The present invention relates to the technical field of electromagnetic field and microwave, and more particularly, to a cavity-based dual-band filtering balun.
In a modern wireless communication network, a balun serves as a key device in a radio-frequency power amplifier, and performances thereof affect the normal operation of the whole system function. A high-performance balun requires not only good filtering performance, low loss and miniaturization, but also requires a dual-band or even multiband filtering balun with the development of a dual-band and multiband communication system.
In recent years, significant progresses have been made in researches on the filtering balun, and the filtering balun has been realized in processing technologies such as printed circuit board, low-temperature co-fired ceramic technology, substrate integrated waveguide technology, dielectric resonator technology, etc. However, the researched filtering baluns have some performance defects such as low quality factors and large insertion losses. In addition, there are a few research results on the dual-band baluns, and currently, the dual-band function can be realized on the printed circuit board and the substrate integrated waveguide technology.
To sum up, the existing technology of the above-mentioned dual-band filtering balun is limited by various aspects in practice.
Aiming at the defects in the prior arts, the present invention provides a cavity-based dual-band filtering balun. A cavity resonator technology is used in the dual-band filtering balun of the present invention, which increases quality factors and reduces insertion loss, and meanwhile, two resonant modes in a cavity resonator are used to realize the requirement of dual-band filtering balun.
In order to solve the above technical problem, the present invention adopts at least one of the following technical solutions.
A cavity-based dual-band filtering balun comprises a cavity resonator, the cavity resonator is divided into a first cavity resonator and a second cavity resonator by an intermediate metal plate, edges of the intermediate metal plate are connected to inner walls of the cavity resonator, an outer side wall of the first cavity resonator that faces the intermediate metal plate is provided with an input PCB board, and a metal ground layer of the input PCB board is contacted with the first cavity resonator. The metal ground layer of the input PCB board is provided with an input trough line, the other side, namely a top layer, of the input PCB board is provided with an input microstrip line, and one side of the first cavity resonator contacted with the input PCB board is provided with an input slot completely corresponding to a position of the input trough line and communicated with the input trough line. Two opposite outside surfaces of the second cavity resonator that are adjacent to the intermediate metal plate are each provided with an output PCB board, and the metal ground layers of the two output PCB boards are close to the outside surfaces of the second cavity resonator. The metal ground layers of two output PCB boards (11) are respectively provided with an output trough line, the other sides, namely top layers, of the two output PCB boards are each provided with an output microstrip line, and two sides of the second cavity resonator that are close to the output PCB boards are respectively provided with an output slot completely corresponding to a position of the output trough line and communicated with the output trough line.
The input microstrip line and the input trough line are used for signal input, and the input PCB board, the input trough line and the input microstrip line form an input feed network. The input slot is used to transmit a signal into the cavity resonator from the input microstrip line to generate resonance. The output PCB board, the output trough line and the output microstrip line form an output feed network. Two output slots are used to transmit signals to an output PCB feed network from the cavity resonator.
Further, the intermediate metal plate includes a metal partition plate and a rectangular slit opened in the metal partition plate, the rectangular slit is parallel to the input trough line and the input slot, and in this way, all input signals can be coupled to the second cavity resonator from the first cavity resonator. Two output trough lines are provided, which are respectively a first output trough line and a second output trough line. Two output slots are provided, which are respectively a first output slot and a second output slot. The first output trough line is parallel to the first output slot, the second output trough line is parallel to the second output slot, and the first output trough line and the first output slot are parallel to the second output trough line and second output slot. Two output microstrip lines are provided, which are respectively a first output microstrip line and a second output microstrip line, and the first output microstrip line is central symmetry with the second output microstrip line. Two output PCB boards are provided, which are respectively a first output PCB board and a second output PCB board, and form an output feed network.
Further, the input dielectric substrate of the input PCB board has a dielectric constant of 2.55.
Further, the first output PCB board includes a first output dielectric substrate, a first output metal ground layer and the first output microstrip line, and the output trough line is arranged on the first output metal ground layer. The second output PCB board includes a second output dielectric substrate, a second output metal ground layer and the second output microstrip line, and the output trough line is arranged on the second output metal ground layer.
Further, both of the first output dielectric substrate and the second output dielectric substrate have a dielectric constant of 2.55.
Further, the input trough line is inclined at an included angle θ1 to a horizontal direction, and a center of the trough line is located at a center of the input PCB board, such that multiple modes can be fed by controlling the inclination angle of the input trough line to meet the requirement of dual-band signals for the dual-band filtering balun. The first output trough line and the second output trough line are both inclined at an included angle θ2 to the horizontal direction, and the first output trough line deviates upwardly from a center position of the first output PCB board, the second output trough line deviates downwardly from a center position of the second output PCB board, and the first output trough line and the second output trough line deviate by a same distance, such that the output trough lines can receive signals of multiple modes with equal amplitudes.
Further, the input microstrip line is located at a middle position of the input PCB board, one end of the input microstrip line is flush with a bottom end edge of the input PCB board, and the other end of the input microstrip line extends upwardly along a vertical direction to be staggered with the input trough line and passes over the input trough line. One end of the first output microstrip line is flush with a bottom end edge of the first output PCB board, and the other end of the first output microstrip line extends upwardly along the vertical direction to be staggered with the first output trough line and passes over the first output trough line. One end of the second output microstrip line is flush with a top end edge of the second output PCB board, the other end of the second output microstrip line extends downwardly along the vertical direction to be staggered with the second output trough line and passes over the second output trough line, and the first output microstrip line is in central symmetry with the second output microstrip line. The output microstrip line can receive currents with reverse phase and equal amplitude, i.e., the output PCB board can output signals with reverse phase and equal amplitude.
Further, the rectangular slit of the intermediate metal plate is inclined at an included angle θ1 to a horizontal direction, and the input trough line is parallel to the rectangular slit.
Further, a characteristic impedance of the input microstrip line and a characteristic impedance of the output microstrip lines are both 50Ω.
Further, the first cavity resonator, the second cavity resonator and the intermediate metal plate are made of silver-plated aluminums.
Further, the input slot with the same shape and size as the input trough line is arranged at a corresponding position on one side of the first cavity resonator close to the input PCB board, and the input slot is used to transmit a signal into the cavity resonator from the input microstrip line to generate resonance.
Compared with the prior art, the present invention has the following advantages and beneficial effects.
According to the present invention, characteristics of resonant modes of the cavity resonator are used, and the signals with reverse phase and equal amplitude can be effectively excited and extracted by two output trough lines.
According to the present invention, a microstrip feed mode is used, various modes can be excited by controlling the inclination angle of the input trough line, the requirement of dual-band is realized by cavity-based structure, and the circuit size is reduced.
The filtering balun of the present invention not only can ensure a filtering characteristic but also has a balun capability of converting an imbalance signal into a balance signal, and the filtering balun also meets the characteristic of two passbands, and lower insertion loss, better passband selectivity, as well as accurate output signal with amplitude balance and phase difference.
The accompanying drawings are for illustrative purpose only and cannot be construed as limiting the patent. To better describe the embodiment, some parts can be omitted, enlarged or shrunk in the accompanying drawings, which does not represent the size of the actual product. It is understandable for those skilled in the art that some well-known structures in the accompanying drawings and the descriptions thereof may be omitted. The positional relationship illustrated in the accompanying drawings is for illustrative purpose only and cannot be construed as limiting the present invention.
A cavity-based dual-band filtering balun is shown in
In the embodiment, one input trough line 5 is provided, one input slot 6 is provided, the intermediate metal plate 7 includes a rectangular slit 72 and a metal partition plate 71, and the rectangular slit 72 is parallel to the input trough line 5, such that all input signals can be coupled to the second cavity resonator 2 from the first cavity resonator 1. Two output trough lines are provided, and the first output trough line is parallel to the second output trough line, such that the output trough line can receive signals with equal amplitude. One input microstrip line is provided, two input microstrip lines are provided, and the first output microstrip line is in central symmetry with the second output microstrip line, such that the output microstrip line can receive currents with reverse phase and equal amplitude, that is, the output PCB board can output signals with reverse phase and equal amplitude. One input PCB board is provided, and two output PCB boards are provided, which are respectively a first output PCB 111 and a second output PCB 112, and form an output feed network.
In the embodiment, the input PCB board 3 includes an input dielectric substrate and an input port metal ground arranged on a side surface of one side of the input dielectric substrate close to the first cavity resonator 1, the input trough line 5 is arranged on the input metal ground, and the input microstrip line 4 is arranged on a side surface of one side of the input dielectric substrate far away from the first cavity resonator 1. The first output PCB board 111 includes a first output dielectric substrate and a first output metal ground arranged on a side surface of one side of the first output dielectric substrate close to the second cavity resonator 2, the output trough line 101 is arranged on the first output metal ground, and the first output microstrip line 91 is arranged on a side surface of one side of the first output dielectric substrate far away from the second cavity resonator 2. The second output PCB board 112 includes a second output dielectric substrate and a second output metal ground arranged on a side surface of one side of the second output dielectric substrate close to the second cavity resonator 2, the output trough line 102 is arranged on the second output metal ground, and the second output microstrip line 92 is arranged on a side surface of one side of the second output dielectric substrate far away from the second cavity resonator. The input dielectric substrate and the output dielectric substrate both have a dielectric constant of 2.55.
As shown in
As shown in
In the embodiment, a characteristic impedance of the input microstrip line 4 and a characteristic impedance of the output microstrip lines are both 50Ω.
In the embodiment, the first cavity resonator 1, the second cavity resonator 2 and the intermediate metal plate 7 are made of silver-plated aluminum.
As shown in
Obviously, the above embodiment of the present invention is only example for clearly describing the present invention, and doesn't limit the implementation of the present invention. For those having ordinary skills in the art, other different forms of changes or variations can also be made on the basis of the description above. All implementations need not and cannot be exhaustive here. All modifications, equivalents, and improvements made within the spirit and principle of the present invention shall be included within the scope of protection of the claims of the present invention.
Number | Date | Country | Kind |
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201810676821.5 | Jun 2018 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2018/112822 | 10/30/2018 | WO | 00 |