, etc., the first edge 41 to the fourth edge 44 can be formed by multiple bent edges, which is not limited in this application.
- the overall outline of the floor 40 is introduced as a rectangle. It can be understood that the overall outline of the floor 40 may not be a rectangle, for example, may be other regular or irregular shapes.
- the floor panel 40 of the present application has three profile edges that intersect in sequence at an angle, and the angles between the edges can be in the range of 80° to 100°. As shown in FIG. 3 , the first edge 41 , the second edge 42 and the third edge 43 are vertical in turn. It should be noted that the perpendicularity mentioned in this application is not 90° in a strict mathematical sense, and a certain deviation is allowed.
- the first antenna 10 includes a first radiator 11 and a first feeding circuit 12 .
- the first radiator 11 is provided with a first feed point C, one end of the first feed circuit 12 is connected to the radio frequency front end 140, and the other end is connected to the first feed point C on the first radiator 11, so that the radio frequency front end 140 transmits the processed radio frequency signal to the first radiator 11 , or transmits the radio frequency signal received by the first radiator 11 to the radio frequency front end 140 for signal processing.
- the first feeding point C is a position where the first feeding circuit 12 on the first radiator 11 is connected to the first radiator 11 .
- the first feed circuit 12 is a feed cable.
- the first feeding circuit 12 may also include tuning elements such as capacitors and inductors, so as to adjust the electrical length of the first radiator 11 so that the first radiator 11 can Work in the required working frequency band.
- the second antenna 20 includes a second radiator 21 and a second feeding circuit 22 .
- the second radiator 21 is provided with a second feed point D, one end of the second feed circuit 22 is connected to the radio frequency front end 140, and the other end is connected to the second feed point D on the second radiator 21, so that the radio frequency front end 140 transmits the processed radio frequency signal to the second radiator 21 , or transmits the radio frequency signal received by the second radiator 21 to the radio frequency front end 140 for signal processing.
- the second feeding point D is a position where the second feeding circuit 22 on the second radiator 21 is connected to the second radiator 21 .
- the second feed circuit 22 is a feed cable.
- the second feeding circuit 22 may also include tuning elements such as capacitors and inductors, so as to adjust the electrical length of the second radiator 21 so that the second radiator 21 can Work in the required working frequency band.
- the frame 111 is made of conductive material.
- the frame 111 is made of metal material.
- Part of the frame 111 can serve as the first radiator 11 and the second radiator 21 of the antenna structure 100 , thereby reducing the space occupied by the antenna structure 100 in the electronic device 1000 .
- the frame 111 of the middle frame 110 may also be made of other materials, and the frame 111 may not serve as the first radiator 11 or the second radiator 21 of the antenna structure 100 .
- FIG. 5 is a schematic diagram of an internal structure of an electronic device 1000 according to another implementation manner of the present application.
- the frame 111 may be made of non-conductive material.
- the frame 111 can be made of insulating material, for example, the frame 111 is made of plastic or glass.
- the frame 111 can be used as an antenna bracket for installing the first radiator 11 and the second radiator 21 of the antenna structure 100, and the first radiator 11 and the second radiator 21 of the antenna structure 100 can be fixedly installed on the frame 111 facing the electronic device 1000.
- the inner surface of the containment space can be used as an antenna bracket for installing the first radiator 11 and the second radiator 21 of the antenna structure 100, and the first radiator 11 and the second radiator 21 of the antenna structure 100 can be fixedly installed on the frame 111 facing the electronic device 1000.
- the first radiator 11 and the second radiator 12 both include two opposite ends, wherein the radiator (the first radiator 11 or the second radiator The end of 21) refers to the part of the radiator connected to the end face of the radiator (for example, depending on the length of the radiator, the end of the radiator can be the radiator whose length from the end face is within 5mm, 2mm, or 1mm. body).
- the end faces refer to the planes at both ends of the radiator. It should be noted that the planes mentioned in this application are not strictly mathematical planes, and certain deviations are allowed.
- Two ends of the first radiator 11 include at least one open end
- two ends of the second radiator 21 also include at least one open end.
- the open end refers to the end of the radiator that is not grounded.
- “one end that is not grounded” refers to that there is no ground point and no coupled ground area on the radiator with a length of 1/4 wavelength from the end surface of this end.
- the open end is an end that is not grounded, and is a radiator whose length is within 5 mm, 2 mm, or 1 mm from the end surface.
- at least one open end of the first radiator 11 includes a first open end
- at least one open end of the second radiator 21 includes a second open end.
- the first open end is opposite to the second open end and forms a gap 13. As shown in FIG. The distance between the two open end faces.
- the decoupling circuit 30 is connected between the first open end and the second open end.
- one end of the decoupling circuit 30 is connected to the first open end face of the first radiator 11 or the first open end including the end face
- the other end of the decoupling circuit 30 is connected to the second open end of the second radiator 21 The end face or the second open end including the end face.
- one end of the decoupling circuit 30 is connected to a position on the first radiator 11 within 5 mm from the first open end surface, for example, a position within 2 mm or 1 mm
- the other end of the decoupling circuit 30 is connected to the second radiator 21 A position within 5 mm from the second open end surface, for example, a position within 2 mm or 1 mm.
- the decoupling circuit 30 may include an inductor 31 and a wire 32 connecting the inductor 31 to the first open end and the second open end, or the decoupling circuit 30 may also be an inductive decoupling circuit.
- the inductance 31 may be a lumped inductance or a distributed inductance.
- the decoupling circuit 30 may be a band-stop decoupling circuit, and the decoupling circuit 30 can prevent the coupling between the working frequency band generated by the first radiator 11 and the working frequency band generated by the second radiator 21, thereby improving the first The degree of isolation between the antenna 10 and the second antenna 20 .
- the difference between the resonant frequency band of the first working mode of the first radiator 11 and the working frequency band of the second working mode of the second radiator 21 is less than 1 GHz, for example, the resonant frequency band of the first working mode is different from that of the second working mode
- the working frequency band is the same.
- the working frequency band of the first working mode of the first radiator 11 and the working frequency band of the second working mode of the second radiator 21 may be any working frequency band of sub-6G. This will be described in detail in the specific implementation manner of this application, and will not be repeated here.
- the decoupling circuit 30 may be disposed on the main board 40 .
- the traces 32 of the band-resistance structure circuit 30 are disposed on the main board 40
- the inductor 31 is disposed (eg, bonded) on the main board 40 and connected to the traces disposed on the main board 40 .
- the first open end of the first radiator 11 and the second open end of the second radiator 21 are fixed with elastic pieces 60, and the elastic pieces 60 are connected to the traces 32 on the main board 40, so as to realize the first radiator The first open end of 11 and the second open end of the second radiator 21 are connected to the decoupling circuit 30 .
- connection between the first open end of the first radiator 11 and the second open end of the second radiator 21 and the decoupling circuit 30 can also be in other ways, here No further elaboration.
- the decoupling circuit 30 can also be arranged on other substrates, such as a printed circuit board (Printed Circuit Board, which can be called PCB) separated from the main board, or a flexible printed circuit board (Flexible Printed Circuit, which can be called FPC). ), the substrate provided with the decoupling circuit 30 can be electrically connected to the main board through a flexible transmission line, which will not be repeated here.
- PCB printed circuit board
- FPC Flexible Printed Circuit
- a decoupling circuit 30 is connected between the second open end, and the decoupling circuit 30 can form a band stop filter with the equivalent capacitance formed between the end faces of the two open ends, and the band stop filter can prevent the first antenna 10 from connecting with the second antenna 10.
- the current coupling between the antennas 20 further improves the isolation between the first antenna 10 and the second antenna 20 .
- the inductance value of the inductor 31 included in the decoupling circuit 30 or the inductance value of the inductive decoupling circuit can be regarded as the equivalent inductance value of the decoupling circuit 30 .
- the equivalent capacitance value between the endpoint of the first open end and the endpoint of the second open end of different sizes can be set according to the operating frequency bands of the first antenna 10 and the second antenna 20, thereby obtaining the first antenna 10 and the second antenna 20 Better isolation at its operating frequency.
- the operating frequency bands of the first antenna 10 and the second antenna 20 include any frequency band in sub-6G, for example, the first antenna 10 and the second antenna 20 can be in the low frequency band (500MHz ⁇ 1GHz), and/or Or work in the mid-frequency band (1GHz-3GHz), and/or the high-frequency band (3GHz-6GHz).
- at least one operating frequency band of the first antenna 10 is the same as or differs from at least one operating frequency band of the second antenna 20 by less than 1 GHz.
- the coupling circuit 30 can improve the isolation between the first antenna 10 and the second antenna 20 .
- "the same working frequency band" can be understood as "same frequency”.
- the at least one working frequency band of the second antenna 20 may also enable the electronic device 1000 to support the first frequency band, instead of the first antenna 10 and the second antenna 20 having at least one completely identical working frequency range.
- the difference between the working frequency band of the first radiator 11 and the working frequency band of the second radiator 21 may be less than 1 GHz.
- the working frequency band of the first radiator 11 and the working frequency band of the second radiator 21 may differ by 0.9 GHz or 0.5 GHz. It should be understood that the difference between the working frequency band of the first radiator 11 and the working frequency band of the second radiator 21 is the center frequency of the working frequency band of the first radiator 11 and the center frequency of the working frequency band of the second radiator 21 difference between.
- the isolation between the first antenna 10 and the second antenna 20 can be improved by connecting the first open end of the first radiator 11 and the second open end of the second radiator 21 by the decoupling circuit 30
- the center frequency of the working frequency band of the first radiator 11 or the center frequency of the working frequency band of the second radiator 21 is the decoupling frequency of the antenna structure 100 of the present application.
- both the first radiator 11 and the second radiator 21 can have multiple working frequency bands, when the multiple working frequency bands of the first radiator 11 and the second radiator 21 are the same
- the antenna structure 100 may also have a plurality of decoupling frequencies when the frequency is at or close to each other.
- the lumped inductor when the inductor 31 included in the decoupling circuit 30 is a lumped inductor, the lumped inductor may be a component represented by the inductor 30 in FIG. 3 .
- the distributed inductance may be an inductance formed by wires and/or windings.
- FIG. 6a is a schematic structural diagram of a decoupling circuit 30 according to another embodiment of the present application.
- the inductance 31 included in the decoupling circuit 30 of the embodiment shown in FIG. 6 a represents a distributed inductance formed by winding metal wires.
- the inductive decoupling circuit 30 when the decoupling circuit 30 is an inductive decoupling circuit, the inductive decoupling circuit may be formed by connecting one or more inductors and one or more capacitors in parallel and/or in series.
- FIG. 6b is a schematic structural diagram of a decoupling circuit 30 according to another embodiment of the present application.
- the decoupling circuit 30 of the embodiment shown in Figure 6b is an inductive decoupling circuit, including a first branch A1 and a second branch A2 arranged in parallel, the first branch A1 is an inductive filter circuit, so
- the second branch A2 includes lumped inductance or distributed inductance.
- the inductance value of the first branch A1 is different from the inductance value of the second branch A2.
- the inductance values of the decoupling circuits are different. Therefore, when the operating frequency of the antenna structure 100 (that is, the operating frequency of the first radiator 11 and the second radiator 21) is changed, the first open end connected to the first radiator 11 and the second open end of the second radiator 21 The inductance value of the decoupling circuit 30 between the two terminals can be changed accordingly, so as to ensure a good isolation between the first antenna 10 and the second antenna 20 all the time.
- the decoupling circuit 30 includes three inductors and one capacitor 33, and the three inductors are respectively a first inductor 31a, a second inductor 31b, and a third inductor 31c.
- the first branch A1 includes a capacitor 33 , a first inductor 31 a and a second inductor 31 b.
- the capacitor 33 is connected in parallel with the first inductor 31 a and then connected in series with the second inductor 31 b.
- the first branch circuit A1 formed by connecting the first inductor 31 a in parallel with the capacitor 33 and connecting the second inductor 31 b in series is equivalent to a filter circuit.
- the second branch A2 includes a third inductor 31c, the second branch A2 is connected in parallel with the first branch A1, and the equivalent inductance value of the filter circuit of the first branch A1 is different from that of the second branch A2. Furthermore, in this embodiment, the equivalent inductance of the filter circuit is different from the inductance value of the third inductor 31c.
- the filter circuit can allow the signal of the first radiator 11 to be transmitted to The second radiator 21.
- Equivalent to the size of the inductance connected between the first open end of the first radiator 11 and the second open end of the second radiator 21 is the size of the equivalent inductance of the filter circuit, so as to ensure that the first radiator 11 and the second radiator
- the inductance value of the decoupling circuit connected between the first open end of the first radiator 11 and the second open end of the second radiator 21 can be changed accordingly, so as to ensure the first Better isolation can always be guaranteed between the antenna 10 and the second antenna 20 .
- the working frequency of the first antenna 10 is the frequency of the signal generated by the resonance of the first radiator 11 .
- the working frequency of the second antenna 20 is the frequency of the signal generated by the resonance of the second radiator 21 .
- FIG. 6c is a schematic structural diagram of a decoupling circuit 30 according to another embodiment of the present application.
- the decoupling circuit 30 may also include a plurality of inductors 311, 312, 313 with different inductance values and a switch 34.
- the switch 34 can be switched to connect to different inductances, so as to ensure that the first antenna 10 and the second antenna 20 can always have better isolation when the operating frequency of the first radiator 11 and the second radiator 21 is changed.
- the decoupling circuit 30 includes three inductors with different inductance values, the three inductors are arranged in parallel, and the switching switch 34 is a single-pole three-throw switch, which can be switched to any one of the three inductors as required.
- both the first radiator 11 and the second radiator 21 have only one open end.
- the first end 111 is the first open end of the first radiator 11
- the third end 211 is the second open end of the second radiator 21
- the first end 111 is opposite to the third end 211 and the first end 111 is opposite to the third end.
- the decoupling circuit 30 is connected to the first terminal 111 and the third terminal 211 .
- Both the second end 112 and the fourth end 212 are connected to the floor 40 , that is, both the second end 112 and the fourth end 212 are grounding ends.
- the elastic piece 60 can be fixed on the second end 112 and the fourth end 212, and the elastic piece 60 is connected to the floor 40; or, by setting (for example, bonding) a metal sheet, the metal sheet is connected to the second end 112 and the second end 212.
- the floor 40 and connect the fourth end 212 with the floor 40 ; or, connect to the floor 40 through the protrusion of the first radiator 11 at the second end 112 and the protrusion of the second radiator 12 at the fourth end 212 .
- both the first radiator 11 and the second radiator 21 include an open end and a ground end.
- the first radiator 11 may include two open ends, that is, the first end 111 and the second end 112 may both be open ends; the second radiator 21 may also include The two open ends, that is, the third end 211 and the fourth end 212 can also be both open ends.
- the first radiator 11 is an "L"-shaped structure
- the first radiator 11 of the "L"-shaped structure includes a first section and a second section, and the first section and the second section Intersect in an "L" shape.
- the first section and the second section of the "L"-shaped structure are respectively located on adjacent two sides (eg, two adjacent edges) of the floor 40 .
- the first section is located on one side of the first edge 41 and spaced apart from the first edge 41
- the second section is located on one side of the second edge 42 and is spaced from the second edge 42. interval setting.
- the ground current generated by the first radiator 11 exciting the floor 40 is the same as the ground current generated by the second radiator 11 exciting the floor 40.
- the current does not reverse in a large area. Therefore, in this embodiment, after the decoupling circuit 30 is connected between the first radiator 11 and the second radiator 21, the distance between the first antenna 10 and the second antenna 20 is increased. While improving the isolation, the performance of the first antenna 10 or the second antenna 20 will not be greatly affected.
- the first radiator 11 is an "L"-shaped structure, so the ground current generated by the first radiator 11 to excite the floor 40 and the ground current generated by the second radiator 21 to excite the floor 40 can intersect at a certain angle, instead of exciting The floor 40 respectively generates two opposite currents, so the isolation between the first antenna 10 and the second antenna 20 can be further improved.
- the angle at which the ground current generated by the first radiator 11 to excite the floor 40 intersects the ground current generated by the second radiator 21 to excite the floor 40 is in the range of 60-120° (for example, orthogonal), so that Good isolation can be provided between the first antenna 10 and the second antenna 20 .
- the radiation patterns of the first antenna 10 and the second antenna 20 can be complementary, therefore, the envelope correlation coefficient (ECC) between the first antenna 10 and the second antenna 20 can be small.
- both the first radiator 11 and the second radiator 21 are in an "L" shape.
- the first radiator 11 includes a first section 11 a and a second section 11 b arranged intersectingly
- the second radiator 21 includes a third section 21 a and a fourth section 21 b arranged intersecting.
- the end of the first section 11 a away from the second section 11 b is the first end 111
- the end of the second section 11 b away from the first section 11 a is the second end 112 .
- An end of the third section 21 a away from the fourth section 21 b is a third end 211
- an end of the fourth section 21 b away from the third section 21 a is a fourth end 212 .
- both the first section 11a and the third section 21a are located on one side of the first edge 41 of the floor 40, the second section 11b is located on one side of the second edge 42 of the floor 40, and the fourth section 21b is located on the side of the third edge 43 of the floor 40 .
- FIG. 3 Please continue to refer to FIG. 3 .
- the arrows in FIG. 3 show the direction diagram of the current generated when the antenna structure 100 according to the embodiment of the present application is in operation.
- the arrow a shows the equivalent current direction of the ground current generated by the first radiator 11 exciting the floor 40
- the arrow b shows the equivalent current direction of the ground current generated by the second radiator 21 exciting the floor 40
- the equivalent current direction a of the ground current generated by the first radiator 11 exciting the floor 40 and the equivalent current direction b of the ground current generated by the second radiator 21 exciting the floor 40 intersect at a certain angle, such as 60°-120°, for example 80-10°, and for example 90°, so that the first antenna 10 and the second antenna 20 can have better isolation.
- a certain angle such as 60°-120°, for example 80-10°, and for example 90°
- FIG. 7 shows a return loss curve and an isolation curve of the antenna structure 100 in the embodiment shown in FIG. 3 .
- the curve a is the return loss curve of the first antenna 10
- the curve b is the return loss curve of the second antenna 20
- the abscissa of the curve a and the curve b represents the frequency, and the unit is GHz
- the ordinate represents the return loss coefficient
- the unit is dB.
- Curve c is the isolation curve between the first antenna 10 and the second antenna 20, the abscissa represents the frequency, the unit is GHz; the ordinate represents the isolation coefficient, the unit is dB.
- the structure of the first radiator 11 and the second radiator 21 are basically the same, and the first radiator 11 and the second radiator 21 are symmetrically arranged on both sides of the floor 40, so the first antenna 10 and the second antenna
- the working frequency bands of the antennas 20 are basically the same.
- the length of the first edge 41 of the floor 40 is about 80mm.
- the first section 11a of the first radiator 11 And the third section 21a of the second radiator 21 is located on the side of the first edge 41 of the floor 40, the second section 11b of the first radiator 11 is located on the side of the second edge 42 of the floor 40, the second radiator The fourth section 21 b of the body 21 is located on one side of the third edge 43 of the floor 40 , and the radiation apertures of the first radiator 11 and the second radiator 21 are larger.
- the operating frequency of the resonant generation signal of the first radiator 11 and the second radiator 21 in this embodiment is the low frequency in sub-6G. In this embodiment, the central operating frequencies of the first radiator 11 and the second radiator 21 are both about 0.8 GHz.
- 0.8 GHz is the decoupling frequency of the antenna structure 100 of the present application, that is, the decoupling circuit 30 can prevent the antenna pattern generated by the first radiator 11 with a working frequency of about 0.8 GHz from being generated by the second radiator 21.
- the working frequency band is the coupling of the antenna mode of about 0.8 GHz, thereby improving the isolation between the first antenna 10 and the second antenna 20 .
- the first antenna 10 and the second antenna 20 can be used as multiple-input multiple-output system (Multiple-Input Multiple-Output, MIMO) antennas of the electronic device 1000, and the electronic device 1000 can perform MIMO transmission of signals.
- MIMO Multiple-Input Multiple-Output
- the size of the floor 40 can be changed, the size and grounding position of the first radiator 11 and the second radiator 21 can also be changed, and the operating frequency of the first radiator 11
- the operating frequency of the second radiator 21 may be the same as or different from that of the second radiator 21 .
- the radiation apertures of the first radiator 11 and the second radiator 21 can also be changed according to actual needs, so that the working frequency of the signal generated by the resonance of the first radiator 11 and the second radiator 21 can also be the intermediate frequency in sub-6G or high frequency.
- the isolation between the first antenna 10 and the second antenna 20 at the center operating frequency is about -15dB, that is, the first antenna 10 and the second antenna 20 can have the same operating frequency band, and the first antenna There can be good isolation between the antenna 10 and the second antenna 20 .
- the first section 11a of the first radiator 11 and the third section 21a of the second radiator 21 are located on one side of the first edge 41 of the floor 40
- the second section of the first radiator 11 is located on the side of the second edge 42 of the floor 40
- the fourth section 21b of the second radiator 21 is located on the side of the third edge 43 of the floor 40.
- the first radiator 11 and the second radiator 21 can not only excite the floor 40 to generate a horizontal current mode, but also can excite the floor 40 to generate a vertical current mode, and the first radiator 11 is in the same direction as the longitudinal current mode generated by the second radiator 21 exciting the floor 40 , which can improve the performance of the first antenna 10 and the second antenna 20 .
- the first radiator 11 and the second radiator 21 can not only excite the floor 40 to generate a reverse horizontal current mode, but also can excite the floor 40 to generate a longitudinal current mode in the same direction, therefore, in the first opening of the first radiator 11
- the decoupling circuit 30 is connected between the end and the second open end of the second radiator 21, the floor current can still be fully excited, so that the antenna efficiency of the first antenna 10 and the second antenna 20 will not be seriously deteriorated.
- a decoupling circuit 30 is connected between the first open end of the first radiator 11 and the second open end of the second radiator 21 to improve the connection between the first antenna 10 and the second antenna 20. At the same time, the antenna efficiency of the first antenna 10 and the second antenna 20 will not be seriously deteriorated.
- the envelope correlation coefficient (ECC) between the first antenna 10 and the second antenna 20 in the embodiment of the present application is compared It may be better in terms of the solution that the first radiator 11 and the second radiator 21 are located on one side of the floor 40 .
- FIG. 8 is a comparison chart of the efficiency of the first antenna 10 when the antenna structure 100 of the embodiment shown in FIG. 3 works and the efficiency of the first antenna 10 working alone.
- the abscissa of FIG. 8 is frequency, and the unit is GHz; the ordinate is efficiency, and the unit is dBi.
- Curve a in FIG. 8 is the efficiency curve of the first antenna 10 of the antenna structure 100 in this embodiment
- curve b in FIG. 8 is the curve when the first antenna 10 works alone.
- the antenna efficiency of the first antenna 10 of the antenna structure 100 in this embodiment is reduced by about 0.2 dB compared with the antenna efficiency when the first antenna 10 works alone.
- FIG. 9 is a comparison chart of the efficiency of the second antenna 20 when the antenna structure 100 of the embodiment shown in FIG. 3 works and the efficiency of the second antenna 20 working alone.
- Curve a in FIG. 9 is an efficiency curve of the second antenna 20 of the antenna structure 100 of this embodiment, and curve b in FIG. 9 is a curve when the second antenna 20 works alone.
- the antenna efficiency of the second antenna 20 of the antenna structure 100 in this embodiment is reduced by about 0.2 dB compared with the antenna efficiency when the second antenna 20 works alone.
- the antenna working efficiency of the first antenna 10 and the second antenna 20 will decrease by about 0.2dB, but the relative Compared with the solution in which the first radiator 11 and the second radiator 21 are located on the same side of the floor 40, in this embodiment, after the decoupling circuit 30 is connected between the first antenna 10 and the second antenna 20, the second The degree of decrease in working efficiency of the first antenna 10 and the second antenna 20 is relatively small. That is, in this embodiment, the decoupling circuit 30 is connected between the first antenna 10 and the second antenna 20, so that the isolation between the first antenna 10 and the second antenna 20 can be improved, and at the same time, it is possible to avoid damage to the first antenna 10. Work efficiency with the second antenna 20 has a big influence.
- Fig. 10 shows the radiation pattern of the first antenna 10 of the antenna structure 100 in the embodiment shown in Fig. 3, and Fig. 11 shows the antenna structure 100 in the embodiment shown in Fig. 3
- the radiation pattern of the second antenna 20 is complementary, therefore, the envelope correlation coefficient (envelope correlation coefficient, ECC) of the first antenna 10 and the second antenna 20 in this embodiment can be better.
- ECC envelope correlation coefficient
- FIG. 12 is a schematic topology diagram of an antenna structure 100 according to another implementation manner of the present application.
- the difference between the antenna structure 100 and the antenna structure 100 shown in FIG. 3 is that in this embodiment, both ends of the first radiator 11 and the second radiator 21 of the antenna structure 100 are open. end.
- the two open ends included in the first radiator 11 are respectively a first open end and a third open end
- the two open ends included in the second radiator 21 are respectively a second open end and a fourth open end.
- the first end 111 of the first radiator 11 is a first open end
- the second end 112 is a third open end.
- the third end 211 of the second radiator 21 is a second open end
- the fourth end 212 is a fourth open end.
- neither the first end 111 nor the second end 112 of the first radiator 11 is connected to the floor 40
- neither the third end 211 nor the fourth end 212 of the second radiator 21 is connected to the floor. 40 connections.
- the open end the first end 111 , the second end 112 , the third end 211 , the fourth end 212 and the end faces, reference may be made to the foregoing embodiments, and details are not repeated here.
- the decoupling circuit 30 is connected between the first open end and the second open end, that is, the decoupling circuit 30 is connected to the first end 111 of the first radiator 11 and the third end 211 of the second radiator 21 .
- the position of the point is located between the first end 111 and the second end 112
- the position of the ground point of the second radiator 21 is located between the third end 211 and the fourth end 212 .
- the section between the first grounding point A of the first radiator 11 and the end face of the first radiator 11 close to the first end 111 can generate resonance in the 1/4 wavelength mode
- the first radiator 11 The section between the end face close to the first end 111 and the end face close to the second end 112 can generate a resonance of a 1/2 wavelength mode.
- the first radiator 11 in this embodiment can generate resonance signals with wavelengths in two different modes.
- the arrow direction of the dotted line near the first radiator 11 in Fig. 12 indicates the schematic direction of the current when the first radiator 11 works to generate resonance in the 1/4 wavelength mode
- the arrow direction of the dotted line indicates the first radiator 11
- the direction of the electric current at the time of resonance of the working generation 1/2 wavelength mode is indicated.
- the second radiator 21 and the first radiator 11 are symmetrical structures arranged on both sides of the floor 40 .
- the section between the second grounding point B of the second radiator 21 and the end face of the second radiator 21 close to the third end 211 can generate a resonance of the 1/4 wavelength mode, and the resonance generated by the second radiator 21
- the resonant frequency band of the 1/4 wavelength mode is substantially the same as the resonant frequency band of the first radiator 11 generating the 1/4 wavelength mode.
- the section between the end face near the third end 211 and the end face near the fourth end 212 of the second radiator 21 in this embodiment can generate 1/2 wavelength mode resonance, and the second radiator 21
- the resonance frequency of the generated 1/2 wavelength mode is substantially the same as the resonance frequency of the 1/2 wavelength mode generated by the first radiator 11 .
- both the first antenna 10 and the second antenna 20 of this embodiment can form in-band double resonance, and both the first antenna 10 and the second antenna 20 can generate resonance in the 1/4 wavelength mode with substantially the same operating frequency and the resonance of the 1/2 wavelength mode, thereby improving the bandwidth and efficiency of the antenna structure 100 of the present embodiment during operation.
- the arrow direction of the dotted line near the second radiator 12 in Fig. 12 indicates the schematic direction of the current when the first radiator 11 works to generate resonance in the 1/4 wavelength mode
- the arrow direction of the dotted line indicates the second radiator 12
- the direction of the electric current at the time of resonance of the working generation 1/2 wavelength mode is indicated.
- the first radiator 11 and the second radiator 21 have a "symmetrical structure" means that the first radiator 11 and the second radiator 21 can be basically symmetrical along a virtual axis of symmetry, basically symmetrical It is to allow a certain angle error and/or size error, rather than absolute symmetry in the strict mathematical sense. It can be understood that, in other embodiments of the present application, the first radiator 11 and the second radiator 21 may also have an asymmetric structure, by adjusting the structure of the first radiator 11 or the second radiator 21, adding tuning elements Alternatively, by changing the positions of the first ground point A and the second ground point B, the first radiator 11 and the second radiator 21 can generate different resonance modes.
- the first radiator 11 and the second radiator 21 can also be made 21 generates two other identical resonant modes to realize in-band double resonance between the first antenna 10 and the second antenna 20 .
- the distance between the first open end of the first radiator 11 and the second open end of the second radiator 21 is about 20mm
- the inductance of the decoupling circuit 30 is about 65nH
- the first antenna 10 and The second antennas 20 have better isolation effect.
- both the first antenna 10 and the second antenna 20 have two resonance modes, thereby forming an in-band double resonance.
- FIG. 13 is a return loss curve and an isolation curve of the antenna structure 100 shown in FIG. 12 .
- the curve a is the return loss curve of the first antenna 10
- the curve b is the return loss curve of the second antenna 20
- the abscissa of the curve a and the curve b represents the frequency, and the unit is GHz
- the ordinate represents the return loss coefficient
- the unit is dB.
- Curve c is the isolation curve between the first antenna 10 and the second antenna 20, the abscissa represents the frequency, the unit is GHz; the ordinate represents the isolation coefficient, the unit is dB.
- the operating frequency band of the 1/4 wavelength mode of the first antenna 10 is basically the same as that of the 1/4 wavelength mode of the second antenna 20, and the central operating frequency is about 0.81. GHz;
- the working frequency band of the 1/2 wavelength mode of the first antenna 10 is basically the same as the working frequency band of the 1/2 wavelength mode of the second antenna 20, and the central working frequency is about 0.87 GHz.
- the isolation of the 1/4 wavelength mode generated by the first antenna 10 and the second antenna 20 at the center operating frequency is about -22dB, and the 1/2 wavelength mode generated by the first antenna 10 and the second antenna 20
- the isolation at the center operating frequency is about -11dB. That is, the first antenna 10 and the second antenna 20 have better isolation in the 1/4 wavelength mode and the 1/2 wavelength mode.
- both the first antenna 10 and the second antenna 20 include two working modes of 1/4 wavelength mode and 1/2 wavelength mode.
- the working modes of the first antenna 10 and the second antenna 20 can also be other working modes.
- the working modes of the first antenna 10 and the second antenna 20 The working mode can also be 3/4 wavelength mode, composite left and right hand antenna mode (CRLH antenna mode) and so on.
- the first antenna 10 and the second antenna 20 can produce more working modes.
- the first antenna 10 and the second antenna 20 can also produce three working modes.
- FIG. 14 is a comparison chart of the antenna efficiency of the first antenna 10 when the antenna structure 100 shown in FIG. 12 is working and the antenna efficiency of the first antenna 10 working alone.
- the abscissa in FIG. 14 is frequency, and the unit is GHz; the ordinate is efficiency, and the unit is dBi.
- Curve a in FIG. 14 is the efficiency curve of the first antenna 10 of the antenna structure 100 shown in FIG. 12
- curve b in FIG. 14 is the curve when the first antenna 10 works alone.
- the antenna efficiency of the first antenna 10 in the 1/4 wavelength mode operation mode is lower than the antenna efficiency in the 1/4 wavelength mode operation mode when the first antenna 10 works alone. 0.8dB.
- the antenna working efficiency of the first antenna 10 will decrease by about 0.8 dB, compared with the first radiator 11
- the decoupling circuit 30 is connected between the first antenna 10 and the second antenna 20
- the working efficiency of the first antenna 10 decreases. to a lesser extent.
- the degree of decrease in the working efficiency of the second antenna 20 is small.
- the decoupling circuit 30 is connected between the first antenna 10 and the second antenna 20, so that the isolation between the first antenna 10 and the second antenna 20 can be improved, and at the same time, it is possible to avoid damage to the first antenna 10. Work efficiency with the second antenna 20 has a big influence.
- FIG. 15 shows the radiation pattern when the working mode of the first antenna 10 of the antenna structure 100 shown in FIG. 12 is the 1/4 wavelength mode
- FIG. 16 shows the antenna shown in FIG.
- the radiation pattern of the second antenna 20 of the structure 100 when the working mode is 1/4 wavelength mode.
- the radiation pattern of the radiation area of the 1/4 wavelength mode of the first antenna 10 is complementary to the radiation pattern of the radiation area of the 1/4 wavelength mode of the second antenna 20, therefore, the first antenna of this embodiment
- the antenna 10 and the second antenna 20 can have a small envelope correlation coefficient (envelope correlation coefficient, ECC), and the ECC is about 0.001.
- envelope correlation coefficient envelope correlation coefficient
- FIG. 17 is a schematic topology diagram of an antenna structure 100 according to another embodiment of the present application.
- the difference between the antenna structure 100 and the antenna structure 100 shown in FIG. The distance between the end surface of the first radiator 11 close to the second end 112 and the first grounding point A in the embodiment shown in FIG. 12 is smaller than that.
- the first radiator 11 of this embodiment can only The resonance of the 1/4 wavelength mode is generated, and the resonance of the 1/4 wavelength mode is the resonance generated in the section between the first ground point A of the first radiator 11 and the end face of the first radiator 11 close to the first end 111 .
- the distance between the end surface of the second radiator 21 near the second end 212 and the second ground point B is smaller than that of the second radiator 21 near the second end in the embodiment shown in FIG. 12 .
- both ends of the first radiator 11 and the second radiator 21 are open ends, but both the first radiator 11 and the second radiator 21 in this embodiment can only A wavelength mode resonance is produced.
- the open end the first end 111 , the second end 112 , the third end 113 , the fourth end 114 and the end faces, reference can be made to the foregoing embodiments, and details are not repeated here.
- the distance between the first open end of the first radiator 11 and the second open end of the second radiator 21 is about 20mm
- the inductance of the decoupling circuit 30 is about 70nH
- the first antenna 10 and The second antennas 20 have better isolation effect.
- FIG. 18 is a return loss curve and an isolation curve of the antenna structure 100 shown in FIG. 17 .
- the curve a is the return loss curve of the first antenna 10
- the curve b is the return loss curve of the second antenna 20
- the abscissa of the curve a and the curve b represents the frequency, and the unit is GHz
- the ordinate represents the return loss coefficient
- the unit is dB.
- Curve c is the isolation curve between the first antenna 10 and the second antenna 20, the abscissa represents the frequency, the unit is GHz; the ordinate represents the isolation coefficient, the unit is dB. It can be seen from FIG.
- both the first antenna 10 and the second antenna 20 can only generate resonance in one working mode, and the working frequency bands generated by the first antenna 10 and the second antenna 20 are basically the same, and
- the central working frequency is about 0.81GHz.
- the isolation between the first antenna 10 and the second antenna 20 at the center operating frequency is about -26dB, that is, the first antenna 10 and the second antenna 20 can have better isolation.
- FIG. 19 is a comparison diagram between the efficiency of the first antenna 10 when the antenna structure 100 shown in FIG. 17 works and the efficiency of the first antenna 10 when it works alone.
- the abscissa of FIG. 17 is frequency, and the unit is GHz; the ordinate is efficiency, and the unit is dBi.
- Curve a in FIG. 19 is the efficiency curve of the first antenna 10 of the antenna structure 100 of this embodiment
- curve b in FIG. 19 is the curve when the first antenna 10 works alone.
- the antenna efficiency of the first antenna 10 in the 1/4 wavelength mode operation mode is lower than the antenna efficiency in the 1/4 wavelength mode operation mode when the first antenna 10 works alone. 0.3dB.
- FIG. 20 is a comparison chart of the efficiency of the second antenna 20 when the antenna structure 100 shown in FIG. 17 works and the efficiency of the second antenna 20 working alone.
- Curve a in FIG. 20 is the efficiency curve of the second antenna 20 of the antenna structure 100 of this embodiment, and curve b in FIG. 20 is the curve when the second antenna 20 works alone.
- the antenna efficiency of the second antenna 20 in the antenna structure 100 of the present embodiment in the 1/4 wavelength mode operation mode is lower than the antenna efficiency in the 1/4 wavelength mode operation mode when the second antenna 20 works alone. 0.3dB.
- the decoupling circuit 30 after the decoupling circuit 30 is connected between the first antenna 10 and the second antenna 20, the working efficiency of the first antenna 10 and the second antenna 20 in the 1/4 wavelength mode working mode will drop by about 0.3dB, but compared to the solution where the first radiator 11 and the second radiator 21 are located on the same side of the floor 40, in this embodiment, between the first antenna 10 and the second antenna 20 After the decoupling circuit 30 is connected, the working efficiencies of the first antenna 10 and the second antenna 20 decrease to a lesser extent. That is, in this embodiment, the decoupling circuit 30 is connected between the first antenna 10 and the second antenna 20, so that the isolation between the first antenna 10 and the second antenna 20 can be improved, and at the same time, it is possible to avoid damage to the first antenna 10. Work efficiency with the second antenna 20 has a big influence.
- Fig. 21 shows the radiation pattern of the first antenna 10 of the antenna structure 100 in the embodiment shown in Fig. 17, and Fig. 22 shows the antenna structure 100 in the embodiment shown in Fig. 17
- the radiation pattern of the second antenna 20 is complementary to the radiation pattern of the radiation area of the second antenna 20, therefore, the envelope correlation coefficient (envelope correlation coefficient) of the first antenna 10 and the second antenna 20 of the present embodiment is complementary , ECC) is better, and the ECC is about 0.11.
- FIG. 23 is a schematic structural diagram of an antenna structure 100 according to another embodiment of the present application.
- the difference between the embodiment shown in FIG. 23 and the antenna structure 100 of the embodiment shown in FIG. 3 is that in this embodiment, the size of the first edge 41 of the floor 40 is smaller than that of the first edge 41 of the floor 40 of the embodiment shown in FIG. 3 .
- the size of the radiator is narrow, so that when the first radiator 11 and the second radiator 21 have an "L" shape structure, the first radiator 11 and the second radiator 21 can be designed to have a smaller electrical length, so that the first antenna
- the working frequency bands of 10 and the second antenna 20 can be in the middle frequency band or the high frequency band, for example, the middle frequency band or the high frequency band in the sub-6G frequency band.
- the size of the first edge 41 of the floor 40 is about 30 mm.
- the inductance of the decoupling circuit 30 is about 20nH, and the isolation effect between the first antenna 10 and the second antenna 20 is relatively good.
- FIG. 24 is a return loss diagram and isolation curve diagram of the antenna structure 100 shown in FIG. 23 .
- the curve a is the return loss curve of the first antenna 10
- the curve b is the return loss curve of the second antenna 20
- the abscissa of the curve a and the curve b represents the frequency
- the unit is GHz
- the ordinate represents the return loss coefficient
- the unit is dB.
- Curve c is the isolation curve between the first antenna 10 and the second antenna 20, the abscissa represents the frequency, the unit is GHz; the ordinate represents the isolation coefficient, the unit is dB.
- the operating frequency bands generated by the first antenna 10 and the second antenna 20 are basically the same, and the central operating frequency is about 2 GHz, that is, the operating frequency bands of the first antenna 10 and the second antenna 20 The frequency band is at high frequency.
- the isolation between the first antenna 10 and the second antenna 20 at the central operating frequency is about -15 dB, that is, there can be a relatively good isolation between the first antenna 10 and the second antenna 20 .
- FIG. 25 is a comparison diagram between the antenna efficiency of the first antenna 10 when the antenna structure 100 shown in FIG. 23 works and the antenna efficiency when the first antenna 10 works alone.
- the abscissa of Fig. 25 is frequency, and the unit is GHz; the ordinate is efficiency, and the unit is dBi.
- Curve a in FIG. 25 is the efficiency curve of the first antenna 10 of the antenna structure 100 shown in FIG. 23
- curve b in FIG. 25 is the curve when the first antenna 10 works alone.
- the antenna efficiency of the first antenna 10 of the antenna structure 100 in this embodiment is reduced by about 0.5 dB compared with the antenna efficiency in the working mode when the first antenna 10 works alone.
- the antenna working efficiency of the first antenna 10 will decrease by about 0.5 dB, compared with the first radiator 11
- the decoupling circuit 30 is connected between the first antenna 10 and the second antenna 20
- the working efficiency of the first antenna 10 decreases. to a lesser extent.
- the degree of decrease in the working efficiency of the second antenna 20 can also be small.
- the decoupling circuit 30 is connected between the first antenna 10 and the second antenna 20, so that the isolation between the first antenna 10 and the second antenna 20 can be improved, and at the same time, it is possible to avoid damage to the first antenna 10. Work efficiency with the second antenna 20 has a big influence.
- Fig. 26 shows the radiation pattern of the first antenna 10 of the antenna structure 100 in the embodiment shown in Fig. 23, and Fig. 27 shows the antenna structure 100 in the embodiment shown in Fig. 23
- the radiation pattern of the second antenna 20 is complementary to the radiation pattern of the second antenna 20. Therefore, the envelope correlation coefficient (envelope correlation coefficient, ECC) of the first antenna 10 and the second antenna 20 in this embodiment is ) is better, and the ECC is about 0.01.
- ECC envelope correlation coefficient
- FIG. 28 is a schematic structural diagram of an antenna structure 100 according to another embodiment of the present application.
- the difference between the embodiment shown in FIG. 28 and the embodiment shown in FIG. 12 is that in this embodiment, only the first radiator 11 has an "L"-shaped structure, the second radiator 21 has a linear structure, and the first radiator The first section 11a of the body 11 is located on the side of the first edge 41, the second section 11b of the first radiator 11 is located on the side of the second edge 42, and the second radiator 21 is also located on the side of the second edge 42 .
- the second radiator 21 may also have an "L"-shaped structure, and the first radiator 11 may have a linear structure.
- the first radiator 11 includes a first end 111 and a second end 112, and the first end 111 is located in the first section 11a of the first radiator 11 and is far away from the second section. 11b, the second end 112 is located at the end of the second section 11b of the first radiator 11 away from the first section 11a; the second radiator 21 includes a third end 211 and a fourth end 212, the third end 211 is closer to the first radiator 11 relative to the fourth end 212; the first end 111 and the second end of the first radiator 11 112 are open ends, the third end 211 of the second radiator 21 is an open end, and the fourth end 212 of the second radiator 21 is connected to the floor 40 .
- the second end 112 of the first radiator 11 is the first open end of the first radiator 11
- the first end 111 of the first radiator 11 is the third open end of the first radiator 11
- the third end 211 of the second radiator 21 is a second open end
- the second end 112 of the first radiator 11 is opposite to the third end 211 of the second radiator 21 and forms a gap 13
- the decoupling circuit 30 is connected to the second terminal 112 of the first radiator 11 and the third terminal 211 of the second radiator 21 .
- the first radiator 11 may have only one open end, and the second radiator 21 may have two open ends.
- FIG. 29 is a schematic structural diagram of an antenna structure 100 according to another embodiment of the present application. The structural difference between the antenna structure 100 in this embodiment and the antenna structure 100 shown in FIG. 28 is that in this embodiment, the first radiator 11 includes only one open end, and the second radiator 21 includes two open ends. Specifically, the second end 112 of the first radiator 11 is the first open end of the first radiator 11 , and the first end 111 of the first radiator 11 is connected to the floor 40 .
- Both the third end 211 and the fourth end 212 of the second radiator 21 are open ends, wherein the third end 211 of the second radiator 21 is a second open end, and the fourth end 212 is a fourth open end.
- the end surface of the first radiator 11 close to the second end 112 is opposite to the end surface of the second radiator 21 close to the third end 211 to form a gap 13, and the decoupling circuit 30 is connected to the first radiator The second end 112 of 11 and the third end 211 of the second radiator 21 .
- the direction of the dotted arrow near the first radiator 11 in FIG. 28 is the schematic direction of the current when the first radiator 11 generates resonance in the 1/4 wavelength mode.
- the point near the first radiator 11 in FIG. 28 The direction of the dashed arrow is the schematic direction of the current when the first radiator 11 generates resonance in the 1/2 wavelength mode.
- the section between the first ground point A of the first radiator 11 and the end face of the first radiator 11 close to the first end 111 can generate resonance in the 1/4 wavelength mode
- the first The section of the radiator 11 between the end surface close to the first end 111 and the end surface close to the second end 112 can generate resonance in a 1/2 wavelength mode.
- the first radiator 11 in this embodiment can generate resonance signals with wavelengths in two different modes.
- the section of the second radiator 21 between the end surface close to the third end 211 and the end surface close to the fourth end 212 (that is, the second radiator 21 ) can also generate 1/4 wavelength mode resonance, and the resonance of the 1/4 wavelength mode generated by the second radiator 21 in this embodiment has the same working frequency band as the resonance of the 1/4 wavelength mode generated by the first radiator 11 .
- FIG. 30 is a return loss diagram and isolation curve diagram of the antenna structure 100 shown in FIG. 28 .
- the curve a is the return loss curve of the first antenna 10
- the curve b is the return loss curve of the second antenna 20
- the abscissa of the curve a and the curve b represents the frequency, and the unit is GHz
- the ordinate represents the return loss coefficient
- the unit is dB.
- Curve c is the isolation curve between the first antenna 10 and the second antenna 20, the abscissa represents the frequency, the unit is GHz; the ordinate represents the isolation coefficient, the unit is dB. It can be seen from FIG.
- the working frequency band of the first antenna 10 in the 1/4 wavelength mode is basically the same as that of the second antenna 20 , and the central working frequency is about 0.81 GHz.
- the isolation between the first antenna 10 and the second antenna 20 at the central operating frequency of the 1/4 wavelength mode is about -15dB, that is, between the first antenna 10 and the second antenna 20 Can have better isolation.
- FIG. 31 is an antenna efficiency diagram of the first antenna 10 and an antenna efficiency diagram of the second antenna 20 of the antenna structure 100 shown in FIG. 28 .
- the abscissa in FIG. 31 is frequency, and the unit is GHz; the ordinate is efficiency, and the unit is dBi.
- Curve a in Fig. 31 is the efficiency curve diagram of the first antenna 10 of the antenna structure 100 shown in Fig. 28 in the free state
- curve b in Fig. 31 is the efficiency curve diagram of the second antenna 20 of the antenna structure 100 in the free state .
- the working efficiency of the first antenna 10 of the antenna structure 100 in the free state of this embodiment is about -4dBi, and the working efficiency of the second antenna 20 of the antenna structure 100 in the free state is less than -3.3dBi. In other words, both the first antenna 10 and the second antenna 20 of this embodiment can have better working efficiency.
- FIG. 32 is a graph comparing the antenna efficiency of the first antenna 10 when the antenna structure 100 shown in FIG. 28 works and the antenna efficiency when the first antenna 10 works alone.
- the abscissa of FIG. 32 is frequency, and the unit is GHz; the ordinate is efficiency, and the unit is dBi.
- Curve a in FIG. 32 is the efficiency curve of the first antenna 10 of the antenna structure 100 in this embodiment
- curve b in FIG. 32 is the curve when the first antenna 10 works alone.
- the antenna efficiency of the first antenna 10 of the antenna structure 100 in this embodiment is reduced by about 0.5 dB compared with the antenna efficiency when the first antenna 10 works alone.
- FIG. 33 is a comparison diagram of the antenna efficiency of the second antenna 20 of the antenna structure 100 shown in FIG. 28 and when the second antenna 20 works alone. The abscissa in Fig.
- Curve a in FIG. 33 is the efficiency curve of the second antenna 20 of the antenna structure 100 of this embodiment
- curve b in FIG. 33 is the curve when the second antenna 20 works alone.
- the antenna efficiency of the second antenna 20 of the antenna structure 100 in this embodiment is lowered by about 1 dB compared with the antenna efficiency when the second antenna 20 works alone.
- the antenna structure 100 in this embodiment compared with the antenna structure in which the first radiator 11 and the second radiator 21 are located on the same side of the floor 40, in this embodiment, the first antenna After the decoupling circuit 30 is connected between the first antenna 10 and the second antenna 20 , the working efficiency of the first antenna 10 and the second antenna 20 decrease to a small extent. That is, in this embodiment, the decoupling circuit 30 is connected between the first antenna 10 and the second antenna 20, so that the isolation between the first antenna 10 and the second antenna 20 can be improved, and at the same time, it is possible to avoid damage to the first antenna 10. Work efficiency with the second antenna 20 has a big influence.
- FIG. 34 shows the radiation pattern of the first antenna 10 of the antenna structure 100 in the embodiment shown in FIG. 28 working in the 1/4 wavelength mode
- FIG. A radiation pattern of the second antenna 20 of the antenna structure 100 in the embodiment is shown.
- the radiation pattern of the first antenna 10 working in the 1/4 wavelength mode is complementary to the radiation pattern of the second antenna 20. Therefore, the envelopes of the first antenna 10 and the second antenna 20 in this embodiment are The correlation coefficient (envelope correlation coefficient, ECC) is good, and the ECC is about 0.15.
- ECC envelope correlation coefficient
- the first antenna 10 and the second antenna 20 can be used as a multiple-input multiple-output system (Multiple-Input Multiple-Output, MIMO) of the electronic device 1000, and the first antenna 10 and the second antenna 20 can also be used as A main antenna and a diversity antenna of the electronic device 1000 .
- MIMO Multiple-Input Multiple-Output
- FIG. 36 is a schematic structural diagram of an antenna structure 100 according to another embodiment of the present application.
- the first radiator 11 and the second radiator 21 both include an open end, and the first radiator 11 and the second radiator Each body 21 can produce two different working modes.
- the decoupling filter circuit 30 is an inductive decoupling circuit. When the first radiator 11 and the second radiator 21 switch between different operating frequencies, the decoupling filter circuit 30 can also present decoupling inductances of different sizes.
- the first end 111 of the first radiator 11 is connected to the floor 40, and the second end 112 is an open end; the third end 211 of the second radiator 21 is an open end, The fourth end 212 of the second radiator 21 is connected to the floor 40 .
- the second end 112 of the first radiator 11 is opposite to the third end 211 of the second radiator 21 and forms a gap 13, and the decoupling circuit 30 is connected to the second end 112 of the first radiator 11 and the between the third ends 211 of the second radiator 21 .
- the decoupling circuit 30 is an inductive decoupling circuit as shown in FIG. 6b.
- the inductance value of the first inductor 31a is about 29nH
- the inductance value of the second inductor 31b is about 15nH
- the inductance value of the third inductor 31c is about 72nH
- the capacitance value of the capacitor 33 is about 0.6pF
- the effective inductance is about 6.2nH, which is different from the inductance value of the third inductor 31c.
- both the first radiator 11 and the second radiator 21 can generate two working modes.
- the direction of the dotted arrow near the first radiator 11 and the second radiator 21 in Fig. 36 is the schematic direction of the current when the first radiator 11 and the second radiator 21 generate resonance in the 1/4 wavelength mode.
- the direction of the dotted line arrow near the radiator 11 and the second radiator 21 is the schematic direction of the current when the first radiator 11 and the second radiator 21 generate resonance in the 1/2 wavelength mode.
- the section between the first feeding point C of the first radiator 11 and the end face of the first radiator 11 near the second end 112 can generate a resonance of 1/4 wavelength mode.
- a section of the radiator 11 between the end surface close to the first end 111 and the end surface close to the second end 112 can generate a resonance of a 1/2 wavelength mode.
- the first radiator 11 in this embodiment can generate resonance signals with wavelengths in two different modes.
- the section between the second feeding point D of the second radiator 21 and the end face of the second radiator 11 near the third end 113 can generate a resonance of the 1/4 wavelength mode, and this embodiment
- the working frequency band of the resonance of the 1/4 wavelength mode generated by the second radiator 21 is basically the same as that of the resonance of the 1/4 wavelength mode generated by the first radiator 11 .
- the section of the second radiator 21 between the end surface close to the fourth end 212 and the end surface close to the third end 213 can also generate 1/2 wavelength mode resonance, and the second radiator in this embodiment
- the working frequency band of the resonance of the 1/2 wavelength mode generated by 21 and the resonance of the 1/2 wavelength mode generated by the first radiator 11 is basically the same.
- FIG. 37 is a return loss diagram and isolation curve diagram of the antenna structure 100 shown in FIG. 36 .
- curve a is the return loss curve of the first antenna 10
- curve b is the return loss curve of the second antenna 20
- the abscissa of curve a and curve b represents the frequency, and the unit is GHz
- the ordinate represents the return loss coefficient
- Curve c is the isolation curve between the first antenna 10 and the second antenna 20, the abscissa represents the frequency, the unit is GHz; the ordinate represents the isolation coefficient, the unit is dB. It can be seen from FIG.
- the operating frequency band of the first antenna 10 in the 1/4 wavelength mode is basically the same as that of the second antenna 20 in the 1/4 wavelength mode, and the center operating frequencies are about 2.5GHz.
- the working frequency band of the first antenna 10 in the 1/2 wavelength mode is basically the same as that of the second antenna 20 in the 1/2 wavelength mode, and the central working frequency is about 0.85 GHz.
- the operating frequencies of the first antenna 10 and the second antenna 20 are relatively high, both about 2.5 GHz, which can be applied to 2.4GWIFi or N41 working frequency band.
- the decoupling frequency of the antenna module 100 is about 2.5 GHz, which can allow the signal of the first radiator 11 to be transmitted to the second radiator 21 .
- Equivalent to the size of the inductance connected between the first open end of the first radiator 11 and the second open end of the second radiator 21 is the size of the equivalent inductance of the filter circuit (about 6.2nH), thereby ensuring the first
- the antenna 10 in the 1/4 wavelength mode can have good isolation from the second antenna 20 in the 1/4 wavelength mode.
- the isolation between the first antenna 10 in the 1/4 wavelength mode and the second antenna 20 in the 1/4 wavelength mode is about -13 dB.
- the working frequencies of the first antenna 10 and the second antenna 20 are relatively low, both about 0.85 GHz.
- the decoupling frequency of the antenna module 100 is about 0.85 GHz
- the filter circuit is equivalent to an open circuit. It is equivalent to connecting the third inductor 31c (about 72nH) between the first open end of the first radiator 11 and the second open end of the second radiator 21, so as to ensure that the first antenna 10 operates in the 1/2 wavelength mode It can have good isolation from the second antenna 20 in the 1/2 wavelength mode.
- the isolation between the first antenna 10 in the 1/2 wavelength mode and the second antenna 20 in the 1/2 wavelength mode is about -13 dB.
- an inductive decoupling circuit 30 is connected between the first open end of the first radiator 11 and the second open end of the second radiator 21 to ensure that the first radiation
- the inductance value of the equivalent inductance connected between the first open end of the first radiator 11 and the second open end of the second radiator 21 can change accordingly, In order to ensure that there is always a good isolation between the first antenna 10 and the second antenna 20 .
- FIG. 38 is an antenna efficiency diagram of the first antenna 10 and an antenna efficiency diagram of the second antenna 20 of the antenna structure 100 shown in FIG. 36 .
- the abscissa of Fig. 38 is frequency, and the unit is GHz; the ordinate is efficiency, and the unit is dBi.
- Curve a in FIG. 38 is the efficiency curve diagram of the first antenna 10 of the antenna structure 100 shown in FIG. 36 in the free state
- curve b in FIG. 38 is the efficiency curve diagram of the second antenna 20 of the antenna structure 100 in the free state .
- the working efficiency of the first antenna 10 of the antenna structure 100 in the free state of this embodiment is less than -3.8dBi, and the working efficiency of the second antenna 20 of the antenna structure 100 in the free state is less than -4.7dBi. In other words, both the first antenna 10 and the second antenna 20 of this embodiment can have better working efficiency.
- one of the first radiator 11 and the second radiator 21 includes a first sub-radiator and a second sub-radiator arranged at intervals, wherein the first sub-radiator The whole of the second radiator is located on one side of the second sub-radiator, and the whole of the other one of the first radiator and the second radiator is located on the other side of the second sub-radiator.
- the end of the second sub-radiator away from the first sub-radiator is the open end of the first radiator 11 or the second radiator 21, and one end of the coupling circuit is connected to the end of the second sub-radiator away from the first sub-radiator. Connected at one end.
- the first radiator 11 or the second radiator 21 includes a first sub-radiator and a second sub-radiator arranged at intervals.
- the user's hands or other structures block the The gap 13 between the first radiator 11 and the second radiator 21, so that when the user's hand or other structure connects the open end of the first radiator 11 and the open end of the second radiator 21, the first antenna 10 and the second radiator 21
- the isolation between the second antennas 20 does not deteriorate sharply.
- FIG. 39 is a schematic structural diagram of an antenna structure 100 according to another embodiment of the present application.
- the first radiator 11 includes a first sub-radiator 113 and a second sub-radiator 114 arranged at intervals, wherein the second The sub-radiator 114 is closer to the second radiator 21 than the first sub-radiator 113 , and the first sub-radiator 113 and the second sub-radiator 114 can be coupled to each other.
- the first sub-radiator 113 and the second sub-radiator 114 are respectively located on two sides of the gap 14 .
- both the grounding position A and the feeding position of the first radiator 11 are located on the first sub-radiator 113 .
- the end of the second sub-radiator 114 away from the first sub-radiator 113 is the first open end of the first radiator 11, and one end of the band-stop coupling circuit 30 in this embodiment is connected to the second The other end of the second radiator 114 is connected to the second radiator 21 .
- the first radiator 11 and the second radiator 21 are both "L" shaped structures, part of the first section 11a of the first radiator 11 is the second sub-radiator 114, the first radiator 11 Part of the first section 11 a and the second section 11 b form the first sub-radiator 113 .
- the first sub-radiator 113 and the second radiator 21 have a symmetrical structure, and are symmetrically arranged on two opposite sides of the floor 40 .
- the first sub-radiator 113 of the first radiator 11 has the same structure as the second radiator 21 (including the same shape and size), and the second section of the first radiator 11 11b and the fourth section 21b of the second radiator 21 are respectively arranged on one side of the second edge 42 and one side of the third edge 43 of the floor 40, and the first sub-radiator 113 includes part of the first section 11a, Both the second sub-radiator 114 and the fourth section 21 b of the second radiator 21 are disposed on one side of the first edge 41 of the floor 40 .
- the first sub-radiator 113 and the second radiator 21 have a "symmetrical structure" means that the first sub-radiator 113 and the second radiator 21 can be substantially symmetrical along a virtual axis of symmetry, Basic symmetry allows a certain angle error and/or dimensional error, rather than absolute symmetry in the strict mathematical sense.
- FIG. 40 is a return loss curve and isolation curve of the antenna structure 100 shown in FIG. 39 .
- the curve a is the return loss curve of the first antenna 10
- the curve b is the return loss curve of the second antenna 20
- the abscissa of the curve a and the curve b represents the frequency, and the unit is GHz
- the ordinate represents the return loss coefficient
- Curve c is the isolation curve between the first antenna 10 and the second antenna 20, the abscissa represents the frequency, the unit is GHz; the ordinate represents the isolation coefficient, the unit is dB.
- the working frequency bands of the first antenna 10 and the second antenna 20 are basically the same, and the central working frequency is about 0.8 GHz.
- the isolation between the first antenna 10 and the second antenna 20 at the central operating frequency is about -21 dB, that is, the isolation between the first antenna 10 and the second antenna 20 is relatively good.
- FIG. 41 is an antenna efficiency diagram of the first antenna 10 and an antenna efficiency diagram of the second antenna 20 of the antenna structure 100 shown in FIG. 39 in a free state.
- the abscissa in FIG. 41 is frequency, and the unit is GHz; the ordinate is efficiency, and the unit is dBi.
- Curve a in FIG. 41 is the efficiency curve of the first antenna 10 of the antenna structure 100 shown in FIG. 12 in the free state
- curve b in FIG. 41 is the efficiency curve of the second antenna 20 of the first antenna 10 in the free state picture.
- the working efficiency of the first antenna 10 is less than -5.6 dBi, and the working efficiency of the second antenna 20 of the antenna structure 100 in the free state is less than -7.4 dBi.
- both the first antenna 10 and the second antenna 20 can have better working efficiency.
- FIG. 42 shows the return loss of the antenna structure 100 in this embodiment when the gap 13 between the first radiator 11 and the second radiator 21 of the antenna structure 100 shown in FIG. 39 is blocked.
- FIG. 43 shows the gap 14 between the first sub-radiator 113 and the second sub-radiator 114 of the first radiator 11 of the antenna structure 100 shown in FIG. 39 .
- the return loss curve and isolation curve of the antenna structure 100 shown in FIG. wherein, the curve a in Fig. 42 and Fig. 43 is the return loss curve of the first antenna 10, the curve b in Fig. 42 and Fig.
- Curve c in FIG. 42 and FIG. 43 is the isolation curve between the first antenna 10 and the second antenna 20, the abscissa represents the frequency, the unit is GHz; the ordinate represents the isolation coefficient, the unit is dB.
- the second antenna 20 when the gap 13 between the first radiator 11 and the second radiator 21 is blocked by the user's hand or other structures, the second antenna 20 will generate a frequency offset, and the first antenna 10 and the second antenna 20 The isolation between them can be about -15dB; when the gap 14 between the first sub-radiator 113 and the second sub-radiator 114 of the first radiator 11 is blocked by the user's hand or other structures, the first antenna 10 Frequency offset will occur, and the isolation between the first antenna 10 and the second antenna 20 can be about -12.5dB. Compared with when the gap 13 between the first radiator 11 and the second radiator 21 of the embodiment shown in FIG. 3 is blocked, the isolation between the first antenna 10 and the second antenna 20 is only about -6dB.
- the first antenna 10 as a structure including the first sub-radiator 113 and the second sub-radiator 114 arranged at intervals, it is possible to alleviate the problem caused by blocking the first radiator by the user's hand or other structures.
- the gap 14 between the first radiator 113 and the second radiator 114 of 11 or the gap 13 between the first radiator 11 and the second radiator 21 is blocked, the gap between the first antenna 10 and the second antenna 20
- the reduction of the isolation degree ensures that the first antenna 10 and the second antenna 20 can always have a better isolation degree.
- the electrical length of the second sub-radiator 114 is less than 1/4 of the wavelength of the decoupling frequency band of the antenna structure 100, so as to prevent the length of the second sub-radiator 11 from being too long and affecting the first sub-radiator.
- the arrangement of the radiator 113 and the second radiator 21 ensures that at least one of the first sub-radiator 113 and the second radiator 21 can have an "L"-shaped structure.
- the decoupling frequency band is the same working frequency band of the first radiator 11 and the second radiator 21 or a working frequency band with a difference of less than 1 GHz.
- the operating frequency bands of the first radiator 11 and the second radiator 21 are both 0.8 GHz, that is, the decoupling frequency band of the antenna structure 100 in this embodiment is 0.8 GHz, and the electrical length of the second sub-radiator 114 is That is, it is less than 1/4 of the wavelength of the antenna mode with an operating frequency of 0.8 GHz.
- FIG. 39 the difference between FIG. 39 and FIG. 3 can also be applied to the foregoing embodiments.
- a feed point may also be provided on the second sub-radiator 114 located between the first sub-radiator 113 and the second radiator 21, and the RF front-end 140 may be connected to the feed point,
- the second sub-radiator 114 can be fed with power, so that the second sub-radiator 114 can perform signal radiation as a single radiation branch, increasing the working mode of the antenna.
- FIG. 44 is a schematic structural diagram of an antenna structure 100 according to another embodiment of the present application. The difference between the antenna structure 100 in this embodiment and the antenna structure 100 shown in FIG.
- the second sub-radiator 114 and the feed point on the second radiator 21 are connected to feed the first sub-radiator 113, the second sub-radiator 114 and the second radiator 21, so that the first sub-radiator
- the body 113 and the second radiator 21 can generate a low-frequency working frequency band (such as a low-frequency frequency band in sub-6G), and the second sub-radiator 114 can generate a high-frequency working frequency band (such as a high-frequency frequency band in sub-6G).
- the isolation between the first antenna 10 and the second antenna 20 can be improved.
- at least one of the first radiator 11 and the second radiator 21 is an "L"-shaped structure, and the first section and the second section of the first radiator 11 or the second radiator 21 of the "L"-shaped structure
- the sections are respectively located on adjacent two sides of the floor 40 (such as one side of the first edge 41 and one side of the second edge 42, or one side of the first edge 41 and one side of the third edge 43), which can further Improve the isolation between the first antenna 10 and the second antenna 20, and reduce the envelope correlation coefficient between the first antenna 10 and the second antenna 20, and can alleviate the first opening of the first radiator 11
- the first radiator 11 or the second radiator 21 is set to include the first sub-radiator 113 and the second sub-radiator 114 arranged at intervals, so that the user's hand or other When the structure blocks the gap 13 between the first radiator 11 and the second radiator 21 , the isolation between the first antenna 10 and the second antenna 20 is greatly reduced.
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Abstract
Description
Claims (20)
- 一种天线结构,其特征在于,包括第一辐射体、第二辐射体、地板及解耦电路;所述地板包括相邻且相交的第一边缘和第二边缘;所述第一辐射体包括相交的第一区段及第二区段,所述第一区段位于所述地板的所述第一边缘的一侧并与所述第一边缘间隔设置,所述第二区段位于所述地板的所述第二边缘的一侧并与所述第二边缘间隔设置;所述第一辐射体包括第一开放端,所述第二辐射体包括第二开放端,所述第一开放端与所述第二开放端之间形成有间隙,所述第一辐射体整体位于所述间隙的一侧,所述第二辐射体整体位于所述间隙的另一侧;所述解耦电路连接所述第一开放端及所述第二开放端。
- 如权利要求1所述的天线结构,其特征在于,所述地板还包括第三边缘,所述第一边缘连接于所述第二边缘与所述第三边缘之间,且所述第三边缘与所述第一边缘相邻且相交,其中所述第一边缘和所述第二边缘相交的角度,和所述第一边缘和所述第三边缘相交的角度在80°至100°的范围内。
- 如权利要求2所述的天线结构,其特征在于,所述第一辐射体的端部包括第一端及第二端,所述第一端为所述第一辐射体的第一区段远离所述第二区段的一端,所述第二端为所述第一辐射体的所述第二区段远离所述第一区段的一端;所述第一端为所述第一开放端,所述第二端与所述地板连接或者所述第二端为所述第一辐射体的第三开放端。
- 如权利要求3所述的天线结构,其特征在于,所述第二辐射体包括相交的第三区段及第四区段;所述第二辐射体的所述第三区段位于所述第一边缘的一侧并与所述第一边缘间隔设置,所述第二辐射体的所述第四区段位于所述第三边缘的一侧并与所述第三边缘间隔设置;所述第二辐射体的端部包括第三端及第四端,所述第三端为所述第二辐射体的所述第一区段远离所述第二辐射体的所述第二区段的一端,所述第四端为所述第二辐射体的所述第二区段远离所述第二辐射体的所述第一区段的一端;所述第三端为所述第二开放端,所述第四端与所述地板连接或者所述第四端为所述第二辐射体的第四开放端。
- 如权利要求1或2所述的天线结构,其特征在于,所述第二辐射体的整体均位于所述第二边缘的一侧并与所述第二边缘间隔设置,且所述第二辐射体位于所述第一辐射体的所述第二区段远离所述第一区段的一侧;所述第一辐射体的端部包括第一端及第二端,所述第一端为所述第一辐射体的第一区段远离所述第二区段的一端,所述第二端为所述第一辐射体的所述第二区段远离所述第一区段的一端;所述第二辐射体的端部包括第三端及第四端,所述第三端相对所述第四端靠近所述第一辐射体;所述第一辐射体的所述第二端为所述第一开放端,所述第二辐射体的所述第三端为所述第二开放端;所述解耦电路连接所述第一辐射体的所述第二端及所述第二辐射体的所述第三端。
- 如权利要求5所述的天线结构,其特征在于,所述第一辐射体还包括第三开放端,所述第一端为所述第三开放端;所述第二辐射体的所述第四端与所述地板连接。
- 如权利要求1-6任一项所述的天线结构,其特征在于,所述第一辐射体的第一工作模式的工作频段与所述第二辐射体的第二工作模式的工作频段相同或相差小于1GHz。
- 如权利要求7所述的天线结构,其特征在于,所述第一辐射体的所述第一工作模式的工作频段,和第二辐射体的所述第二工作模式的工作频段是sub-6G的任一工作频段。
- 如权利要求7所述的天线结构,其特征在于,所述第一辐射体或所述第二辐射体中的一个辐射体包括间隔设置的第一子辐射体及第二子辐射体,所述第一子辐射体的整体位于所述第二子辐射体的一侧,所述第一辐射体或所述第二辐射体中的另一个辐射体的整体位于所述第二子辐射体的另一侧,所述第一子辐射体与所述第二子辐射体耦合,所述第二子辐射体远离所述第一子辐射体的一端为第一开放端或所述第二开放端。
- 如权利要求9所述的天线结构,其特征在于,所述第二子辐射体的电长度小于所述天线结构的解耦频段的波长的1/4,所述解耦频段与所述第一辐射体的所述第一工作模式的工作频段相同,或与所述第二辐射体的所述第二工作模式的工作频段相同。
- 如权利要求9或10所述的天线结构,其特征在于,所述第二子辐射体上设有馈电点,所述馈电点用于接收信号馈入。
- 如权利要求7-11任一项所述的天线组件结构,其特征在于,所述解耦电路呈感性,所述解耦电路的等效电感值与所述第一辐射体的所述第一工作模式的工作频段,和/或所述第二辐射体的所述第二工作模式的工作频段相关。
- 如权利要求11所述的天线结构,其特征在于,所述解耦电路包括集总电感、或分布式电感。
- 如权利要求12或13所述的天线结构,其特征在于,所述解耦电路包括并联设置的第一支路及第二支路,所述第一支路的等效电感值与所述第二支路的等效电感值大小不同。
- 如权利要求14所述的天线结构,其特征在于,所述第一支路为呈感性的滤波电路,所述第二支路包括集总电感或者分布式电感。
- 如权利要求14或15所述的天线结构,其特征在于,所述第一支路包括电容、第一电感及第二电感,所述电容与所述第一电感并联后与所述第二电感串联;所述第二支路包括第三电感。
- 如权利要求1-16任一项所述的天线结构,其特征在于,所述解耦电路连接所述第一开放端的第一连接点,所述第一连接点距离所述第一开放端的端面在0-2mm范围内,和/或所述解耦电路连接所述第二开放端的第二连接点,所述第二连接点距离所述第二开放端的端面在0-2mm范围内。
- 一种电子设备,其特征在于,包括射频前端及如权利要求1-17任一项所述的天线结构,所述第一辐射体上设有第一馈电点,所述第二辐射体上设有第二馈电点,所述射频前端连接所述第一馈电点及所述第二馈电点。
- 如权利要求18所述的电子设备,其特征在于,所述电子设备包括金属边框,所述金属边框包括所述第一辐射体及所述第二辐射体。
- 如权利要求18或19所述的电子设备,其特征在于,所述地板包括一个或多个接地的中板、一个或多个电路板的接地层、一个或多个接地金属件中的任一个,或者任两个或两个以上的组合。
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| EP22841444.7A EP4354655A4 (en) | 2021-07-16 | 2022-07-14 | ANTENNA STRUCTURE AND ELECTRONIC DEVICE |
| US18/579,689 US20240347903A1 (en) | 2021-07-16 | 2022-07-14 | Antenna Structure and Electronic Device |
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| CN202110810416.XA CN115621730A (zh) | 2021-07-16 | 2021-07-16 | 天线结构及电子设备 |
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| US (1) | US20240347903A1 (zh) |
| EP (1) | EP4354655A4 (zh) |
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| CN119726128A (zh) * | 2023-09-27 | 2025-03-28 | 华为技术有限公司 | 一种电子设备 |
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| US12424760B2 (en) * | 2022-07-29 | 2025-09-23 | Mediatek Inc. | Antenna |
| CN121922879A (zh) * | 2023-08-29 | 2026-04-24 | 华为技术有限公司 | 一种电子设备 |
| CN121769514A (zh) * | 2024-09-30 | 2026-03-31 | 华为技术有限公司 | 天线组件及电子设备 |
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- 2022-07-14 US US18/579,689 patent/US20240347903A1/en active Pending
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| Publication number | Publication date |
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| US20240347903A1 (en) | 2024-10-17 |
| EP4354655A4 (en) | 2024-10-23 |
| EP4354655A1 (en) | 2024-04-17 |
| CN115621730A (zh) | 2023-01-17 |
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