High power microwave system
By assembling the high-power microwave system on the vehicle board as a whole, combining the liquid cooling system, UPS system and servo rotation components, the problems of large size, heavy weight and insufficient battery life in the prior art are solved, and the stability and continuous emission capability of on-board operations are achieved.
Patent Information
- Application Number
- CN202510348805.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-24
- Publication Date
- 2025-07-04
AI Technical Summary
The existing high-power microwave systems have large volume, heavy weight, and low microwave generation efficiency. The cooling and heat dissipation and energy supply systems cannot guarantee the system's endurance performance, and it is difficult to improve the microwave output power and energy conversion efficiency.
The high-power microwave system is assembled on the vehicle board as a whole, including servo rotation components, liquid cooling systems, pump group systems, generator systems, UPS systems, power control systems and protective components. The stability is ensured through the liquid cooling system. The UPS system provides backup power, the servo rotation components achieve precise direction, and the protective components enhance system stability.
It realizes the maneuverability of on-board operations, automatically captures and transmits microwave power from multiple directions and angles, ensures that the system continues to work under uninterrupted power supply, avoids data loss and equipment damage, and improves the stability and battery life of the microwave system.
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Figure CN120252433A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of microwave technology, and particularly to a high-power microwave system. Background Art
[0002] A high-power microwave system is a directed energy system. Its basic principle is to use a powerful microwave source to direct and emit microwave energy modulated by high-power pulses onto a target. This energy beam is very narrow, so it can precisely aim at the target to achieve highly directed attacks. The core of a high-power microwave weapon is its microwave emission system, whose radiation frequency is usually between 1 and 30 kilohertz, and the peak power can reach over 1 gigawatt, and some can even reach 10 gigawatts. A high-power microwave system has two functions: hardware damage and soft interference. Hardware damage means that in vehicles, ships, aircraft, and other electronic components which are vulnerable targets, the high-power microwave system can cause permanent electronic damage to them, resulting in the loss of working performance.
[0003] However, the current high-power microwave system still has deficiencies during operation:
[0004] 1. Currently, the volume and weight of high-power microwave generators are relatively large, and the microwave generation efficiency is relatively low, and further optimization of the design is required.
[0005] 2. Under the high-repetition frequency working state, the current cooling and heat dissipation equipment and energy supply system cannot better ensure the endurance performance of the system, and it is difficult to further improve the microwave output power and energy conversion efficiency.
[0006] Therefore, the present application proposes a high-power microwave system. Summary of the Invention
[0007] In view of the deficiencies of the prior art, the present invention provides a high-power microwave system, which solves the problems mentioned in the background art.
[0008] To achieve the above objectives, the present invention is realized through the following technical solutions:
[0009] A high-power microwave system, including a vehicle floor, on the top of which a servo rotation assembly is fixedly installed. On the top of the servo rotation assembly, a waveguide assembly is assembled. On the front side of the top of the vehicle floor, a liquid cooling system is fixedly installed. On the vehicle floor inside the liquid cooling system, a pump group system is assembled. On the rear side of the top of the vehicle floor, a generator system is installed. Inside the generator system, a UPS system, a power control system, and a power unit module are arranged in sequence on the vehicle floor. At the edge of the top of the vehicle floor, a protection assembly is fixedly installed, and the protection assembly is used to protect the systems other than the servo rotation assembly.
[0010] The waveguide assembly includes an array surface framework, an array surface waveguide, and an optoelectronic radar; the servo rotation assembly includes an inner cavity body and a drive assembly. The drive assembly is fixedly installed at the top of the vehicle board, and the inner cavity body is butt-jointed and installed at the top of the drive assembly. The array surface framework is fixedly installed at the top of the inner cavity body, and the array surface waveguide is fixedly installed at the top of the array surface framework. Moreover, waveguide power output slot holes are provided on the array surface waveguide. An optoelectronic radar is fixedly installed on one side of the array surface framework.
[0011] The liquid cooling system includes an installation housing, a liquid cooling pipe group, and a cooling assembly. The installation housing is fixedly installed at the top of the vehicle board. The liquid cooling pipe group is assembled inside the installation housing, and cooling assemblies for internal cooling are assembled on both sides of the installation housing.
[0012] Furthermore, four leveling legs are fixedly installed at the bottom of the vehicle board. A lifting frame is fixedly installed on one side of the bottom of the vehicle board, and a leveling leg servo is suspended inside the lifting frame. The leveling leg servo is used to control the leveling legs.
[0013] Furthermore, the protection assembly includes an opening and closing door, a support frame body, side opening doors, a cover plate, and hinge locks. The support frame body is fixedly installed at the edge of the top of the vehicle board. The cover plate is fixedly installed at the top of the support frame body. The opening and closing doors are movably installed on the front and rear sides of the support frame body, and the side opening doors are movably installed on the front and back surfaces of the support frame body. Hinge locks are movably installed on both the opening and closing doors and the side opening doors.
[0014] Furthermore, the waveguide assembly further includes a support component, which consists of a threaded rod and a threaded sleeve. Threaded sleeves are movably installed on both the array surface framework and the top of the support frame body. A threaded rod is butt-jointed and installed between the threaded sleeves. An adjustment knob is provided in the middle of the threaded rod. The threaded rod is telescopically adjusted in the threaded sleeve through the adjustment knob.
[0015] Furthermore, a sunken structure is provided in the middle of the vehicle board, and the sunken structure is U-shaped. The pump group system includes a vacuum pump, an ion pump, a pump group control module, a klystron system, a resonant cavity, and a molecular pump. The resonant cavity is fixedly installed on the vehicle board inside the installation housing. The vacuum pump, ion pump, and molecular pump are fixedly installed on the upper surface of the vehicle board on both sides of the resonant cavity. The klystron system is assembled inside the sunken structure. The vacuum pump, ion pump, and pump group control module are respectively fixedly installed on the top of the vehicle board. A bearing plate one and a bearing plate two are fixedly installed on the top of the vehicle board. The installation housing is fixedly installed on the bearing plate two.
[0016] Furthermore, the servo rotation assembly further includes a turntable servo system; the turntable servo system and the pump group control module are fixedly installed on the top of the vehicle board through a support frame, and the turntable servo system and the pump group control module are located between the power unit module and the UPS system.
[0017] Furthermore, the driving assembly includes a servo motor, a support seat, a rotating wheel, a sleeve seat, and a reducer. The support seat is fixedly installed on the top of the load-bearing plate, the rotating wheel is rotatably installed inside the support seat, the sleeve seat is fixedly installed inside the rotating wheel, both sides of the support seat are equipped with reducers that are transmission-connected to the rotating wheel, and the input end of the reducer is docked with a servo motor, the interior of the sleeve seat is docked with a docking core, the sleeve seat is rotatably connected to the inner cavity through the docking core, and the interior of the inner cavity is equipped with a Y-shaped waveguide frame connected to the waveguide assembly.
[0018] Furthermore, the cooling assembly includes an installation cover, a mounting plate, a heat dissipation fan, and a cooling water curtain. The installation cover is fixedly installed on both sides of the installation shell, the mounting plate is fixedly installed on the side of the installation cover, two groups of heat dissipation fans are fixedly installed on the mounting plate, the interior of the installation cover is fixedly installed with a cooling water curtain, and the window of the installation shell corresponds to the cooling water curtain.
[0019] The present invention provides a high-power microwave system. Compared with the prior art, it has the following beneficial effects:
[0020] By assembling the whole system on the vehicle board, the vehicle-mounted operation is realized, making it highly maneuverable, capable of automatically capturing and tracking targets, and emitting microwave power in multiple directions and angles;
[0021] The UPS system can provide backup power when the main power fails, giving the generator system enough power generation time to ensure that the system will not be powered off in a short period of time, avoiding data loss or equipment damage;
[0022] The liquid cooling system can ensure the stability of each output power system and effectively protect the normal operation of each unit module. When the power supply is sufficient, continuous and uninterrupted operation can be performed. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the drawings required for use in the embodiments or the description of the prior art will be briefly introduced below. 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 creative work.
[0024] Figure 1 A first overall structural schematic diagram of a microwave system of the present invention is shown;
[0025] Figure 2 A schematic diagram of the second structure of the microwave system of the present invention is shown;
[0026] Figure 3 The schematic diagram of the internal structure of the microwave system of the present invention is shown;
[0027] Figure 4 Shows a schematic structural diagram of the servo rotation assembly of the present invention;
[0028] Figure 5 Shows a schematic structural diagram of the liquid cooling system of the present invention;
[0029] As shown in the figure: 1. Vehicle board; 11. Leveling leg; 12. Lifting frame; 13. Leveling leg servo; 2. Protection component; 21. Opening and closing door; 22. Support frame; 23. Side opening door; 24. Cover plate; 25. Hinge lock; 3. Waveguide component; 31. Array skeleton; 32. Array waveguide; 33. Support component; 34. Optoelectronic radar; 4. Servo rotation component; 41. Inner cavity; 411. Y-shaped waveguide bracket; 412. Docking core; 42. Drive component; 421. Servo motor; 422. Support seat; 423. Rotating wheel disc; 424. Sleeve seat; 425. Reducer; 43. Turntable servo system; 5. UPS system; 6. Generator system; 7. Pump group system; 71. Vacuum pump; 72. Ion pump; 73. Pump group control module; 74. Klystron system; 75. Resonant cavity; 76. Molecular pump; 8. Liquid cooling system; 81. Installation housing; 82. Liquid cooling pipe group; 83. Cooling component; 831. Installation cover; 832. Installation plate; 833. Cooling fan; 834. Cooling water curtain; 9. Power unit module; 10. Power control system. Detailed implementation manners
[0030] To make the objectives, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention are clearly and completely described. Obviously, the described embodiments are some, but not all, of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0031] Embodiment 1
[0032] To solve the technical problems in the background art, the following high-power microwave system is provided:
[0033] Combined with Figures 1 - 5As shown in the figure, the high-power microwave system provided by the present invention includes a vehicle board 1. A servo rotation assembly 4 is fixedly installed on the top of the vehicle board 1. A waveguide assembly 3 is assembled on the top of the servo rotation assembly 4. A liquid cooling system 8 is fixedly installed on the front side of the top of the vehicle board 1. A pump group system 7 is assembled on the vehicle board 1 inside the liquid cooling system 8. A generator system 6 is installed on the rear side of the top of the vehicle board 1. A UPS system 5, a power control system 10, and a power unit module 9 are sequentially arranged and installed on the vehicle board 1 inside the generator system 6. A protection assembly 2 is fixedly installed at the edge of the top of the vehicle board 1, and the protection assembly 2 is used to protect the systems other than the servo rotation assembly 4;
[0034] In the above solution:
[0035] By assembling the system as a whole on the vehicle board 1, vehicle-mounted operation is realized, making it have strong maneuverability, capable of automatically capturing and tracking targets, and emitting microwave power in multiple directions and at multiple angles;
[0036] Through the liquid cooling system 8, the stability of each output power system can be ensured, effectively protecting the normal operation of each unit module. Under the condition of meeting the power supply, continuous and uninterrupted operation can be performed;
[0037] Through the UPS system 5, a backup power supply can be provided in case of a main power failure, giving the generator system 6 enough power generation time to ensure that the system will not lose power within a short time and avoid data loss or equipment damage;
[0038] The power control system 10 can effectively manage and distribute the power required by the system to ensure that each component works under appropriate voltage and current;
[0039] The servo rotation assembly 4 and the waveguide assembly 3 cooperate with each other to adjust the direction and angle of the waveguide array surface to ensure the accurate pointing of microwave radiation. The servo system is responsible for controlling the movement of the turntable to ensure its quick and accurate response to control signals;
[0040] Through the protection assembly 2, the overall protection operation of the system is realized. By protecting the outside of the system, the stability of the system during operation is enhanced, and interference from external factors is avoided.
[0041] The waveguide assembly 3 includes an array skeleton 31, an array waveguide 32, and an optoelectronic radar 34; the servo rotation assembly 4 includes an inner cavity 41 and a drive assembly 42. The drive assembly 42 is fixedly installed on the top of the vehicle board 1. The inner cavity 41 is butt-jointed and installed on the top of the drive assembly 42. The array skeleton 31 is fixedly installed on the top of the inner cavity 41. The array waveguide 32 is fixedly installed on the top of the array skeleton 31, and waveguide power output slots are provided on the array waveguide 32. An optoelectronic radar 34 is fixedly installed on one side of the array skeleton 31;
[0042] The array skeleton 31 is used to support the structure of the waveguide array, ensuring its stability and precise alignment. It also cooperates with the optoelectronic radar 34 for real-time detection, providing accurate target information for the high-power microwave system. Its high precision, fast response, and anti-interference capabilities make it an important auxiliary sensor for the microwave system. The array skeleton 31 is formed by welding aluminum alloy, and its surface is conductively oxidized to increase conductivity and corrosion resistance. The array waveguide 32 is responsible for the transmission and radiation of microwaves. It usually consists of multiple waveguides to ensure the efficient transmission of microwave energy and form the required radiation pattern.
[0043] The liquid cooling system 8 includes a mounting housing 81, a liquid cooling pipe group 82, and a cooling component 83. The mounting housing 81 is fixedly installed at the top of the vehicle floor 1. The liquid cooling pipe group 82 is assembled inside the mounting housing 81, and the cooling components 83 for internal cooling are assembled on both sides of the mounting housing 81.
[0044] The liquid cooling pipe group 82 inside the mounting housing 81 is used to cool high-power components in the system, such as power unit modules, to prevent overheating damage. During this period, the pump, pipe group, and liquid storage pipe in the liquid cooling pipe group 82 cooperate to drive the coolant to circulate in the system, ensuring that heat can be continuously removed and transferring the heat in the coolant to the external environment, usually achieved through air cooling or water cooling. It connects various high-power components to form a circulation channel for the coolant, and provides feedback to the control system by real-time monitoring the temperature of the coolant and components. During cooling, the cooling component 83 cools the liquid cooling pipe group 82 in real time, improving the operating performance and cooling persistence of the liquid cooling pipe group 82.
[0045] Embodiment 2
[0046] Such as Figure 1 And Figure 5 As shown, based on the above embodiment, this embodiment further provides the following content:
[0047] In this embodiment, four leveling legs 11 are fixedly installed at the bottom of the vehicle floor 1. A lifting frame 12 is fixedly installed on one side of the bottom of the vehicle floor 1, and a leveling leg servo 13 is suspended inside the lifting frame 12. The leveling leg servo 13 is used to control the leveling legs 11.
[0048] During this period, the vehicle floor 1 is stably supported by the four leveling legs 11 to prevent it from shaking during operation. And during operation, personnel can adjust the leveling legs 11 in real time through the leveling leg servo 13 to meet the support requirements of the operation site.
[0049] In this embodiment, the protective component 2 includes an opening and closing door 21, a supporting frame 22, a side door 23, a cover plate 24, and a hinged lock 25. The supporting frame 22 is fixedly installed at the edge of the top of the vehicle plate 1, the cover plate 24 is fixedly installed on the top of the supporting frame 22, the opening and closing door 21 is movably installed on the front and rear sides of the supporting frame 22, the side door 23 is movably installed on the front and back sides of the supporting frame 22, and the opening and closing door 21 and the side door 23 are movably installed with a hinged lock 25.
[0050] During this period, the support frame 22 and the cover plate 24 are used to protect the entire system, and the stability of the system during operation is enhanced by protecting the outside of the system; and the cover plate 24 covers the other components except the servo rotating component 4;
[0051] During this period, personnel can open and close the door 21 and the side door 23 on the support frame 22, which is convenient for personnel to inspect and maintain the system. Before opening and closing, it is necessary to unlock the hinged lock 25 to realize the opening and closing operation of the door group.
[0052] The waveguide assembly 3 also includes a supporting component 33, which is composed of a threaded rod and a threaded sleeve. The array skeleton 31 and the top of the supporting frame 22 are both movably installed with threaded sleeves, and threaded rods are butt-mounted between the threaded sleeves. An adjusting knob is provided in the middle of the threaded rod, and the threaded rod is telescopically adjusted in the threaded sleeve through the adjusting knob.
[0053] During this period, the support component 33 can further ensure the stability of the array frame 31 during the erection period, and during the operation, the personnel can adjust the tension of the array frame 31 through the adjustment knob on the threaded rod.
[0054] Embodiment 3
[0055] like Figures 1 - 5 As shown, based on the above embodiment, this embodiment further provides the following contents:
[0056] In this embodiment, a sinking structure is provided in the middle of the vehicle plate 1, and the sinking structure is U-shaped. The pump group system 7 includes a vacuum pump 71, an ion pump 72, a pump group control module 73, a klystron system 74, a resonant cavity 75, and a molecular pump 76. The resonant cavity 75 is fixedly installed on the vehicle plate 1 inside the mounting shell 81, and the vacuum pump 71, ion pump 72 and molecular pump 76 are fixedly installed on the upper surface of the vehicle plate 1 on both sides of the resonant cavity 75. The klystron system 74 is assembled inside the sinking structure, and the vacuum pump 71, ion pump 72 and pump group control module 73 are fixedly installed on the top of the vehicle plate 1 respectively. The top of the vehicle plate 1 is fixedly installed with a bearing plate 1 and a bearing plate 2, and the mounting shell 81 is fixedly installed on the bearing plate 2.
[0057] During the operation:
[0058] The vacuum pump is responsible for the initial vacuuming, reducing the system from atmospheric pressure to the medium vacuum range;
[0059] Molecular pumps further reduce the gas pressure on the basis of vacuum pumps to reach high vacuum range;
[0060] The ion pump maintains an extremely high vacuum environment by ionizing and adsorbing gas molecules;
[0061] This combination of multi-stage pumps ensures the efficient operation of the high-power microwave system in a high vacuum environment, avoids the interference of gas molecules on microwave transmission and radiation, and prevents problems such as high-voltage discharge.
[0062] And during the operation of the high-power microwave system, the resonant cavity is mainly used to store, amplify and select microwave energy. Through its unique resonant characteristics, the resonant cavity can efficiently generate and process microwave signals to ensure the high performance and stability of the system;
[0063] The klystron group is the core component of the high-power microwave system, which is mainly used to generate high-power and high-stability microwave signals by converting the energy of the electron beam into microwave energy.
[0064] In this embodiment, the servo rotation assembly 4 also includes a turntable servo system 43; the turntable servo system 43 and the pump group control module 73 are fixedly installed on the top of the vehicle plate 1 through a support frame, and the turntable servo system 43 and the pump group control module 73 are located between the power unit module 9 and the UPS system 5.
[0065] During this period, the personnel can realize the mutual cooperation between the turntable servo system 43 and the drive assembly 42, and complete the real-time regulation of the drive assembly 42;
[0066] Furthermore, the pump control module 73 can realize real-time control of the pumps in the pump system 7, so that the pump system 7 complies with the real-time operation process.
[0067] In this embodiment, the driving assembly 42 includes a servo motor 421, a support seat 422, a rotating wheel 423, a sleeve 424, and a reducer 425. The support seat 422 is fixedly installed on the top of the supporting plate 1, and the rotating wheel 423 is rotatably installed inside the support seat 422. The sleeve 424 is fixedly installed inside the rotating wheel 423. Both sides of the support seat 422 are equipped with a reducer 425 that is transmission-connected to the rotating wheel 423, and the servo motor 421 is docked at the input end of the reducer 425. The sleeve 424 is docked inside with a docking core 412, and the sleeve 424 is rotatably connected to the inner cavity 41 through the docking core 412.
[0068] During this period, the servo motor 421 drives the rotating turntable 423 through the speed reducer 425. The gears and toothed rings of the rotating turntable 423 cooperating with the servo components are used to drive the rotation of the rotating turntable 423. Since the rotating turntable 423 and the docking core 412 are installed in a butt-jointed manner, the driving rotation of the inner cavity 41 can be achieved at that time, so as to adjust the direction and angle of the waveguide array surface and ensure the accurate pointing of microwave radiation.
[0069] The cooling component 83 includes a mounting cover 831, a mounting plate 832, a cooling fan 833, and a cooling water curtain 834. Mounting covers 831 are fixedly installed on both sides of the mounting housing 81. A mounting plate 832 is fixedly installed on the side surface of the mounting cover 831. Two groups of cooling fans 833 are fixedly installed on the mounting plate 832. A cooling water curtain 834 is fixedly installed inside the mounting cover 831. The window of the mounting housing 81 corresponds to the cooling water curtain 834.
[0070] During this period, when the cooling tube group in the mounting housing 81 is operating, the cooling fan 833 and the cooling water curtain 834 are started synchronously. At that time, the cooling fan 833 performs an air extraction operation. Physical cooling is generated when the mounting housing 81 passes through the cooling water curtain 834, and with the negative pressure effect of the internal air, further cooling is carried out, effectively reducing the temperature of the tube group in the mounting housing 81 and improving the operating performance and continuity during cooling of the liquid cooling tube group 82.
[0071] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variant thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or also includes elements inherent to such process, method, article or device. Without more limitations, the element defined by the statement "including a..." does not exclude the existence of additional identical elements in the process, method, article or device including the said element.
[0072] The above embodiments are only used to illustrate the technical solutions of the present invention, and are not intended to limit it; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements for some of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.
Claims
1. A high-power microwave system, characterized in that: It includes a vehicle board, on the top of which a servo rotation component is fixedly installed. On the top of the servo rotation component, a waveguide component is assembled. On the front side of the top of the vehicle board, a liquid cooling system is fixedly installed. On the vehicle board inside the liquid cooling system, a pump group system is assembled. On the rear side of the top of the vehicle board, a generator system is installed. On the vehicle board inside the generator system, a UPS system, a power control system, and a power unit module are arranged in sequence. At the edge of the top of the vehicle board, a protection component is fixedly installed, and the protection component is used to protect the systems other than the servo rotation component. The waveguide component includes an array skeleton, an array waveguide, and an optoelectronic radar. The servo rotation component includes an inner cavity body and a driving component. On the top of the vehicle board, a driving component is fixedly installed. On the top of the driving component, an inner cavity body is docked and installed. On the top of the inner cavity body, an array skeleton is fixedly installed. On the top of the array skeleton, an array waveguide is fixedly installed, and waveguide power output slots are arranged on the array waveguide. On one side of the array skeleton, an optoelectronic radar is fixedly installed. The liquid cooling system includes an installation shell, a liquid cooling pipe group, and a cooling component. On the top of the vehicle board, an installation shell is fixedly installed. Inside the installation shell, a liquid cooling pipe group is assembled, and cooling components for internal cooling are assembled on both sides of the installation shell.
2. The high-power microwave system according to claim 1, wherein: Four leveling legs are fixedly installed at the bottom of the vehicle board. On one side of the bottom of the vehicle board, a lifting frame is fixedly installed, and a leveling leg servo is suspended inside the lifting frame, and the leveling leg servo is used to control the leveling legs.
3. The high-power microwave system according to claim 1, characterized in that: The protection component includes an opening and closing door, a support frame body, side opening doors, a cover plate, and hinge locks. At the edge of the top of the vehicle board, a support frame body is fixedly installed. On the top of the support frame body, a cover plate is fixedly installed. The opening and closing doors are movably installed on the front and rear sides of the support frame body. The side opening doors are movably installed on the front and back surfaces of the support frame body. Hinge locks are movably installed on both the opening and closing doors and the side opening doors.
4. The high-power microwave system according to claim 1, characterized in that: The waveguide component further includes a support component, which consists of a threaded rod and a threaded sleeve. Threaded sleeves are movably installed on both the array skeleton and the top of the support frame body, and a threaded rod is docked and installed between the threaded sleeves. An adjustment knob is arranged in the middle of the threaded rod, and the threaded rod is telescopically adjusted in the threaded sleeve through the adjustment knob.
5. The high-power microwave system according to claim 2, wherein: A sinking structure is arranged in the middle of the vehicle board, and the sinking structure is U-shaped. The pump group system includes a vacuum pump, an ion pump, a pump group control module, a klystron system, a resonant cavity, and a molecular pump. A resonant cavity is fixedly installed on the vehicle board inside the installation shell. A vacuum pump, an ion pump, and a molecular pump are fixedly installed on the upper surface of the vehicle board on both sides of the resonant cavity. The klystron system is assembled inside the sinking structure. A vacuum pump, an ion pump, and a pump group control module are respectively fixedly installed on the top of the vehicle board. A bearing plate one and a bearing plate two are fixedly installed on the top of the vehicle board. The installation shell is fixedly installed on the bearing plate two.
6. The high-power microwave system according to claim 5, characterized in that: The servo rotation component further includes a turntable servo system. The turntable servo system and the pump group control module are fixedly installed on the top of the vehicle board through a support frame, and the turntable servo system and the pump group control module are located between the power unit module and the UPS system.
7. The high-power microwave system according to claim 1, characterized in that: The driving assembly includes a servo motor, a support seat, a rotating wheel disc, a sleeve seat, and a reducer. The support seat is fixedly installed on the top of the bearing plate, the rotating wheel disc is rotatably installed inside the support seat, the sleeve seat is fixedly installed inside the rotating wheel disc, both sides of the support seat are equipped with reducers that are transmission-connected to the rotating wheel disc, and the input end of the reducer is docked with a servo motor, the interior of the sleeve seat is docked with a docking core, the sleeve seat is rotatably connected to the inner cavity through the docking core, and the interior of the inner cavity is equipped with a Y-shaped waveguide frame connected to the waveguide assembly.
8. The high-power microwave system according to claim 1, wherein: The cooling assembly includes a mounting cover, a mounting plate, a heat dissipation fan, and a cooling water curtain. The mounting cover is fixedly mounted on both sides of the mounting shell, the mounting plate is fixedly mounted on the side of the mounting cover, two sets of heat dissipation fans are fixedly mounted on the mounting plate, the interior of the mounting cover is fixedly mounted with a cooling water curtain, and the window of the mounting shell corresponds to the cooling water curtain.