Antenna mounting structure for drone expeller
By designing the sliding groove and elastic strip structure of the antenna module, insert plate one, insert plate two, and the main body of the decoy, the problems of installation errors and insufficient tightness of the UAV decoy antenna installation structure were solved, achieving accurate installation and high tightness.
Patent Information
- Application Number
- CN202521701510.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-12
- Publication Date
- 2026-07-24
- Estimated Expiration
- 2035-08-12
AI Technical Summary
The antenna mounting structure of the drone decoy is prone to errors during installation, which can lead to damage to the power connection structure. In addition, the antenna is not securely fastened to the main body of the decoy, making it easy for it to loosen.
An installation structure including an antenna module, a first insert plate, a second insert plate, and a drive unit body is designed. The correct installation of the antenna module is ensured by the cooperation of the sliding groove and the elastic strip, and the tension of the elastic strip is used to keep it tight and prevent it from loosening.
This ensures accurate and secure installation of the antenna module and the main body of the decoy, avoiding damage and loosening of the power connection structure and ensuring stable use of the equipment.
Smart Images

Figure CN224554691U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of drone decoy devices, and in particular relates to the antenna mounting structure of drone decoy devices. Background Technology
[0002] The antenna mounting structure design of drone decoys needs to comprehensively consider signal coverage, mechanical stability, and environmental adaptability to ensure that the equipment works efficiently and reliably in various scenarios. Depending on the application requirements, directional antennas, omnidirectional antennas, or phased array antennas can be selected. Directional antennas (such as flat panel or parabolic antennas) are usually paired with gimbals or pan-tilt units to achieve precise beam pointing and are suitable for fixed jamming equipment. Omnidirectional antennas (such as whip or columnar antennas) are vertically mounted on the top of the equipment and are suitable for mobile systems that require 360° coverage. Phased array antennas are fixedly mounted and rely on electronic scanning technology to adjust the beam direction without mechanical rotation, making them suitable for high-precision applications. When mounting the antenna on a handheld decoy, a mounting structure is required, but it still has the following drawbacks in actual use: When installing antenna modules on the antenna mounting structure of a drone decoy, directly aligning the antenna module with the mounting structure can lead to incorrect installation direction by the operator. This can cause damage to the electrical connection structure and other risks. Secondly, after the antenna of the drone decoy is installed, when the direction of the antenna is moved or the decoy is carried, the vibration during the movement may cause the antenna to loosen during use, resulting in the separation of the antenna from the main body of the decoy and affecting the stability of use. Utility Model Content
[0003] The purpose of this utility model is to provide an antenna mounting structure for a drone decoy. By setting up an antenna module, a first insert plate, a second insert plate, and a decoy body, it solves the problems of incorrect installation causing damage to the power connection structure and insufficient tightness between the antenna and the decoy body during the installation of the drone decoy antenna mounting structure.
[0004] To solve the above-mentioned technical problems, this utility model is achieved through the following technical solution: This utility model relates to an antenna mounting structure for a drone decoy, comprising an antenna module, a first insert plate, a second insert plate, and a decoy body. The decoy body is attached to one end of the antenna module. Sliding grooves are provided on both the upper and lower parts of the decoy body near the antenna module. The first insert plate and the second insert plate are fixed to the two short sides of the antenna module near the decoy body, respectively. The second insert plate is positioned below the first insert plate. Elastic strips are fixed to the short sides of both the first and second insert plates away from each other, away from the antenna module. The antenna module is slidably connected to the decoy body via the first and second insert plates. The first and second insert plates are fixed to the two short sides of the antenna module, with the first insert plate positioned above the second insert plate. The decoy body has two corresponding sliding grooves to guide the insertion of the plates. Elastic strips are installed at the ends of the insert plates to enhance the connection's tightness.
[0005] Furthermore, the antenna module has a power connector at its center near the main body of the decoy unit. Both sides of the power connector have equally spaced power slots, and an electrode is fixed to the center of the vertical surface of each slot. The antenna module has a central power connector with multiple power slots arranged on both sides, each containing an electrode. These electrodes are used for power transmission and signal connection with the main body of the decoy unit.
[0006] Furthermore, the width of the sliding groove at the top of the deflector body is greater than the width of the sliding groove at the bottom of the deflector body, and the width of the first insert plate is greater than the width of the second insert plate. The first insert plate is movably connected in the upper sliding groove, and the second insert plate is movably connected in the lower sliding groove. The top sliding groove of the deflector body is wider than the bottom groove to match insert plates of different widths: the wider first insert plate is inserted into the upper groove, and the narrower second insert plate is inserted into the lower groove. This design ensures that the antenna module can only be installed correctly in one direction.
[0007] Furthermore, a mounting block is fixed at one end of the deflector body near the antenna module. The mounting block is movably connected to the power connector. Power electrodes are fixed at equal intervals on both sides of the mounting block. The power electrodes are electrically connected to the antenna module. The power electrodes are slidably connected in the power grooves on the inner wall of the power connector and abut against the electrode plates. The deflector body docks with the antenna module through the mounting block. Power electrodes are installed on both sides of the block. When the block is inserted into the power connector, the electrodes slide into the power grooves and contact the electrode plates, thus achieving circuit connection.
[0008] Furthermore, the top and bottom of the deflector body are both fixed with connecting hooks, and the two connecting hooks are symmetrically arranged. The connecting hooks are symmetrically installed on the top and bottom of the deflector body for fixing the antenna module.
[0009] Furthermore, each of the two elastic strips has a mounting frame fixed at the end furthest from the antenna module. The two mounting frames are respectively attached to two connecting hooks. The end of the elastic strip is connected to the mounting frame. During installation, it is fastened to the connecting hook. The tension of the elastic strip makes the antenna module fit tightly against the main body, preventing it from loosening and falling off during use.
[0010] This utility model has the following beneficial effects: This invention solves the problem of damage to the electrical connection structure caused by incorrect installation during the installation of the antenna mounting structure of a UAV decoy by setting up an antenna module, a first insert plate, a second insert plate, and a decoy body. When installing the antenna module on the decoy body, the second insert plate is placed downwards and the first insert plate is placed upwards. Then, the first and second insert plates are aligned with the sliding groove on the decoy body and inserted into the sliding groove on the decoy body. At this time, the mounting blocks on the decoy body can be naturally inserted into the electrical connection port in the antenna module, and the electrode plates and electrical connection electrodes are in one-to-one contact, which ensures the accuracy of the installation between the antenna module and the decoy body and the accuracy of the antenna mounting structure.
[0011] This invention solves the problem of insufficient tightness between the antenna and the decoy body in the antenna mounting structure of a UAV decoy by setting up an antenna module, a first insert plate, a second insert plate, and a decoy body. After the antenna module and the decoy body are assembled, the connecting frames on the first and second insert plates are pulled to the connecting hooks on the surface of the decoy body. Through the contraction of the elastic strip, the installation between the antenna module and the decoy body is made more secure, ensuring that the decoy body and the antenna module will not loosen during the overall use. This results in a higher degree of tightness between the antenna and the decoy body in the UAV decoy antenna mounting structure, preventing loosening. Attached Figure Description
[0012] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0013] Figure 1 A three-dimensional diagram of the antenna mounting structure assembly for a drone decoy; Figure 2 This is a three-dimensional diagram of the mechanism after the antenna module is combined with plug-in board one and plug-in board two. Figure 3 This is a three-dimensional structural diagram of the antenna module; Figure 4 for Figure 3 Enlarged view of the structure at point A in the image; Figure 5 This is a three-dimensional structural view of the main body of the deflector.
[0014] Figure label: 1. Antenna module; 101. Power connector; 102. Power connector slot; 103. Electrode piece; 2. Insert plate one; 201. Elastic strip; 202. Hanging frame; 3. Insert plate two; 4. De-energizer body; 401. Sliding groove; 402. Connecting hook; 403. Mounting block; 404. Power electrode. Detailed Implementation
[0015] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of the present utility model. Specific Implementation Example 1
[0016] Please see Figure 1-5 This utility model is an antenna mounting structure for a drone deflector, including an antenna module 1, a first insert plate 2, a second insert plate 3, and a deflector body 4. The deflector body 4 is provided at one end of the antenna module 1. After the antenna module 1 is powered on, it emits a drone deflection signal. The deflector body 4 transmits power and control signals to the antenna module 1. The upper and lower parts of the deflector body 4 near the antenna module 1 are provided with sliding grooves 401. When the deflector body 4 is working, the first insert plate 2 and the second insert plate 3 are movably connected to it through the sliding grooves 401. The first insert plate 2 and the second insert plate 3 are fixed at the two short sides of the antenna module 1 near the deflector body 4, respectively. The second insert plate 3 is located below the first insert plate 2, so that the wireless module and the deflector body 4 are connected together. The short sides of the first insert plate 2 and the second insert plate 3 away from each other and away from the antenna module 1 are both fixed with elastic strips 201 to compensate for the tightness of the installation between the wireless module and the deflector body 4.
[0017] Specifically, the antenna module 1 has a power connector 101 at the center of one end near the decoy body 4. Power connector slots 102 are equally spaced on both sides of the power connector 101. An electrode piece 103 is fixed in the center of the vertical surface of each power connector slot 102. The antenna module 1 is movably connected to the mounting block 403 through the power connector 101 and movably connected to the power electrode 404 through the power connector slot 102. The electrode piece 103 is used to connect the power electrode 404 to the antenna module 1.
[0018] Furthermore, the width of the sliding groove 401 at the top of the deflector body 4 is greater than the width of the sliding groove 401 at the bottom of the deflector body 4, and the width of the first insert 2 is greater than the width of the second insert 3. The first insert 2 is movably connected in the upper sliding groove 401, and the second insert 3 is movably connected in the lower sliding groove 401, so that during operation, the antenna module 1 can be stably installed on the deflector body 4.
[0019] Furthermore, a mounting block 403 is fixed at one end of the deflector body 4 near the antenna module 1. The mounting block 403 is movably connected to the power connection port 101. Power connection electrodes 404 are fixed at equal intervals on both sides of the mounting block 403. The power connection electrodes 404 are electrically connected to the antenna module 1. The power connection electrodes 404 are slidably connected in the power connection grooves 102 on the inner wall of the power connection port 101, and the power connection electrodes 404 abut against the electrode plates 103. The deflector body 4 is movably connected through the mounting block 403, and the power of the power connection electrodes 404 is transmitted to the antenna module 1 through the electrode plates 103.
[0020] The operation process of this embodiment is as follows: During operation, when installing the antenna module 1 on the de-energizer body 4, insert plate 2 3 is facing down and insert plate 3 is facing up. Then, insert plate 2 and insert plate 3 are aligned with the sliding groove 401 on the de-energizer body 4. Insert plate 2 and insert plate 3 are inserted into the sliding groove 401 on the de-energizer body 4. At this time, the mounting block 403 on the de-energizer body 4 can be naturally inserted into the power connector 101 in the antenna module 1, and the electrode plate 103 and the power connector 404 are in one-to-one contact, which ensures the accuracy of the installation between the antenna module 1 and the de-energizer body 4. Specific Implementation Example 2
[0021] Please see Figure 1 , 2 5. Based on the first specific embodiment, the top and bottom of the deflector body 4 are fixed with connecting hooks 402, and the two connecting hooks 402 are symmetrically arranged. The deflector body 4 is connected to the hanging frame 202 on the first insert plate 2 and the second insert plate 3 through the connecting hooks 402.
[0022] Specifically, each of the two elastic strips 201 has a mounting frame 202 fixed at the end away from the antenna module 1. The two mounting frames 202 are respectively attached to two connecting hooks 402, so that when the antenna module 1 is installed on the deflector body 4 during operation, there will be no safety hazard of falling off.
[0023] The operation process of this embodiment is as follows: During operation, after the antenna module 1 and the de-energizer body 4 are assembled, the connecting frame on the first insert plate 2 and the second insert plate 3 is pulled to pull the connecting frame onto the connecting hook 402 on the surface of the de-energizer body 4. Through the contraction of the elastic strip 201, the installation between the antenna module 1 and the de-energizer body 4 is made more secure, ensuring that the de-energizer body 4 and the antenna module 1 will not become loose during the overall use.
[0024] In the description of this specification, references to terms such as "an embodiment," "example," "specific example," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0025] The preferred embodiments of this utility model disclosed above are merely illustrative of the present utility model. These preferred embodiments do not exhaustively describe all details, nor do they limit the utility model to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of this utility model, thereby enabling those skilled in the art to better understand and utilize it. This utility model is limited only by the claims and their full scope and equivalents.
Claims
1. An antenna mounting structure for a drone decoy, comprising an antenna module (1), a first insert plate (2), a second insert plate (3), and a decoy body (4), characterized in that: One end of the antenna module (1) is provided with a deflector body (4). The upper and lower parts of the deflector body (4) near the antenna module (1) are provided with sliding grooves (401). The antenna module (1) near the two short sides of the deflector body (4) are respectively fixed with a first insert plate (2) and a second insert plate (3). The second insert plate (3) is located below the first insert plate (2). The first insert plate (2) and the second insert plate (3) are both fixed with elastic strips (201) on the side away from the antenna module (1).
2. The antenna mounting structure for the UAV decoy as described in claim 1, characterized in that: The antenna module (1) has a power socket (101) at the center of one end near the deflector body (4). Power slots (102) are provided on both sides of the power socket (101) at equal intervals. An electrode plate (103) is fixed in the center of the vertical surface of each power slot (102).
3. The antenna mounting structure for the UAV decoy as described in claim 1, characterized in that: The width of the sliding groove (401) at the top of the deflector body (4) is greater than the width of the sliding groove (401) at the bottom of the deflector body (4), the width of the first insert plate (2) is greater than the width of the second insert plate (3), the first insert plate (2) is movably connected in the upper sliding groove (401), and the second insert plate (3) is movably connected in the lower sliding groove (401).
4. The antenna mounting structure for the UAV decoy as described in claim 2, characterized in that: The main body (4) of the deflector is fixed with a mounting block (403) at one end near the antenna module (1). The mounting block (403) is movably connected in the power socket (101). Power electrodes (404) are fixed at equal intervals on both sides of the mounting block (403). The power electrodes (404) are electrically connected to the antenna module (1). The power electrodes (404) are slidably connected in the power groove (102) on the inner wall of the power socket (101), and the power electrodes (404) abut against the electrode sheet (103).
5. The antenna mounting structure for the UAV decoy as described in claim 1, characterized in that: The top and bottom of the deflector body (4) are both fixed with connecting hooks (402), and the two connecting hooks (402) are arranged symmetrically to each other.
6. The antenna mounting structure for the UAV decoy as described in claim 5, characterized in that: Each of the two elastic strips (201) has a mounting frame (202) fixed at the end away from the antenna module (1), and the two mounting frames (202) are respectively attached to two connecting hooks (402).