An integrated device installation structure for detecting interference and unmanned aerial vehicle detection and defense
Patent Information
- Application Number
- CN202610833123.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2026-06-10
- Publication Date
- 2026-09-18
- Estimated Expiration
- 2046-06-10
AI Technical Summary
[0003]目前,现有的无线电集成设备安装方案中,干扰组件通常采用四面阵布局,难以实现360°无死角覆盖,存在明显的信号盲区;同时,转接安装方式多采用一体成型腔体或大量螺钉拼装结构,导致设备安装不便、后期维护困难,且为获得干扰设备所需的倾斜安装角度,往往需要对底座进行复杂的整体加工,导致生产成本较高,不便于快速部署和更换
[0015]综上所述,由于采用了上述技术方案,本发明的有益效果至少包括:
Smart Images

Figure CN122373285B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of radio equipment installation technology, and discloses an integrated installation structure for a drone detection and defense system that integrates detection and interference. Background Technology
[0002] Integrated radio equipment (such as detection and jamming devices) is widely used in communications, emergency response, and security. It typically needs to be mounted on towers, poles, or vehicle-mounted platforms to achieve multi-directional signal coverage. During installation, multiple jamming and detection components must be deployed simultaneously; their installation location, angle, and arrangement directly affect the system's coverage and blind spot range.
[0003] Currently, in existing integrated radio equipment installation schemes, jamming components typically adopt a four-sided array layout, which makes it difficult to achieve 360° coverage without dead zones and results in obvious signal blind spots. At the same time, the adapter installation methods often use one-piece molded cavities or a structure assembled with a large number of screws, which makes the equipment inconvenient to install and difficult to maintain later. In addition, in order to obtain the tilt installation angle required by the jamming equipment, it is often necessary to perform complex overall processing on the base, resulting in high production costs and making it inconvenient for rapid deployment and replacement. Summary of the Invention
[0004] In view of this, this application provides an integrated installation structure for a detection and jamming-integrated UAV detection and defense device, so as to achieve circumferential blind-spot coverage, modular independent disassembly and assembly, and reduce installation costs.
[0005] To achieve the above objectives, the present invention adopts the following technical solution: This application provides an integrated installation structure for a detection and jamming integrated UAV detection and defense device, including a base plate, a polygonal frame on the edge of the base plate, a plurality of adapters arranged circumferentially on the polygonal frame, a plurality of connectors arranged on each adapter, and the plurality of connectors on the same adapter are used to be fixedly connected to the same jamming device, and the jamming devices corresponding to different adapters are installed independently of each other. The adapter has a mounting surface A perpendicular to the plane of the substrate, and the interference device has a mounting surface B. The mounting surface B and the mounting surface A form a non-zero angle.
[0006] Preferably, the polygonal frame is a regular hexagonal frame formed by connecting six support blocks end to end.
[0007] Preferably, each adapter includes two vertical mounting pieces and one connecting piece. The two vertical mounting pieces are respectively fixed to both ends of the same support block, and the connecting piece is connected to the top of the two vertical mounting pieces.
[0008] Preferably, each vertical mounting plate has a connector fixed on it, and two connectors on the same adapter are fixedly connected to the same interference device.
[0009] Preferably, the vertical mounting plate, the connector, and the interference device are each provided with corresponding pin holes, and the three are fixedly connected by passing pins through the pin holes.
[0010] Preferably, there are six adapters and six jamming devices, with each of the six jamming devices being independently installed on one of the six adapters.
[0011] Preferably, the mounting structure also includes a fixing plate and a tripod; The fixing plate is fixedly connected to the lower surface of the base plate, and the tripod is fixedly connected to the fixing plate.
[0012] Preferably, the mounting structure further includes a central mounting component, which is disposed in the central region of the substrate along the height direction of the adapter and is located within the space enclosed by the multiple adapters. The top of the central mounting component is used to connect the radome.
[0013] Preferably, the center mounting assembly includes a first flange, a connecting column, and a second flange. The first flange is fixedly connected to the center of the upper surface of the substrate, and the connecting column is vertically connected between the first flange and the second flange.
[0014] Preferably, a third flange is provided at the bottom of the radome, and the second flange is fixedly connected to the third flange.
[0015] In summary, due to the adoption of the above technical solutions, the beneficial effects of the present invention include at least the following: The integrated detection and jamming UAV detection and defense device installation structure of this application, by setting a polygonal frame at the edge of the substrate and arranging multiple adapters and connectors circumferentially on the polygonal frame, allows multiple jamming devices to be installed independently around the center without interfering with each other. At the same time, the non-zero included angle between the mounting surface A and the mounting surface B enables the jamming devices to be arranged at an angle, thereby solving the signal blind zone problem of the traditional four-sided array structure and achieving 360° circumferential coverage without dead angles. In addition, each jamming device is installed independently, which facilitates quick disassembly and assembly and subsequent maintenance, simplifies the installation structure, reduces the use of screws and other fasteners, and reduces production costs. Attached Figure Description
[0016] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only embodiments of this application. For those skilled in the art, other drawings can be obtained based on the provided drawings without creative effort.
[0017] Figure 1 An overall structural view of the installation structure provided by the present invention; Figure 2 This is a structural view of the connector provided by the present invention; Figure 3 Provided by the present invention Figure 2 Enlarged view at point C; Figure 4 This is a structural view of the adapter provided by the present invention; Figure 5 A B-side view of the interference device provided by the present invention; Figure 6 A structural view of the central mounting component provided by the present invention; Figure 7 Views of the radome and flange provided for this invention; Figure 8 A structural view of the tripod provided by the present invention.
[0018] In the picture: 310-Baseboard, 320-Polygonal frame, 321-Support block, 330-Adapter, 331-Vertical mounting plate, 332-Connecting plate, 340-Connector, 341-Pin hole, 350-Interference device, 360-Fixing plate, 370-Tripod, 380-Center mounting assembly, 381-First flange, 382-Connecting column, 383-Second flange, 390-Radiator, 391-Third flange; Detailed Implementation The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this application.
[0019] In this application, relational terms such as "first" and "second" are used merely to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitation, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes the element.
[0020] During their research on the installation structure of the integrated detection and jamming UAV detection and defense device, the inventors discovered that existing installation schemes typically employ a four-sided array layout or a one-piece molded cavity structure. Regarding signal coverage, this four-sided array layout places four jamming devices in four directions. Since the beam coverage of each jamming device is limited, blind spots inevitably exist between the four directions, resulting in a lack of signal detection or jamming capabilities in certain directions. Simultaneously, the one-piece molded or screw-assembled cavity structure fixes the installation angle and position of the jamming devices. To obtain the required tilted installation angle, complex machining or casting of the entire base is often required, leading to high processing difficulty and cost. Furthermore, the installation of each jamming device is interconnected; disassembling one device requires removing multiple surrounding fasteners, making installation and maintenance extremely inconvenient. Existing installation structures typically use an integral base, with the mounting surface integrally molded to the base, allowing each jamming device to share the same substrate. However, in this centralized structure, when six-sided coverage is required, the one-piece molding process drastically increases mold complexity, while the assembly method requires a large number of screws, increasing the risk of vibration and loosening. Meanwhile, to achieve the optimal radiation tilt angle, the entire mounting surface is typically machined into a tilted surface, which further increases processing costs. This design makes it difficult to achieve multi-faceted coverage, flexible tilt angles, and low-cost manufacturing simultaneously, resulting in a trade-off between existing installation structures and blind-spot-free coverage, ease of installation, production costs, and expansion flexibility, making it difficult to meet the needs of increasingly complex deployment scenarios.
[0021] Some embodiments of this application disclose an integrated installation structure 300 for detecting and defending unmanned aerial vehicles (UAVs) that integrates detection and jamming, including a base plate 310, the edge of which is provided with a polygonal frame 320.
[0022] like Figure 4 As shown, the substrate 310 is a flat structure with an upper surface and a lower surface. A polygonal frame 320 is disposed at the edge of the upper surface of the substrate 310 to support the subsequent interference device 350. The substrate 310 provides basic support for the entire mounting structure, and its shape can be circular, square, or other geometric shapes, as long as it can stably connect to the polygonal frame 320. In this embodiment, the substrate 310 is made of a circular steel plate to facilitate uniform stress distribution and reduce weight.
[0023] like Figure 1 , Figure 2 and Figure 4 As shown, the polygonal frame 320 is provided with a plurality of adapters 330 in the circumferential direction, and each adapter 330 is provided with a plurality of connectors 340. The plurality of connectors 340 on the same adapter 330 are used to be fixedly connected to the same jamming device 350, and the jamming devices 350 corresponding to different adapters 330 are installed independently of each other.
[0024] Multiple adapters 330 are arranged circumferentially on the polygonal frame 320 (see...) Figure 4 Each adapter 330 has an independently installed jamming device 350 (see...) Figure 1 This design achieves 360° circumferential coverage of the jamming devices 350, fundamentally solving the signal blind spot problem inherent in traditional four-sided array layouts. Simultaneously, each jamming device 350 is installed independently; when one device needs maintenance or replacement, it is not necessary to disassemble other jamming devices 350, greatly facilitating rapid maintenance and replacement operations at high altitudes or in confined spaces, and significantly reducing subsequent maintenance costs. In this embodiment, the adapter 330 is evenly distributed on each side of the polygonal frame 320, ensuring appropriate overlap of coverage sectors between adjacent jamming devices 350 and eliminating dead zones.
[0025] like Figure 4 , Figure 5 As shown, the adapter 330 has a mounting surface A perpendicular to the plane of the substrate 310, and the interference device 350 has a mounting surface B. A non-zero angle α is formed between the mounting surface B and the mounting surface A (e.g., ...). Figure 3 (As shown).
[0026] The non-zero included angle α is the radiation tilt angle of the interference device 350. By decomposing the tilt angle into an angle between the vertical mounting surface A of the adapter 330 and the mounting surface B of the interference device 350, the complex integral machining or casting of the entire base required to obtain the tilt angle in traditional solutions is avoided. This faceted mating structure only requires machining a simple bevel on the connector 340 or the adapter 330, significantly reducing manufacturing costs and processing difficulty, while allowing the mounting angle of the interference device 350 to be flexibly adjusted according to actual coverage requirements. In this embodiment, the non-zero included angle α is an acute angle, typically set between 5° and 15°, to achieve a balance between signal coverage distance and ground / sky coverage range. Since the mounting surface A of the adapter 330 is perpendicular to the substrate 310, its machining reference is simple, only requiring assurance of perpendicularity; while the mounting surface B of the interference device 350 can be individually machined into a bevel according to the final required tilt angle. The combination of the two yields a precise radiation direction.
[0027] like Figure 4 As shown, the polygonal frame 320 is a regular hexagonal frame formed by connecting six support blocks 321 end to end.
[0028] Six support blocks 321 form a regular hexagonal structure, providing exactly six mounting surfaces. This allows the six interference devices 350 to be evenly distributed in a 360° direction, with each device covering approximately a 60° sector. Overlapping areas between adjacent devices ensure comprehensive coverage without blind spots. The support blocks 321 can be rectangular strips, cut from sheet metal or profiles and then fixed end-to-end by welding or bolts. In this embodiment, the six support blocks 321 are welded together to form an integral regular hexagonal frame. Compared to integral casting or assembly with numerous screws, welding significantly reduces manufacturing costs and processing time. Furthermore, the welded structure offers excellent integrity, no risk of loosening, and superior fatigue resistance, making it particularly suitable for mobile environments with severe vibrations, such as those in vehicles.
[0029] like Figure 4 As shown, each of the adapters 330 includes two vertical mounting pieces 331 and a connecting piece 332. The two vertical mounting pieces 331 are respectively fixed to both ends of the same support block 321, and the connecting piece 332 is connected to the top of the two vertical mounting pieces 331.
[0030] The portal frame structure of the adapter 330 (two vertical mounting pieces 331 plus a top connecting piece 332) provides two symmetrical fixing points for the connector 340 while ensuring overall rigidity. The vertical mounting pieces 331 are perpendicular to the base plate 310, providing a stable vertical reference for forming the mounting surface A. Specifically, the two vertical mounting pieces 331 are welded or integrally formed at both ends of the same support block 321 (i.e., near the two endpoints of one side of the hexagon), and then the two are connected at the top by the connecting piece 332 to form a stable "Π"-shaped or portal frame structure. This structure fixes the relative position of the two vertical mounting pieces 331 and ensures that they will not deform during long-term use, thereby ensuring the installation accuracy of the interference device 350.
[0031] like Figure 4 As shown, each of the vertical mounting pieces 331 has a connector 340 fixed on it, and the two connectors 340 on the same adapter 330 are fixedly connected to the same interference device 350.
[0032] Each jamming device 350 is fixed by two connectors 340, forming a two-point support, which ensures connection reliability and avoids loosening or shaking caused by a single-point connection. The two connectors 340 are respectively fixed to two vertical mounting plates 331, resulting in even force distribution and excellent vibration resistance for the jamming device 350. The connectors 340 can be designed as bosses or protrusions, with the side facing the jamming device 350 serving as the contact surface. Since each adapter 330 has two vertical mounting plates 331, each adapter 330 corresponds to two connectors 340, which together fix the same jamming device 350. This "one-point, two-mount" installation method ensures stability while also making the assembly and disassembly of the jamming device 350 very quick—the entire device can be removed simply by disconnecting the two connection points.
[0033] like Figure 2 , Figure 3 and Figure 5 As shown, the vertical mounting plate 331, the connector 340 and the interference device 350 are respectively provided with corresponding pin holes 341, and the three are fixedly connected by pins 342 passing through the pin holes 341.
[0034] Using pins 342 as fasteners enables rapid insertion and connection of the vertical mounting plate 331, connector 340, and interference device 350. The engagement of pins 342 with pin holes 341 has a self-guiding function, allowing operators to perform "blind insertion" for positioning and locking at high altitudes or in tower installation sites with obstructed visibility, eliminating the need for visual alignment and greatly improving installation convenience. Simultaneously, the pin connection reduces the use of threaded fasteners, preventing screw loosening due to vibration and enhancing long-term reliability. In this embodiment, two pin holes 341 are provided at each connection position to prevent the interference device 350 from rotating around a single pin axis. Pins 342 can be selected as locating pins or cotter pins with elastic sleeves, facilitating insertion while providing self-locking to prevent retraction.
[0035] like Figure 1 and Figure 4 As shown, there are six adapters 330 and six jamming devices 350, and the six jamming devices 350 are each independently installed on the six adapters 330.
[0036] The independent installation layout of the six jamming devices 350 achieves 360° coverage without blind spots while maintaining modular maintainability. Each jamming device 350 can be used as an independent unit for angle calibration, performance testing, or quick replacement, significantly improving field deployment efficiency. It should be noted that although this embodiment uses six adapters and six jamming devices, those skilled in the art can choose other numbers (such as four, eight, etc.) according to actual coverage requirements, which also fall within the scope of protection of this application.
[0037] like Figure 1 and Figure 8 As shown, the mounting structure 300 also includes a fixing plate 360 and a tripod 370; the fixing plate 360 is fixedly connected to the lower surface of the base plate 310, and the tripod 370 is fixedly connected to the fixing plate 360.
[0038] The tripod 370 is connected to the mounting plate 360 on the lower surface of the base plate 310, providing stable ground or vehicle-mounted support for the entire installation structure. The mounting plate 360 can be a square plate to increase the contact area with the top of the tripod 370, dispersing wind and vibration loads and ensuring the overall machine's anti-tipping capability in harsh environments. The mounting plate 360 and the base plate 310 can be connected by welding or high-strength bolts, while the legs of the tripod 370 are fixed to the mounting plate 360 by welding. In this embodiment, the mounting plate 360 is a square steel plate with bolt holes near its four corners, corresponding to the bolt holes on the base plate, to achieve a secure connection.
[0039] like Figure 1 , Figure 4 and Figure 6 As shown, the mounting structure 300 also includes a central mounting component 380, which is disposed in the central region of the substrate 310 along the height direction of the adapter 330 and is located within the space enclosed by the plurality of adapters 330. The top end of the central mounting component 380 is used to connect to the radome 390.
[0040] The central mounting assembly 380 is located in the center of the substrate 310, within the internal space surrounded by six adapters 330, making full use of the central area of the substrate 310 and achieving a high degree of integration in the overall structure. The radome 390 is mounted on top of the central mounting assembly 380, and its height can be higher than the surrounding adapters 330 and jamming device 350, thereby achieving better signal transmission and reception line-of-sight. Specifically, the bottom of the central mounting assembly 380 is fixed to the center of the upper surface of the substrate 310, and its vertical height is approximately equal to or slightly higher than the door frame height of the adapters 330, allowing the radome 390 mounted on top to protrude above the jamming device 350, preventing the jamming device 350 from obstructing the antenna signal.
[0041] like Figure 6 As shown, the center mounting assembly 380 includes a first flange 381, a connecting post 382, and a second flange 383. The first flange 381 is fixedly connected to the center of the upper surface of the substrate 310, and the connecting post 382 is vertically connected between the first flange 381 and the second flange 383.
[0042] The vertical columnar structure formed by the first flange 381, connecting column 382, and second flange 383 provides robust lifting support for the radome 390. The length of the connecting column 382 can be designed as needed to achieve the ideal mounting height of the radome 390 and avoid obstruction by surrounding interfering equipment 350. The first flange 381 is fixed to the base plate 310 by screws or pins, and both ends of the connecting column 382 are welded or threaded to the two flanges respectively, thus forming a rigid column. The upper surface of the second flange 383 is used to connect the radome 390.
[0043] like Figure 6 and Figure 7 As shown, a third flange 391 is provided at the bottom of the radome 390, and the second flange 383 is fixedly connected to the third flange 391.
[0044] The flange connection between the second flange 383 and the third flange 391 enables rapid assembly of the radome 390 and the central mounting assembly 380. The flange connection can employ a screw or snap-fit structure, facilitating maintenance or replacement of the main unit inside the radome 390. In this embodiment, the second flange 383 and the third flange 391 have corresponding bolt holes, secured with bolts and lock nuts to ensure they do not loosen under vibration. The radome 390 houses the radio main unit; the radome itself is made of a wave-transparent material, protecting the internal electronic components from weathering.
[0045] As a preferred embodiment, the six support blocks 321 are fixedly connected end-to-end by welding. Compared with integral casting or assembly with a large number of screws, the welding process significantly reduces manufacturing costs and processing cycles. At the same time, the welded structure has the characteristics of good integrity, no risk of loosening, and excellent fatigue resistance, making it particularly suitable for mobile scenarios with severe vibrations, such as vehicle-mounted applications. In scenarios with higher electromagnetic compatibility requirements, overall annealing can be performed after welding to eliminate internal stress, followed by spraying conductive paint to provide grounding shielding.
[0046] In this embodiment, the non-zero angle α ranges from 5° to 15°. This angle range ensures the required directionality for the beam of the jamming device 350 to cover downwards or upwards, without causing stress on the mounting base or interference between the jamming device 350 and adjacent components due to excessive tilt angle. Depending on different application scenarios (such as urban canyons, open plains, or mountains), different α values can be selected. Even on the same mounting structure, different adapters 330 can have different α values to achieve customized coverage waveforms. For example, jamming devices facing tall buildings can be set with a larger downward tilt angle, while jamming devices facing flat ground can be set with a smaller tilt angle.
[0047] It should be noted that the mounting surface B of the interference device 350 is an inclined surface of the housing. Rubber vibration damping pads can also be added between the connector 340 and the vertical mounting plate 331, and between the connector 340 and the interference device 350, to absorb high-frequency vibrations and protect internal electronic components. The substrate 310, support block 321, adapter 330, and connector 340 can all be made of aluminum alloy or stainless steel, with anti-corrosion treatment (such as anodizing or spraying) to adapt to long-term outdoor use.
[0048] Furthermore, to facilitate cable routing, cable routing holes can be made on the substrate 310, and cable trays can be provided inside the support block 321 or the door frame of the adapter 330. This allows the power and signal cables of the interference device 350 to be neatly gathered near the central mounting component 380, and then uniformly led down to the conduit inside the tripod 370. This concealed cabling design is both aesthetically pleasing and prevents cables from being damaged by wind.
[0049] In summary, the integrated detection and jamming UAV detection and defense installation structure provided in this application achieves 360° blind-spot-free coverage and modular quick-release of the jamming device through six independently installed adapters and connectors arranged circumferentially on a regular hexagonal frame; it obtains a precise radiation tilt angle at low cost through the non-zero angle between the vertical mounting surface and the jamming device mounting surface; it achieves rapid blind-plug installation at high altitudes through pin-to-pin connections; and it integrates an antenna radome through a central mounting component, making the overall structure compact and functionally complete. This installation structure is particularly suitable for scenarios requiring rapid deployment and blind-spot-free coverage, such as emergency communication, vehicle-mounted mobile detection, and border and coastal defense monitoring.
[0050] Although preferred embodiments of the invention have been described, those skilled in the art, upon learning the basic inventive concept, can make other changes and modifications to these embodiments. Therefore, the appended claims are intended to be interpreted as including both the preferred embodiments and all changes and modifications falling within the scope of the invention.
[0051] Obviously, those skilled in the art can make various modifications and variations to this invention without departing from its spirit and scope. Therefore, if these modifications and variations fall within the scope of the claims of this invention and their equivalents, this invention also intends to include these modifications and variations.
[0052] The above description is merely a specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any changes or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in the present invention should be included within the scope of protection of the present invention.
Claims
1. An integrated installation structure for a detection and jamming-integrated UAV detection and defense device, comprising a base plate, wherein a polygonal frame is provided at the edge of the base plate, characterized in that, The polygonal frame is provided with multiple adapters in the circumferential direction, and each adapter is provided with multiple connectors. The multiple connectors on the same adapter are used to be fixedly connected to the same jamming device, and the jamming devices corresponding to different adapters are installed independently of each other. The adapter has a mounting surface A perpendicular to the plane of the substrate, and the interference device has a mounting surface B, with a non-zero angle between the mounting surface B and the mounting surface A.
2. The installation structure of the integrated detection and jamming unmanned aerial vehicle (UAV) detection and defense device according to claim 1, characterized in that, The polygonal frame is a regular hexagonal frame formed by connecting six support blocks end to end.
3. The installation structure of the integrated detection and jamming unmanned aerial vehicle (UAV) detection and defense device according to claim 2, characterized in that, Each of the adapters includes two vertical mounting pieces and a connecting piece. The two vertical mounting pieces are respectively fixed to both ends of the same support block, and the connecting piece is connected to the top of the two vertical mounting pieces.
4. The installation structure of the integrated UAV detection and defense device for detecting interference as described in claim 3, characterized in that, Each of the vertical mounting pieces has a connector fixed on it, and two connectors on the same adapter are fixedly connected to the same interference device.
5. The installation structure of the integrated UAV detection and defense device for detecting interference as described in claim 4, characterized in that, The vertical mounting plate, the connector, and the interference device are each provided with corresponding pin holes, and the three are fixedly connected by pins passing through the pin holes.
6. The installation structure of the integrated UAV detection and defense device for detecting interference as described in claim 2, characterized in that, The number of the adapter and the number of the jamming devices are both six, and the six jamming devices are independently installed on the six adapters.
7. The installation structure of the integrated detection and jamming unmanned aerial vehicle (UAV) detection and defense device according to claim 1, characterized in that, The mounting structure also includes a fixing plate and a tripod; The fixing plate is fixedly connected to the lower surface of the substrate, and the tripod is fixedly connected to the fixing plate.
8. The installation structure of the integrated UAV detection and defense device for detecting interference as described in claim 6, characterized in that, The mounting structure further includes a central mounting component, which is disposed in the central region of the substrate along the height direction of the adapter and within the space enclosed by the plurality of adapters. The top of the central mounting component is used to connect the antenna radome.
9. The installation structure of an integrated UAV detection and defense device for detecting interference as described in claim 8, characterized in that, The central mounting assembly includes a first flange, a connecting post, and a second flange. The first flange is fixedly connected to the center of the upper surface of the substrate, and the connecting post is vertically connected between the first flange and the second flange.
10. The installation structure of an integrated UAV detection and defense device for detecting interference as described in claim 9, characterized in that, The bottom of the radome is provided with a third flange, and the second flange is fixedly connected to the third flange.
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