ANTENNA ASSEMBLY AND ELECTRONIC DEVICE
20230387594 · 2023-11-30
Assignee
Inventors
Cpc classification
H04B1/0458
ELECTRICITY
H01Q5/50
ELECTRICITY
International classification
Abstract
An antenna assembly includes a radiator, a first matching circuit and a signal source. The radiator includes a first sub-radiator and a second sub-radiator, wherein a coupling gap is present between the first sub-radiator and the second sub-radiator, and the first sub-radiator and the second sub-radiator are coupled to each other by means of the coupling gap; the first sub-radiator includes a free end, a first coupling end, and a grounding point and a feeding point, which are arranged between the free end and the first coupling end, the grounding point is grounded, and the feeding point is located between the grounding point and the first coupling end; and the second sub-radiator includes a second coupling end and a grounding end, a coupling gap is present between the first coupling end and the second coupling end, and the grounding end is grounded.
Claims
1. An antenna assembly, comprising: a radiator comprising a first sub-radiator and a second sub-radiator, wherein a coupling gap is between the first sub-radiator and the second sub-radiator, and the first sub-radiator and the second sub-radiator are coupled through the coupling gap; the first sub-radiator comprises a free end, a first coupling end, a grounding point and a feeding point; the grounding point and the feeding point are disposed between the free end and the first coupling end, the grounding point is grounded, and the feeding point is located between the grounding point and the first coupling end; the second sub-radiator comprises a second coupling end and a grounding end, the coupling gap is formed between the second coupling end and the first coupling end, and the grounding end is grounded; and the first sub-radiator is configured to generate a first resonance mode under excitation of the signal source, and a current corresponding to the first resonance mode flows from the first coupling end and the free end to the grounding point; a first matching circuit, wherein one end of the first matching circuit is electrically connected to the feeding point; and a signal source, wherein the signal source is electrically connected to the other end of the first matching circuit.
2. The antenna assembly as claimed in claim 1, wherein the first sub-radiator and the second sub-radiator are configured to generate a second resonance mode under excitation of the signal source, and the first sub-radiator between the grounding point and the first coupling end and the second sub-radiator are configured to generate a third resonance mode under excitation of the signal source.
3. The antenna assembly as claimed in claim 2, wherein the first resonance mode supports a first frequency band, the second resonance mode supports a second frequency band, the third resonance mode supports a third frequency band; and the first frequency band, the second frequency band and the third frequency band are aggregated to form a target application frequency band.
4. The antenna element as claimed in claim 2, wherein a current corresponding to the second resonance mode flows from the grounding end to the grounding point and to the free end, and a current corresponding to the third resonance mode flows from the first coupling end to the grounding point and from the second coupling end to the grounding end.
5. The antenna assembly as claimed in claim 2, wherein the second resonance mode comprises a first sub-resonance mode and a second sub-resonance mode, the first sub-resonance mode is generated by the first sub-radiator under excitation of the signal source, and the second sub-resonance mode is generated by the second sub-radiator under capacitive coupling effect of the first sub-radiator.
6. The antenna assembly as claimed in claim 2, wherein a resonance frequency of the first resonance mode, a resonance frequency of the second resonance mode, and a resonance frequency of the third resonance mode increase in sequence.
7. The antenna assembly as claimed in claim 3, wherein the target application frequency band covers 1.6 GHz to 3 GHz; and/or, the target application frequency band supports an LTE 4G frequency band and a NR 5G frequency band.
8. The antenna assembly as claimed in claim 1, wherein a length of a radiator between the grounding point and the free end is ⅛ to ¾ times that of the first sub-radiator.
9. The antenna assembly as claimed in claim 8, wherein a length between the grounding point and the free end is ¼ to ¾ times that of the first sub-radiator.
10. The antenna assembly as claimed in claim 9, wherein the length between the grounding point and the free end is ⅜ to ⅝ times that of the first sub-radiator.
11. The antenna assembly as claimed in claim 2, wherein a wavelength corresponding to a resonance frequency of the first resonance mode is a first wavelength, and a length of a radiator between the grounding point and the free end is ⅛ to ⅜ times that of the first wavelength.
12. The antenna assembly as claimed in claim 11, wherein a length of a radiator between the free end and the first coupling end is ¼ to ¾ times that of the first wavelength.
13. The antenna assembly as claimed in claim 2, wherein a wavelength corresponding to a resonance frequency of the third resonance mode is a second wavelength, and a length of a radiator between the second coupling end and the grounding end is ⅛ to ⅜ times that of the second wavelength.
14. The antenna assembly as claimed in claim 2, wherein the first matching circuit comprises a first sub-circuit electrically connected to the feeding point, and the first sub-circuit is capacitive when operating at a fourth frequency band; and the fourth frequency band is located in a frequency band corresponding to the first resonance mode, the second resonance mode and the third resonance mode.
15. The antenna assembly as claimed in claim 2, wherein the first sub-radiator further comprises a first matching point between the free end and the grounding point; the antenna assembly further comprises a second matching circuit, one end of the second matching circuit is electrically connected with the first matching point, and the other end of the second matching circuit is grounded.
16. The antenna assembly as claimed in claim 15, wherein the second matching circuit comprises a second sub-circuit electrically connected to the first matching point, the second sub-circuit is capacitive when operating in a fifth frequency band, and the fifth frequency band is in a frequency band corresponding to the first resonance mode and the second resonance mode.
17. The antenna assembly as claimed in claim 2, wherein the second sub-radiator further comprises a second matching point between the second coupling end and the grounding end; the antenna assembly further comprises a third matching circuit, one end of the third matching circuit is electrically connected with the second matching point, and the other end of the third matching circuit is grounded.
18. The antenna assembly as claimed in claim 17, wherein the third matching circuit comprises a third sub-circuit electrically connected to the second matching point, the third sub-circuit is capacitive when operating in a sixth frequency band, and the sixth frequency band is in a frequency band corresponding to the second resonance mode and the third resonance mode.
19. An electronic device, comprising: a housing; and an antenna assembly, comprising: a radiator comprising a first sub-radiator and a second sub-radiator, wherein a coupling gap is between the first sub-radiator and the second sub-radiator, and the first sub-radiator and the second sub-radiator are coupled through the coupling gap; the first sub-radiator comprises a free end, a first coupling end, a grounding point and a feeding point; the grounding point and the feeding point are disposed between the free end and the first coupling end, the grounding point is grounded, and the feeding point is located between the grounding point and the first coupling end; the second sub-radiator comprises a second coupling end and a grounding end, the coupling gap is formed between the second coupling end and the first coupling end, and the grounding end is grounded; and the first sub-radiator is configured to generate a first resonance mode under excitation of the signal source, and a current corresponding to the first resonance mode flows from the first coupling end and the free end to the grounding point; a first matching circuit, wherein one end of the first matching circuit is electrically connected to the feeding point; and a signal source, wherein the signal source is electrically connected to the other end of the first matching circuit; wherein the radiator is disposed on or in the housing.
20. The electronic device as claimed in claim 19, wherein the housing comprises a plurality of side frames connected end to end, a connection position between two adjacent side frames is a corner part; the radiator is entirely disposed on at least one side frame; or one part of the radiator is disposed on at least one side frame, and the other part of the radiator is disposed on the corner part.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0006] In order to more clearly illustrate the technical solutions of the embodiments of the present disclosure, The accompanying drawings required to be used in the embodiments will be briefly introduced below. Obviously, the accompanying drawings in the following description are only some embodiments of the present disclosure. For one of ordinary skill in the art, other accompanying drawings can also be obtained according to the accompanying drawings without any creative efforts.
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DETAILED DESCRIPTION
[0037] The following will be combined with the accompanying drawings in the embodiments of the present disclosure, the technical solutions in the embodiments of the present disclosure are clearly and completely described. Obviously, the described embodiments are merely a part of the embodiments of the present disclosure, and not all embodiments. Reference herein to an “embodiment” or “example” means, particular features, structures, or characteristics described in connection with embodiments may be included in at least an embodiment of the present disclosure. The phrase appearing in various positions in the specification does not necessarily refer to the same embodiment, nor is it an independent or alternative embodiment that is mutually exclusive with other embodiments. One of ordinary skill in the art explicitly and implicitly understands that the embodiments described in present disclosure can be combined with other embodiments.
[0038] The present disclosure provides an antenna assembly and an electronic device which improve data transmission rate and improve communication quality.
[0039] Referring to
[0040] The electronic device 1000 includes, but is not limited to a device capable of transmitting and receiving electromagnetic wave signals, such as, a phone, a television, a tablet, a cellphone, a camera, a personal computer, a laptop, a vehicle-mounted device, a headset, a watch, a wearable device, a base station, a vehicle-mounted radar, a customer premise equipment (CPE), and so on. In the present disclosure, taking the electronic device 1000 being a mobile phone as an example, and other devices can refer to the detailed description in the present disclosure.
[0041] For convenience of description, taking the view angle of the electronic device 1000 in
[0042] Referring to
[0043] The antenna assembly 100 provided by the present disclosure is specifically described below with reference to the accompanying drawings. Of course, the antenna assembly 100 provided by the present disclosure includes but is not limited to the following embodiments.
[0044] Referring to
[0045] Referring to
[0046] Referring to
[0047] Referring to
[0048] Referring to
[0049] The first sub-radiator 11 and the second sub-radiator 12 are capacitively coupled through the coupling gap 13. “Capacitive coupling” means, an electric field is generated between the first sub-radiator 11 and the second sub-radiator 12, the signal of the first sub-radiator 11 can be transmitted to the second sub-radiator 12 through the electric field, and the signal of the second sub-radiator 12 can be transmitted to the first sub-radiator 11 through the electric field, so that the first sub-radiator 11 and the second sub-radiator 12 can be electrically connected even in a disconnected state. In this embodiment, the first sub-radiator 11 can generate the electric field under the excitation of the signal source 20, and the energy of the electric field can be transmitted to the second sub-radiator 12 through the coupling gap 13, so that the second sub-radiator 12 generates an excitation current.
[0050] The grounding end 122 of the second sub-radiator 12 is used to ground GND2.
[0051] Referring to
[0052] Referring to
[0053] The multiple frequency bands supported by the radiator 10 are continuous or discontinuous, the multiple frequency bands being continuous means that two adjacent frequency bands supported by the radiator 10 are at least partially overlapped, and the multiple frequency bands being discontinuous means that two adjacent frequency bands supported by the radiator 10 are not overlapped.
[0054] Referring to
[0055] In the antenna assembly 100 and the electronic device 1000 provided by the present disclosure, the grounding point A of the first sub-radiator 11 is located between the two ends of the first sub-radiator 11, and the second sub-radiator 12 is capacitively coupled to the first sub-radiator 11, so that the currents of the first sub-radiator 11 and the second sub-radiator 12 are distributed in a plurality of ways to generate multiple resonance modes. The bandwidth covered by the multiple resonance modes is greater than or equal to 1 G, so that the antenna assembly 100 can support a wider bandwidth, the throughput and the data transmission rate of the antenna assembly 100 applied to the electronic device 1000 are improved, and the communication quality of the electronic device 1000 is improved.
[0056] The shapes and structures of the first sub-radiator 11 and the second sub-radiator 12 are not specifically limited. The shapes of the first sub-radiator 11 and the second sub-radiator 12 include, but are not limited to, a strip shape, a sheet shape, a rod shape, a coating, a film, etc. When the first sub-radiator 11 and the second sub-radiator 12 are in a strip shape, the extending tracks of the first sub-radiator 11 and the second sub-radiator 12 are not limited, thus the first sub-radiator 11 and the second sub-radiator 12 can be straight lines, curved lines, multi-section bending, or the like. The extending tracks of the radiator 10 can be lines with uniform width, or can be strips with gradually changed widths, widened areas, different widths, or the like.
[0057] Regarding the grounding of the radiator 10 of the antenna assembly 100, in some embodiments, the antenna assembly 100 itself has a reference ground, and the specific form of the reference ground includes but is not limited to a metal plate, or a metal layer formed in the flexible circuit board. The grounding point A of the first sub-radiator 11 is electrically connected to the reference ground through a conductive member, such as a grounding elastic sheet, a soldering tin, or a conductive adhesive. When the antenna assembly 100 is disposed in the electronic device 1000, the reference ground of the antenna assembly 100 is electrically connected to the reference ground of the electronic device 1000. In some embodiments, the antenna assembly 100 itself does not have a reference ground, the radiator 10 of the antenna assembly 100 is electrically connected to a reference ground of the electronic device 1000 or a reference ground of an electronic element in the electronic device 1000 through a direct electrical connection or through an intermediate conductive connector. In present disclosure, when the antenna assembly 100 is arranged in the electronic device 1000, the metal alloy of the display screen 200 and the middle plate 410 of the electronic device 1000 is used as the reference ground. The grounding point and the grounding end of the antenna assembly 100 are electrically connected with the reference ground of the electronic device 1000 through the conductive member, such as the grounding elastic sheet, the soldering tin, or the conductive adhesive, etc.
[0058] In general technology, the effective efficiency bandwidth of an antenna is not wide enough, such as in the coverage of the medium to high frequency range (1000 MHz to 3000 MHz). For example, in the case of 1710 MHz to 2690 MHz (B3/N3+B1/N1+B7/N7), at least two resonance modes are used to cover, and the bandwidth of these resonance modes is small and spaced apart from each other, it is difficult to cover simultaneously B3/N3+B1/N1, cover simultaneously B1/N1+B7/N7, and cover simultaneously B3/N3+B1/N1+B7/N7, resulting in poor signal coverage or insufficient miniaturization of the antenna in certain frequency bands. The above frequency bands are only examples and cannot be used as a limitation on the frequency bands that can be radiated in the present disclosure.
[0059] In the antenna assembly 100 provided by the present disclosure, by designing the construction and grounding points of the first sub-radiator 11 and the second sub-radiator 12, the currents of the first sub-radiator 11 and the second sub-radiator 12 are distributed in a plurality of ways, thus the antenna assembly 100 has a simple structure and generates a plurality of resonance modes. The bandwidth of the frequency band supported by multiple resonance modes is greater than or equal to 1 G, so that the antenna assembly 100 can support a wider bandwidth, further, the throughput and the data transmission rate when the antenna assembly 100 is applied to the electronic device 1000 are improved. When the antenna assembly 100 is applied to the above mentioned mid-to-high frequency bands (e.g., 1710 MHz-2690 MHz), B3/N3+B1/N1+B7/N7 can be supported at the same time, so that the antenna assembly 100 has at least a simple structure, miniaturization, and higher efficiency and data transmission rate in the application frequency band of B3/N3+B1N1+B7/N7. B3/N3 includes any one or both of B3 and N3. The definition of B1/N1 and B7/N7 is similar to that of B3/N3, which will not be repeated herein. Certainly, the antenna assembly 100 provided in the present disclosure may also be applied to 1000 MHz-2000 MHz, 3000 MHz-6000 MHz, etc.
[0060] Referring to
[0061] Referring to
[0062] In some possible embodiments, referring to
[0063] Since the resonance frequencies of the first resonance mode a, the second resonance mode b, and the third resonance mode c are sequentially increased, therefore, the effective electrical length of the radiator 10 supporting the first resonance mode a, the effective electrical length of the radiator 10 supporting the second resonance mode b, and the effective electrical length of the radiator 10 supporting the third resonance mode c are sequentially reduced. Since the middle portion of the first sub-radiator 11 is grounded and electrically connected to the signal source 20, in other words, the grounding point A and the feeding point B can segment the first sub-radiator 11, so that the first sub-radiator 11 can form multiple radiating segments with different effective electrical lengths. For example, one radiating segment can be formed between the free end 111 and the first coupling end 112, and another radiating segment can be formed between the grounding point A and the first coupling end 112, these radiating segments can make the first sub-radiator 11 produce multiple resonance modes.
[0064] For example, the first sub-radiator 11 is configured to generate the first resonance mode a under excitation of the signal source 20, the first sub-radiator 11 and the second sub-radiator 12 are configured to generate the second resonance mode b under excitation of the signal source 20, and the first sub-radiator 11 and the second sub-radiator 12 between the grounding point A and the first coupling end 112 are configured to generate the third resonance mode c under the excitation of the signal source 20. The frequency of the third resonance mode c is relatively high, and the required electrical length of the radiator 10 is relatively short. The second sub-radiator 12 assists in generating the third resonance mode c, so that the length of the second sub-radiator 12 is relatively short, the whole length of the radiator 10 is relatively small, the superposition size of the antenna assembly 100 is reduced, and the miniaturization of the antenna assembly 100 is promoted.
[0065] Referring to
[0066] From the perspective of the current side, the antenna assembly 100 generates at least three current distributions under excitation of the signal source 20, including a first current distribution R1, a second current distribution R2 and a third current distribution R3, respectively.
[0067] Referring to
[0068] Referring to
[0069] Referring to
[0070] Referring to
[0071] From the current distribution of the first resonance mode a, the second resonance mode b and the third resonance mode c, the currents corresponding to the first resonance mode a, the second resonance mode b and the third resonance mode c have partial same flow direction, for example, the flow direction from the first coupling end 112 to the grounding point A, so that the three resonance modes can be mutually enhanced.
[0072] In the present disclosure, referring to
[0073] In some embodiments, the target application frequency band T4 can support any one or both of the LTE 4G frequency band and the NR 5G frequency band. When the target application frequency band T4 formed by aggregating the first frequency band T1, the second frequency band T2 and the third frequency band T3 covers 1.6 GHz to 3 GHz, the support frequency bands of the antenna assembly 100 for the LTE 4G frequency band include, but are not limited to, at least one of B1, B2, B3, B4, B7, B32, B38, B39, B40, B41, B48, and B66; and the support frequency bands of the antenna assembly 100 for the NR 5G frequency band include, but are not limited to, at least one of N1, N2, N3, N4, N7, N32, N38, N39, N40, N41, N48, and N66. The antenna assembly 100 provided by the present disclosure can cover any combination of the above NR 5G frequency band and the LTE 4G frequency band. Of course, the antenna assembly 100 may be loaded with 4G LTE signals alone, or loaded with 5G NR signals alone, or may also be loaded with 4G LTE signals and 5G NR signals simultaneously, that is, the LTE NR Double Connect (EN-DC) of a 4G wireless access network and 5G-NR is implemented.
[0074] The frequency band received and transmitted by the antenna assembly 100 includes a plurality of carriers (carriers are radio waves of a specific frequency) aggregated, that is, Carrier Aggregation (CA) is implemented to increase the transmission bandwidth, improve the throughput and increase the signal transmission rate.
[0075] The above-listed frequency bands may be mid-to-high frequency bands to which multiple operators may apply. The antenna assembly 100 provided in the present disclosure may simultaneously support any one of the above-mentioned frequency bands or a combination of multiple frequency bands. Therefore, the antenna assembly 100 provided by the present disclosure can support electronic device 1000 models corresponding to a plurality of different operators, different antenna structures do not need to be adopted for different operators, and the application range and the compatibility of the antenna assembly 100 are further improved.
[0076] From the perspective of the structure of the antenna assembly 100, referring to
[0077] In some embodiments, the wavelength corresponding to the resonance frequency of the first resonance mode a is the first wavelength. The length of the radiator 10 between the first free end 111 and the first coupling end 112 is (¼) to (¾) times that of the first wavelength. In the case where no other matching circuit is set except for the first matching circuit M1, the length of the radiator 10 between the free end 111 and the first coupling end 112 is ½ times that of the first wavelength, creating conditions for subsequent antenna assembly 100 to generate higher signal transmission efficiency at the first frequency f1 and the second frequency f2. In a case where a matching circuit is provided in addition to the first matching circuit M1, the accessed matching circuit can adjust the effective electrical length of the first sub-radiator 11, for example, a capacitive matching circuit is accessed, the length of the radiator 10 between the free end 111 and the first coupling end 112 can be reduced, and by accessing an inductive matching circuit, the length of the radiator 10 between the free end 111 and the first coupling end 112 can be increased, so that the length of the radiator 10 between the free end 111 and the first coupling end 112 can be adjusted to be (¼) to (¾) times that of the first wavelength. Certainly, in practical application, the length of the radiator 10 between the free end 111 and the first coupling end 112 can be adjusted to be (⅕) times, (⅘) times, etc. of the first wavelength.
[0078] For example, when the target application frequency covers B3/N3+B1/N1+B7N7, the range of the first frequency f1 includes, but is not limited to, 1.71 GHz tol. 88 GHz. In this embodiment, taking the first frequency f1 being 1.72 GHz as an example, the length range of the first sub-radiator 11 can be determined. Of course, the first frequency f1 can vary with the variation of the frequency band covered by the target application frequency.
[0079] In the present disclosure, the specific position of the grounding point A is not limited. In some embodiments, the length of the radiator 10 between the grounding point A and the free end 111 is (⅛) to (¾) times that of the first sub-radiator 11. In other words, the position of the grounding point A may be within a range of (⅛) to (¾) from the free end 111 of the first sub-radiator 11. Through the above design or in combination with the design of the matching circuit on the first sub-radiator 11 (described in detail later), the first sub-radiator 11 can form the current distributions such as the first current distribution R1 and the first sub-current distribution R21, thereby generating the first resonance mode a, the first sub-resonance mode b1 and assisting in generating the third resonance mode c, thereby generating a wider bandwidth and improving throughput and quantity transmission rate. In addition, the grounding point A has a larger setting position range, so that the optional range of the position of the set grounding connecting element is larger. When the antenna assembly 100 is arranged on the electronic device 1000, the optional range of the position of the grounding connecting element is larger, so that the optional range of the position of the antenna assembly 100 is larger, which is more beneficial to the installation of the antenna assembly 100 on the electronic device 1000.
[0080] Of course, ⅛ and ¾ are only examples and are not limited thereto. In other embodiments, the length of the radiator 10 between the grounding point A and the free end 111 may be slightly smaller than ⅛ of the length of the first sub-radiator 11, or slightly larger than ¾ of the length of the first sub-radiator 11.
[0081] In some embodiments, the length of the radiator 10 between the grounding point A and the free end 111 may be (¼) to (¾) times that of the first sub-radiator 11. The position of the grounding point A can be in the range of (¼) to (¾) from the free end 111 of the first sub-radiator 11, so that the position of the grounding point A is closer to the middle part of the first sub-radiator 11, which is beneficial to increase the bandwidth and efficiency of the antenna assembly 100.
[0082] In some embodiments, the length of the radiator 10 between the grounding point A and the free end 111 is (⅜) to (⅝) times that of the first sub-radiator 11, in other words, the position of the grounding point A can be in the range of (⅜) to (⅝) from the free end 111 of the first sub-radiator 11, so that the position of the grounding point A is closer to the middle part of the first sub-radiator 11, which is beneficial for increasing the bandwidth and efficiency of the antenna assembly 100.
[0083] For example, the grounding point A may be close to the middle part of the first sub-radiator 11. Further, the length between the grounding point A and the free end 111 may be slightly greater than the length between the grounding point A and the first coupling end 121. For example, the length between the grounding point A and the free end 111 is about 18 mm, and the length between the grounding point A and the first coupling end 121 is about 16 mm.
[0084] Taking the length of the radiator 10 between the free end 111 and the first coupling end 112 being (½) times that of the first wavelength as an example, the length of the radiator 10 between the grounding point A and the free end 111 is ½ times the length of the first sub-radiator 11, at this time, the length of the radiator 10 between the grounding point A and the free end 111 is (¼) times that of the first wavelength.
[0085] Further, by providing a capacitive matching circuit between the grounding point A and the free end 111, the length of the first sub-radiator 11 between the grounding point A and the free end 111 can be reduced, thus the length of the radiator 10 between the grounding point A and the free end 111 is ¼ times the length of the first sub-radiator 11. In practical applications, of course not limited thereto, it may also be ⅕, ⅖, etc. By providing a grounded capacitive matching circuit between the grounding point A and the first coupling end 112, the length of the first sub-radiator 11 between the grounding point A and the first coupling end 112 can be reduced, so that the length of the radiator 10 between the grounding point A and the free end 111 is ¾ times the length of the first sub-radiator 11. In practical application, it may also be ⅗, ⅘, etc. Correspondingly, the length of the radiator 10 between the grounding point A and the free end 111 is (⅛) to (⅜) times that of the first wavelength.
[0086] The wavelength corresponding to the resonance frequency of the third resonance mode c is the second wavelength. The length of the radiator 10 between the second coupling end 121 and the grounding end 122 is (⅛) to (⅜) times that of the second wavelength. In other words, the length of the second sub-radiator 12 is (⅛) to (⅜) times that of the wavelength corresponding to the third frequency f3. When no matching circuit is provided on the second sub-radiator 12, the length of the second sub-radiator 12 is (¼) times that of the wavelength corresponding to the third frequency f3, so that the second sub-radiator 12 generates higher receiving and transmitting efficiency at the third frequency f3, thus a resonance is generated at the third frequency f3 to form the third resonance mode c. When a capacitive matching circuit is provided on the second sub-radiator 12, the length of the second sub-radiator 12 may be ⅛ times that of the wavelength corresponding to the third frequency f3. When an inductive matching circuit is provided on the second sub-radiator 12, the length of the second sub-radiator 12 may be ⅜ times that of the wavelength corresponding to the third frequency f3.
[0087] For example, when the target application frequency covers B3/N3+B1/N1+B7/N7, the range of the third frequency f3 includes but is not limited to, 2.5 GHz to 3 GHz. In this embodiment, taking the third frequency f3 being 2.76 GHz as an example, the length range of the second sub-radiator 12 can be determined. Of course, the third frequency f3 can vary with the variation of the frequency band covered by the target application frequency.
[0088] Further, by adjusting the length of the first sub-radiator 11, the length of the second sub-radiator 12, the position of the feeding point B and the position of the grounding point A, the position of the second frequency f2 can be adjusted, so that the first frequency f1, the second frequency f2 and the third frequency f3 are close to each other and can support a wider bandwidth.
[0089] In summary, the present disclosure designs the structure of the antenna assembly 100, so that the radiator 10 of the antenna assembly 100 includes the first sub-radiator 11 and the second sub-radiator 12, the grounding point A of the first sub-radiator 11 is positioned between the two ends of the first sub-radiator 11, the second sub-radiator 12 is the parasitic radiator of the first sub-radiator 11, and the first sub-radiator 11 is similar to the radiator of a T-shaped antenna. Thus, the first sub-radiator 11 generates at least two resonance modes. The second sub-radiator 12 is capable of strengthening the resonance mode of the second sub-radiator 12. Thus, the first sub-radiator 11 can generate the first resonance mode a, the first sub-radiator 11 and the second sub-radiator 12 can jointly generate the second resonance mode b. By the length of the first sub-radiator 11 and the position of grounding point A are designed and optimized, the resonance frequency of the first resonance mode a and the resonance frequency of the second resonance mode b are close to each other to form a larger bandwidth, and cover the frequency band that needs to be covered. A part of the first sub-radiator 11 and a part of the second sub-radiator 12 form an antenna structure with two ends returned to the ground. Thus, the first sub-radiator 11 and the second sub-radiator 12 generate the third resonance mode c. By designing and optimizing the length of the second sub-radiator 12, the resonance frequency of the third resonance mode c is close to that of the second resonance mode b, and the resonance frequencies of the first resonance mode a, the second resonance mode b and the third resonance mode c are continuous and form a bandwidth greater than or equal to 1G, so as to improve the throughput of the antenna assembly 100 and the network access rate of the electronic device 1000.
[0090] Referring to
[0091] As can be seen from the foregoing, the antenna assembly 100 provided by the present disclosure still has higher radiation efficiency in a very small clearance area, so that the antenna assembly 100 has a smaller clearance area when applied to the electronic device 1000. Compared with other antennas that require a larger clearance area to have higher efficiency, the overall volume of the electronic device 1000 can be reduced.
[0092] Referring to
[0093] Referring to
[0094] Referring to
[0095] Referring to
[0096] Referring to
[0097] Referring to
[0098] Referring to
[0099] Referring to
[0100] Referring to
[0101] The above is an example of the specific structure of the antenna assembly 100. In some embodiments, the antenna assembly 100 is disposed in the electronic device 1000. The following is an example of an implementation method for disposing the antenna component 100 on electronic device 1000. For the electronic device 1000, at least a part of the antenna assembly 100 is integrated on the housing 200 or all of the antenna assembly 100 is disposed in the housing 200. The radiator 10 of the antenna assembly 100 is disposed on the housing 200 or in the housing 200.
[0102] The above is the basic structure of the antenna assembly 100, and the antenna assembly 100 is further optimized by the following embodiments to further reduce the stacking size of the antenna assembly 100.
[0103] In some embodiments, referring to
[0104] In some embodiments, the first sub-circuit M11 includes, but is not limited to, a capacitor, a series or parallel circuit including a capacitor, an inductor, a resistor, etc.
[0105] Referring to
[0106] By adding the second matching circuit M2, the resonance frequencies of the first resonance mode a and the second resonance mode b can be adjusted by the second matching circuit M2. For example, when the second matching circuit M2 is capacitive, the resonance frequencies of the first resonance mode a and the second resonance mode b can move toward the low frequency end; when the second matching circuit M2 is inductive, the resonance frequencies of the first resonance mode a and the second resonance mode b can move toward the high frequency end. By the above adjustment, the first resonance mode a and the second resonance mode b can cover the actually required frequency band and generate resonance at the actually required frequency.
[0107] In some embodiments, referring to
[0108] In some embodiments, the second sub-circuit M21 includes, but is not limited to, a capacitor, a series or parallel circuit including a capacitor, an inductor, a resistor, etc.
[0109] In some embodiments, referring to
[0110] The antenna assembly 100 further includes a third matching circuit M3. One end of the third matching circuit M3 is electrically connected with the second matching point D, and the other end of the third matching circuit M3 is grounded. The third matching circuit M3 includes an adjustable element, such as, multiple selective branches formed by switch-capacitor-inductor-resistor, etc., a variable capacitor, or the like. The adjustable element is used for adjusting the positions of the three resonance modes. The change of mode position can also improve the performance of single frequency band, and can better meet ENDC/CA combination of different frequency bands.
[0111] By adding the third matching circuit M3, the resonance frequencies of the second resonance mode b and the third resonance mode c can be adjusted by the third matching circuit M3. For example, when the third matching circuit M3 is capacitive, the resonance frequencies of the second resonance mode b and the third resonance mode c can move towards the low frequency end; when the third matching circuit M3 is inductive, the resonance frequencies of the second resonance mode b and the third resonance mode c can move toward the high frequency end. By the above adjustment, the second resonance mode b and the third resonance mode c can cover the actually required frequency band and generate resonance at the actually required frequency.
[0112] Referring to
[0113] In some embodiments, the third sub-circuit M31 includes, but is not limited to, a capacitor, a series or parallel circuit including a capacitor, an inductor, a resistor, etc.
[0114] When the antenna assembly 100 is actually designed, one or two of the first matching circuit M1, the second matching circuit M2 and the third matching circuit M3 can be selected to be arranged at corresponding positions. All of the first matching circuit M1, the second matching circuit M2 and the third matching circuit M3 can also be arranged at corresponding positions, so that the stacking size of the radiator 10 can be further reduced.
[0115] In the present disclosure, a specific location where the radiator 10 of the antenna assembly 100 is disposed on the electronic device 1000 is not specifically limited. For example, referring to
[0116] Referring to
[0117] In some embodiments, referring to
[0118] In some embodiments, referring to
[0119] In some embodiments, the first sub-radiator 11 and the second sub-radiator 12 are disposed on a flexible circuit board. The flexible circuit board is attached to the surface of the frame 210. The first sub-radiator 11 and the second sub-radiator 12 may be integrated on the flexible circuit board. The flexible circuit board is stuck on the inner surface of the middle frame 420 through adhesive, etc. In the embodiment, the material of the frame 210 can be non-conductive material. Of course, the radiator 10 can also be arranged on the inner surface of the rear cover 220.
[0120] Referring to
[0121] Referring to
[0122] Referring to
[0123] In the antenna assembly 100 provided by the present disclosure, by designing the structure of the radiator 10 and the position of the grounding point A, multiple resonance modes are excited, and these resonance modes can implement ultra-wideband coverage, thereby implementing multi-band ENDC/CA performance, and improving download bandwidth, so that the throughput and the download speed can be improved, and user experience is improved. The multiple modes generated by the antenna assembly 100 of the present disclosure can be mutually enhanced, so that it can cover ultra-wide bandwidth with high efficiency, save cost, and is beneficial to meet the indicators of various operators.
[0124] In the antenna assembly and the electronic device provided by the present disclosure, the grounding point of the first sub-radiator is located between the two ends of the first sub-radiator, and the second sub-radiator is capacitively coupled to the first sub-radiator, so that the currents of the first sub-radiator and the second sub-radiator have several distribution modes to produce several resonance modes. Thus, the antenna assembly can support relatively wide bandwidth, thereby improving throughput and data transmission rate of the antenna assembly when the antenna assembly is applied to the electronic device and improving the communication quality of the electronic device.
[0125] The above description is part of the embodiments of the present disclosure, and it should be pointed out that for one of ordinary skill in the art, without departing from the principles of the present disclosure, several improvements and refinements can also be made, and these improvements and refinements are also considered as the protection scope of the present disclosure.