The disclosure relates to an antenna structure, and more particularly to a broadband linear polarization antenna structure.
With the development of science and technology, the dual polarization array transceiver system is the key technology for the next generation of the 5-th generation (hereinafter referred to as 5G) communication system. The dual polarization antenna integrates two vertical polarization and horizontal polarization receiving antennas into the same structure, which may reduce the complexity of the wiring between the power amplifier and the antenna, reduce energy loss, and reduce the area of the module. In addition, if the dual polarization antenna is combined with the control of the back-end active system (such as a phase control chip with complete phase and amplitude control functions), the signal may be switched between effects such as single polarization, dual polarization, and circular polarization, or the capacity and spectrum utilization of the communication system may be exponentially increased without increasing the bandwidth, thereby improving the range and coverage of the millimeter wave signal.
In order to save circuit space and improve heat dissipation, dual polarization antenna arrays have been developed in recent years and integrated with multi-port phase control chip modules, so that the horizontal and vertical polarization transceivers share one array antenna, thereby improving the range and coverage of the millimeter wave signal.
Since the patch antenna has the advantages of simple structure, simple polarization, unidirectional vertical radiation, etc., the patch antenna has become a commonly used antenna unit in the line array technology today. Since the patch antenna does not perform well in the impedance bandwidth, persons skilled in the art have tried to achieve a wider frequency response through changing the shape of the radiator, but the radiation characteristic of the main mode cannot be maintained.
The disclosure provides a broadband linear polarization antenna structure, which can be configured to solve the above technical issues.
The disclosure provides a broadband linear polarization antenna structure, which includes a reference conductive layer, a first patch antenna, a second patch antenna, and a feeding portion. The reference conductive layer includes at least one through hole. At least one first short pin is connected between the reference conductive layer and the first patch antenna, and at least one second short pin is connected between the first patch antenna and the second patch antenna. Each feeding portion penetrates the reference conductive layer through the at least one through hole and is coupled to the first patch antenna.
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In an embodiment, the feeding portions F1 and F2 may respectively receive a first feeding signal and a second feeding signal, and the first feeding signal may be orthogonal to the second feeding signal. For example, the first feeding signal is, for example, a horizontal polarization signal, and the second feeding signal is, for example, a vertical polarization signal, but not limited thereto. In different embodiments, the feeding portions F1 and F2 may include microstrip lines or coaxial feeding lines. The structure of the microstrip line is simple, and the coaxial feeding line may suppress line radiation. In this case, combined with a beamforming chip module, the broadband linear polarization antenna structure 100 may implement operations such as single polarization, dual polarization, multi-polarization, and circular polarization. In some embodiments, the feeding portions F1 and F2 may be vertically, horizontally, or obliquely coupled to the first patch antenna A1, but not limited thereto.
In
In an embodiment, the first patch antenna A1 and the second patch antenna A2 may be parallel to each other, and the reference conductive layer 102 may be parallel to the first patch antenna A1. In other words, the first patch antenna A1, the second patch antenna A2, and the reference conductive layer 102 may be parallel to each other, but not limited thereto. In addition, the first patch antenna A1 may be disposed between the reference conductive layer 102 and the second patch antenna A2, but not limited thereto.
In addition, the first short pin S1 and the second short pin S2 may be perpendicular to the first patch antenna A1. In other words, the first short pin S1 and the second short pin S2 may be understood to be also perpendicular to the second patch antenna A2 and the reference conductive layer 102, but not limited thereto.
In addition, although only one first short pin S1 is shown in
In different embodiments, the first short pin S1 may be connected to any position of the first patch antenna A1. In a preferred embodiment, the first short pin S1 may be connected to a virtual ground of the first patch antenna A1. Similarly, the second short pin S2 may be connected to any position of the second patch antenna A2. In a preferred embodiment, the second short pin S2 may be connected to a virtual ground of the second patch antenna A2. In some embodiments, the first short pin S1 may be aligned with the second short pin S2, but not limited thereto.
In other embodiments, the number of the first short pin S1 connected between the reference conductive layer 102 and the first patch antenna A1 may be the same as or different from the number of the second short pin S2 connected between the first patch antenna A1 and the second patch antenna A2.
In addition, each of the first patch antenna A1 and the second patch antenna A2 has a complete patch metal surface, and the shape of each of the first patch antenna A1 and the second patch antenna A2 may be implemented as a circular structure or a polygonal structure according to the requirements of the designer. In addition, the size of each of the first patch antenna A1 and the second patch antenna A2 may also be adjusted according to the respective required resonance frequencies. That is, the size of the first patch antenna A1 may correspond to a first resonance frequency of the first patch antenna A1, and the size of the second patch antenna A2 may correspond to a second resonance frequency of the second patch antenna A2, but not limited thereto.
In some embodiments, when the first patch antenna A1 and the second patch antenna A2 are excited, the broadband linear polarization antenna structure 100 may generate multimode resonance to synthesize a broadband response. In addition, in other embodiments, the designer may stack other patch antennas on the second patch antenna A2 to achieve a wider frequency response, but not limited thereto.
In some embodiments, there may be a first distance D1 between the first patch antenna A1 and the reference conductive layer 102, there may be a second distance D2 between the first patch antenna A1 and the second patch antenna A2, and the first distance D1 may be equal to or not equal to the second distance D2.
In some embodiments, the first distance D1 and the second distance D2 may be adjusted according to size requirements of a printed circuit board (PCB). Increasing D1 and D2 can both effectively increase the impedance bandwidth and radiation efficiency of the antenna, but not limited thereto.
In the embodiment of the disclosure, through disposing the first short pin S1 and the second short pin S2, the impedance of the broadband linear polarization antenna structure 100 may be effectively adjusted, so that the broadband linear polarization antenna structure 100 may implement the operation of dual polarization. In addition, since the first patch antenna A1 and the second patch antenna A2 have complete patch metal surfaces, the broadband linear polarization radiation characteristic can be maintained, which is fairly practical for the dual polarization array transceiver system today.
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In the embodiment, the broadband linear polarization antenna structure 800 includes a reference conductive layer 802, a first patch antenna A1, a second patch antenna A2, and a feeding portion F. In an embodiment, the broadband linear polarization antenna structure 800 may further include a substrate 801, and the reference conductive layer 802, the first patch antenna A1, the second patch antenna A2, and the feeding portion F may be disposed in the substrate 801, but limited thereto. In some embodiments, the reference conductive layer 802 may be a layer connected with a reference voltage source providing a reference voltage. In the embodiment where the reference voltage is 0V, the reference conductive layer 802 may be understood as a ground layer, but the disclosure is not limited thereto.
As shown in
In an embodiment, the feeding portion F may receive a feeding signal. The feeding signal is, for example, a single polarization feeding signal. In different embodiments, the feeding portion F may include a microstrip line or a coaxial feeding line. In some embodiments, the feeding portion F may be vertically, horizontally, or obliquely coupled to the first patch antenna A1, but not limited thereto.
In
In an embodiment, the first patch antenna A1 and the second patch antenna A2 may be parallel to each other, and the reference conductive layer 802 may be parallel to the first patch antenna A1. In other words, the first patch antenna A1, the second patch antenna A2, and the reference conductive layer 802 may be parallel to each other, but not limited thereto. In addition, the first patch antenna A1 may be disposed between the reference conductive layer 802 and the second patch antenna A2, but not limited thereto.
In addition, the first short pins S11 and S12, and the second short pins S21 and S22 may be perpendicular to the first patch antenna A1. In other words, the first short pins S11 and S12, and the second short pins S21 and S22 may be understood to be also perpendicular to the second patch antenna A2 and the reference conductive layer 802, but not limited thereto.
In addition, although only two first short pins S11 and S12 are shown in
In different embodiments, the first short pins S11 and S12 may be connected to any position of the first patch antenna A1. In a preferred embodiment, the first short pins S11 and S12 may be connected to a virtual ground of the first patch antenna A1. Similarly, the second short pins S21 and S22 may be connected to any position of the second patch antenna A2. In a preferred embodiment, the second short pins S21 and S22 may be connected to a virtual ground of the second patch antenna A2.
In other embodiments, the number of the first short pins S11 and S12 connected between the reference conductive layer 802 and the first patch antenna A1 may be the same as or different from the number of the second short pins S21 and S22 connected between the first patch antenna A1 and the second patch antenna A2.
In addition, each of the first patch antenna A1 and the second patch antenna A2 has a complete patch metal surface, and the shape of each of the first patch antenna A1 and the second patch antenna A2 may be implemented as a circular structure or a polygonal structure according to the requirements of the designer. In addition, the size of each of the first patch antenna A1 and the second patch antenna A2 may also be adjusted according to the respective required resonance frequencies. That is, the size of the first patch antenna A1 may correspond to a first resonance frequency of the first patch antenna A1, and the size of the second patch antenna A2 may correspond to a second resonance frequency of the second patch antenna A2, but not limited thereto.
In some embodiments, when the first patch antenna A1 and the second patch antenna A2 are excited, the broadband linear polarization antenna structure 800 may generate multimode resonance to synthesize a broadband response. In addition, in other embodiments, the designer may stack other patch antennas on the second patch antenna A2 to achieve a wider frequency response, but not limited thereto.
Please refer to
In the embodiment, except for the different shapes of the patch antennas, the structure/operation manners of the broadband linear polarization antenna structures 901 and 902 are similar to that of the broadband linear polarization antenna structure 800, so for details of the broadband linear polarization antenna structures 901 and 902, please refer to the related description of
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In an embodiment, the feeding portion F may receive a feeding signal. The feeding signal is, for example, a single polarization feeding signal. In different embodiments, the feeding portion F may include a microstrip line or a coaxial feeding line. In some embodiments, the feeding portion F may be vertically, horizontally, or obliquely coupled to the first patch antenna A1, but not limited thereto.
In
In an embodiment, the first patch antenna A1, the second patch antenna A2, and the third patch antenna A3 may be parallel to each other, and the reference conductive layer 1002 may be parallel to the first patch antenna A1. In other words, the first patch antenna A1, the second patch antenna A2, the third patch antenna A3, and the reference conductive layer 1002 may be parallel to each other, but not limited thereto. In addition, the first patch antenna A1 may be disposed between the reference conductive layer 1002 and the second patch antenna A2, and the second patch antenna A2 may be disposed between the first patch antenna A1 and the third patch antenna A3.
In addition, the first short pins S11 and S12, the second short pins S21 and S22, and the third short pins S31 and S32 may be perpendicular to the first patch antenna A1. In other words, the first short pins S11 and S12, the second short pins S21 and S22, and the third short pins S31 and S32 may be understood to be also perpendicular to the second patch antenna A2, the third patch antenna A3, and the reference conductive layer 1002, but not limited thereto.
In addition, although only two first short pins S11 and S12 are shown in
In different embodiments, the first short pins S11 and S12 may be connected to any position of the first patch antenna A1. In a preferred embodiment, the first short pins S11 and S12 may be connected to a virtual ground of the first patch antenna A1. Similarly, the second short pins S21 and S22 may be connected to any position of the second patch antenna A2. In a preferred embodiment, the second short pins S21 and S22 may be connected to a virtual ground of the second patch antenna A2. In addition, the third short pins S31 and S32 may be connected to any position of the third patch antenna A3. In a preferred embodiment, the third short pins S31 and S32 may be connected to a virtual ground of the third patch antenna A3.
In other embodiments, the number of the first short pins S11 and S12 connected between the reference conductive layer 1002 and the first patch antenna A1 may be the same as or different from the number of the second short pins S21 and S22 connected between the first patch antenna A1 and the second patch antenna A2. In addition, the number of the third short pins S31 and S32 connected between the second patch antenna A2 and the third patch antenna A3 may be the same as or different from the number of the second short pins S21 and S22 connected between the first patch antenna A1 and the second patch antenna A2.
In addition, each of the first patch antenna A1, the second patch antenna A2, and the third patch antenna A3 has a complete patch metal surface, and the shape of each of the first patch antenna A1, the second patch antenna A2, and the third patch antenna A3 may be implemented as a circular structure or a polygonal structure according to the requirements of the designer. In addition, the size of each of the first patch antenna A1, the second patch antenna A2, and the third patch antenna A3 may also be adjusted according to the respective required resonance frequencies. That is, the size of the first patch antenna A1 may correspond to a first resonance frequency of the first patch antenna A1, the size of the second patch antenna A2 may correspond to a second resonance frequency of the second patch antenna A2, and the size of the third patch antenna A3 may correspond to a third resonance frequency of the third patch antenna A3, but not limited thereto.
In some embodiments, when the first patch antenna A1, the second patch antenna A2, and the third patch antenna A3 are excited, the broadband linear polarization antenna structure 1000 may generate multimode resonance to synthesize a broadband response. In addition, in other embodiments, the designer may stack other patch antennas on the third patch antenna A3 to achieve a wider frequency response, but not limited thereto.
In summary, through disposing one or more short pins between different patch antennas, the impedance of the broadband linear polarization antenna structure of the disclosure may be effectively adjusted, thereby implementing the broadband operation of the broadband linear polarization antenna structure. In addition, since each patch antenna of the broadband linear polarization antenna structure of the disclosure has a complete patch metal surface, the broadband linear polarization radiation characteristic can be maintained, which is fairly practical for the dual polarization array transceiver system today.
Although the disclosure has been disclosed in the above embodiments, the embodiments are not intended to limit the disclosure. Persons skilled in the art may make some changes and modifications without departing from the spirit and scope of the disclosure. The protection scope of the disclosure shall be defined by the appended claims.
Number | Date | Country | Kind |
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110111571 | Mar 2021 | TW | national |
This application claims the priority benefit of U.S. Provisional Application No. 63/115,570, filed on Nov. 18, 2020, and Taiwan Application No. 110111571, filed on Mar. 30, 2021. The entirety of each of the above-mentioned patent applications is hereby incorporated by reference herein and made a part of this specification.
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