FILTER
20210344093 ยท 2021-11-04
Inventors
Cpc classification
H01P1/208
ELECTRICITY
H01P1/205
ELECTRICITY
International classification
Abstract
A filter includes a filter frame and at least two resonators. A receiving space is formed in the filter frame. The at least two resonators are disposed in the receiving space and distributed along a signal transmission path. Adjacent resonators on the signal transmission path are coupled. Each resonator includes a body part and a bending part. One end of the body part is grounded. The bending part includes a head bending part and an end bending part, the head bending part being connected to the end bending part to form a resonator structure circulating in a counterclockwise or clockwise direction.
Claims
1. A filter, comprising: a filter frame in which a receiving space is formed; at least two resonators disposed in the receiving space and distributed along a signal transmission path, adjacent resonators on the signal transmission path being coupled, and each resonator including a body part and a bending part, wherein: one end of the body part is grounded, the bending part includes a head bending part and an end bending part, the head bending part being connected to the end bending part to form a resonator structure circulating in a counterclockwise or clockwise direction.
2. The filter according to claim 1, wherein the bending part further includes at least one middle bending part, and the at least one middle bending part connects the head bending part and the end bending part to form the resonator structure circulating in a counterclockwise or clockwise direction.
3. The filter according to claim 1, wherein the head bending part is formed by bending the other end of the body part in one direction or two directions.
4. The filter according to claim 1, further comprising: at least one partition wall disposed in the filter, a coupling gap being formed between the partition wall and an inner wall of the filter frame
5. The filter according to claim 4, wherein the signal transmission path in the filter has a U-shape or an S-shape according to the partition wall.
6. The filter according to claim 7, wherein the partition wall is integrally formed with a middle section of the filter frame, and the signal transmission path in the filter has the U-shape according to the partition wall.
7. The fitter according to claim 4, wherein a plurality of partition walls spaced with each other are disposed within the filter, and two adjacent partition walls respectively form a coupling gap with a corresponding inner wall of two opposite inner walls of the filter frame, the signal transmission path in the filter has an S-shape according to the partition wall.
8. The filter according to claim 4, wherein the partition wall divides the receiving space into a plurality of receiving chambers, the partition wall is provided with a coupling opening, and two adjacent resonators in different receiving chambers are coupled through the coupling opening to form a cross-coupling.
9. The filter according to claim 8, wherein the body parts of two adjacent resonators in different receiving chambers are directly connected through the coupling opening to form inductive cross-coupling.
10. The filter according to claim 8, wherein the bending parts of two adjacent resonators in different receiving chambers are spaced apart a distance through the coupling opening to form capacitive cross-coupling.
11. The filter according to claim 1, wherein the filter further comprises an upper cover plate arranged at an upper end of the filter frame and a lower cover plate arranged at a lower end of the filter frame, the upper cover and the lower cover encapsulate the receiving space, and a thickness of the bending part of the resonator is greater than a thickness of the body part in a direction perpendicular to the upper and lower cover plates.
12. The filter according to claim 4, wherein: the partition wall is integrally formed with the inner wall of the filter frame.
13. The filter according to claim 12, wherein: the body part of the resonator is integrally formed with the partition wall and grounded.
14. The filter according to claim 12, wherein: the body part of the resonator is integrally formed with the inner wall of the filter frame and grounded.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
REFERENCE NUMERALS
[0038] 1 filter frame, 11 receiving space, 111 receiving chamber, 2/21-26 resonator, 211 body part, 212 head bending part, 213 end bending part, 214 middle bending part, 3 upper cover, 4 adjustable structure, 5 partition wall, 51 coupling opening, 6 coupling gap, 7 signal input port, 8 signal output port.
DETAILED DESCRIPTION
[0039] The technical solutions of the embodiments of the present disclosure will be clearly and completely described below in conjunction with the accompanying drawings of the present disclosure.
[0040] In the filter disclosed in the present disclosure, an integrally formed resonator with multiple bending structures is arranged in the filter frame, so that the size of the filter is smaller, and the coupling mode between the resonators and the signal are also realized. The diversification of the design of transmission paths and signal port positions improves the flexibility of filter design; and the cross-coupling between non-adjacent resonators is realized through the opening on the partition wall, which simplifies the structure and processing procedures of the filter.
[0041] With reference to
[0042] A plurality of resonators 2 are arranged in the receiving space 11 and may be integrally formed with the filter frame 1. The resonator 2 can form a variety of signal transmission paths in the receiving space 11, such as in-line shaped, U-shaped or S-shaped. For example, when an in-line shaped signal transmission path is formed, a plurality of resonators 2 are distributed in the same row in the receiving space 11, and are distributed from one side wall of the filter frame 1 to the opposite side wall of the filter frame 1, forming a signal transmission path (that is, in-line shape), and the plane where the resonator 2 is located is parallel or approximately parallel to the upper and lower surfaces of the filter frame 1, that is, it is arranged laterally in the filter frame 1.
[0043] As an alternative, at least one partition wall 5 integrally formed with the filter frame 1 may be provided in the filter frame 1. As shown in
[0044] The partition wall 5 is arranged between two adjacent receiving chambers 111 to isolate the resonators 2 of different receiving chambers 111. The partition wall 5 is integrally formed with the filter frame 1. In this embodiment 1, the partition wall 5 is located in the intermediate of the filter frame 1, and divides the receiving space 11 into two receiving chambers 111, and each receiving chamber 111 is provided with multiple receiving chambers 111. Each receiving chamber 111 is provided with multiple resonators 2 (as shown in
[0045] As shown in
[0046] The bending part is connected to the other end of the body part 211 and formed by bending. The bending shape of the bending part can be freely changed and designed according to actual needs. There is no restriction here, which means that the shape of the resonator 2 can be bent to form various designs as required. Specifically, as shown in
[0047] As shown in
[0048] The electromagnetic hybrid coupling between two adjacent resonators 2 on the signal transmission path. The specific main coupling method is determined by the shape and arrangement of the resonators 2. The coupling degree between the resonators 2 can be adjusted by coupling area and spacing between the resonators 2. It should be noted that the coupling of a general TEM mode filter is the coexistence of electrical coupling (namely capacitive coupling) and magnetic coupling (namely inductive coupling). Among the two couplings, the larger coupling is called dominant coupling, and the dominant coupling mode in the filter of the present disclosure can be freely selected by the shape of the resonator 2. Like the integrated 6-order filter in the embodiment 1, the signal transmission path formed is a U-shaped path formed by the resonators 21 to 26.
[0049] In some embodiments, at least one group of two adjacent resonators in the plurality of groups of two adjacent resonators in different receiving chambers is coupled to each other to realize cross-coupling. As shown in
[0050] Further, as shown in
[0051] As shown in
[0052] The two coupling gaps 6 of two adjacent partition walls 5 are located on different sides, so that the signal transmission path in the filter 2 is transmitted in an S-shape according to the partition wall 5. According to the S-shaped signal transmission path, the positions of the signal input and output ports 7 and 8 can be controlled. The signal input and output ports 7 and 8 are respectively at the two ends of the signal transmission path, and the direction of the signal transmission path determines the positions of the signal input and output ports 7, 8. In some embodiments, the signal transmission path of the resonator in Embodiment 2 can also be U-shaped. As shown in
[0053] That is to say, the shape and grounding position of the resonator 2 of the present disclosure can adopt any suitable arrangement and the dominant coupling mode between the resonators 2 can be determined by the coupling position of the coupled resonators 2, so it can also adopt any suitable arrangement. In addition, the installation position of the partition wall 5 can adopt any suitable arrangement. The signal transmission path is determined by the installation position of the partition wall 5, so it can also adopt any suitable arrangement. Further, the signal input and output ports 7 and 8 are determined by the signal transmission path, so they can also adopt any suitable arrangement. Further, the cross-coupling between the resonators 2 is determined according to the performance requirements of the filter, so it can also adopt any suitable arrangement. In the present disclosure, the shape of the resonator 2, the coupling mode between the resonators 2, the signal transmission path, the signal input and output ports 7, 8, and the filter cross-coupling mode can be adjusted according to practical application scenarios, and are not limited to the three implementations described above.
[0054] It can be seen from
[0055] Further, two or more components of the disclosed filter can be integrally formed. In some embodiments, the body part(s) of one or more resonators 2 can be integrally formed with the filter frame 1, and one or more partition walls 5 can be separately formed and installed to the filter frame 1. In some other embodiments, the body part(s) of one or more resonators 2 can be integrally formed with one or more partition walls 5, and then be installed to a separately formed filter frame 1. In some other embodiments, the body part(s) of one or more resonators 2, one or more partition walls 5 and the filter frame 1 can be integrally formed.
[0056] The technical content and technical features of the present disclosure have been disclosed above, but those skilled in the art may still make various substitutions and modifications based on the teachings and disclosures of the present disclosure without departing from the spirit of the present disclosure. Therefore, the scope of protection of the present disclosure should not be limited to the disclosure in the embodiments, but should include various substitutions and modifications that do not deviate from the present disclosure, and are covered by the claims of this patent application.