A high-energy electric pulse generating device

By designing the heat dissipation components and power system of the high-energy electrical pulse generation device, the problems of poor heat dissipation and loose vibration during outdoor installation are solved, ensuring the stability and life of the equipment.

CN119154710BActive Publication Date: 2025-08-05HUANENG LANCANG RIVER HYDROPOWER CO LTD
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Patent Information

Application Number
CN202411356804.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-09-27
Publication Date
2025-08-05
Estimated Expiration
2044-09-27

AI Technical Summary

Technical Problem

The high-voltage electrical pulse generator has poor heat dissipation effect when installed outdoors, and the connection is prone to loosening due to vibration, which affects the stability of the equipment.

Method used

A high-energy electrical pulse generation device is designed, including a heat dissipation component, ventilation duct, wind detector, solenoid valve and shock absorber plate. The fan blades and gear system are driven by air flow to dissipate heat, and the air flow is controlled through the solenoid valve, combining with the power component to ensure gear meshing in a windless state to reduce the impact of vibration.

Benefits of technology

It achieves efficient heat dissipation effect, prevents heat accumulation, reduces loose connections caused by vibration, and improves the stability and life of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of pulse generating devices, and particularly to a high-energy electric pulse generating device, which includes a housing. A protective cover is installed on the surface of the housing, and a groove is provided on the inner side of the protective cover and is opened on the surface of the housing. A heat dissipation component is arranged inside the groove, and the bottom of the heat dissipation component is rotatably connected to the housing; A plurality of ventilation pipes fixedly connected to the housing are installed on the inner side surface of the groove; A heat dissipation exhaust mechanism and an air inlet cover are installed on the side surface of the housing; A shock-absorbing plate is installed on the bottom layer of the housing; When the present invention is in use, the device is installed outdoors. Once the external air flows, it can drive the first fan blade to rotate. The first fan blade drives the rotating shaft to rotate, and then drives the driving bevel gear to rotate. The driving bevel gear drives the driven bevel gear on one side to rotate, so that the driven bevel gear can drive the rotating rod and the second fan blade to rotate. At this time, the air flow inside the housing can be realized, and the purpose of dissipating heat inside the housing can be achieved.
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Description

Technical Field

[0001] The present invention relates to the technical field of pulse generating devices, and particularly to a high-energy electric pulse generating device. Background Art

[0002] High-voltage electric pulses, as a form of energy, have been widely used in medical biology, electronics and ion acceleration, nuclear fusion, new energy, military and other fields. Among them, the characteristics of energy storage modules such as capacitors are important parameters of high-voltage electric pulse components. Temperature changes have an important impact on the overall pulse parameters and lifespan. Their excellent performance can greatly affect the stability of the system. Some pulse generators are installed outdoors. However, due to their sealed installation, which reduces the influence of the external environment, their heat dissipation effect is not good. Moreover, the high-voltage switch in the high-voltage electric pulse generating module generates a large amount of heat during operation and spreads from the high-voltage switch to the surrounding areas. If not dealt with in time, it may affect the energy storage modules such as capacitors in the long run. At the same time, when installed on the device, it is connected by bolts. For devices that are in a vibrating state for a long time, the connection points are prone to loosen due to vibration. Therefore, a high-energy electric pulse generating device is proposed for the above problems. Summary of the Invention

[0003] The purpose of the present invention is to provide a high-energy electric pulse generating device to solve the problems raised in the above background art.

[0004] To achieve the above purpose, the present invention provides the following technical solutions:

[0005] As an optional solution of a high-energy electric pulse generating device according to the present invention, a high-energy electric pulse generating device includes a housing, a protective cover, and a display screen.

[0006] A protective cover is installed on the surface of the housing, and a groove opened on the surface of the housing is provided inside the protective cover. A heat dissipation component is arranged inside the groove, and the bottom of the heat dissipation component is rotatably connected to the housing.

[0007] Multiple ventilation pipes fixedly connected to the housing are installed on the inner side surface of the groove.

[0008] A wind detector and a display screen are further arranged on the upper surface of the housing.

[0009] A connecting plate for connecting an external connecting wire is installed on one side of the housing.

[0010] A heat dissipation exhaust mechanism and an air intake cover are installed on the side surface of the housing.

[0011] A shock-absorbing plate is installed on the bottom layer of the housing.

[0012] The heat dissipation component includes a rotating shaft, a first fan blade, and a driving bevel gear. The outer side of the rotating shaft is rotatably connected to the housing. The outer side of the rotating shaft is provided with a driving bevel gear, a driven gear, and a first fan blade. The outer side of the driving bevel gear is meshed with a driven bevel gear. The inside of the driven bevel gear is fixedly connected with a rotating rod. The other end of the rotating rod is fixedly connected with a second fan blade. The outer side of the rotating rod is rotatably connected to a connecting frame. The other end of the connecting frame is fixedly connected with the housing. One side of the driven gear is provided with a power component fixedly connected with the housing.

[0013] As an energy form, high-voltage electric pulses have been widely used in medical biology, electronics and ion acceleration, nuclear fusion, new energy, military and other fields. Among them, the characteristics of energy storage modules such as capacitors are important parameters of high-voltage electric pulse components. Temperature changes have an important impact on the overall pulse parameters and lifespan. Its excellent performance can greatly affect the stability of the system. Some pulse generators are installed outdoors. However, due to their sealed installation, the influence of the external environment is reduced, but their heat dissipation effect is not good. Moreover, the high-voltage switch of the high-voltage electric pulse generation module generates a large amount of heat during operation, and it spreads from the high-voltage switch to the surrounding areas. If not dealt with in time, it may affect energy storage modules such as capacitors in the long run. At the same time, when installed on equipment, it is connected by bolts. For equipment that is in a vibrating state for a long time, the connection part is likely to loosen due to vibration. When in use, this device is installed outdoors. Once the external air flows, it can drive the first fan blade to rotate. The first fan blade drives the rotating shaft to rotate, and then drives the driving bevel gear to rotate. The driving bevel gear drives the driven bevel gear on one side to rotate, so that the driven bevel gear can drive the rotating rod and the second fan blade to rotate. At this time, the air flow inside the housing can be realized, and the purpose of dissipating heat inside the housing can be achieved.

[0014] As an optional solution of the high-energy electric pulse generating device described in the present invention, wherein: the heat dissipation and exhaust mechanism includes an exhaust frame, a guiding cover, and a fixing frame. The outer side of the exhaust frame is fixedly connected with the housing. The exhaust frame internally installs a guiding cover and a fixing frame. The inside of the guiding cover is fixedly connected with a filter plate. The inside of the fixing frame rotatably connects multiple rotating plates, and blocking blocks fixedly connected with the fixing frame are arranged on one side of each rotating plate.

[0015] As an optional solution of the high-energy electric pulse generating device described in the present invention, wherein: the guiding cover is arranged in a funnel shape, and the side of the guiding cover facing away from the fixing frame is provided with a narrow opening.

[0016] When the air flows, when the second fan blade drives the air to flow, the air blows the rotating plate to rotate. At this time, the air can smoothly pass through the filter plate and be exhausted. When the air blows towards the filter plate, the arrangement of the blocking blocks can prevent the rotating plate from rotating towards the inside of the housing, realizing that the air can only flow unidirectionally and ensuring the internal environment of the housing.

[0017] As an alternative solution of the high-energy electric pulse generating device described in the present invention, wherein: the outer side of the air intake cover is fixedly connected to the housing, a filter screen is fixedly connected inside the air intake cover, the other end of the air intake cover is fixedly connected to an air vent pipe, and a solenoid valve is installed on the outer side of the air vent pipe.

[0018] When the air inside the housing flows, the solenoid valve is opened, and the external air enters the air vent pipe through the filter screen and can smoothly enter the housing. When the heat dissipation operation is not performed, the solenoid valve is closed to prevent the external environment from affecting the normal use of the equipment inside the housing.

[0019] As an alternative solution of the high-energy electric pulse generating device described in the present invention, wherein: the power component includes a mounting frame, a moving plate and a first motor. The outer side of the mounting frame is fixedly connected to the housing. A moving plate is arranged inside the mounting frame. An adjusting plate is slidably connected inside the moving plate, and a first motor is fixedly connected to the top of the adjusting plate. The end of the main shaft of the first motor is fixedly connected to a rotating shaft, and the other end of the rotating shaft is fixedly connected to a driving gear.

[0020] As an alternative solution of the high-energy electric pulse generating device described in the present invention, wherein: a first guiding column is slidably connected inside the adjusting plate. The two ends of the first guiding column are fixedly connected to the moving plate. Two groups of springs are arranged on the outer side of the first guiding column, and one side of the springs is fixedly connected to the moving plate, and the other end of the springs is fixedly connected to the adjusting plate.

[0021] As an alternative solution of the high-energy electric pulse generating device described in the present invention, wherein: a second guiding column is also fixedly connected to the inner wall of the mounting frame, and the outer side of the second guiding column is slidably connected to the moving plate.

[0022] As an alternative solution of the high-energy electric pulse generating device described in the present invention, wherein: a second motor is also fixedly connected to the inner wall of the mounting frame, and the end of the main shaft of the second motor is fixedly connected to a threaded shaft. The other end of the threaded shaft is rotatably connected to the mounting frame. A threaded sleeve is helically connected to the outer side of the threaded shaft. A fixing rod is fixedly connected to the outer side of the threaded sleeve, and the other end of the fixing rod is fixedly connected to the moving plate.

[0023] Under the windless condition, it is detected by a wind detector, and then the external controller controls the movement of the second motor. The second motor drives the threaded shaft to rotate, so that the threaded sleeve drives the upper fixed rod to move, and the fixed rod drives the moving plate to move. At this time, the adjusting plate, the first motor, the rotating shaft and the driving gear inside the moving plate move, ensuring that the driving gear meshes with the driven gear. Thus, the first motor drives the rotating shaft to rotate through a series of transmissions, ensuring that the second fan rotates to achieve the purpose of effective heat dissipation. To avoid the driving gear and the driven gear from hitting teeth and being unable to mesh, the first guide post and spring provided can ensure that the adjusting plate has a certain buffering effect, which can effectively ensure the meshing of the driving gear and the driven gear.

[0024] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0025] When the present invention is in use, the device is installed outdoors. Once the external air flows, it can drive the first fan to rotate. The first fan drives the rotating shaft to rotate, and then drives the driving bevel gear to rotate. The driving bevel gear drives the driven bevel gear on one side to rotate, so that the driven bevel gear drives the rotating rod and the second fan to rotate. At this time, the air flow inside the housing can be realized, and the purpose of dissipating heat inside the housing can be achieved.

[0026] When the air is flowing, when the second fan drives the air to flow, the air blows the rotating plate to rotate. At this time, the air can smoothly pass through the filter plate and be discharged. When the air blows towards the filter plate, the setting of the blocking block can prevent the rotating plate from rotating towards the inside of the housing, realizing that the air can only flow unidirectionally and ensuring the internal environment of the housing.

[0027] When the air flow inside the housing is carried out, the solenoid valve is opened, and the external air enters the ventilation pipe through the filter net and can smoothly enter the housing. When the heat dissipation action is not carried out, the solenoid valve is closed to avoid the external environment from affecting the normal use of the equipment inside the housing.

[0028] Under the windless condition, it is detected by a wind detector, and then the external controller controls the movement of the second motor. The second motor drives the threaded shaft to rotate, so that the threaded sleeve drives the upper fixed rod to move, and the fixed rod drives the moving plate to move. At this time, the adjusting plate, the first motor, the rotating shaft and the driving gear inside the moving plate move, ensuring that the driving gear meshes with the driven gear. Thus, the first motor drives the rotating shaft to rotate through a series of transmissions, ensuring that the second fan rotates to achieve the purpose of effective heat dissipation.

[0029] To avoid the driving gear and the driven gear from hitting teeth and being unable to mesh, the first guide post and spring provided can ensure that the adjusting plate has a certain buffering effect, which can effectively ensure the meshing of the driving gear and the driven gear. Description of the Drawings

[0030] Figure 1It is a schematic diagram of the overall structure of a high-energy electric pulse generating device;

[0031] Figure 2 It is a top view of a high-energy electric pulse generating device;

[0032] Figure 3 It is a cross-sectional view of the air intake cover of a high-energy electric pulse generating device;

[0033] Figure 4 It is a schematic diagram of the structure of the heat dissipation component of a high-energy electric pulse generating device;

[0034] Figure 5 It is a schematic diagram of the structure of the heat dissipation and exhaust mechanism of a high-energy electric pulse generating device;

[0035] Figure 6 It is a schematic diagram of the structure of the power component of a high-energy electric pulse generating device.

[0036] In the figure: 1. Housing; 2. Protective cover; 3. Display screen; 4. Connecting plate; 5. Groove; 6. Heat dissipation component; 601. Rotating shaft; 602. First fan blade; 603. Driving bevel gear; 604. Driven gear; 605. Driven bevel gear; 606. Rotating rod; 607. Connecting frame; 608. Second fan blade; 7. Ventilation pipe; 8. Heat dissipation and exhaust mechanism; 801. Exhaust frame; 802. Guide cover; 803. Fixed frame; 804. Filter plate; 805. Rotating plate; 806. Blocking block; 9. Power component; 901. Installation frame; 902. Moving plate; 903. First motor; 904. Rotating shaft; 905. Driving gear; 906. First guide post; 907. Spring; 908. Second guide post; 909. Second motor; 910. Threaded shaft; 911. Threaded sleeve; 912. Fixed rod; 913. Adjusting plate; 10. Air intake cover; 11. Filter net; 12. Ventilation pipe; 13. Solenoid valve; 14. Wind detector; 15. Shock-absorbing plate. Detailed implementation manners

[0037] Example 1: Please refer to Figure 1 , Figure 2 , Figure 3 and Figure 4 , the present invention provides a technical solution:

[0038] A high-energy electric pulse generating device, comprising a housing 1, a protective cover 2 and a display screen 3,

[0039] The surface of the above-mentioned housing 1 is provided with a protective cover 2, and a groove 5 opened on the surface of the housing 1 is provided inside the protective cover 2, and a heat dissipation component 6 is provided inside the groove 5, and the bottom of the above-mentioned heat dissipation component 6 is rotatably connected to the housing 1;

[0040] Multiple ventilation pipes 7 fixedly connected to the housing 1 are installed on the inner side of the above-mentioned groove 5;

[0041] A wind detector 14 and a display screen 3 are further provided on the upper surface of the above-mentioned housing 1;

[0042] A connecting plate 4 for externally connecting a connecting wire is installed on one side of the above-mentioned housing 1;

[0043] A heat dissipation and exhaust mechanism 8 and an air inlet hood 10 are installed on the side of the above-mentioned housing 1;

[0044] A shock-absorbing plate 15 is installed on the bottom layer of the above-mentioned housing 1;

[0045] The above-mentioned heat dissipation component 6 includes a rotating shaft 601, a first fan blade 602 and a driving bevel gear 603. The outer side of the above-mentioned rotating shaft 601 is rotatably connected to the housing 1. The outer side of the above-mentioned rotating shaft 601 is installed with a driving bevel gear 603, a driven gear 604 and a first fan blade 602. The outer side of the above-mentioned driving bevel gear 603 is engaged with a driven bevel gear 605. The inner side of the above-mentioned driven bevel gear 605 is fixedly connected with a rotating rod 606. The other end of the above-mentioned rotating rod 606 is fixedly connected with a second fan blade 608. The outer side of the above-mentioned rotating rod 606 is rotatably connected to a connecting frame 607. The other end of the above-mentioned connecting frame 607 is fixedly connected to the housing 1. A power component 9 fixedly connected to the housing 1 is provided on one side of the above-mentioned driven gear 604.

[0046] As an energy form, high-voltage electric pulses have been widely used in medical biology, electronics and ion acceleration, nuclear fusion, new energy, military and other fields. Among them, the characteristics of energy storage modules such as capacitors are important parameters of high-voltage electric pulse components. Temperature changes have an important impact on the overall pulse parameters and lifespan. Its excellent performance can greatly affect the stability of the system. Some pulse generators are installed outdoors. However, due to their sealed installation, the influence of the external environment is reduced, but their heat dissipation effect is not good. Moreover, a large amount of heat is generated when the high-voltage switch of the high-voltage electric pulse generation module is working, and it spreads from the high-voltage switch to the surrounding areas. If not dealt with in time, it may affect the energy storage modules such as capacitors in the long run. At the same time, when installed on the equipment, it is connected by bolts. For equipment that is in a vibrating state for a long time, the connection points are prone to loosen due to vibration. When in use, this device is installed outdoors. Once the external air flows, it can drive the first fan blade 602 to rotate. The first fan blade 602 drives the rotating shaft 601 to rotate, and then drives the driving bevel gear 603 to rotate. The driving bevel gear 603 drives the driven bevel gear 605 on one side to rotate, so that the driven bevel gear 605 can drive the rotating rod 606 and the second fan blade 608 to rotate. At this time, the air flow inside the housing 1 can be realized, and the purpose of dissipating heat inside the housing 1 can be achieved;

[0047] In this embodiment, a protective cover 602 is provided on the outer side of the first fan blade 602 to prevent large external impurities from directly contacting the first fan blade 602. When external air acts on the first fan blade 602, it is discharged through multiple ventilation pipes 7 on the other side of the first fan blade 602 to achieve air circulation. The wind detector 14 is provided to ensure that the power component 9 performs power compensation in a windless state to ensure the heat dissipation purpose. The heat dissipation exhaust mechanism 8 provided can ensure the smooth discharge of hot air, and the air inlet cover 10 is provided to ensure that external air can enter the housing 1. The shock-absorbing plate 15 provided can reduce the impact of external equipment vibration on the housing 1 and internal components;

[0048] The connecting frame 607 provided is used to support the rotating rod 606 to ensure the smooth rotation of the second fan blade 608 on one side of the rotating rod 606.

[0049] Embodiment 2: This embodiment is an improvement made to Embodiment 1. Please refer to Figure 5 , specifically, the above-mentioned heat dissipation exhaust mechanism 8 includes an exhaust frame 801, a guiding cover 802 and a fixing frame 803. The outer side of the exhaust frame 801 is fixedly connected to the housing 1. The guiding cover 802 and the fixing frame 803 are installed inside the exhaust frame 801. A filter plate 804 is fixedly connected inside the guiding cover 802. Multiple rotating plates 805 are rotatably connected inside the fixing frame 803, and a blocking block 806 fixedly connected to the fixing frame 803 is provided on one side of each rotating plate 805.

[0050] The guiding cover 802 is arranged in a funnel shape, and the side of the guiding cover 802 facing away from the fixing frame 803 is provided with a narrow opening.

[0051] When air flows, when the second fan blade 608 drives the air to flow, the air blows the rotating plate 805 to rotate. At this time, the air can smoothly pass through the filter plate 804 and be discharged. When the air blows towards the filter plate 804, the setting of the blocking block 806 can prevent the rotating plate 805 from rotating towards the inside of the housing 1, realizing the one-way flow of air and ensuring the internal environment of the housing 1;

[0052] In this embodiment, the internal hot air makes the rotating plate 805 rotate by blowing, and at this time the hot air can be smoothly discharged. The rotating plate 805 can be made of a relatively light plastic plate and is smoothly discharged through the guiding cover 802. The filter plate 804 provided can filter external impurities from entering the housing. At the same time, when the air blows back, the rotating plate 805 cooperates with the blocking block 806 to prevent it from rotating, effectively blocking external air from entering the housing 1 and affecting its internal components.

[0053] Embodiment 3: This embodiment is an improvement made to Embodiment 2. Please refer to Figure 3, Specifically, the outer side of the intake hood 10 is fixedly connected to the housing 1. A filter net 11 is fixedly connected inside the intake hood 10. The other end of the intake hood 10 is fixedly connected to a ventilation pipe 12, and a solenoid valve 13 is installed on the outer side of the ventilation pipe 12.

[0054] When the air inside the housing 1 is flowing, the solenoid valve 13 is opened, and external air enters the inside of the ventilation pipe 12 through the filter net 11 and can smoothly enter the housing 1. When the heat dissipation action is not carried out, the solenoid valve 13 is closed to prevent the external environment from affecting the normal use of the equipment inside the housing 1.

[0055] Embodiment 4: This embodiment is an improvement made to Embodiment 3. Please refer to Figure 6 , Specifically, the power component 9 includes a mounting frame 901, a moving plate 902, and a first motor 903. The outer side of the mounting frame 901 is fixedly connected to the housing 1. A moving plate 902 is arranged inside the mounting frame 901. An adjusting plate 913 is slidably connected inside the moving plate 902, and a first motor 903 is fixedly connected to the top of the adjusting plate 913. The end of the main shaft of the first motor 903 is fixedly connected to a rotating shaft 904, and the other end of the rotating shaft 904 is fixedly connected to a driving gear 905.

[0056] A first guiding column 906 is slidably connected inside the adjusting plate 913. Both ends of the first guiding column 906 are fixedly connected to the moving plate 902. Two groups of springs 907 are arranged on the outer side of the first guiding column 906, and one side of the springs 907 is fixedly connected to the moving plate 902, and the other end of the springs 907 is fixedly connected to the adjusting plate 913.

[0057] A second guiding column 908 is also fixedly connected to the inner wall of the mounting frame 901, and the outer side of the second guiding column 908 is slidably connected to the moving plate 902.

[0058] A second motor 909 is also fixedly connected to the inner wall of the mounting frame 901, and the end of the main shaft of the second motor 909 is fixedly connected to a threaded shaft 910. The other end of the threaded shaft 910 is rotatably connected to the mounting frame 901. A threaded sleeve 911 is helically connected to the outer side of the threaded shaft 910. A fixing rod 912 is fixedly connected to the outer side of the threaded sleeve 911, and the other end of the fixing rod 912 is fixedly connected to the moving plate 902.

[0059] Under the condition of no wind, it is detected by the wind power detector 14, and then the external controller controls the movement of the second motor 909. The second motor 909 drives the rotation of the threaded shaft 910, so that the threaded sleeve 911 drives the upper fixed rod 912 to move, and the fixed rod 912 drives the moving plate 902 to move. At this time, the adjusting plate 913, the first motor 903, the rotating shaft 904 and the driving gear 905 inside the moving plate 902 move, ensuring that the driving gear 905 meshes with the driven gear 604. Thus, the first motor 903 drives the rotation of the rotating shaft 601 through a series of transmissions, ensuring that the second fan blade 608 rotates to achieve the purpose of effective heat dissipation. To avoid the driving gear 905 and the driven gear 604 from hitting teeth and being unable to mesh, the arranged first guide post 906 and spring 907 can ensure that the adjusting plate 913 can have a certain buffering effect, effectively ensuring that the driving gear 905 meshes with the driven gear 604;

[0060] In this embodiment, the arranged first guide post 905 and the outer spring 907 can ensure that when the adjusting plate 913 moves, once the driving gear 905 and the driven gear 604 hit teeth, the spring 907 can automatically adjust the position of the adjusting plate 913. The first motor 903 is pre-started, and at this time, it can be ensured that the gear parts are meshed. Under the action of the spring 907, the adjusting plate 913 is automatically adjusted;

[0061] The arrangement of the second guide post 908 can ensure the stable movement of the moving plate 902 and play a certain supporting role at the same time.

[0062] In this article, specific examples are used to elaborate on the principle and implementation manner of the present invention. The description of the above examples is only used to help understand the method and its core idea of the present invention. The above is only the preferred implementation manner of the present invention. It should be noted that due to the limitation of literal expression and objectively existing infinite specific structures, for those of ordinary skill in the art, without departing from the principle of the present invention, several improvements, retouches or changes can be made, or the above technical features can be combined in an appropriate manner; these improvements, retouches, changes or combinations, or directly applying the concept and technical solution of the invention to other occasions without improvement, should all be regarded as the protection scope of the present invention.

Claims

1. A high-energy electric pulse generating device, characterized in that: It comprises a housing (1), a protective cover (2) and a display screen (3), A protective cover (2) is installed on the surface of the housing (1), and a groove (5) is provided on the inner side of the protective cover (2) and is opened on the surface of the housing (1), and a heat dissipation component (6) is provided inside the groove (5), and the bottom of the heat dissipation component (6) is rotatably connected to the housing (1); Multiple groups of ventilation pipes (7) fixedly connected to the housing (1) are installed on the inner side surface of the groove (5); The upper surface of the housing (1) is also provided with a wind force detector (14) and a display screen (3); A connection plate (4) for external connection lines is installed on one side of the housing (1); A heat dissipation and exhaust mechanism (8) and an air intake cover (10) are installed on the side of the housing (1); A shock-absorbing plate (15) is installed on the bottom layer of the housing (1); The heat dissipation assembly (6) comprises a rotating shaft (601), a first fan blade (602) and a driving bevel gear (603); the outer side of the rotating shaft (601) is rotatably connected to the housing (1); the driving bevel gear (603), the driven gear (604) and the first fan blade (602) are mounted on the outer side of the rotating shaft (601); the outer side of the driving bevel gear (603) is meshed with a driven bevel gear (605); the interior of the driven bevel gear (605) is fixedly connected to a rotating rod (606); the other end of the rotating rod (606) is fixedly connected to a second fan blade (608); the outer side of the rotating rod (606) is rotatably connected to a connecting frame (607); the other end of the connecting frame (607) is fixedly connected to the housing (1); and one side of the driven gear (604) is provided with a power assembly (9) fixedly connected to the housing (1); The heat dissipation and exhaust mechanism (8) comprises an exhaust frame (801), a guide cover (802) and a fixed frame (803); the outer side of the exhaust frame (801) is fixedly connected to the housing (1); the guide cover (802) and the fixed frame (803) are installed inside the exhaust frame (801); the interior of the guide cover (802) is fixedly connected to a filter plate (804); the interior of the fixed frame (803) is rotatably connected to multiple groups of rotating plates (805), and one side of each rotating plate (805) is provided with a blocking block (806) fixedly connected to the fixed frame (803); the guide cover (802) is arranged in a bucket shape, and the side of the guide cover (802) facing away from the fixed frame (803) is arranged in a narrow opening; The power assembly (9) comprises a mounting frame (901), a movable plate (902) and a first motor (903); the outer side of the mounting frame (901) is fixedly connected to the housing (1); the interior of the mounting frame (901) is provided with a movable plate (902); the interior of the movable plate (902) is slidably connected to an adjustment plate (913); the top of the adjustment plate (913) is fixedly connected to the first motor (903); the end of the main shaft of the first motor (903) is fixedly connected to a rotating shaft (904); the other end of the rotating shaft (904) is fixedly connected to a driving gear (905) The adjusting plate (913) is internally slidably connected to a first guide column (906), both ends of the first guide column (906) are fixedly connected to the movable plate (902), two sets of springs (907) are provided on the outer side of the first guide column (906), and one side of the spring (907) is fixedly connected to the movable plate (902), and the other end of the spring (907) is fixedly connected to the adjusting plate (913); the inner wall of the mounting frame (901) is also fixedly connected to a second guide column (908), and the outer side of the second guide column (908) is slidably connected to the movable plate (902).

2. A high-energy electric pulse generating device according to claim 1, characterized in that: The outer side of the air intake hood (10) is fixedly connected to the housing (1), the interior of the air intake hood (10) is fixedly connected to a filter screen (11), the other end of the air intake hood (10) is fixedly connected to a vent pipe (12), and a solenoid valve (13) is installed on the outer side of the vent pipe (12).

3. A high-energy electric pulse generating device according to claim 2, characterized in that: The inner wall of the installation frame (901) is also fixedly connected to a second motor (909), and the main shaft end of the second motor (909) is fixedly connected to a threaded shaft (910), the other end of the threaded shaft (910) is rotatably connected to the installation frame (901), the outer side of the threaded shaft (910) is spirally connected to a threaded sleeve (911), the outer side of the threaded sleeve (911) is fixedly connected to a fixed rod (912), and the other end of the fixed rod (912) is fixedly connected to the movable plate (902).

Citation Information

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