Cavity filter
11196136 · 2021-12-07
Assignee
Inventors
Cpc classification
H01P1/205
ELECTRICITY
International classification
H01P11/00
ELECTRICITY
Abstract
A cavity filter includes a cavity, a cover plate, a tuning component, and a resonant column. The cover plate is connected to the cavity, and the cover plate is configured to cover the cavity to form a resonant cavity. A through hole is provided on the cover plate, and the tuning component passes through the through hole and is fastened on the cover plate. The tuning part includes a high-conductivity part and a non-conductivity part, the high-conductivity part is located in the cavity, and the resonant column is in the cavity.
Claims
1. A cavity filtering apparatus, comprising a cavity, a cover plate, a tuning component, and a resonant column, wherein the cover plate is connected to the cavity, the cover plate is configured to cover the cavity to form a resonant cavity, a through hole is provided on the cover plate, the tuning component passes through the through hole and is fastened on the cover plate, the tuning component comprises a high-conductivity part and a non-conductivity part, the high-conductivity part is located in the cavity, and the resonant column is in the cavity, and wherein the high-conductivity part of the tuning component is located under the cover plate only.
2. The cavity filtering apparatus according to claim 1, wherein the high-conductivity part is made of a metal material.
3. The cavity filtering apparatus according to claim 1, wherein the high-conductivity part is formed by electroplating an outer surface of a non-metal material.
4. The cavity filtering apparatus according to claim 1, wherein the high-conductivity part and the non-conductivity part are fastened through screw thread engagement.
5. The cavity filtering apparatus according to claim 1, wherein the high-conductivity part and the non-conductivity part are fastened through injection molding.
6. The cavity filtering apparatus according to claim 1, wherein the high-conductivity part is of an axisymmetric structure.
7. The cavity filtering apparatus according to claim 1, wherein the resonant column is mounted on the cover plate, and the resonant column comprises: one end of the resonant column is fastened on the cover plate located on a side of the cavity, and the other end of the resonant column is suspended in the cavity.
8. The cavity filtering apparatus according to claim 7, wherein the resonant column is of a hollow structure, the tuning component is located in the resonant column, and the tuning component and the resonant column share a common central axis.
9. The cavity filtering apparatus according to claim 7, wherein the resonant column is a hollow cylinder.
10. The cavity filtering apparatus according to claim 7, wherein the resonant column is of a semi-enclosed structure.
11. The cavity filtering apparatus according to claim 1, wherein the resonant column is mounted on the cavity, and the resonant column comprises: one end of the resonant column is fastened at a bottom of the cavity opposite from the cover plate, and the other end of the resonant column is in the cavity.
12. The cavity filtering apparatus according to claim 11, wherein the resonant column is of a hollow structure, the tuning component is inserted in the resonant column, and the tuning component and the resonant column share a common central axis.
13. The cavity filtering apparatus according to claim 11, wherein the resonant column is a hollow cylinder.
14. The cavity filtering apparatus according to claim 11, wherein the resonant column is of a semi-enclosed structure.
15. A base station, comprising the cavity filtering apparatus according to claim 1.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
(8) To make objectives, technical solutions, and advantages of this disclosure clearer, the following further describes implementations disclosed in this application in detail with reference to the accompanying drawings.
(9) A person skilled in the art should understand that a cavity filter disclosed in this application is usually of a structure in which resonance is formed by using a cavity structure to achieve a filtering function. Usually, a cavity can be equivalent to a resonate level formed by an inductor in parallel to a capacitor. In a practical scenario, one or more resonant single cavities may usually be formed in the cavity through separating. Different functions of energy coupling are implemented between adjacent resonant single cavities by using different coupling structures. The cavity filter may be usually classified into a coaxial cavity filter, a waveguide cavity filter, a dielectric cavity filter, and the like.
(10) Referring to
(11) The filter of the existing structure generally has a poor tuning capability and poor linearity. In particular, as the tuning screw rod continuously extends into the resonant cavity, a linear slope of the cavity filter increases excessively fast, thereby affecting performance of the cavity filter.
(12) In view of this, embodiments of this application provide a cavity filtering apparatus having a novel structure. The cavity filtering apparatus may resolve a problem of deterioration of a Q value of a conventional cavity filter. The filtering apparatus provided in the embodiments of this application may be applied to a plurality of communications systems, for example, a 2G communications system such as a global system for mobile communications (GSM) or a general packet radio service (GPRS) system, a 3G communications system such as a code division multiple access (CDMA) system, a time division multiple access (TDMA) system, or a wideband code division multiple access (WCDMA) system, a long term evolution (LTE) system, a microwave backhaul system, and a 5G communications system.
(13) The filtering apparatus disclosed in the embodiments of this application is usually placed in a manner shown in
(14) In addition, “a plurality of” indicates two or more. The term “and/or” describes an association relationship for describing associated objects and represents that three relationships may exist. For example, A and/or B may represent the following three cases: Only A exists, both A and B exist, and only B exists. The character “/” generally indicates an “or” relationship between the associated objects.
(15) The apparatus disclosed in the embodiments of this application may be applied to a microwave outdoor unit link system. As shown in
(16) The filtering apparatus provided in the embodiments of this application may be applied to a plurality of communications devices that need to select a signal frequency. For example, the filtering apparatus may be used in a base station device.
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(19) Optionally, the non-conductivity part 4071 may be connected to a motor system, so that the high-conductivity part 4072 may move in the cavity, thereby adjusting resonance and implementing excellent frequency shift performance of a tunable filtering apparatus. The resonant column 405 is located on a side that is of resonant cavity and that is close to the cover plate 402. One end of the resonant column 405 is fastened on the cover plate, and the other end extends into the cavity.
(20) The resonant column 405 may be of a hollow structure, and a part of the tuning component 407 located in the resonant cavity is located in the resonant column 405. Optionally, a central axis of the tuning component 407 is consistent with a central axis of the resonant column 405. The resonant column 405 may be of an axisymmetric structure, and is typically, for example, a hollow cylinder, or may be of a semi-enclosed structure.
(21) As described above, the tuning component 407 includes at least two parts: the high-conductivity part 4072 and the non-conductivity part 4071. The high-conductivity part 4072 may be made of a metal material, or may be formed by electroplating an outer surface of a non-metal material. The high-conductivity part 4072 is located in the resonant cavity, or may be located in the resonant column 405. One end of the high-conductivity part 4072 extending downward into the cavity may be located in the resonant column 405, or may protrude from a lower outer edge of the resonant column 405. Details are shown in
(22) Although the tuning component 407 includes the at least two parts, all of the parts may be understood as a whole, and the high-conductivity part 4072 and the non-conductivity part 4071 may be fastened through screw thread engagement or injection molding (e.g. injection molded bosses). A specific fastening manner may be determined based on a requirement of an application scenario. A ratio of a length of the high-conductivity part 4072 to a length of the non-conductivity part 4071 included in the tuning component 407 disclosed in this application is not limited, and may be determined based on a requirement of a specific application scenario. The high-conductivity part 4072 may be of an axisymmetric structure.
(23) In view of this, the filtering apparatus 400 provided in the embodiments of this application may effectively suppress outward radiation of a signal, greatly increase a Q value of a single cavity, and optimize linearity. A signal is shielded at a division interface of the cover plate by using a non-conductivity material, so that energy storage in the cavity is stable, and outward radiation of the signal by using the tuning component is prevented. Through experimental simulation, a Q value of a single cavity of the cavity filter 400 provided in the embodiments of this application may be increased by 1200, and a single-channel system gain may be increased by 0.5 dB. Mounting the resonant column 405 on a cover plate side (that is, on the same side as the tuning component 407) may allow the electric field to be distributed more evenly in the cavity, thereby improving the linearity and consistency of a frequency change speed of each cavity. Details are shown in
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(25) In view of this, the embodiments of this application provide a filtering apparatus 500. The filtering apparatus may suppress outward radiation of a signal, greatly increase a Q value of a single cavity, and optimize linearity. A signal is shielded at a division interface of the cover plate by using a non-conductivity material, so that energy storage in the cavity is stable, and outward radiation of the signal by using the tuning component is prevented. Through experimental simulation, a Q value of a single cavity of the cavity filter 500 provided in the embodiments of this application may be increased by 1200, and a single-channel system gain may be increased by 0.5 dB.
(26) It may be understood that the foregoing filtering apparatus provided in the embodiments of this application may be applied to the field of mobile communications technologies, or may be applied to another field with a corresponding requirement. For example, the filtering apparatus is applied to a base station, when receiving a user signal, the base station needs to control, by using the filtering apparatus, an interference signal outside a communications channel to a specific level, and when the base station is in contact with a user, a signal (usually with high power) sent by the base station to the user may further passes through the filtering apparatus, and then an interference signal that is outside the channel and that is generated by a transmitter is controlled to an allowed level, thereby preventing interference performed on adjacent channels and ensuring normal communication. In addition, when the filtering apparatus forms a duplexer, the filtering apparatus may be further configured to isolate a signal of a receive channel from a signal of a transmit channel, to reduce interference performed on each other.
(27) The foregoing descriptions are merely specific implementations of this application, but are not intended to limit the protection scope of this application. Any variation or replacement readily figured out by a person skilled in the art within the technical scope disclosed in this application shall fall within the protection scope of this application. Therefore, the protection scope of this application shall be subject to the protection scope of the claims.