Interference device and detection and drying integrated equipment
By dividing the power amplifier modules in the drone countermeasure equipment into two categories according to frequency and optimizing their layout, combined with heat dissipation measures, the problem of power amplifier module overheating was solved, ensuring the stable operation of the equipment and the countermeasure effect.
Patent Information
- Application Number
- CN202422648766.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-31
- Publication Date
- 2025-09-30
- Estimated Expiration
- 2034-10-31
AI Technical Summary
The power amplifier module in the drone countermeasure equipment is prone to overheating after working for a long time, affecting the equipment's working performance and countermeasure effect.
The power amplifier modules are divided into a first power amplifier module with low usage frequency and a second power amplifier module with high usage frequency. The second power amplifier modules are interspersed on the inner surface of the box. Combined with cooling fans and cooling fins, the layout of the power amplifier modules is optimized to promote heat dissipation.
It effectively avoids overheating of the power amplifier module, ensures stable and reliable operation of the equipment, and improves the effect of drone counter-interference.
Smart Images

Figure CN223402477U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of UAV countermeasures, in particular to an interference device and a reconnaissance-interference integrated equipment. Background Art
[0002] With the development of drone technology and its increasing widespread use, the threat posed by drones to low-altitude security, public safety, and personal privacy has become increasingly apparent. Consequently, drone countermeasures have emerged. This technology primarily utilizes a power amplifier module to generate jamming signals, which are then transmitted into the airspace via an antenna. This jamming signal disrupts communications between the drone and its ground control equipment, ultimately disrupting the drone. The prolonged output of jamming signals by the power amplifier module inevitably generates heat, which in turn increases the module's temperature. Excessive temperature directly impacts the module's performance, reducing its effectiveness in countermeasures against drones. Therefore, effectively preventing overheating is crucial to ensuring effective drone countermeasures. Utility Model Content
[0003] The purpose of the utility model is to provide an interference device and an integrated detection and interference device, which has good heat dissipation performance for structures such as power amplifier modules and ensures stable and reliable operation of the equipment.
[0004] In order to solve the above technical problems, the present invention provides an interference device, comprising:
[0005] A heat-conductive housing; a plurality of power amplifier modules disposed on the same inner surface of the housing; and an antenna connected to the power amplifier modules;
[0006] The power amplifier module includes a plurality of first power amplifier modules and a plurality of second power amplifier modules, and the usage frequency of the first power amplifier modules is lower than the usage frequency of the second power amplifier modules;
[0007] Each of the first power amplifier modules and the second power amplifier modules is arranged around the center of the inner surface of the box, and each of the second power amplifier modules is arranged in the area between two adjacent first power amplifier modules.
[0008] In an optional embodiment of the present application, the distance between each of the first power amplifier modules and the center point of the inner surface of the box is smaller than the distance between each of the second power amplifier modules and the center point of the inner surface.
[0009] In an optional embodiment of the present application, the inner surface of the box on which the power amplifier module is arranged is a rectangular surface;
[0010] There are four first power amplifier modules and four second power amplifier modules;
[0011] The four first power amplifier modules are arranged in a cross shape along the symmetry line of the rectangular surface;
[0012] The four second power amplifier modules are respectively interleaved between two adjacent mutually perpendicular first power amplifier modules, and the second power amplifier modules are tilted at an angle of 15 degrees to 60 degrees relative to the first power amplifier modules.
[0013] In an optional embodiment of the present application, the two second power amplifier modules that are farthest apart are inclined in opposite directions relative to the two first power amplifier modules on the same straight line.
[0014] In an optional embodiment of the present application, the first power amplifier module includes four modules for outputting interference signals in 0.4G, 0.8G, 0.9G and 1.2G frequency bands respectively;
[0015] The second power amplifier module includes four modules for outputting interference signals in the 1.5G, 2.4G, 5.2G and 5.8G frequency bands respectively.
[0016] In an optional embodiment of the present application, the rectangular surface is divided into four rectangular areas by four first power amplifier modules;
[0017] The two modules of the second power amplifier module with the highest usage frequency are respectively arranged in two non-adjacent rectangular areas of the four rectangular areas.
[0018] In an optional embodiment of the present application, each of the power amplifier modules is detachably arranged on the inner surface of the box, so that the positions of the power amplifier modules are interchangeable.
[0019] In an optional embodiment of the present application, a cooling fan is further provided on the outside of the box; the cooling fan is provided on a side of the box where the power amplifier module is provided.
[0020] In an optional embodiment of the present application, a plurality of cooling fans are provided, and the center of each cooling fan is directly opposite to the center of each second power amplifier module.
[0021] In an optional embodiment of the present application, heat dissipation fins are further provided on the outer surface of the box.
[0022] A detection and jamming device, comprising the jamming device as described in any one of the above items, and a main control module and a detection module built into a housing of the jamming device;
[0023] The antenna includes a detection antenna connected to the detection module and an interference antenna connected to the power amplifier module.
[0024] The utility model provides an interference device and an integrated detection and interference device, the interference device comprising: a box body with thermal conductivity; a plurality of power amplifier modules arranged on the same inner surface of the box body; and an antenna connected to the power amplifier module; wherein the power amplifier module comprises a plurality of first power amplifier modules and a plurality of second power amplifier modules, and the operating frequency of the first power amplifier module is lower than the operating frequency of the second power amplifier module; each of the first power amplifier modules and the second power amplifier module are arranged around the center of the inner surface of the box body, and each of the second power amplifier modules are interspersed in the area between two adjacent first power amplifier modules.
[0025] In this application, multiple power amplifier modules are concentratedly built into the same box, and the power amplifier modules are further divided into a first power amplifier module with low usage frequency and a second power amplifier module with high usage frequency according to different usage frequencies; the second power amplifier module generates relatively more heat in actual application because of its higher usage frequency; for this reason, the first power amplifier module and the second power amplifier module are interspersed with each other, so that the second power amplifier modules can be more evenly dispersed on the inner surface of the box, which can make the temperature on the side of the box where the power amplifier modules are set more balanced, and can increase the relative distance between the second power amplifier modules as much as possible, thereby avoiding concentrated heat distribution, which is conducive to promoting the heat dissipation of each second power amplifier module as soon as possible, thereby avoiding the problem of overheating of the power amplifier modules, and ensuring the good and reliable working performance of the power amplifier modules.
[0026] In another optional embodiment of the present application, the first power amplifier module is arranged at a position closer to the center point of the inner surface of the box, while the second power amplifier module is arranged at a position farther from the center point of the inner surface, thereby ensuring better heat dissipation effect of the second power amplifier module. BRIEF DESCRIPTION OF THE DRAWINGS
[0027] In order to more clearly illustrate the embodiments of the present invention or the technical solutions of the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0028] Figure 1 A schematic diagram of the structure of the jamming device provided in an embodiment of the present application;
[0029] Figure 2 A schematic diagram of the arrangement of the power amplifier modules provided in an embodiment of the present application;
[0030] In the accompanying drawings, 1 is a box, 2 is a heat dissipation fin, 3 is a heat dissipation fan, 4 is an antenna, 5 is a power amplifier module, 51 is a first power amplifier module, and 52 is a second power amplifier module. DETAILED DESCRIPTION
[0031] The core of the utility model is to provide an interference device and an integrated detection and interference device. By rationally arranging various functional modules, the good heat dissipation effect of the power amplifier module is maintained, and the reliability of the interference device is guaranteed to a certain extent.
[0032] To help those skilled in the art better understand the present invention, the present invention is further described below in conjunction with the accompanying drawings and specific embodiments. Obviously, the embodiments described are only a portion of the present invention, not all of the embodiments. All other embodiments derived by those skilled in the art based on the embodiments of the present invention without inventive effort are also within the scope of protection of the present invention.
[0033] like Figures 1 to 2 As shown, Figure 1 A schematic diagram of the structure of the jamming device provided in an embodiment of the present application; Figure 2 This is a schematic diagram of the arrangement of the power amplifier modules provided in an embodiment of the present application.
[0034] The jamming device involved in this application is mainly used to detect and interfere with unauthorized or non-compliant drones in a specific airspace.
[0035] In a specific embodiment of the present application, the interference device may include:
[0036] A heat-conductive housing 1; a power amplifier module 5 disposed inside the housing 1; an antenna 4 disposed outside the housing 1 and connected to the power amplifier module 5;
[0037] The power amplifier module 5 includes a plurality of first power amplifier modules 51 and a plurality of second power amplifier modules 52, and the use frequency of the first power amplifier module 51 is lower than the use frequency of the second power amplifier module 52;
[0038] Each of the first power amplifier modules 51 and the second power amplifier modules 51 is disposed around the center of the inner surface of the box 1 , and each of the second power amplifier modules 52 is disposed in the area between two adjacent first power amplifier modules 51 .
[0039] like Figure 1 and Figure 2 As shown, the box body 1 in this embodiment is roughly a rectangular structure. A plurality of power amplifier modules 5 are arranged inside the box body 1, and a plurality of antennas are arranged outside the box body 1. When the power amplifier module 5 generates an interference signal, it can be output to the airspace through the antenna 4, thereby achieving interference and expulsion of the invading drone in the airspace.
[0040] In actual applications, the housing 1 can also be integrated with a main control module and a detection module. Accordingly, the antenna 4 can include an interference antenna connected to the power amplifier module 5 and a detection antenna connected to the detection module. The detection module can thus collect drone signals in the airspace through the detection antenna and analyze and determine the frequency band information of the drone signals. Based on this frequency band information, the main control module can control the power amplifier module 5 to output an interference signal of the corresponding frequency band. As can be seen, in the housing 1 of this embodiment, in addition to the built-in power amplifier module 5, the main control module and the detection module are further integrated, so that the interference device can form a device that integrates detection and interference functions.
[0041] In addition, the multiple power amplifier modules 5 provided in this embodiment should be used to output interference signals of different frequency bands. Figure 1 Taking the power amplifier modules 5 in the embodiment as an example, the power amplifier modules 5 in this embodiment may include modules that respectively output interference signals of eight different frequency bands, namely 0.4G, 0.8G, 0.9G, 1.2G, 1.5G, 2.4G, 5.2G and 5.8G.
[0042] On this basis, the multiple power amplifier modules 5 in this embodiment are centrally arranged flatly on the inner surface of the same side of the box 1. The box 1 is preferably formed of a material with good heat dissipation performance, so that the heat generated by the power amplifier modules 5 can be dissipated through conduction of the box 1.
[0043] In this embodiment, each power amplifier module 5 is divided into a first power amplifier module 51 and a second power amplifier module 52 based on the frequency of use of each power amplifier module 5 in actual applications. As described above, each power amplifier module 5 in this embodiment is configured to output interference signals of different frequency bands. The frequency band of the interference signal is determined based on the frequency band used by the drone to be driven away. For example, when a drone and its ground control equipment communicate using a 5.8GHz signal, the power amplifier module 5 outputs an interference signal with a 5.8GHz frequency band but a signal strength far greater than that of the drone's communication signal, thereby overriding the drone's communication signal and preventing the drone from communicating with its ground control equipment and returning to flight. Therefore, for each power amplifier module 5 configured to output interference signals of different frequency bands, the frequency of use is generally determined by the number of drones currently using which frequency band for communication.
[0044] Furthermore, for each power amplifier module 5, the amount of heat generated in actual use is primarily determined by its frequency of use. This frequency can be determined based on big data statistics. For example, the percentage of times each power amplifier module 5 is used over a total of 100 or 1000 uses can be calculated. Of course, the power level of the power amplifier module 5 itself also affects the amount of heat it generates. However, in actual use, the power amplifier modules 5 used to output interference signals in different frequency bands are generally similar. Therefore, in this embodiment, the effect of the power level of each power amplifier module 5 on the amount of heat generated can be temporarily disregarded. Furthermore, if there is a relatively large difference in the power levels corresponding to the power amplifier modules 5 generating interference signals in different frequency bands, the first power amplifier module 51 and the second power amplifier module 52 can be directly divided based on the total amount of heat generated per unit time, which can be a day, a week, or a month. The module with the lowest total heat output is classified as the first power amplifier module 51, while the module with the highest total heat output is classified as the second power amplifier module 52. Thus, the division of the power amplifier modules 5 in this embodiment is essentially based on the amount of heat generated.
[0045] Taking the above-mentioned power amplifier module 5 as an example, which includes interference signals of eight different frequency bands, namely 0.4G, 0.8G, 0.9G, 1.2G, 1.5G, 2.4G, 5.2G and 5.8G, the power amplifier module 5 used to output interference signals of the four frequency bands of 0.4G, 0.8G, 0.9G and 1.2G can be divided into a first power amplifier module 51; and the power amplifier module 5 used to output interference signals of the four frequency bands of 1.5G, 2.4G, 5.2G and 5.8G can be divided into a second power amplifier module 52.
[0046] It should be noted that in this application, when dividing the first power amplifier module 51 and the second power amplifier module 52, the usage frequencies of the multiple first power amplifier modules 51 are not completely the same, and the usage frequencies of the multiple second power amplifier modules 52 are also not completely the same. When actually dividing the power amplifier modules 5, the first power amplifier modules 51 and the second power amplifier modules 52 can be divided in half or approximately in half based on the total number of power amplifier modules to ensure that the usage frequency of the first power amplifier module 51 with the highest usage frequency is not higher than the usage frequency of the second power amplifier module 52 with the lowest usage frequency.
[0047] On the basis of dividing each power amplifier module 5, each second power amplifier module 52 is interspersed in the area between two adjacent second power amplifier modules 52, so that the second power amplifier modules 52 can be arranged more dispersedly, and the first power amplifier module 51 with a lower temperature can isolate the two adjacent second power amplifier modules 52 to a certain extent, avoiding the heat between the two adjacent second power amplifier modules 52 from flowing to each other and affecting the heat dissipation speed. In this way, the second power amplifier modules 52 with higher heat can be evenly dispersed, avoiding excessive concentration of high-temperature power amplifier modules 5, which is conducive to promoting uniform distribution of heat and rapid heat dissipation of each power amplifier module 5.
[0048] Based on the above discussion, the present application divides each power amplifier module 5 into a first power amplifier module 51 and a second power amplifier module 52 based on the usage frequency of each power amplifier module 5, and intersperses the first power amplifier module 51 and the second power amplifier module 52. On the basis of the second power amplifier module 52 that generates higher heat being separated from each other by the first power amplifier module 51, the heat distribution of each power amplifier module 5 on the entire inner surface is ensured to be balanced, which is beneficial to improving the heat dissipation speed of the power amplifier module, thereby avoiding the problem of overheating of the power amplifier module 5, thereby ensuring the good working performance of the power amplifier module.
[0049] In addition, in this embodiment, the first power amplifier module 51 of each power amplifier module 5 can be further arranged on the inner surface of the box 1 at a position closer to the center point of the inner surface, while the second power amplifier module 52 is arranged at a position farther from the center point of the inner surface.
[0050] It is understandable that, in the side housings of the enclosure 1 where the power amplifier modules 5 are arranged, the edge areas clearly have better heat dissipation performance, while the central area has relatively weaker heat dissipation performance. In other words, in this embodiment, the first power amplifier module 51 is arranged in an area of the inner surface of the enclosure 1 with weaker heat dissipation performance, while the second power amplifier module 52 is arranged in an area of the inner surface of the enclosure 1 with stronger heat dissipation performance. This arrangement of the first and second power amplifier modules 51, 52 in this embodiment effectively prevents overheating of the second power amplifier module 52, which generates more heat.
[0051] Based on the above discussion, in an optional embodiment of the present application, the inner surface of the box 1 on which the power amplifier module 5 is provided is a rectangular surface;
[0052] There are four first power amplifier modules 51 and four second power amplifier modules 52;
[0053] The four first power amplifier modules 51 are arranged in a cross shape along the symmetry line of the rectangular surface;
[0054] The four second power amplifier modules 52 are interleaved between two adjacent mutually perpendicular first power amplifier modules 51 , and the second power amplifier modules 52 are tilted at an angle of 15 to 60 degrees relative to the first power amplifier modules 51 .
[0055] like Figure 2 As shown, in this embodiment, four first power amplifier modules 51 are arranged in a cross pattern along the line of symmetry of the rectangular inner surface of the cabinet 5. These four first power amplifier modules 51 divide the rectangular inner surface of the cabinet 1 into four equally sized rectangular areas, while the four second power amplifier modules 52 are each positioned within a rectangular area. Furthermore, each second power amplifier module 52 is further arranged at an angle relative to the line containing the first power amplifier modules 51, thereby increasing the spacing between adjacent second power amplifier modules 52. In practical applications, the angle between each second power amplifier module 52 and the line containing the first power amplifier module 51 can be 15 degrees, 30 degrees, 45 degrees, or 60 degrees.
[0056] On this basis, the two second power amplifier modules 52 that are the farthest apart can be further tilted in opposite directions relative to the two first power amplifier modules 51 on the same straight line. Figure 2 As shown, located Figure 2 The second power amplifier module 52 at the upper left corner and the second power amplifier module 52 at the lower right corner can be tilted in two opposite directions respectively, and the tilt angles can be symmetrical relative to the vertical direction (i.e., the direction parallel to the symmetry line of the inner surface of the box body 1); and located Figure 2 The inclination directions of the two second power amplifier modules 52 in the two rectangular areas in the upper right corner and the lower left corner are also opposite; thereby, the distance between two non-adjacent second power amplifier modules 52 can be further increased to a certain extent.
[0057] As described above, on the rectangular inner surface of the box body 1, four rectangular areas are formed by dividing the first power amplifier module 51; therefore, in another optional implementation method of this embodiment, the two most frequently used modules of the second power amplifier module 52 are respectively arranged in two non-adjacent rectangular areas of the four rectangular areas, that is, the two second power amplifier modules 52 with the highest frequency of use and the highest heat generation are respectively arranged in the two rectangular areas farthest apart on the inner surface of the box body 1. For example, the two second power amplifier modules 52 for outputting interference signals in the 5.8G and 2.4G frequency bands respectively are respectively arranged in the two rectangular areas farthest apart, thereby ensuring to a certain extent that the distance between the two second power amplifier modules 52 with the highest frequency of use is far enough, thereby better heat dissipation.
[0058] Based on the above discussion, in an optional embodiment of the present application, each power amplifier module 5 is detachably arranged on the inner surface of the box 1 so that the position of each power amplifier module 5 is interchangeable.
[0059] As described above, the usage frequency of each power amplifier module 5 can be determined based on big data statistics; however, the usage frequency of each power amplifier module 5 may vary depending on the specific application scenario; for example, when the jamming device is in a certain airspace, the drone mostly uses a 5.8G frequency band signal to transmit images. At this time, the power amplifier module 5 with the highest usage frequency in the jamming device is a module for outputting a 5.8G frequency band jamming signal; and when the jamming device is in a certain airspace, the drone mostly uses a 0.4G frequency band signal for data transmission. At this time, the power amplifier module 5 with the highest usage frequency in the jamming device is a module for outputting a 0.4G frequency band jamming signal. Because each power amplifier module 5 is detachably installed on the inner surface of the housing 1, the power amplifier module 5 with the highest usage frequency in the actual application scenario can be used as the second power amplifier module 52 based on actual needs and arranged in the above-mentioned rectangular area, thereby ensuring effective heat dissipation of the power amplifier module 5 that generates the most heat.
[0060] Based on any of the above embodiments, in another optional embodiment of the present application, the interference device may further include: a cooling fan 3 is further provided on the outside of the box 1; the cooling fan 3 is provided on the side of the box 1 where the power amplifier module 5 is provided.
[0061] In this embodiment, a cooling fan 3 is provided outside the box 1 to accelerate the airflow velocity in the surrounding environment of the box 1, thereby accelerating the heat dissipation of the box 1, that is, accelerating the heat dissipation of the power amplifier module 5 in the box 1.
[0062] In addition, the cooling fan 3 can be provided in plurality, and each cooling fan 3 is provided in one-to-one correspondence with each second power amplifier module 5, so that the center of each cooling fan 3 is provided opposite to the center point of a second power amplifier module 5, thereby each cooling fan 3 can more efficiently dissipate heat for each second power amplifier module 52 that generates higher heat.
[0063] Furthermore, heat dissipation fins 2 can be further provided on the outer surface of the box body 1, especially the outer surface of the side of the box body 1 on which the power amplifier module 5 is provided is provided with heat dissipation fins 2; through the cooperation between the heat dissipation fins 2 and the cooling fan 3, the heat dissipation effect of the power amplifier module 5 in the box body 1 can be further improved.
[0064] To sum up, in this application, on the basis of concentrating multiple power amplifier modules in the same box, each power amplifier module is further divided into a first power amplifier module with low usage frequency and a second power amplifier module with low usage frequency according to the different usage frequencies; the second power amplifier module has a higher usage frequency and will generate relatively more heat in actual application; for this reason, the first power amplifier module and the second power amplifier module are interspersed with each other, so that the layout of the second power amplifier module on the inner surface of the box can be more evenly dispersed, which can make the temperature on the side of the box where the power amplifier module is set more balanced, and can increase the relative distance between the second power amplifier modules as much as possible, thereby avoiding the concentrated distribution of heat, which is conducive to promoting the heat dissipation of each second power amplifier module as soon as possible, thereby avoiding the problem of overheating of the power amplifier module, and thus ensuring the good and reliable working performance of the power amplifier module.
[0065] The present application also provides an embodiment of a detection and operation integrated device, which may include:
[0066] The jamming device as described in any of the above items, and the main control module and detection module built into the box 1 of the jamming device;
[0067] The antenna 4 includes a detection antenna connected to the detection module and an interference antenna connected to the power amplifier module.
[0068] The integrated detection and interference equipment in this embodiment integrates a main control module, a detection module and a power amplifier module 5, which can detect and interfere with drones; and by rationally arranging the power amplifier module 5 on the inner surface of the box 1, it can effectively ensure good heat dissipation of the power amplifier module 5, thereby ensuring good working performance of the power amplifier module 5 and ensuring reliable working performance of the integrated detection and interference equipment.
[0069] It should be noted that, in this article, relational terms such as first and second, etc. are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply the existence of any such actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, so that the process, method, article or device comprising a series of elements are inherent to the elements. In the absence of further restrictions, the elements limited by the sentence "comprise one..." do not exclude the presence of other identical elements in the process, method, article or device comprising the elements. In addition, the above-mentioned technical solutions provided in the embodiments of the present application are not described in detail in accordance with the corresponding technical solutions in the prior art to achieve the same principle, so as to avoid excessive elaboration.
[0070] This document uses specific examples to illustrate the principles and implementation methods of the present invention. The above examples are only intended to help understand the method and core concept of the present invention. It should be noted that those skilled in the art can make various improvements and modifications to the present invention without departing from the principles of the present invention, and such improvements and modifications also fall within the scope of protection of the claims of the present invention.
Claims
1. A jamming device, characterized in that: include: A box (1) having thermal conductivity; a plurality of power amplifier modules (5) arranged on the same inner surface of the box (1); and an antenna (4) connected to the power amplifier modules (5); The power amplifier module (5) comprises a plurality of first power amplifier modules (51) and a plurality of second power amplifier modules (52), and the use frequency of the first power amplifier modules (51) is lower than the use frequency of the second power amplifier modules (52); Each of the first power amplifier modules (51) and the second power amplifier modules (52) is arranged around the center of the inner surface of the box (1), and each of the second power amplifier modules (52) is arranged in an area between two adjacent first power amplifier modules (51).
2. The jamming device according to claim 1, wherein: The distance between each of the first power amplifier modules (51) and the center point of the inner surface of the box (1) is smaller than the distance between each of the second power amplifier modules (52) and the center point of the inner surface.
3. The jamming device according to claim 2, wherein: The inner surface of the box (1) on which the power amplifier module (5) is arranged is a rectangular surface; Four first power amplifier modules (51) and four second power amplifier modules (52) are provided; The four first power amplifier modules (51) are arranged in a cross shape along the symmetry line of the rectangular surface; The four second power amplifier modules (52) are respectively interleaved between two adjacent mutually perpendicular first power amplifier modules (51), and the second power amplifier modules (52) are tilted at an angle of 15 degrees to 60 degrees relative to the first power amplifier module (51).
4. The jamming device according to claim 3, wherein: The two second power amplifier modules (52) that are farthest apart have opposite inclination directions relative to the two first power amplifier modules (51) on the same straight line.
5. The jamming device according to claim 3 or 4, characterized in that: The first power amplifier module (51) includes four modules for outputting interference signals in the 0.4G, 0.8G, 0.9G and 1.2G frequency bands respectively; The second power amplifier module (52) comprises four modules for outputting interference signals in the 1.5G, 2.4G, 5.2G and 5.8G frequency bands respectively.
6. The jamming device according to claim 3 or 4, characterized in that: The rectangular surface is divided into four rectangular areas by the four first power amplifier modules (51); The two modules with the highest usage frequency in the second power amplifier module (52) are respectively arranged in two non-adjacent rectangular areas of the four rectangular areas.
7. The jamming device according to any one of claims 1 to 4, characterized in that: Each of the power amplifier modules (5) is detachably arranged on the inner surface of the box (1), so that the positions of each of the power amplifier modules (5) are interchangeable.
8. The jamming device according to any one of claims 1 to 4, characterized in that: A cooling fan (3) is also provided on the outside of the box (1); the cooling fan (3) is provided on one side of the box (1) where the power amplifier module (5) is provided.
9. The jamming device according to claim 8, characterized in that: A plurality of the cooling fans (3) are provided, and the center of each cooling fan (3) faces the center of each second power amplifier module (52).
10. The jamming device according to claim 8, wherein: Heat dissipation fins (2) are also provided on the outer surface of the box body (1).
11. A detection and management integrated device, characterized in that: It comprises the jamming device according to any one of claims 1 to 10, and a main control module and a detection module built into a housing (1) of the jamming device; The antenna (4) includes a detection antenna connected to the detection module and an interference antenna connected to the power amplifier module (5).