Unmanned aerial vehicle inspection and attack integrated counter device convenient for battery disassembly
By designing a locking component in the drone countermeasure, the battery can be quickly locked and removed, solving the problem of inconvenient battery removal in existing technologies, improving the efficiency of the device and the user experience, and enhancing the device's waterproof performance.
Patent Information
- Application Number
- CN202423259276.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-27
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2034-12-27
AI Technical Summary
Existing drone countermeasures generally suffer from being bulky and inconvenient to carry. In particular, frequent disassembly and assembly during outdoor operations reduces the reliability of the equipment. At the same time, the way the battery is connected to the main unit makes battery removal inconvenient, increasing the workload of operators.
A drone detection and attack countermeasure device with easy battery removal was designed. It adopts a locking component including a connector, a locking component and a driving component. The connector plate is set parallel to the tail of the battery. Combined with the cooperation of the driving component and the handle, the battery can be quickly locked and removed, simplifying the operation steps and improving the user experience.
It enables quick installation and removal of batteries, improves the efficiency and ease of maintenance of the equipment, enhances the battery's fixation, prevents accidental detachment, and improves the equipment's waterproof performance and service life.
Smart Images

Figure CN223500260U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of drone countermeasure equipment technology, and in particular to a drone detection and strike integrated countermeasure device that is easy to remove the battery. Background Technology
[0002] With the rapid development of drone technology, the application scope of drones is becoming increasingly wide, from civilian to military, from entertainment to industry, and the popularization of drones has brought tremendous convenience. However, the widespread use of drones has also brought security risks, especially in the military and aviation fields, where illegally intruded drones can pose serious security threats. Therefore, developing efficient and reliable integrated drone detection and countermeasures devices has become an urgent task. Currently, there are many types of drone countermeasures devices on the market. These devices are mainly used to interfere with drone signals, forcing them to land or return to base, but many problems still exist in practical applications.
[0003] Currently, common drone countermeasures on the market mainly fall into two categories: signal jammers and physical capture. Signal jammers primarily disrupt the communication link between the drone and its remote controller by emitting interference signals, causing the drone to lose control and automatically land or return to its starting point. The advantages of this approach are low cost and simple operation, but its disadvantages include sensitivity to environmental electromagnetic waves and the potential for accidentally damaging legitimate drones. Physical capture, on the other hand, uses net guns or other mechanical devices to directly capture the drone. While this method can accurately capture targets, it is bulky, inconvenient to carry, and complex to operate. Furthermore, regardless of the method, the countermeasure's battery is usually connected to the main unit via a connector or secured with a cover and screws, making disassembly inconvenient and maintenance difficult.
[0004] Regarding the aforementioned technologies, whether based on signal interference or physical capture, existing drone countermeasures generally suffer from being bulky and inconvenient to carry, especially during outdoor operations. Frequent disassembly and assembly reduce the reliability of the equipment and increase the workload of operators. In addition, the connection between the battery and the main unit is mostly secured by plug-in connectors or screws, which makes it difficult to quickly replace the battery. Utility Model Content
[0005] To address the issue of difficulty in quickly replacing batteries, this application provides a drone detection and countermeasure device that facilitates battery removal.
[0006] The UAV detection and countermeasure device provided in this application, which facilitates battery removal, adopts the following technical solution:
[0007] A drone detection and countermeasure device with easy battery removal includes a main unit and a locking assembly, wherein the main unit has a receiving slot for battery insertion;
[0008] The locking assembly includes a connector, a locking component, and a driving component. The connector includes a connecting plate connected to the tail of the battery. The connecting plate is parallel to the plane containing the tail of the battery. The locking component includes a placement plate and two latch pieces. The placement plate is connected to the side of the connecting plate away from the battery and is located in the middle of the connecting plate. The two latch pieces are each located on one side of the placement plate and are slidably connected to the connecting plate. The main unit has a slot in the receiving groove for the latch pieces to engage. The driving component is connected to the placement plate and to the two latch pieces to drive them to move towards or away from each other.
[0009] By adopting the above technical solution, when the battery needs to be installed, the battery is removed, the motor is inserted into the receiving slot, and then the operator activates the drive mechanism, which drives the handle plate to move, causing the handle plate to insert into the slot. When the battery needs to be removed, the operator activates the drive mechanism, which causes the handle plate to separate from the slot, allowing the operator to remove the battery. The battery removal of this UAV-based countermeasure device is convenient, improving the efficiency of equipment use and the convenience of maintenance. Specifically, the connecting plate is set parallel to the battery tail, ensuring the stability of the battery during insertion and removal, and reducing poor electrical connections caused by battery loosening. The cooperation between the drive mechanism and the handle plate achieves battery locking, simplifying the operation steps and improving the user experience. The slot design on the main unit ensures accurate engagement of the handle plate, enhances the battery's fixing effect, and prevents accidental detachment during use.
[0010] In one specific implementation, the driving component includes two first springs, each corresponding to one of the handle pieces. The orientation of the first springs is consistent with the sliding direction of the handle pieces. One end of each first spring is fixed to the placement plate, and the other end is fixed to the handle piece.
[0011] By adopting the above technical solution, the battery removal of this drone-based countermeasure device is more convenient. Specifically, two first springs correspond to two latches, and the springs are oriented in the same direction as the latches. This ensures that when installing the battery, pressing the fixing plate compresses the first springs. After releasing the pressure, the springs' restoring force causes the latches to automatically reset and engage with the slots on the main unit, achieving quick battery locking. When removing the battery, simply pinch the two latches gently and squeeze them towards the center to disengage them from the slots, allowing the battery to be easily removed. This design not only improves the efficiency of battery installation and removal but also reduces operational difficulty and enhances the user experience.
[0012] In one specific implementation, the handle plate is provided with crisscrossing anti-slip textures.
[0013] By adopting the above technical solution, friction is increased, making manual operation easier and ensuring a stable grip even in slippery environments, thus improving the convenience and reliability of battery removal and installation.
[0014] In one specific implementation, the connector further includes a connecting frame connected to the side of the connecting plate near the battery, with one end of the opening of the connecting frame near the connecting plate, and the connecting frame being detachably connected to the battery.
[0015] By adopting the above technical solution, the connecting frame strengthens the fixation of the battery, and the detachable design of the connecting frame makes battery maintenance more convenient.
[0016] In one specific implementation, a sealing component is also included, which is a waterproof sealing ring. The outer wall of the connecting frame has an annular groove for receiving the waterproof sealing ring, and the waterproof sealing ring is fixed to the connecting frame.
[0017] By adopting the above technical solution, the waterproof sealing ring effectively prevents moisture from entering the internal circuit, thereby improving the waterproof performance and service life of the equipment.
[0018] In one specific implementation, the handle piece is fixed with a slide rail on the side near the connecting plate, the slide rail is set from the placement plate to the side away from the placement plate, and the connecting plate has a groove for the slide rail to slide.
[0019] By adopting the above technical solution, this design makes the handle plate more stable and reliable during the sliding process, avoiding battery installation or removal failures caused by poor sliding, improving the ease of use and user experience of the equipment. At the same time, the design of the slide rail and slide groove also enhances the positioning accuracy of the handle plate, further improving the stability of battery fixation and extending the service life of the equipment.
[0020] In one specific implementation, the end of the handle piece away from the placement plate is set in an inclined shape, with the inclined surface located on the side of the handle piece closer to the connecting plate, and the inclined surface is set upward from the side of the connecting plate to the side of the handle piece away from the placement plate.
[0021] By adopting the above technical solution, the design of the end of the handle away from the placement plate being inclined can effectively improve the ease of battery installation. The handle is easier to align and insert into the slot on the host, reducing alignment difficulty, thereby simplifying the installation process and improving the user experience.
[0022] In one specific implementation, the connector further includes a protective shell, which is fitted over the outside of the battery and is detachably connected to the battery. The protective shell is connected to the connecting frame.
[0023] By adopting the above technical solution and setting up a protective shell, the battery can be easily protected, reducing the possibility of battery damage.
[0024] In summary, this application includes at least one of the following beneficial technical effects:
[0025] 1. A drone detection and countermeasure device with easily removable batteries is designed. This device facilitates battery removal, improving equipment efficiency and maintenance convenience. Specifically: the connecting plate is parallel to the battery tail, ensuring battery stability during insertion and removal, reducing electrical connection problems caused by loose batteries; the cooperation between the drive unit and the handle locks the battery, simplifying operation and improving user experience; the slot design on the main unit ensures accurate engagement of the handle, enhancing battery fixation and preventing accidental detachment during use.
[0026] 2. The drone detection and countermeasure device designed for easy battery removal features a unique design. When installing the battery, pressing the fixing plate compresses the first spring. After releasing the pressure, the spring's restoring force automatically resets the handle and locks it into the slot on the main unit, achieving quick battery locking. When removing the battery, simply pinch the two handles and squeeze them towards the center to disengage them from the slot, allowing for easy battery removal. This design not only improves the efficiency of battery installation and removal but also reduces operational difficulty and enhances the user experience.
[0027] 3. The drone detection and countermeasure device is designed with easy battery removal and a waterproof sealing ring to effectively prevent moisture from entering the internal circuit, thus improving the device's waterproof performance and service life. Attached Figure Description
[0028] Figure 1 This is a schematic diagram of the structure in this embodiment.
[0029] Figure 2 This is a schematic diagram of the locking assembly and sealing assembly in this embodiment.
[0030] Figure 3 This is a cross-sectional view of this embodiment.
[0031] Figure 4 yes Figure 3 A magnified view of A in the middle.
[0032] Explanation of reference numerals in the attached drawings: 1. Main unit; 11. Receiving groove; 12. Slot; 2. Locking assembly; 21. Connecting piece; 211. Connecting plate; 2111. Slide groove; 212. Connecting frame; 213. Protective shell; 22. Locking piece; 221. Fixing plate; 222. Placement plate; 2221. Clearance groove; 2222. Receiving cavity; 223. Handle piece; 2231. Slide rail; 23. Driving component; 231. First spring; 3. Sealing assembly; 4. Battery. Detailed Implementation
[0033] The following is in conjunction with the appendix Figure 1-4 This application will be described in further detail.
[0034] This application discloses a drone detection and strike integrated countermeasure device that facilitates battery removal.
[0035] Reference Figure 1 and Figure 2 A drone detection and countermeasure device with easy battery removal includes a main unit 1, a locking component 2 and a sealing component 3. The locking component 2 is connected to the battery 4, and the sealing component 3 is located on the locking component 2.
[0036] Reference Figure 1 and Figure 2 The main unit 1 has a receiving slot 11 for inserting the battery 4. The outer shell of the main unit 1 is made of high-strength ABS plastic, which has good impact resistance and anti-aging properties. The locking assembly 2 includes a connector 21, a locking component 22, and a driving component 23. The connector 21 includes a connecting plate 211, a connecting frame 212, and a protective shell 213. The connecting plate 211 is located at the tail of the battery 4 and is parallel to the plane where the tail of the battery 4 is located. The connecting frame 212 is located on the side of the connecting plate 211 closer to the battery 4. One end of the opening of the connecting frame 212 is close to the connecting plate 211. The connecting frame 212 and the connecting plate 211 are integrated. The tail of the battery 4 can extend into the connecting frame 212 on the side away from the connecting plate 211. The connecting frame 212 is detachably connected to the battery 4 by screws. The protective shell 213 is fitted on the outside of the battery 4 and is detachably connected to the battery 4 by screws. The bottom of the protective shell 213 has a connection hole for the battery 4 interface to pass through so as to connect to the host 1. The connecting plate 211, the connecting frame 212 and the protective shell 213 can all be made of various materials, such as aluminum alloy or carbon fiber composite materials. These materials are lightweight and durable. The thickness of the connecting plate 211 is generally 1mm to 2mm to ensure sufficient strength and rigidity.
[0037] Reference Figure 2 , Figure 3 and Figure 4The locking component 22 includes two fixing plates 221, one placement plate 222, and two handle pieces 223. The two fixing plates 221 are located on the side of the connecting plate 211 away from the connecting frame 212, and each fixing plate 221 is close to the two sides directly opposite the connecting plate 211. A clearance is provided between the two fixing plates 221. The fixing plates 221 are fixedly connected to the connecting plate 211 by screws. The placement plate 222 is located between the two fixing plates 221, and is integrated with one fixing plate 221 on each side. The placement plate 222 contacts the connecting plate 211. The two fixing plates 221 and the placement plate 222 form an I-shape. The placement plate 222 is located in the middle of the connecting plate 211. The two handle pieces 223 are each located on one side of the placement plate 222, and their distribution direction is perpendicular to the distribution direction of the two fixing plates 221. The handle pieces 223 are slidably connected to the connecting plate 211, and the two handle pieces 223 face each other. The handle plate 223 moves towards or away from one side. It is L-shaped, and a slide rail 2231 is welded to the side of the handle plate 223 closest to the connecting plate 211. The slide rail 2231 extends from the placement plate 222 to the side furthest from the placement plate 222. A groove 2111 is provided on the connecting plate 2111 for the slide rail 2231 to slide. The other side of the handle plate 223 is close to the placement plate 222, and a clearance groove 22 is provided on the side of the placement plate 222 closest to the handle plate 223 to accommodate it. 21. The main unit 1 has a slot 12 in the receiving groove 11 for the buckle 223 to be engaged. When the buckle 223 is in the slot 12, the battery 4 can be fixed. The end of the buckle 223 away from the placement plate 222 is set in an inclined shape, and the inclined surface is located on the side of the buckle 223 near the connecting plate 211. The inclined surface is set upward from the side of the connecting plate 211 to the side away from the placement plate 222, so that the buckle 223 can be inserted into the slot 12.
[0038] Reference Figure 2 and Figure 3 The handle 223 can be made of stainless steel with good elasticity, or engineering plastics such as nylon or polyoxymethylene. These materials have good elasticity and durability. The handle 223 is about 5cm long, about 1cm wide, and about 1mm thick. The handle 223 has crisscrossing anti-slip textures to increase friction and facilitate manual operation. The depth of the anti-slip textures is about 0.5mm and the spacing is about 1mm to ensure a stable grip even in wet and slippery environments. The anti-slip textures can be made of wear-resistant polyurethane material, which has good wear resistance and anti-slip properties.
[0039] Reference Figure 2 , Figure 3 and Figure 4The driving component 23 includes two first springs 231, which correspond one-to-one with the handle pieces 223. The first springs 231 are located in the clearance groove 2221, and the setting direction of the first springs 231 is consistent with the sliding direction of the handle pieces 223. One end of the first spring 231 is welded to the placement plate 222, and the other end is welded to the handle pieces 223. In this embodiment, the first springs 231 are compression springs 231. When the battery 4 needs to be installed, first align the handle pieces 223 with the slot 12, and then gently press down the fixing plate 221. During the pressing process, the first springs 231 are in a compressed state. Once the external pressure is removed, the restoring force of the first springs 231 will cause the handle pieces 223 to automatically reset. A "click" sound indicates that the locking is complete. When the battery 4 needs to be removed, pinch the two handle pieces 223 with your hand and squeeze them towards the middle to make them disengage from the slot 12 on the main unit 1. At this time, the first springs 231 are compressed, and the battery 4 can be easily removed.
[0040] Reference Figure 2 The sealing component 3 is a waterproof sealing ring. The outer wall of the connecting frame 212 has an annular groove for the waterproof sealing ring to be accommodated. The waterproof sealing ring is fixedly bonded to the connecting frame 212. When the handle piece 223 is inserted into the slot 12, the waterproof sealing ring can seal the connection between the connecting frame 212 and the main unit 1, preventing moisture from entering the internal circuit. The waterproof sealing ring can be made of high-quality silicone rubber material, which can maintain good elasticity in the range of -40℃ to +150℃, or it can be made of fluororubber material. Both of these materials have good sealing and temperature resistance properties.
[0041] The implementation principle of the drone detection and attack integrated countermeasure device with easy battery removal in this application embodiment is as follows: When it is necessary to install the battery 4, the personnel take out the battery 4, align the guide rail with the guide groove, and insert the battery 4 into the host 1 until the handle 223 contacts the host 1. Gently press the fixing plate 221. During the pressing process, the first spring 231 is in a compressed state. Once the external pressure is removed, the restoring force of the first spring 231 will cause the handle 223 to automatically reset. A "click" sound indicates that the locking is complete. When it is necessary to remove the battery 4, pinch the two handles 223 with your hands and squeeze them in the middle to make them disengage from the slot 12 on the host 1. At this time, the first spring 231 is compressed, and the battery 4 can be easily removed.
[0042] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A drone detection and countermeasure device with easily removable battery, characterized in that: Includes a main unit (1) and a locking assembly (2), wherein the main unit (1) has a receiving slot (11) for inserting a battery (4); The locking assembly (2) includes a connector (21), a locking member (22), and a driving member (23). The connector (21) includes a connecting plate (211), which is connected to the tail of the battery (4). The connecting plate (211) is parallel to the plane where the tail of the battery (4) is located. The locking member (22) includes a placement plate (222) and two latches (223). The placement plate (222) is connected to the side of the connecting plate (211) away from the battery (4). The placement plate (222) is located at the... In the middle of the connecting plate (211), the two buckle pieces (223) are each located on one side of the placement plate (222). The buckle pieces (223) are slidably connected to the connecting plate (211). The host (1) has a slot (12) in the receiving groove (11) for the buckle pieces (223) to engage. The driving member (23) is connected to the placement plate (222) and is connected to the two buckle pieces (223) to drive the two buckle pieces (223) to move toward each other or away from each other.
2. The drone detection and countermeasure device with easily removable battery as described in claim 1, characterized in that: The driving component (23) includes two first springs (231), each of which corresponds to a handle piece (223). The orientation of the first springs (231) is consistent with the sliding direction of the handle piece (223). One end of the first spring (231) is fixed to the placement plate (222), and the other end is fixed to the handle piece (223).
3. The drone detection and countermeasure device with easily removable battery as described in claim 2, characterized in that: The handle plate (223) is provided with crisscrossing anti-slip textures.
4. The drone detection and countermeasure device with easily removable battery as described in claim 1, characterized in that: The connector (21) further includes a connecting frame (212), which is connected to the side of the connecting plate (211) near the battery (4). One end of the opening of the connecting frame (212) is close to the connecting plate (211), and the connecting frame (212) is detachably connected to the battery (4).
5. A drone detection and countermeasure device with easily removable battery as described in claim 4, characterized in that: It also includes a sealing component (3), which is a waterproof sealing ring. The outer wall of the connecting frame (212) is provided with an annular groove for the waterproof sealing ring to be accommodated. The waterproof sealing ring is fixed to the connecting frame (212).
6. The drone detection and countermeasure device with easily removable battery as described in claim 1, characterized in that: The handle piece (223) is fixed with a slide rail (2231) on the side near the connecting plate (211). The slide rail (2231) is set from the placement plate (222) to the side away from the placement plate (222). The connecting plate (211) has a groove (2111) for the slide rail (2231) to slide.
7. A drone detection and countermeasure device with easily removable battery as described in claim 6, characterized in that: The end of the handle piece (223) away from the placement plate (222) is inclined, and the inclined surface is located on the side of the handle piece (223) close to the connecting plate (211). The inclined surface is inclined upward from the side of the connecting plate (211) to the side of the handle piece (223) away from the placement plate (222).
8. A drone detection and countermeasure device with easily removable battery as described in claim 4, characterized in that: The connector (21) also includes a protective shell (213), which is fitted on the outside of the battery (4). The protective shell (213) is detachably connected to the battery (4) and is connected to the connecting frame (212).