Cavity structure for phase shifter and antenna

By dividing the cavity structure of the phase shifter into a central cavity and side cavities and electrically connecting them with metal adapters, the problem of increasing antenna height in traditional cavity structures is solved, thus realizing the miniaturization of the antenna and the integration of multiple active antennas.

CN223797521UActive Publication Date: 2026-01-13PROSE TECH CO LTD

Patent Information

Application Number
CN202520294977.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-24
Publication Date
2026-01-13
Estimated Expiration
2035-02-24

AI Technical Summary

Technical Problem

Traditional cavity structures used for phase shifters typically increase the overall antenna height, which is not conducive to the miniaturization of existing antennas, and the demand for integration of multiple active antennas is increasing.

Method used

A novel cavity structure is designed, which is divided into a central cavity and two side cavities, and electrically connected by a metal adapter to form at least three side-by-side cavities. This reduces the height of the cavity structure and improves the assembly flexibility and overall height of the antenna.

Benefits of technology

By dividing the cavity structure into smaller chambers, the height of the cavity structure is reduced, the radiation impact on the active antenna is reduced, and the assembly flexibility and overall height of the antenna are improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a cavity structure for a phase shifter, and the cavity structure comprises a middle cavity which is constructed to be used for accommodating a main feed signal line; the side edge cavities are separately arranged on the two sides of the middle cavity, and the side edge cavities are constructed to be used for accommodating a power division network, a phase shift network and a main feed network; and the main feed network is electrically connected with the main feed signal line through the metal adapter piece, and the main feed network is electrically connected with the main feed signal line through the metal adapter piece. In this way, the cavity structure for the phase shifter can be divided into at least three smaller cavities which are arranged side by side, so that the height of the cavity structure for the phase shifter can be reduced, and the assembly flexibility and the overall height of the antenna comprising the cavity structure provided by the utility model are further improved.
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Description

Technical Field

[0001] This utility model relates to the field of communication technology, and more specifically to a cavity structure for a phase shifter and an antenna including the cavity structure for the phase shifter. Background Technology

[0002] In existing technologies, to enable coverage of base station antennas from different generations (e.g., 4G and 5G) using shared towers and heights, integrated active and passive (A+P) base station antennas for 4G and 5G networks are increasingly accepted and applied. The combination of active and passive base station antennas typically involves placing a portion or the entire passive antenna module on top of the active antenna module. The passive module includes RF components such as high-frequency and low-frequency vibrators, phase-shifting feed networks, main feed lines, and metamaterials, and also encloses various structural components, support components, and a metal frame to ensure the strength of the passive antenna. The transparency of each component plays a crucial role in the radiation of the active antenna. Traditional A+P antennas are often divided into upper and lower halves, one half using a traditional passive antenna design, and the other half using transparent designs such as metasurfaces, decoupled radiating elements, and minimalist networks. The active antenna is embedded in the transparent design area of ​​the passive antenna, achieving coplanar integration of the A+P antenna. The antenna frame, as the support frame for the passive antenna, ensures the overall structural strength of the antenna. Meanwhile, active antennas can be fixed on passive antennas. Due to the dual-half-segment design, the traditional passive half-segment cannot continue to integrate active antennas. Therefore, existing A+P antennas on the market generally only support the integration of one active module. With the continuous development of A+P antennas, the integration requirements of active antenna modules have changed from a single active antenna to two or even more active antennas. The length of two active antennas occupies most of the space below the passive antenna. The design and arrangement of traditional phase shifters and feed networks for passive antennas will cause serious interference to the radiation of active antennas. Designing and developing an edge-distributed phase-shifting feed network has become an urgent technical direction.

[0003] For example, Chinese patent application CN116598734A discloses a polarization-corresponding electroplating-free phase shifter and antenna. In this technical solution, an adapter is used to connect the inner and outer conductors of the main feed line to the input feed point of the phase shifting network inside the cavity without bending or electroplating. The external placement of the main feed line increases the height of the cavity structure used for the phase shifter. Chinese patent application CN116601828A discloses a base station antenna. In this technical solution, an external wired adapter structure is used to achieve impedance matching with the cable, thereby expanding the matching space of the feed network, improving the continuity of RF signal transmission, and increasing the height of the cavity structure used for the phase shifter. Chinese patent application CN117117491A discloses a feed assembly and antenna for a phase shifter. In this technical solution, a cavity is added above the phase shifting network to achieve a cable-free design for the main feed section, but this increases the overall height of the cavity structure used for the phase shifter. Chinese patent application CN117293563A discloses a vertical cableless dual-polarized electrically adjustable base station antenna. In this technical solution, the single-row dual-polarized base station antenna is fed by erecting N metal cavities. The independent cavity design for the two polarizations wastes the space of the whole machine and increases the overall width of the cavity structure used for the phase shifter. Utility Model Content

[0004] To address the technical problems existing in the prior art, namely that the traditional cavity structure used for phase shifters usually increases the overall antenna height, which is not conducive to the miniaturization of existing antennas, and given the increasing demand for the integration of multiple active antennas, the inventors of this utility model conceived of designing a novel cavity structure.

[0005] To achieve the above-mentioned technical effects, this utility model proposes a cavity structure for a phase shifter, the cavity structure comprising:

[0006] An intermediate chamber, configured to accommodate the main power supply signal line;

[0007] Side chambers, located on either side of the central chamber, are configured to house the power divider network, phase shifter network, and main feeder network; and

[0008] A metal adapter, wherein the main feed network is electrically connected to the main feed signal line via the metal adapter.

[0009] In this way, the cavity structure for a phase shifter according to the present invention can be divided into at least three smaller cavities and placed side by side, thereby reducing the height of the cavity structure for the phase shifter and thus improving the assembly flexibility and overall height of the antenna including the cavity structure according to the present invention.

[0010] In the technical solution according to this utility model, the intermediate chamber includes:

[0011] First intermediate chamber; and

[0012] The second intermediate chamber is provided, wherein the first intermediate chamber and the second intermediate chamber are arranged side by side between the side chambers.

[0013] In this way, the intermediate chamber can be further divided into a first intermediate chamber and a second intermediate chamber arranged side by side between the side chambers, thereby further improving the electrical performance of the cavity structure for the phase shifter according to the present invention.

[0014] In the technical solution according to this utility model, the intermediate chamber includes:

[0015] First intermediate chamber; and

[0016] The second intermediate chamber is provided, wherein the first intermediate chamber and the second intermediate chamber are stacked vertically between the side chambers.

[0017] In this way, the intermediate chamber can be further divided into a first intermediate chamber and a second intermediate chamber, which are stacked vertically between the side chambers, thereby further improving the electrical performance of the cavity structure for the phase shifter according to the present invention.

[0018] Preferably, in the technical solution according to this utility model, the phase-shifting network is disposed between the power divider network and the main feeder network. More preferably, in the technical solution according to this utility model, the output end of the power divider network in the side chamber is connected to the corresponding radiating oscillator.

[0019] Preferably, in the technical solution according to this utility model, the main power supply signal line of the intermediate chamber is electrically connected to the connector panel via a coaxial cable. More preferably, in the technical solution according to this utility model, the metal adapter is constructed as a metal sheet or a U-shaped metal piece.

[0020] Preferably, in the technical solution according to this utility model, the main power supply signal line includes multiple main power supply signal lines, and the multiple main power supply signal lines are respectively electrically connected to the main power supply networks on both sides via corresponding metal adapters for same polarization. More preferably, in the technical solution according to this utility model, the upper top wall and lower bottom wall of the intermediate chamber are respectively constructed as metal walls with corresponding thicknesses.

[0021] Furthermore, a second aspect of this invention provides an antenna comprising a passive antenna, the passive antenna comprising the cavity structure proposed according to the first aspect of this invention.

[0022] Preferably, in the technical solution according to this utility model, the antenna further includes at least two active antennas, and the cavity structure is disposed on both sides of the at least two active antennas.

[0023] In summary, according to the technical solution of this utility model, the cavity structure for the phase shifter can be divided into at least three smaller cavities and placed side by side, thereby reducing the height of the cavity structure for the phase shifter and improving the assembly flexibility and overall height of the antenna including the cavity structure according to this utility model. Attached Figure Description

[0024] The features, advantages, and other aspects of the various embodiments of the present invention will become more apparent from the accompanying drawings and the following detailed description, in which several embodiments of the present invention are shown by way of example and not limitation, in the drawings:

[0025] Figure 1 A schematic diagram of a cavity structure 100 for a phase shifter according to an embodiment of the present invention is shown;

[0026] Figure 2 A schematic diagram of the structure of an antenna 200 according to an embodiment of the present invention is shown;

[0027] Figure 3 A schematic diagram of the side chamber according to an embodiment of the present invention is shown;

[0028] Figure 4 A schematic diagram of the structure of an intermediate chamber according to an embodiment of the present invention is shown;

[0029] Figure 5 A schematic diagram of electrical connections according to an embodiment of the present invention is shown;

[0030] Figure 6 A schematic diagram of the structure of a metal adapter according to an embodiment of the present invention is shown; and

[0031] Figure 7 A schematic diagram of the structure of the intermediate chamber according to another embodiment of the present invention is shown. Detailed Implementation

[0032] The following describes various exemplary embodiments of the present invention in detail with reference to the accompanying drawings. While the exemplary methods and apparatuses described below include software and / or firmware executed on hardware among other components, it should be noted that these examples are merely illustrative and should not be considered limiting. For example, it is conceivable that any or all hardware, software, and firmware components may be implemented exclusively in hardware, exclusively in software, or in any combination of hardware and software. Therefore, although exemplary methods and apparatuses have been described below, those skilled in the art will readily understand that the examples provided are not intended to limit the ways in which these methods and apparatuses may be implemented.

[0033] Furthermore, the flowcharts and block diagrams in the accompanying drawings illustrate the possible architecture, functions, and operations of the methods and systems according to various embodiments of the present invention. It should be noted that the functions indicated in the blocks may occur in a different order than that shown in the drawings. For example, two consecutively indicated blocks may actually be executed substantially in parallel, or they may sometimes be executed in reverse order, depending on the functions involved. It should also be noted that each block in the flowcharts and / or block diagrams, and combinations of blocks in the flowcharts and / or block diagrams, may be implemented using a dedicated hardware-based system that performs the specified functions or operations, or using a combination of dedicated hardware and computer instructions.

[0034] As mentioned earlier, the existing technology has the following technical problems: traditional cavity structures for phase shifters typically increase the overall antenna height, which is detrimental to the miniaturization of existing antennas. Furthermore, the demand for integrating multiple active antennas is increasing. To address the technical problems existing in the prior art, the inventors of this utility model conceived of designing a novel cavity structure. In summary, the inventors of this utility model innovatively propose a cavity structure for a phase shifter, comprising: a central cavity configured to accommodate the main feed signal line; side cavities separated on both sides of the central cavity, configured to accommodate a power divider network, a phase shifting network, and a main feed network; and a metal adapter, wherein the main feed network is electrically connected to the main feed signal line via the metal adapter. In this way, the cavity structure for a phase shifter according to the present invention can be divided into at least three smaller cavities and placed side by side, thereby reducing the height of the cavity structure for the phase shifter and thus improving the assembly flexibility and overall height of the antenna including the cavity structure according to the present invention.

[0035] The following will combine Figures 1 to 7 This describes the cavity structure for a phase shifter and the corresponding antenna disclosed in this utility model. Figure 1A schematic diagram of a cavity structure 100 for a phase shifter according to an embodiment of the present invention is shown. Figure 2 A schematic diagram of the structure of an antenna 200 according to an embodiment of the present invention is shown. More specifically, Figure 3 A schematic diagram of the side chamber according to an embodiment of the present invention is shown. Figure 4 A schematic diagram of the structure of the intermediate chamber according to an embodiment of the present invention is shown. Figure 5 A schematic diagram of electrical connections according to an embodiment of the present invention is shown, and Figure 6 A schematic diagram of a metal adapter according to an embodiment of the present invention is shown. Furthermore, the present invention also illustrates a possible specific structure of the intermediate cavity, namely… Figure 7 A schematic diagram of the structure of the intermediate chamber according to another embodiment of the present invention is shown.

[0036] from Figure 1 As can be seen, the cavity structure 100 according to this utility model includes at least three parts: a left side cavity 110, a right side cavity 120, and a middle cavity 130. Specifically, the middle cavity 130 is configured to accommodate the main feed signal line; while the side cavities 110 and 120, which are located on both sides of the middle cavity 130, are configured to accommodate the power divider network, the phase shifter network, and the main feeder network. Furthermore, in order to electrically connect the middle cavity 130 and the two side cavities 110 and 120, the cavity structure 100 for the phase shifter according to this utility model also has a metal adapter 140 (the specific structure and shape of the metal adapter 140 will be described below in conjunction with...). Figure 5 and Figure 6 (Described as described), wherein the main feed network is electrically connected to the main feed signal line via the metal adapter 140. In this way, the cavity structure 100 for a phase shifter according to the present invention can divide the cavity structure 100 for a phase shifter into at least three smaller cavities 110, 120 and 130, and place them side by side, thereby reducing the height of the cavity structure 100 for a phase shifter, and thus improving the assembly flexibility and overall height of the antenna including the cavity structure 100 according to the present invention.

[0037] In other words, the cavity structure 100 for the phase shifter proposed according to this invention is placed on both sides of multiple active modules, with at least three cavities arranged side-by-side in the width direction: at least two side cavities 110 and 120 and at least one intermediate cavity 130. The at least two side cavities 110 and 120 are composed of a power divider network and a phase shifter network, and have multiple output ports on top through which the radiating element is fed. Furthermore, the at least two side cavities 110 and 120 also have partial main feed networks. The intermediate cavity 130 has, for example, multiple dual-polarized main feed networks in parallel. The partial main feed networks of the side cavities 110 and 120 and the main feed network of the intermediate cavity 130 are electrically connected in the same polarization via metal adapters 140 such as metal sheets or U-shaped metal parts. Furthermore, the main feed network of the intermediate cavity 130 extends to the area of ​​the passive antenna connector panel and is connected to external devices via coaxial cables or the like. The cavity structure 100 for the phase shifter has metal walls of a certain thickness at both the top and bottom of its intermediate chamber 130. Passive antenna components can be fixed at the top via metal terminals 151, and multiple active antenna modules can be fixed at the bottom via metal screw holes 152. The structure of the antenna formed by this is achieved through… Figure 2 A more detailed description will follow.

[0038] Figure 2 A schematic diagram of the structure of an antenna 200 according to an embodiment of the present invention is shown. Figure 2 As can be seen from this, the antenna 200 according to the present invention includes a passive antenna, which includes the cavity structure 100 for a phase shifter proposed according to the first aspect of the present invention. Figure 2 The illustrated embodiment includes two cavity structures 100 for the phase shifter. However, this arrangement is merely exemplary and not limiting; of course, it is possible to provide only one or more cavity structures 100 for the phase shifter, depending on actual needs. Figure 2 In the illustrated embodiment, the antenna 200 includes an active antenna 260 and a passive antenna 250. More specifically, the active antenna 260 may include two or more discrete active antennas. The passive antenna 250 includes, in addition to the radiating element (vibrator) 230, an radome 210, a metamaterial module 240, and a signal line 220 connecting the cavity structure 100 for the phase shifter according to the present invention and the radiating element 230. Preferably, in the technical solution according to the present invention, the antenna further includes at least two active antennas, and the cavity structure is disposed on both sides of the at least two active antennas.

[0039] The cavity structure 100 for the phase shifter can transmit radio frequency signals, support the passive antenna assembly above, and allow multiple active antenna modules to be assembled below it. This integrated design helps reduce the radiation impact of the passive antenna module on the active antenna module. Figure 1 The cavity structure 100 for the phase shifter according to this invention, as shown, employs a multi-chamber parallel design. Its main feed line is connected via a metal adapter 140 and extends to the connector panel. Simultaneously, multiple main feed networks with different polarizations share a single cavity, significantly reducing the horizontal and vertical height of the cavity structure 100 for the phase shifter, which helps reduce the radiation impact of the cavity structure 100 on the active antenna module. Furthermore, through the multi-chamber parallel design, the dipole feed network, passive antenna fixing components, and main feed line do not interfere with each other, greatly reducing the complexity of the overall assembly of the passive antenna.

[0040] In addition, from the appendix Figure 1 As can be seen, the cavity structure 100 for the phase shifter has at least three chambers arranged in parallel along its width. The side chambers 110 and 120 on both sides house a power divider network, a phase shifter network, and a portion of the main feed network. Multiple output terminals of the power divider network are connected to the radiating element via grounding terminals. The intermediate chamber 130 has multiple main feed signal lines. One end of the intermediate chamber 130 is connected to the portion of the main feed networks of the side chambers 110 and 120 and one end of the multiple signal lines of the intermediate chamber 130 via a metal adapter such as a metal sheet or a U-shaped metal piece, achieving the same polarization. The other end of the multiple signal lines of the intermediate chamber 130 extends to the connector panel area of ​​the passive antenna and connects to external equipment. Figure 3 and Figure 4 This can be shown in further detail, namely Figure 3 A schematic diagram of the side chamber according to an embodiment of the present invention is shown. Figure 4 A schematic diagram of the structure of an intermediate chamber according to an embodiment of the present invention is shown. Figure 3 and Figure 4 As can be seen, the side chambers 110 and / or 120 contain a power divider network 111, an oscillator output terminal 112, a phase shifting network 113, and a portion of the main feed network 114, while the intermediate chamber 130 contains a main feed signal line 131, which is electrically connected to the connector panel 133 via a coaxial cable 132. Furthermore, this main feed signal line 131 is also connected via... Figure 5 and Figure 6 The metal adapter 134 shown is electrically connected to a portion of the main feed network 114 within the side chambers 110 and / or 120. Figure 5 A schematic diagram of electrical connections according to an embodiment of the present invention is shown, and Figure 6A schematic diagram of a metal adapter according to an embodiment of the present invention is shown.

[0041] Furthermore, the upper and lower parts of the intermediate chamber 130 have metal walls of a certain thickness, which are used to assemble and fix the passive antenna support assembly with metal screws, and to fix the active antenna module below with metal screws. The intermediate chamber 130 of the cavity structure 100 for the phase shifter can be two independent chambers, divided into two chambers horizontally or two chambers vertically. That is to say, this utility model also relies on Figure 7 The possible specific structure of the intermediate cavity 130 is shown, namely... Figure 7 A schematic diagram of the intermediate chamber 130 according to another embodiment of the present invention is shown. Figure 7 As can be seen from this, in accordance with the present utility model Figure 7 In the embodiment shown on the left side of the technical solution, the intermediate chamber 130 includes a first intermediate chamber and a second intermediate chamber, wherein the first intermediate chamber and the second intermediate chamber are arranged side-by-side between the side chambers. This arrangement further divides the intermediate chamber into the first intermediate chamber and the second intermediate chamber arranged side-by-side between the side chambers, thereby further improving the electrical performance of the cavity structure for the phase shifter according to the present invention. And according to the present invention... Figure 7 In the embodiment shown on the right side of the technical solution, the intermediate chamber 130 includes a first intermediate chamber and a second intermediate chamber, wherein the first intermediate chamber and the second intermediate chamber are stacked vertically between the side chambers. This arrangement further divides the intermediate chamber into the first intermediate chamber and the second intermediate chamber, which are stacked vertically between the side chambers, thereby further improving the electrical performance of the cavity structure for the phase shifter according to this invention.

[0042] Preferably, in the technical solution according to this utility model, the phase-shifting network is disposed between the power divider network and the main feed network. More preferably, in the technical solution according to this utility model, the output terminal of the power divider network in the side chamber is connected to the corresponding radiating oscillator. Preferably, in the technical solution according to this utility model, the main feed signal line of the intermediate chamber is electrically connected to the connector panel via a coaxial cable. More preferably, in the technical solution according to this utility model, the metal adapter is constructed as a metal sheet or a U-shaped metal piece.

[0043] Preferably, in the technical solution according to this utility model, the main power supply signal line includes multiple main power supply signal lines, and the multiple main power supply signal lines are respectively electrically connected to the main power supply networks on both sides via corresponding metal adapters for same polarization. More preferably, in the technical solution according to this utility model, the upper top wall and lower bottom wall of the intermediate chamber are respectively constructed as metal walls with corresponding thicknesses.

[0044] In summary, according to the technical solution of this utility model, the cavity structure for the phase shifter can be divided into at least three smaller cavities and placed side by side, thereby reducing the height of the cavity structure for the phase shifter and improving the assembly flexibility and overall height of the antenna including the cavity structure according to this utility model.

[0045] The above description is merely an optional embodiment of the present utility model and is not intended to limit the embodiments of the present utility model. For those skilled in the art, the embodiments of the present utility model can have various modifications and variations. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the embodiments of the present utility model should be included within the protection scope of the embodiments of the present utility model.

[0046] While embodiments of the present invention have been described with reference to several specific examples, it should be understood that the embodiments of the present invention are not limited to the specific embodiments disclosed. The embodiments of the present invention are intended to cover various modifications and equivalent arrangements included within the spirit and scope of the appended claims. The scope of the claims is to be interpreted in the broadest sense, thereby encompassing all such modifications and equivalent structures and functions.

Claims

1. A cavity structure for a phase shifter, characterized in that, The cavity structure includes: An intermediate chamber, configured to accommodate the main power supply signal line; Side chambers, located on either side of the central chamber, are configured to house the power divider network, phase shifter network, and main feeder network; and A metal adapter, wherein the main feed network is electrically connected to the main feed signal line via the metal adapter.

2. The cavity structure according to claim 1, characterized in that, The intermediate chamber includes: First intermediate chamber; and The second intermediate chamber is provided, wherein the first intermediate chamber and the second intermediate chamber are arranged side by side between the side chambers.

3. The cavity structure according to claim 1, characterized in that, The intermediate chamber includes: First intermediate chamber; and The second intermediate chamber is provided, wherein the first intermediate chamber and the second intermediate chamber are stacked vertically between the side chambers.

4. The cavity structure according to claim 1, characterized in that, The phase-shifting network is positioned between the power divider network and the main feeder network.

5. The cavity structure according to claim 4, characterized in that, The output of the power divider network in the side chamber is connected to the corresponding radiating oscillator.

6. The cavity structure according to claim 1, characterized in that, The main power supply signal line of the intermediate chamber is electrically connected to the connector panel via a coaxial cable.

7. The cavity structure according to claim 1, characterized in that, The metal adapter is constructed as a metal sheet or a U-shaped metal part.

8. The cavity structure according to claim 1, characterized in that, The main power supply signal line includes multiple main power supply signal lines, which are electrically connected to the main power supply networks on both sides via corresponding metal adapters to achieve the same polarization.

9. The cavity structure according to claim 1, characterized in that, The upper top wall and lower bottom wall of the intermediate chamber are respectively constructed as metal walls with corresponding thicknesses.

10. An antenna, characterized in that, The antenna includes a passive antenna, which includes a cavity structure according to any one of claims 1 to 9.

11. The antenna according to claim 10, characterized in that, The antenna also includes at least two active antennas, and the cavity structure is disposed on both sides of the at least two active antennas.

Citation Information

Patent Citations

  • Polarization corresponding electroplating-free phase shifter and antenna

    CN116598734A

  • Base station antenna

    CN116601828A

  • Feed assembly for phase shifter and antenna

    CN117117491A

  • Vertical cable-free dual-polarization electrically tunable base station antenna

    CN117293563A

Cited By

  • Cavity structure for phase shifter and antenna

    CN119786917A