1. Field of the Invention
The present invention relates to a radio-frequency transceiver system, and more particularly, to a dual-polarized radio-frequency transceiver system with simple structure and compact size having higher gain and high bandwidth and supporting multiple frequency bands.
2. Description of the Prior Art
Electronic products with wireless communication functionalities utilize antennas to emit and receive radio waves, to transmit or exchange radio signals, so as to access a wireless communication network. With the advance of wireless communication technology, demand for transmission capacity and wireless network ability has grown dramatically in recent years. A long term evolution (LTE) wireless communication system support multi-input multi-output (MIMO) communication technology, which can vastly increase system throughput and transmission distance without increasing system bandwidth or total transmission power expenditure, thereby effectively enhancing spectral efficiency and transmission rate for the wireless communication system, as well as improving communication quality.
The long term evolution (LTE) wireless communication system includes 44 bands which cover from 698 MHz to 3800 MHz. Because of the different bands being separated and disordered, a mobile system operator may use multiple bands simultaneously in the same country or area. In such a condition, if multiple antennas are configured corresponding to different frequency bands, it is harmful to minimization of electronic products, and needs to utilize a multiplexer or a diplexer, thereby increasing additional power loss. Therefore, how to design antenna with simple structure and complying with transmission requirements while considering size and performance has been an issue in the industry.
It is therefore an objective of the present invention to provide a radio-frequency transceiver system with simple structure and compact size having higher gain and supporting multiple frequency bands.
An aspect of the present invention is to provide a radio-frequency transceiver system, including a first plane, a second plane perpendicular to the first plane, a third plane perpendicular to the first plane and the second plane, a first antenna element, and a plurality of second antenna elements. The first antenna element includes a first radiation plate disposed on the first plane, a second radiation plate disposed on the first plane, a third radiation plate disposed on the second plane, and a fourth radiation plate disposed on the second plane. The second antenna elements form an antenna array structure, in which the antenna array structure is symmetric with respect to the first plane and the second plane, and each of the second antenna elements is dual-polarized dipole antenna.
These and other objectives of the present invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment that is illustrated in the various figures and drawings.
Please refer to
Moreover, the radiation plates RP1-RP4 include the first radiation arms AR1_rp1-AR1_rp4, the second radiation arms AR2_rp1-AR2_rp4 and strip connection parts C_rp1-C_rp4, respectively, to form two arm bowtie dipole antenna structures of 8-9% bandwidth, respectively. The first radiation arms AR1_rp1, AR1_rp2 and the second radiation arms AR2_rp1, AR2_rp2 are symmetric with respect to the plane PL2, and the first radiation arms AR1_rp3, AR1_rp4 and the second radiation arms AR2_rp3, AR2_rp4 are symmetric with respect to the plane PL1, i.e. the first antenna element ANT1 is disposed in the center of the reflective unit RFU. Because of a length difference between the first radiation arms AR1_rp1-AR1_rp4 and the second radiation arms AR2_rp1-AR2_rp4, the longer first radiation arms AR1_rp1-AR1_rp4 can receive and transmit radio signals with lower frequency, and the shorter second radiation arms AR2_rp1-AR2_rp4 can receive and transmit radio signals with higher frequency. The second radiation arms AR2_rp1-AR2_rp4 are disposed between the first radiation arms AR1_rp1-AR1_rp4 and the central reflective element F_C, respectively, and thus having a shorter distance from the central reflective element F_C. The connection parts C_rp1-C_rp4 are connected between the first radiation arms AR1_rp1-AR1_rp4 and the second radiation arms AR2_rp1-AR2_rp4 and includes the feed-in points F_rp1-F_rp4. As a result, power can be fed in from the feed-in points F_rp1-F_rp4 of the connection parts C_rp1-C_rp4, and then transferred to the second radiation arms AR2_rp1-AR2_rp4 and the first radiation arms AR1_rp1-AR1_rp4 sequentially. In consideration of welding feed-in wires during the assembly process, the feed-in points F_rp1 and F_rp2 are disposed on a same side of the plane PL2, and the feed-in points F_rp3 and F_rp4 are disposed on a same side of the plane PL1. Besides, in order to prevent connection wires of the feed-in points F_rp2 and F_rp4 crossing the center from being cut off during printed circuit board (PCB) processes, the connection wires crossing the center and the feed-in points F_rp1-F_rp4 can have different heights with respect to the central reflective element F_C, shapes of the connection parts C_rp1-C_rp4 can be slightly different, and slots SL12, SL34 can be formed on the substrate SE12, SE34, which are not limited to these.
In short, the requirements of frequency bands of Band 5, Band 12 and Band 29 of the long term evolution wireless communication system can be satisfied by a dual-polarized dipole antenna that includes the radiation plates RP1-RP4 of the first antenna element ANT1 disposed on the planes PL1 and PL2.
Simulation and measurement may be employed to determine whether resonant characteristics of the radio-frequency transceiver system 10 meet the system requirements. Please refer to
Please refer to
In short, the requirements of frequency bands of Band 2, Band 4 and Band 30 of the long term evolution wireless communication system can be satisfied by a dual-polarized dipole antenna that includes the radiators RT1_a-RT4_d of the second antenna elements ANT2_a-ANT2_d disposed on the planes PL3 and PL5.
Simulation and measurement may be employed to determine whether resonant characteristics and radiation pattern of the radio-frequency transceiver system 20 meets system requirements. Please refer to
Please refer to
Besides, the transmitting module TRM includes four-in-one-out power dividers PD1, PD2 and diplexers DPX1, DPX2. The diplexers DPX1, DPX2 includes low pass filters LF1, LF2, high pass filters HF1, HF2 and power combiners PWC1, PWC2, respectively, and integrate radio signals received and transmitted by the first antenna element ANT1 in low frequency bands of Band 5, Band 12 and Band 29 and radio signals received and transmitted by the second antenna elements ANT2_a-ANT2_d in high frequency band of Band 2, Band 4 and Band 30. Corresponding to vertical polarization, an input terminal I1 of the diplexer DPX1 is coupled to the feed-in points F_rp1, F_rp2 of the first antenna element ANT1, and an input terminal I2 of the diplexer DPX1 is connected to an output terminal O2 of the four-in-one-out power divider PD1 first and then coupled to the feed-in points F1_a-F1_d, F2_a-F2_d of the second antenna elements ANT2_a-ANT2_d via input terminals I3-I6 of the four-in-one-out power divider PD1, respectively. When radio signals are transmitted from the input terminal I1 to the low pass filter LF1, only radio signals in the low frequency band can be passed, and radio signals in the high frequency band are reflected because return loss of the low pass filter LF1 is above 30 dB; Similarly, when radio signals are transmitted from the input terminal I2 to the high pass filter HF1, only radio signals in the high frequency band can be passed, and radio signals in the low frequency band are reflected because return loss of the high pass filter HF1 is above 30 dB. As a result, the low pass filter LF1 and the high pass filter HF1 transmit radio signals in low frequency band and high frequency band to the output terminal O1 via the power combiner PWC1, respectively. On the other hand, when radio signals are transmitted from the output terminal O1 to the diplexer DPX1, since return loss of the low pass filter LF1 corresponding to the high frequency band and return loss of the high pass filter HF1 corresponding to the low frequency band are at least 30 dB, radio signals of the low frequency band are transferred to the input terminal I1 and radiates outward via the first antenna element ANT1, and radio signal of the high frequency band are transferred to the input terminal I2 and radiate outward via the second antenna elements ANT2_a-ANT2_d. Similarly, corresponding to horizontal polarization, an input terminal I7 of the diplexer DPX2 is coupled to the feed-in point F_rp3, F_rp4 of the first antenna element ANT1, and an input terminal I8 of the diplexer DPX2 is connected to and output terminal O4 of the four-in-one-out power divider PD2 first and then coupled to the feed-in points F3_a-F3_d, F4_a-F4_d of the second antenna elements ANT2_a-ANT2_d via input terminals I9-I12 of the four-in-one-out power divider PD2, respectively. Besides, the low pass filter LF2 and the high pass filter HF2 transmit radio signals in the low frequency band and the high frequency band to an output terminal O3 via the power combiner PWC2, respectively; otherwise, radio signals of the low frequency band are transferred to the input terminal I7 and radiate ANT1 outward via the first antenna element, and radio signals of the high frequency band are transferred to the input terminal I8 and radiate outward via the second antenna elements ANT2_a-ANT2_d.
In short, other than the diplexers DPX1, DPX2, no additional diplexers or multiplexers are needed, thereby avoiding energy loss. Besides, the first antenna element ANT1 and the second antenna elements ANT2_a-ANT2_d of the radio-frequency transceiver system 30 provide two independent antenna transmission and reception channels to receive and transmit radio signals of multiple frequency bands. Furthermore, since the planes of which the first antenna element ANT1 and the second antenna elements ANT2_a-ANT2_d are disposed on are perpendicular to each other, the first antenna element ANT1 extends along the vertical direction (i.e. z-direction), and the second antenna elements ANT2_a-ANT2_d extend along the horizontal direction (i.e. on x-y plane), thereby preventing the first antenna element ANT1 and the second antenna elements ANT2_a-ANT2_d from interfering with each other in the space. Therefore, the space can be fully utilized to minimize the size.
Simulation and measurement may be employed to determine whether resonant characteristics of the radio-frequency transceiver system 30 meet the system requirements. For Band 5, Band 12 and Band 29 of the low frequency band, please refer to
According to
For Band 2, Band 4 and Band 30 of the high frequency band, please refer to
According to
As can be seen from the above, interference between the first antenna element ANT1 and the antenna array of the second antenna elements ANT2_a-ANT2_d can be ignored. Besides, in the low frequency band of Band 5, Band 12 and Band 29, whole radiation pattern of the radio-frequency transceiver system 30 is mainly contributed by the first antenna element ANT1; on the other hand, in the high frequency band of Band 2, Band 4 and Band 30, whole radiation pattern of the radio-frequency transceiver system 30 is mainly contributed by the antenna array of the second antenna elements ANT2_a-ANT2_d.
Noticeably, the radio-frequency transceiver systems 10-30 are embodiments of the present invention, those skilled in the art can make alterations and modifications accordingly. For example, radiation plates (e.g. the radiation plates RP1, RP2) of the first antenna element ANT1 can include antenna structure other than the two arm bowtie dipole antenna, radiators (e.g. the radiators RT1_a, RT2_a) of the second antenna elements (e.g. the second antenna element ANT2_a) can include antenna structure other than the diamond dipole antenna (array). Besides, in order to increase frequency bands supported by the first antenna element ANT1, the radiation plate (e.g. the radiation plate RP1) of the first antenna element ANT1 can further include a third radiation arm. In comparison with the second radiation arm (e.g. the second radiation arm AR2_rp1), if the third radiation arm is utilized for receiving and transmitting radio signals of higher frequency, a length of the third radiation arm is less than a length of the second radiation arm, and the third radiation arm is disposed between the second radiation arm and the central reflective element F_C. According to requirements for gain, the radio-frequency transceiver systems 20, 30 include the four second antenna elements ANT2_a-ANT2_d, but are not limited to this. That is, the radio-frequency transceiver system can include more than four second antenna elements, to form antenna array structure. According to operating frequency band and bandwidth of the radio-frequency transceiver system, the reflective plate (e.g. the reflective plates RFP_a-RFP_d) of the second antenna elements (e.g. the second antenna elements ANT2_a) can also be removed from the antenna element.
Furthermore, in the radio-frequency transceiver system 30, the first two arm bowtie dipole antenna of the first antenna element ANT1 of and the first diamond dipole antenna (array) of the second antenna elements ANT2_a-ANT2_d are both vertically polarized, the second two arm bowtie dipole antenna of the first antenna element ANT1 and the second diamond dipole antenna (array) of the second antenna elements ANT2_a-ANT2_d are both horizontally polarized, but are not limited to this. The radio-frequency transceiver system can also receive and transmit radio signals via a 45-degree slant polarized antenna and a 135-degree slant polarized antenna. For example, please refer to
Simulation and measurement may be employed to determine whether resonant characteristics and radiation pattern of the radio-frequency transceiver system 40 meets system requirements. Please refer to
In prior arts, multiple antennas are implemented in order to correspond to different frequency bands, one of the major drawbacks is that electronic products of which the antennas are implemented in are not easily minimized. Additionally, multiplexers or diplexers are used, thereby increasing additional power loss.
In comparison, the radio-frequency transceiver system of the present invention provides two independent antennas via the first antenna element and the second antenna elements, to receive and transmit radio signals of multiple frequency bands. Planes which the first antenna element and the second antenna elements are respectively disposed are perpendicular to each other, such that space can be fully utilized to minimize the size. Besides, interference between the first antenna element and the second antenna elements between can be ignored. Therefore, for the low frequency band or the high frequency band, the whole radiation pattern of the radio-frequency transceiver system is mainly contributed by the first antenna element or the second antenna elements, respectively. Besides, the radio-frequency transceiver system of the present invention can further reduce the number of diplexer or multiplexer in use, thereby avoid additional energy loss.
Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.
Number | Date | Country | Kind |
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104133795 | Oct 2015 | TW | national |