Protection device and method for unmanned aerial vehicle detection equipment

By designing a protective shell, support rods, and flip-up protective plates for drone detection equipment, the problem of protecting drone detection equipment in extreme weather conditions has been solved, achieving rapid protection and improved stability while reducing maintenance costs.

CN121106792APending Publication Date: 2025-12-12HANGZHOU FULL SYNESTHESIA TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202511499238.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-10-20
Publication Date
2025-12-12

AI Technical Summary

Technical Problem

Existing drone detection equipment lacks protective features and cannot effectively protect the equipment in extreme weather conditions. Furthermore, frequent disassembly and relocation increase maintenance costs.

Method used

A protective device for UAV detection equipment was designed, including a protective shell, a support rod, a turntable, and a flip-up protective plate. The turntable controls the opening and closing of the protective plate to achieve rapid protection. The adjustment rod and connector of the diagonal rod simplify the installation, and the combination with a solar power panel reduces energy consumption.

Benefits of technology

It enables rapid protection of drone detection equipment in extreme weather conditions, reduces the frequency of disassembly and assembly, lowers maintenance costs, and improves equipment stability and energy efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a protection device and method for unmanned aerial vehicle detection equipment, and belongs to the technical field of unmanned aerial vehicle detection equipment. The equipment comprises a protective shell, and a detection module used for detecting the unmanned aerial vehicle is arranged in the protective shell; one end of the supporting rod is connected to the lower portion of the protective shell, a connecting piece is arranged at the other end of the supporting rod, and a plurality of first inclined rods are rotationally connected to the connecting piece; the chassis is arranged between the protective shell and the connecting piece and is fixedly connected with the supporting rod; the turntable is rotationally arranged below the chassis, a certain gap is reserved between the turntable and the chassis, and a plurality of turnover protection plates are arrayed on the circumference of the turntable. According to the invention, the rapid protection of the detection equipment can be realized, so that the detection equipment can be rapidly protected through the folding of the protection plates in a shutdown state, the protection of the detection equipment can be conveniently and rapidly completed when encountering some extreme weather, and the detection equipment is prevented from being exposed to an external environment for a long time.
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Description

TECHNICAL FIELD

[0001] The application relates to a protection device and method of an unmanned aerial vehicle detection device and belongs to the technical field of unmanned aerial vehicle detection devices. BACKGROUND

[0002] With the development of science and technology, unmanned aerial vehicles are widely used in more and more fields, and correspondingly, in order to ensure the safety of specific areas and environments, such as security, event security, border and classified area protection, anti-unmanned aerial vehicle technology also comes into being.

[0003] Anti-unmanned aerial vehicles generally include two parts of unmanned aerial vehicle detection and unmanned aerial vehicle countermeasures. The unmanned aerial vehicle detection can be realized through radar, photoelectric and other technologies. In order to improve the accuracy of detection, at present, a visual fusion method of multiple technologies is generally used for unmanned aerial vehicle detection. Such detection devices are mostly fixedly arranged in a certain place and belong to passive defense detection devices. However, such devices generally do not have a protection function, so that the control module and the power module are exposed to the external environment for a long time. When encountering rainy weather, an external protection device needs to be erected or removed. SUMMARY

[0004] The technical problem to be solved by the application is to provide a protection device and method of an unmanned aerial vehicle detection device, which solves the problem that the unmanned aerial vehicle detection device in the prior art does not have a protection function.

[0005] The technical problem to be solved by the application is solved by the following technical scheme: a protection device of an unmanned aerial vehicle detection device, comprising: A protection shell, wherein the protection shell is internally provided with a detection module for detecting unmanned aerial vehicles; A support rod, one end of which is connected to the lower part of the protection shell, and the other end is provided with a connecting piece, and a plurality of inclined rods I are rotatably connected to the connecting piece; A chassis is arranged between the protection shell and the connecting piece and is fixedly connected with the support rod; A turntable is rotatably arranged below the chassis and a certain gap is reserved between the turntable and the chassis. A plurality of reversible protection plates are circumferentially arranged on the turntable. The end part of the protection plate is attached to the outer wall of the protection shell after being turned over, and an inner cavity for placing a control module and a power module is formed between the protection plate and the chassis.

[0006] By adopting the above technical solution, rapid protection of the detection equipment can be achieved. This allows the equipment to be quickly protected by retracting the protective panels when not in operation, thus providing convenient and rapid protection during extreme weather conditions and preventing prolonged exposure to the external environment. When needed, the detection equipment can be put into use directly by controlling the number of protective panels that are opened, reducing the frequency of handling and storage, lowering maintenance costs, and eliminating the need for frequent disassembly and relocation.

[0007] The invention is further configured such that: the outer edge of the chassis has slots at equal intervals equal to the number of the protective plates; the bottom of the protective plates is provided with a retaining plate; the retaining plate rotates synchronously with the protective plates after the turntable rotates and is engaged in the gap between the chassis and the turntable.

[0008] By adopting the above technical solution, the protective plate can be quickly retracted and opened. Through the use of multiple slots and a corresponding number of protective plates, each protective plate can be independently adjusted to be closed, thereby controlling the number of protective plates that can be retracted. This allows the detection equipment to control the flow of external wind in windy weather and prevent the wind from being too strong and blowing the entire equipment away.

[0009] The present invention is further configured such that: the support rod is hollow inside and is provided with an adjusting rod, and the lower end of the adjusting rod is provided with a plurality of inclined rods two inclined upward, one end of the two inclined rods converging and fixed to the lower end of the adjusting rod, and the other end slidingly engaging with the first inclined rod.

[0010] By adopting the above technical solution, and by adjusting the depth of the adjusting rod inserted into the inner cavity of the support rod, the tilt angle of the three inclined rods can be quickly adjusted, thereby quickly and stably installing and fixing the entire detection equipment at the detection point.

[0011] The present invention is further configured such that the adjusting rod and the support rod are connected by a threaded knob.

[0012] By adopting the above technical solution, the adjustment distance can be better controlled, and more precise adjustment can be achieved, so that the detection equipment can be installed and fixed at the most stable support angle.

[0013] The present invention is further configured such that: the connecting member includes a fixed disk fixedly connected to the end of the support rod, the outer ring of the fixed disk has a plurality of extension blocks arranged therein, the extension blocks are provided with a transition groove, a transition member is rotatably connected in the transition groove, the other end of the transition member is inserted into one end of the inclined rod, and the inclined rod is rotatably connected to the connecting member through the transition member.

[0014] By adopting the above technical solution, the complex connection points are integrated into an independent connection module. Multiple diagonal rods are connected by adapters using connectors as the main body, which simplifies the installation process, makes the installation and connection of each diagonal rod more standardized, and improves construction efficiency.

[0015] The present invention is further configured such that: the adapter includes an insertion end inserted into the inclined rod and a rotating connection end rotatably connected to the adapter groove; the connector has a central slot, an abutment plate is slidably disposed in the central slot, sliding plates are connected to both sides of the abutment plate, a locking interface is provided at one end of the sliding plate near the adapter groove, a rotating rod is passed through the rotatable connection between the adapter and the connector, and both ends of the rotating rod are rotatably locked into the locking interface and a limit block is provided at the end.

[0016] By adopting the above technical solution and using an adapter for transitional connection, there is no direct linkage between the diagonal rod and the connecting component, thus making the connection structure more integrated and facilitating subsequent maintenance and repair. The adapter can be manufactured separately through standardized design, reducing the processing difficulty of the parts.

[0017] The present invention is further configured such that: the rotating rod includes an outer rod and an inner rod, the outer rod is hollow inside, and the inner rod is inserted into the inner cavity of the outer rod.

[0018] By adopting the above technical solution, it is easier to connect and the installation efficiency can be improved.

[0019] The present invention is further configured such that a solar power generation panel is provided on the inner side wall of the protective plate.

[0020] By adopting the above technical solutions, external energy can be effectively utilized, solar energy can be collected and stored for use, which helps to reduce one's own energy consumption.

[0021] The present invention is further configured such that: after the protective plate is attached to the protective shell, a reinforcing ring is sleeved on the outer wall of the protective plate.

[0022] By adopting the above technical solution, the fit between the protective plate and the protective core is made tighter, thereby improving the stability of the detection equipment.

[0023] This invention also relates to a protection method for unmanned aerial vehicle (UAV) detection equipment, specifically including the following steps: Step 1: Connect the multiple adapter pieces to the diagonal rod one, and fix them at the connection between the connector end of the adapter piece and the diagonal rod one by bolts or rivets; Step 2: Connect the first inclined rod to the connecting piece via the adapter, and make the end of the second inclined rod snap onto the first inclined rod. By controlling the extension length of the adjusting rod, the first inclined rod is pushed by the second inclined rod, thereby adjusting the support angle of the first inclined rod. Step 3: Adjust the rotation angle of the turntable so that the plates on the protective plate correspond to the positions of each slot on the chassis. Flip the protective plate in each direction to fit the protective plate against the outer wall of the protective shell. Step 4: Rotate the turntable again to move the clamping plate under the chassis. The clamping plate is held in the gap between the chassis and the turntable, completing the protective installation of the entire detection equipment.

[0024] By adopting the above technical solution, rapid protection of the protective shell can be achieved. By reasonably selecting the overlap of the protective plates in each direction of the protective shell and controlling the flipping of the protective plates, the corresponding components on the chassis can obtain a fully enclosed or semi-enclosed protective effect.

[0025] The beneficial effects of this invention are: By installing corresponding protective plates beneath the protective shell, rapid protection can be achieved for the relevant components on the chassis. Simultaneously, partially enclosing the protective shell within the protective plates enhances the overall protective effect of the detection equipment. By appropriately adjusting the opening and closing of each protective plate, the detection equipment can be stably supported in strong winds. Controlling the opening of the protective plates facing the wind direction effectively reduces the wind resistance of the entire detection equipment, allowing strong winds to flow directly through the two open protective plate openings, pass through the internal cavity, and exit from the other side of the detection equipment, thereby reducing the wind force experienced by the equipment.

[0026] By installing a protective plate, the detection equipment can quickly switch between working and protected states, avoiding repeated disassembly and installation of the detection equipment and eliminating the need for additional external protective facilities, thus improving the stability of the detection equipment.

[0027] By setting up angled rod one and angled rod two, the support angle of the detection device can be quickly adjusted. By adjusting the length of the outward extension of the adjusting rod, angled rod two is driven to rise and fall. When angled rod two rises, its locking point on angled rod one rises accordingly, thereby pushing angled rod one to expand outward. Conversely, it pushes angled rod one to contract inward, thus enabling rapid adjustment of multiple angled rods. Attached Figure Description

[0028] Figure 1 This is a three-dimensional structural diagram of the present invention; Figure 2 This is a three-dimensional structural diagram of the protective plate of the present invention; Figure 3This is a three-dimensional structural diagram of the protective plate of the present invention when it is opened; Figure 4 This is a three-dimensional structural diagram of the protective plate of the present invention when it is retracted; Figure 5 This is a three-dimensional structural diagram of the connector of the present invention; Figure 6 This is a three-dimensional structural diagram of the adapter of the present invention; Figure 7 For the present invention Figure 4 Enlarged schematic diagram of the structure at point A in the middle.

[0029] In the diagram: 1. Protective outer shell; 2. Support rod; 3. Connector; 301. Fixing plate; 302. Extension block; 303. Adapter groove; 304. Clamping tooth; 4. Angled rod one; 401. Pushing groove; 5. Chassis; 501. Groove; 6. Turntable; 7. Protective plate; 701. Clamping plate; 702. Buffer pad; 8. Adjusting rod; 9. Adapter; 901. Insertion end; 902. Rotating connection end; 903. Center slot; 904. Sliding plate; 905. Abutment plate; 906. Clamping interface; 10. Angled rod two; 11. Rotating rod; 111. Outer rod; 112. Inner rod; 12. Reinforcing ring; 13. Limiting block; 14. Adjusting knob. Detailed Implementation

[0030] To facilitate a clear understanding of the technical means, creative features, objectives, and effects of this invention, the invention will be further described below in conjunction with specific illustrations.

[0031] A protective device for drone detection equipment includes a protective housing 1. Inside the protective housing 1 is a detection module for detecting drones, specifically including an antenna module for receiving signals and corresponding components. The entire protective housing 1 integrates the necessary components for the drone detection module, such as a radar system and a radio spectrum detection module, which are commonly used modules in the prior art and will not be described in detail here.

[0032] like Figure 1As shown in the figure, the protective plate 7 is displayed alone after the other protective plates 7 have been removed. A support rod 2 is fixedly connected to the bottom surface of the protective shell 1. One end of the support rod 2 is connected to the lower part of the protective shell 1, and the other end is provided with a connector 3. Several diagonal rods 4 are rotatably connected to the connector 3. In this embodiment, there are three diagonal rods 4. A base plate 5 is fixedly inserted into the support rod 2 between the bottom surface of the protective shell 1 and the connector 3. The base plate 5 is disc-shaped with an opening in the middle. The support rod 2 is inserted into the opening in the middle of the base plate 5 and is fixedly connected to the base plate 5. A turntable 6 is inserted into the support rod 2 at intervals below the base plate 5. Multiple protective plates 7 are rotated on the outer edge of the turntable 6. The protective plates 7 can rotate with the connection point between them and the turntable 6 as the center, thereby controlling the opening and closing of the protective plates 7.

[0033] Specifically, such as Figure 1 and Figure 2 As shown, multiple rotating connecting rods are provided on the outer edge of the turntable 6, and a connecting block is provided on one side of the protective plate 7. The connecting block has a connecting hole in the middle for inserting the rotating connecting rods. After being flipped over, the protective plate 7 can fit against the outer wall of the protective shell 1, forming an internal cavity with the chassis 5 for housing the control module and power module. The corresponding control module and power module can be installed on the chassis 5.

[0034] The protective plate 7 provides rapid protection for the detection equipment, allowing it to be quickly retracted for protection even when the equipment is not in operation. This facilitates quick and easy protection during extreme weather conditions, preventing prolonged exposure to the external environment. When needed, the detection equipment can be put into use directly by controlling the number of protective plates 7 that are open, reducing the frequency of handling and storage, lowering maintenance costs, and eliminating the need for frequent disassembly and relocation.

[0035] like Figure 1 and Figure 3 As shown, the outer edge of the chassis 5 has slots 501 at equal intervals, the same number as the number of the protective plate 7. The bottom of the protective plate 7 is provided with a retaining plate 701. The retaining plate 701 is located on the upper part of the connecting block and is integrally formed with the connecting block. After the turntable 6 rotates, the retaining plate 701 rotates synchronously with the protective plate 7 and is inserted into the gap between the chassis 5 and the turntable 6.

[0036] The device enables rapid opening and closing of the protective plates 7. Multiple slots 501, used in conjunction with a corresponding number of protective plates 7, allow each protective plate 7 to be independently adjusted for closure, thus controlling the number of protective plates 7 that can be closed. This allows the detection equipment to control the flow of external wind in windy weather, preventing the entire device from being blown away by excessive wind. When adjusting the opening and closing of the protective plates 7, simply rotate the turntable 6, causing the clamping plates 701 to rotate to the position where the slots 501 are located on the base 5. The clamping plates 701 and slots 501 correspond to each other. Flip the protective plates 7, placing them against or away from the outer wall of the protective shell 1. Then rotate the turntable 6 again, rotating each clamping plate 701 until it is misaligned with the slots 501 on the turntable 6, thus clamping the clamping plates 701 in the gap between the turntable 6 and the base 5.

[0037] In other embodiments, the connection between the turntable 6 and the protective plate 7 can be an interference fit connection, that is, the rotating connecting rod and the through hole on the connecting block are tightly fitted and snapped together, so that the flipping angle can be better controlled when the protective plate 7 is flipped and adjusted.

[0038] Similarly, such as Figure 3 As shown, the connection between the turntable 6 and the protective plate 7 can also be achieved through multi-angle flipping, allowing the flipping angle of each protective plate 7 to be adjusted, and the protective plate 7 can be fixed when adjusted to different angles. The specific connection structure uses common connecting components in existing technology, which will not be described in detail here.

[0039] Furthermore, a solar panel is installed on the inner side of the protective plate 7. This solar panel collects and utilizes solar energy to power the detection equipment, effectively reducing its energy consumption. Under sufficient sunlight, the protective plate 7 can be adjusted to a specific position. Figure 3 In the open state shown, the solar panels located inside the protective plate 7 absorb external light and store it in the power supply module, providing energy for the entire detection device. In rainy weather, the protective plate 7 can be controlled to flip to the desired position. Figure 4 The state shown can effectively seal the internal components of the entire detection device, preventing external rainwater from corroding the detection device. At the same time, the solar panel is located inside the protective plate 7, which can also prevent the solar panel from being corroded by rainwater.

[0040] like Figure 4As shown, the protective plate 7 is an arc-shaped plate, narrow at one end and wide at the other. The wider end connects to the turntable 6, while the narrower end fits against the outer wall of the protective shell 1. Multiple protective plates 7, when simultaneously fitted against the outer wall of the protective shell 1, work with the chassis 5 to form an internal cavity. At this point, the multiple protective plates 7 collectively form a truncated cone shape, narrow at the top and wide at the bottom. Simultaneously, the upper part of the protective shell 1 is exposed outside the internal cavity, and the outer walls of the protective plates 7 are inclined. This structure allows the center of gravity of the internal cavity enclosed by the entire protective plate 7 to be tilted downwards, thus enabling the protective plate 7 to maintain a more stable state when subjected to wind from the external environment.

[0041] Furthermore, after the protective plate 7 is attached to the protective shell 1, a reinforcing ring 12 is fitted onto the outer wall of the protective plate 7. The reinforcing ring 12 can improve the stability of the protective plate 7. A buffer pad 702 is provided at the narrower end of the protective plate 7, which can prevent the protective plate 7 from directly contacting the outer wall of the protective shell 1, and at the same time improve the sealing of the internal cavity.

[0042] like Figure 1 As shown, the support rod 2 is hollow inside and equipped with an adjusting rod 8. The lower end of the adjusting rod 8 has several upwardly inclined second rods 10. One end of each second rod 10 is fixed to the lower end of the adjusting rod 8, and the other end is slidably engaged with the first inclined rod 4. By controlling the insertion depth of the adjusting rod 8 within the support rod 2, the support height of the second inclined rod 10 can be adjusted. This allows the second inclined rod 10 to push the first inclined rod 4, thereby adjusting the support angle of the first inclined rod 4.

[0043] Specifically, a sliding groove 401 is provided on the first inclined rod 4. The end of the second inclined rod 10 is slidably engaged in the sliding groove 401, while the other end is close to the lower end of the adjusting rod 8 and is rotatably connected to the lower end of the adjusting rod 8 by a connecting ring. A knob is provided at the lower end of the adjusting rod 8, and the adjusting rod 8 and the support rod 2 are threadedly engaged. The knob allows for more convenient control of the rotation of the entire adjusting rod 8, thereby adjusting the height of the three second inclined rods 10.

[0044] In this embodiment, since the tilt angle of the second inclined rod 10 is fixed relative to the adjusting rod 8, controlling the depth of the adjusting rod 8 inserted into the support rod 2 can change the engagement point between the end of the second inclined rod 10 and the push groove 401 on the first inclined rod 4. When the distance the adjusting rod 8 extends outward from the support rod 2 increases, it causes the second inclined rod 10 to move downward, thus lowering the engagement point between the second inclined rod 10 and the push groove 401, thereby causing the first inclined rod 4 to contract. Conversely, when the distance the adjusting rod 8 extends outward from the support rod 2 decreases, it causes the second inclined rod 10 to expand.

[0045] likeFigure 5 As shown, the connector 3 includes a fixed disk 301 fixedly connected to the end of the support rod 2. The fixed disk 301 has a plurality of extension blocks 302 arranged on its outer ring. The extension blocks 302 are provided with a transition groove 303. A transition piece 9 is rotatably connected in the transition groove 303. The other end of the transition piece 9 is inserted into one end of the inclined rod 4. The inclined rod 4 is rotatably connected to the connector 3 through the transition piece 9.

[0046] like Figure 6 As shown, the adapter 9 includes an insertion end 901 inserted into the inclined rod 4 and a rotating connection end 902 rotatably connected to the adapter groove 303. The connector 3 has a central slot 903, and an abutment plate 905 is slidably disposed in the central slot 903. Sliding plates 904 are connected to both sides of the abutment plate 905. A locking interface 906 is provided at one end of the sliding plate 904 near the adapter groove 303. A rotating rod 11 is passed through the rotatable connection between the adapter 9 and the connector 3. The two ends of the rotating rod 11 are rotatably locked into the locking interface 906 and a limit block 13 is provided at the end.

[0047] By connecting the connector 3 and the adapter 9, the diagonal rod 4 can be quickly inserted, thereby improving the installation efficiency of the diagonal rod 4. In this embodiment, there are three sets of extension blocks 302, which are circumferentially distributed on the outer edge of the fixed plate 301. Each set of extension blocks 302 has two extension blocks 302. Each extension block 302 has a locking tooth 304 at its end. The locking tooth 304 is used to engage with the end of the abutment plate 905. When the abutment plate 905 is engaged in the locking tooth 304, it can prevent the adapter 9 from rotating relative to the connector 3, thereby limiting the tilt angle of the diagonal rod 4 and preventing it from shaking.

[0048] Specifically, a spring is provided in the central slot 903 to abut against the abutment plate 905. The spring can apply elastic force to the abutment plate 905 to push it outward.

[0049] like Figure 5 As shown, the rotating rod 11 includes an outer rod 111 and an inner rod 112. The outer rod 111 is hollow, and the inner rod 112 is inserted into the inner cavity of the outer rod 111. In this embodiment, the inner rod 112 and the outer rod 111 are connected by a thread.

[0050] When connecting adapter 9 and connector 3, first insert the rotating connecting end 902 of adapter 9 into the central slot 903, aligning the central through hole of the rotating connecting end 902 with the through holes on the extension blocks 302 on both sides of the central slot 903. Then insert the outer rod 111 into the two through holes, thus initially connecting adapter 9 and connector 3. At this time, rotate the inner rod 112 to the inside of the outer rod 111, and simultaneously adjust the positions of the limiting blocks 13 at both ends of the outer rod 111 and the inner rod 112, so that the distance between the limiting holes at both ends and the extension blocks 302 is equal. This facilitates the subsequent insertion of the sliding plate 904 into the gap between the limiting holes and the extension blocks 302, so that the locking interface 906 at the end of the outer rod 111 and the sliding plate 904 engages with each other, and at the same time, the end of the abutment plate 905 engages with the locking teeth 304 provided at the end of the extension block 302. When it is necessary to adjust the angle between the adapter 9 and the connector 3, the sliding plate 904 is moved to separate the end of the abutment plate 905 from the locking tooth 304, and the position of the outer rod 111 is moved to change the gap between the two end limit blocks 13 and the extension block 302. At this time, the angle is adjusted by adjusting the adapter 9. After the angle is adjusted, the position of the outer rod 111 is readjusted so that the locking interface 906 is re-engaged in the gap between the limit hole and the extension block 302, and the end of the abutment plate 905 abuts against the locking tooth 304 again.

[0051] The adapter 9 and the connector 3 are connected in a coordinated manner, which not only facilitates the quick adjustment of the connection angle between the adapter 9 and the connector 3, but also prevents shaking after the angle adjustment is completed, thus improving the support stability of the entire detection device.

[0052] This invention also relates to a protection method for unmanned aerial vehicle (UAV) detection equipment, specifically including the following steps: Step 1: Connect multiple adapter pieces 9 to the diagonal rod 4 respectively, and fix them at the connection between the splicing end of the adapter piece 9 and the diagonal rod 4 by bolts or rivets; Step 2: Connect the first inclined rod 4 to the connecting piece 3 through the adapter 9, and make the end of the second inclined rod 10 snap onto the first inclined rod 4. By controlling the extension length of the adjusting rod 8, the first inclined rod 4 is pushed by the second inclined rod 10, thereby realizing the adjustment of the support angle of the first inclined rod 4. Step 3: Adjust the rotation angle of the turntable 6 so that the clamping plate 701 on the protective plate 7 corresponds to the position of each slot 501 on the chassis 5, flip the protective plate 7 in each direction, and fit the protective plate 7 with the outer wall of the protective shell 1. Step 4: Rotate turntable 6 again to rotate the clamping plate 701 to the bottom of chassis 5. The clamping plate 701 is clamped in the gap between chassis 5 and turntable 6, completing the protective installation of the entire detection equipment.

[0053] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments, and various changes and modifications can be made without departing from the spirit and scope of the invention, all of which fall within the scope of protection claimed by the present invention. The scope of protection of the present invention is defined by the appended claims and their equivalents.

Claims

1. A protective device for unmanned aerial vehicle (UAV) detection equipment, characterized in that, include: A protective shell (1) is provided inside which a detection module for detecting drones is provided; The support rod (2) is connected to the lower part of the protective shell (1) at one end and is provided with a connector (3) at the other end. Several inclined rods (4) are rotatably connected to the connector (3). The chassis (5) is disposed between the protective shell (1) and the connector (3) and is fixedly connected to the support rod (2); The turntable (6) is rotatably positioned below the chassis (5) and has a certain gap between it and the chassis (5). The turntable (6) has several rotatable protective plates (7) arranged in a circular array. After the protective plates (7) are flipped, their ends are attached to the outer wall of the protective shell (1) and together with the chassis (5), they form a built-in cavity for placing the control module and the power module.

2. The protective device for a drone detection equipment according to claim 1, characterized in that: The outer edge of the chassis (5) is provided with slots (501) at equal intervals as the number of the protective plate (7). The bottom of the protective plate (7) is provided with a retaining plate (701). After the turntable (6) rotates, the retaining plate (701) rotates synchronously with the protective plate (7) and is inserted into the gap between the chassis (5) and the turntable (6).

3. The protective device for a drone detection equipment according to claim 1, characterized in that: The support rod (2) is hollow inside and is provided with an adjusting rod (8). The lower end of the adjusting rod (8) is provided with several inclined rods (10) that are inclined upward. One end of the inclined rods (10) is fixed to the lower end of the adjusting rod (8), and the other end is slidably engaged with the inclined rod (4).

4. The protective device for a drone detection equipment according to claim 3, characterized in that: The adjusting rod (8) and the support rod (2) are connected by a threaded knob.

5. The protective device for a drone detection equipment according to claim 1, characterized in that: The connector (3) includes a fixed disk (301) fixedly connected to the end of the support rod (2). The fixed disk (301) has a plurality of extension blocks (302) arranged on its outer ring. The extension blocks (302) have a transition groove (303) on them. A transition piece (9) is rotatably connected in the transition groove (303). The other end of the transition piece (9) is inserted into one end of the inclined rod (4). The inclined rod (4) is rotatably connected to the connector (3) through the transition piece (9).

6. The protective device for a drone detection equipment according to claim 5, characterized in that: The adapter (9) includes an insertion end (901) inserted into the inclined rod (4) and a rotating connection end (902) rotatably connected to the adapter groove (303). The connector (3) has a central slot (903) and an abutment plate (905) slidably disposed in the central slot (903). The abutment plate (905) is connected to two sides of the sliding plate (904). The sliding plate (904) is provided with a locking interface (906) at one end near the adapter groove (303). A rotating rod (11) is passed through the rotatable connection between the adapter (9) and the connector (3). The two ends of the rotating rod (11) are rotatably locked into the locking interface (906) and a limit block (13) is provided at the end.

7. A protective device for a drone detection equipment according to claim 6, characterized in that: The rotating rod (11) includes an outer rod (111) and an inner rod (112). The outer rod (111) is hollow inside, and the inner rod (112) is inserted into the inner cavity of the outer rod (111).

8. The protective device for a drone detection equipment according to claim 1, characterized in that: The outer wall of the protective plate (7) is provided with a solar power generation panel.

9. The protective device for a drone detection equipment according to claim 1, characterized in that: After the protective plate (7) is attached to the protective shell (1), a reinforcing ring (12) is fitted on the outer wall of the protective plate (7).

10. A method for protecting unmanned aerial vehicle (UAV) detection equipment, employing the protective device as described in any one of claims 1-9, characterized in that, Includes the following steps: Step 1: Connect multiple adapters (9) to the diagonal rod (4) respectively, and fix them at the connection between the connector (9) and the diagonal rod (4) by bolts or rivets; Step 2: Connect the first inclined rod (4) to the connecting part (3) through the adapter (9), and make the end of the second inclined rod (10) snap onto the first inclined rod (4). By controlling the extension length of the adjusting rod (8), the first inclined rod (4) is pushed by the second inclined rod (10) to adjust the support angle of the first inclined rod (4). Step 3: Adjust the rotation angle of the turntable (6) so that the card plate (701) on the protective plate (7) corresponds to the position of each slot (501) on the chassis (5), flip the protective plate (7) in each direction, and fit the protective plate (7) with the outer wall of the protective shell (1); Step 4: Rotate the turntable (6) again to rotate the clamping plate (701) to the bottom of the chassis (5). The clamping plate (701) is clamped in the gap between the chassis (5) and the turntable (6), thus completing the protective installation of the entire detection equipment.