Conductive electromagnetic water absorber
Through the coordination of the stator transmission assembly and the rotor extraction mechanism, electromagnetic force is used to generate a clockwise rotating vortex in the water fluid inside the equipment, thus solving the problem of easy rust of the conductive electromagnetic water absorber fan and achieving an efficient and maintenance-free water flow effect.
Patent Information
- Application Number
- CN202510026689.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-08
- Publication Date
- 2025-10-17
- Estimated Expiration
- 2045-01-08
AI Technical Summary
When using the existing conductive electromagnetic water absorber, the fan is prone to rust, there is a risk of pollution, the structure is complex, and the efficiency decreases after long-term use.
The stator transmission component is coordinated with the rotor extraction mechanism, and electromagnetic force is used to generate a clockwise rotating vortex in the water fluid inside the device, achieving autonomous flow, avoiding rotating parts and current converters, and improving the efficiency and durability of the equipment.
It achieves wear-free, maintenance-free and efficient water flow, which increases the service life and cleaning efficiency of the equipment.
Smart Images

Figure CN119825761B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of rubber processing, and particularly relates to a conduction type electromagnetic water suction device. BACKGROUND
[0002] The working principle of the water suction device is mainly based on the principle of negative pressure (lower than atmospheric pressure). When the built-in motor of the water suction device is started, it drives the internal impeller or spiral blade to rotate, thereby forming a low pressure area. The low pressure area causes the external liquid (such as water) to be sucked into the water suction pipeline of the water suction device under the action of the pressure difference, and then stored in a container or cylinder. The structure of the water suction device mainly includes a power supply, a motor, a vacuum pump, a water storage bucket, a water suction hose and a spray head. The power supply provides power for the entire device. The motor and the vacuum pump are the core parts for realizing the water suction effect. The water suction hose sucks the liquid from the surface to be absorbed into the water storage bucket, and the spray head is used to spray water and cleaning liquid to clean the surface to be absorbed. The water suction device has a wide range of application scenarios and is commonly used to quickly and efficiently suck liquid, especially in situations where liquid needs to be quickly cleaned up, such as industrial, agricultural or household cleaning.
[0003] The existing conduction type electromagnetic water suction device has the following problems in use. For example, the application number CN200910154445.4 discloses a water suction device including a body and a suction inlet arranged at the front end of the body. A fan, a motor and a water tank for collecting the suctioned sewage are arranged inside the body. The air inlet end of the fan is connected to an exhaust pipeline. A water blocking rib is arranged between the upper end of the exhaust pipeline and the suction inlet. A connector is arranged at the upper end of the water tank near the suction inlet. A water inlet and an air outlet are arranged on the connector. The air outlet extends out of the plane of the connector and faces the upper end of the exhaust pipeline. The water inlet is located below the water-blocking eave of the rib. The connector of the water tank is arranged at the upper end of the water tank near the suction inlet and near the exhaust pipeline. When the product is working, the fan can suck the air inside the suction inlet and the water tank. In this way, the water marks on the surface of glass and ceramic tiles can be sucked in. Moreover, the rib can separate water and air, so that the structure is simple and the use is convenient. However, in the above-mentioned technology, the fan is arranged inside the pipeline. Long-term use can cause rusting of the fan accessories, which can cause pollution to the water quality and has certain danger. Therefore, we propose a conduction type electromagnetic water suction device to solve the above-mentioned problems. SUMMARY
[0004] In order to solve the above problems, the application provides a conduction type electromagnetic water suction device, which mainly utilizes the stator transmission assembly and the rotor extraction mechanism to enable the water body to flow in the device in a self-adaptive manner.
[0005] In order to achieve the above object, the application provides the following technical scheme.
[0006] The conduction type electromagnetic water suction device comprises a mobile support assembly and a stator transmission assembly, the mobile support assembly is provided with a rotor extraction mechanism connected by bolts at the upper part of both ends, the input end of the rotor extraction mechanism is provided with a water inlet component connected by sleeving, the output end of the rotor extraction mechanism is provided with a valve control component connected by sleeving, and the upper side of the rotor extraction mechanism is provided with the stator transmission assembly connected by bolts.
[0007] As a further technical scheme, the mobile support assembly comprises a vehicle frame, a side base sheet, a pneumatic pressure reduction plate, a mobile wheel set, a pull rod and a vehicle plate, the outer side of the vehicle frame is provided with the side base sheet, the inner side of one end of the side base sheet is provided with the pneumatic pressure reduction plate installed by sleeving, the lower part of the periphery of the vehicle frame is provided with the mobile wheel set connected by bolts, the outer side of one end of the vehicle frame is provided with the pull rod, and the top end of the vehicle frame is provided with the vehicle plate connected by bolts.
[0008] As a further technical scheme, the rotor extraction mechanism comprises a bolt base, a pair of sleeve bases, an assembly sleeve disc, a sealing ring, a deep groove ball shaft, a rotating pipe, a water collecting cabin, a center frame, a spiral water pipe and a side water pipe, the bolt base is connected by bolts at the upper part of both ends of the vehicle plate, the upper part of the bolt base is provided with the pair of sleeve bases, the inner side of the pair of sleeve bases is provided with the assembly sleeve disc assembled by bolts, the inner side of the assembly sleeve disc is provided with the sealing ring, and the inner side of the sealing ring is provided with the deep groove ball shaft.
[0009] As a further technical scheme, the inner side of the deep groove ball shaft is provided with the rotating pipe, the inner end of the rotating pipe is provided with the water collecting cabin, the inner side of the middle part of the water collecting cabin is provided with the center frame, the opposite side of the water collecting cabin is provided with the spiral water pipe installed by sleeving, and the outer side of the water collecting cabin is provided with the side water pipe connected by bolt sleeving.
[0010] As a further technical scheme, the water inlet component comprises a front frame, a front sleeve disc, a pneumatic telescopic frame, a lifting sleeve, a lifting cabin, a flexible pipe, a connecting pipe and a water inlet nozzle, the front frame is arranged outside one end of the sleeve base, the inner side of the front frame is provided with the front sleeve disc, the lower side of the front frame is provided with the pneumatic telescopic frame, the output end of the pneumatic telescopic frame is provided with the lifting sleeve, the inner side of the lifting sleeve is provided with the lifting cabin, the upper side of the lifting cabin is provided with the flexible pipe, the upper side of the flexible pipe is provided with the connecting pipe, and the lower side of the lifting cabin is provided with the water inlet nozzle in annular array distribution.
[0011] As a further technical scheme, the valve control component comprises a connecting frame, a valve cabin, a bearing inlet pipe, an output pipe, a valve core ring, a hydraulic cylinder, a push rod, a valve plug, a bearing base, a handle, a rotating sleeve rod, a threaded strip, a threaded cabin, a mesh cover and a clamping sealing strip, the connecting frame is arranged outside the other end of the sleeve base, the outer end of the connecting frame is provided with the valve cabin, the input end of the valve cabin is provided with the bearing inlet pipe in sleeve connection, the output end of the valve cabin is provided with the output pipe, the inner side of the valve cabin is provided with the valve core ring in sleeve connection, the top end of the valve cabin is provided with the hydraulic cylinder, the output end of the hydraulic cylinder is provided with the push rod, and the bottom end of the push rod is provided with the valve plug.
[0012] As a further technical scheme, the lower side of the valve cabin is provided with the bearing base, the lower side of the bearing base is provided with the handle, the output end of the handle is provided with the rotating sleeve rod, the upper side of the rotating sleeve rod is provided with the threaded strip, the outer side of the threaded strip is provided with the threaded cabin, the upper side of the threaded strip is provided with the mesh cover, and the upper side of the edge side of the mesh cover is provided with the clamping sealing strip.
[0013] As a further technical scheme, the stator transmission assembly comprises a bolt end frame, an assembly base sheet, a connecting frame, an annular cabin, an armored plate, a fin base, a bolt inner plate, an embedded rod and a winding coil, the bolt end frame is bolted to the edge side of the sleeve base, one end of the bolt end frame is provided with the assembly base sheet on the inner side, and the opposite side of the assembly base sheet is provided with the connecting frame, and the inner end of the connecting frame is provided with the annular cabin.
[0014] As a further technical scheme, the outer side of the annular cabin is provided with the armored plate in annular array distribution, the outer side of the armored plate is provided with the fin base, the inner side of the annular cabin is bolted with the bolt inner plate in annular array distribution, the opposite side of the bolt inner plate is provided with the embedded rod, and the outer side of the embedded rod is provided with the winding coil in winding connection.
[0015] Compared with the prior art, the present application has the following beneficial effects:
[0016] The device mainly utilizes the cooperation of the stator transmission assembly and the rotor extraction mechanism to enable the water body to flow in the device in a self-adaptive manner. When the electromagnet coil is energized, the water flow in the pipeline generates a counterclockwise vortex under the electromagnetic force, and the water flow flows in a certain direction. The interaction between the magnetic field and the current in the conductive fluid enables the fluid to generate a vortex pressure under the electromagnetic force, thereby pushing the water flow to move from low to high. The magnetic water suction device does not have any rotating parts, current transducers, and is maintenance-free, wear-free, and high-efficiency. BRIEF DESCRIPTION OF DRAWINGS
[0017] Figure 1 It is a structural schematic diagram of a conductive electromagnetic water suction device.
[0018] Figure 2 It is a structural schematic diagram of the invention from the bottom.
[0019] Figure 3 It is a structural schematic diagram of the rotor extraction mechanism in the invention.
[0020] Figure 4 It is a structural schematic diagram of the valve control component in the invention.
[0021] Figure 5 It is a structural schematic diagram of the stator transmission assembly in the invention.
[0022] In the figure: 1, moving support assembly; 101, vehicle frame; 102, side base sheet; 103, pneumatic pressure reduction plate; 104, moving wheel set; 105, pull rod; 106, vehicle plate; 2, rotor extraction mechanism; 201, bolt base; 202, pair of sleeve bases; 203, assembly sleeve disc; 204, sealing ring; 205, deep groove ball shaft; 206, rotating pipe; 207, water collection cabin; 208, center frame; 209, spiral water pipe; 2010, side water pipe; 3, water inlet component; 301, front stand; 302, front sleeve disc; 303, pneumatic telescopic stand; 304, lifting sleeve; 305, lifting cabin; 306, flexible pipe; 307, folding pipe; 308, water inlet nozzle; 4, valve control component; 401, connecting piece stand; 402, valve cabin; 403, bearing inlet pipe; 404, output pipe; 405, valve core ring; 406, hydraulic cylinder; 407, push rod; 408, valve plug; 409, bearing base; 4010, handle; 4011, rotating sleeve rod; 4012, threaded strip; 4013, threaded cabin; 4014, mesh cover; 4015, clamping plug sealing strip; 5, stator transmission assembly; 501, bolt end stand; 502, assembly base sheet; 503, connecting stand; 504, annular cabin; 505, armored plate; 506, fin base; 507, bolt inner plate; 508, built-in rod; 509, winding coil. DETAILED DESCRIPTION
[0023] In the description of the present application, it needs to be understood that the terms "center", "longitudinal", "transverse", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer" and the like indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation on the present application. In addition, the terms "first", "second" and the like are only for descriptive purposes and cannot be understood as indicating or implying relative importance or implicitly indicating the number of technical features indicated. Therefore, the features defined with "first", "second" and the like can be explicitly or implicitly included one or more. In the description of the present application, unless otherwise specified, the meaning of "a plurality of" is two or more.
[0024] In the description of the present application, it needs to be understood that the terms "installation", "connection", "connection" should be understood broadly, for example, it can be fixed connection, or detachable connection, or integral connection; it can be mechanical connection, or electrical connection; it can be directly connected, or indirectly connected through intermediate medium, or the communication between two elements. For those skilled in the art, the specific meaning of the above terms in the present application can be understood by specific circumstances.
[0025] The technical solutions in the embodiments of the present application will be described clearly and completely in the following with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, not all. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor are within the scope of protection of the present application.
[0026] Please refer to Figure 1-5 In the embodiments of the present application, a conductive electromagnetic water absorber includes a moving support assembly 1 and a stator transmission assembly 5. The moving support assembly 1 is provided with a bolted rotor extraction mechanism 2 on both ends. The input end of the rotor extraction mechanism 2 is provided with a sleeve connection water inlet component 3. The output end of the rotor extraction mechanism 2 is provided with a sleeve connection valve control component 4. The upper side of the rotor extraction mechanism 2 is provided with a bolted stator transmission assembly 5.
[0027] The mobile support assembly 1 comprises a frame 101, a side base 102, a pneumatic decompression plate 103, a mobile wheel set 104, a pull rod 105 and a vehicle plate 106, the outer side of the frame 101 is provided with the side base 102, the inner side of one end of the side base 102 is provided with the sleeved and mounted pneumatic decompression plate 103, the lower part of the periphery of the frame 101 is provided with the bolt-connected mobile wheel set 104, the outer side of one end of the frame 101 is provided with the pull rod 105, and the top end of the frame 101 is provided with the bolt-connected vehicle plate 106.
[0028] In the embodiment of the present application, when in use, the frame 101 is pulled through the pull rod 105, the frame 101 is moved to a suitable working position under the action of the mobile wheel set 104, the vehicle plate 106 is used to splice and install various components, the pneumatic decompression plate 103 at one end of the side base 102 is used to output power to drive the output end to operate, and the equipment achieves the effect of decompression braking.
[0029] The rotor extraction mechanism 2 comprises a bolt base 201, a pair of sleeve bases 202, an assembly sleeve disc 203, a sealing ring 204, a deep groove ball shaft 205, a rotating pipe 206, a water collecting cabin 207, a central frame 208, a spiral water pipe 209 and a side water pipe 2010, the bolt base 201 is bolt-connected on the upper part of both ends of the vehicle plate 106, the upper part of the bolt base 201 is provided with the pair of sleeve bases 202, the inner side of the pair of sleeve bases 202 is provided with the bolt-assembled assembly sleeve disc 203, the inner side of the assembly sleeve disc 203 is provided with the sealing ring 204, and the inner side of the sealing ring 204 is provided with the deep groove ball shaft 205.
[0030] In the embodiment of the present application, since the bolt base 201 and the assembly sleeve disc 203 both have the bolt-connected structure, the pipeline can be effectively installed, and after the installed sealing ring 204 and the deep groove ball shaft 205 are installed and matched, the rotating pipe 206 can still achieve the sealing effect in the rotating process.
[0031] The inner side of the deep groove ball shaft 205 is provided with the rotating pipe 206, the inner end of the rotating pipe 206 is provided with the water collecting cabin 207, the inner side of the middle part of the water collecting cabin 207 is provided with the central frame 208, the opposite side of the water collecting cabin 207 is provided with the sleeved and mounted spiral water pipe 209, and the outer side of the water collecting cabin 207 is provided with the bolt-sleeved side water pipe 2010.
[0032] In the embodiment of the present application, since the stator transmission assembly 5 generates a strong electromagnetic field, the installed spiral water pipe 209 has a spiral structure, and the side water pipe 2010 is distributed in a ring array around the central axis of the water collecting cabin 207, so under the action of the electromagnetic field, the rotating effect can be efficient, so that the water flow generates an adaptive flow effect.
[0033] The water inlet component 3 comprises a front frame 301, a front sleeve disc 302, a pneumatic telescopic frame 303, a lifting sleeve 304, a lifting cabin 305, a flexible pipe 306, a connecting pipe 307 and a water inlet nozzle 308. The front frame 301 is arranged at one end of the sleeve base 202, and the inner side of the front frame 301 is provided with the front sleeve disc 302. The lower side of the front frame 301 is provided with the pneumatic telescopic frame 303, and the output end of the pneumatic telescopic frame 303 is provided with the lifting sleeve 304. The inner side of the lifting sleeve 304 is provided with the lifting cabin 305, and the upper side of the lifting cabin 305 is provided with the flexible pipe 306. The upper side of the flexible pipe 306 is provided with the connecting pipe 307, and the lower side of the lifting cabin 305 is provided with the water inlet nozzle 308 arranged in an annular array.
[0034] In the embodiment of the present application, after a strong electromagnetic field is formed, the pneumatic telescopic frame 303 on the front frame 301 outputs power to drive the output end to operate, so that the lifting sleeve 304 operates to a suitable height, and the water inlet nozzle 308 on the lifting cabin 305 is aligned with the water body to be adsorbed. The water body enters the lifting sleeve 304 through the water inlet nozzle 308 and flows into the flexible pipe 306 and the connecting pipe 307 to be input into the rotating pipe 206.
[0035] The valve control component 4 comprises a connecting frame 401, a valve cabin 402, a bearing inlet pipe 403, an output pipe 404, a valve core ring 405, a hydraulic cylinder 406, a push rod 407, a valve plug 408, a bearing base 409, a handle 4010, a rotating sleeve rod 4011, a threaded strip 4012, a threaded cabin 4013, a mesh cover 4014 and a clamping sealing strip 4015. The connecting frame 401 is arranged at the other end of the sleeve base 202, and the outer end of the connecting frame 401 is provided with the valve cabin 402. The input end of the valve cabin 402 is provided with the bearing inlet pipe 403 arranged in a sleeve connection mode. The output end of the valve cabin 402 is provided with the output pipe 404. The inner side of the valve cabin 402 is provided with the valve core ring 405 arranged in a sleeve connection mode. The top end of the valve cabin 402 is provided with the hydraulic cylinder 406, and the output end of the hydraulic cylinder 406 is provided with the push rod 407. The bottom end of the push rod 407 is provided with the valve plug 408.
[0036] In the embodiment of the present application, through the cooperation of the rotor extraction mechanism 2 and the stator transmission assembly 5, the water flow is input into the bearing inlet pipe 403 and enters the valve cabin 402. The hydraulic cylinder 406 outputs power to drive the output end to operate, so that the push rod 407 operates to make the valve plug 408 away from the valve core ring 405, so that the water body can be output to the target location through the output pipe 404 at the output end of the valve cabin 402.
[0037] The valve chamber 402 is provided below the bearing base 409, and the handle 4010 is provided below the bearing base 409, and the output end of the handle 4010 is provided with a rotating sleeve rod 4011, and the rotating sleeve rod 4011 is provided above the threaded strip 4012, and the threaded strip 4012 is provided with a threaded chamber 4013 on the outer side, and the threaded strip 4012 is provided with a mesh cover 4014, and the mesh cover 4014 is provided with a clamping sealing strip 4015 on the side.
[0038] In the embodiment of the application, when the hydraulic cylinder 406 cannot be used, the handle 4010 below the bearing base 409 is used for manual operation, so that the rotating sleeve rod 4011 rotates to operate the threaded strip 4012 and the threaded chamber 4013 to operate the mesh cover 4014 and the clamping sealing strip 4015 to separate the valve core ring 405, so as to facilitate the output of the water body.
[0039] The stator transmission assembly 5 comprises a bolt end frame 501, an assembly substrate 502, a connecting frame 503, an annular chamber 504, an armored plate 505, a fin base 506, a bolt inner plate 507, an inner rod 508 and a winding coil 509, the bolt end frame 501 is bolted to the side of the sleeve base 202, one end of the bolt end frame 501 is provided with the assembly substrate 502, and the opposite side of the assembly substrate 502 is provided with the connecting frame 503, and the inner end of the connecting frame 503 is provided with the annular chamber 504.
[0040] In the embodiment of the application, the bolt end frame 501, the assembly substrate 502 and the connecting frame 503 can bolt the annular chamber 504, and the annular chamber 504 is separated by a certain distance, so that the equipment is convenient for heat dissipation and effective maintenance.
[0041] The outer side of the annular chamber 504 is provided with an annular array of armored plates 505, and the outer side of the armored plate 505 is provided with a fin base 506, and the inner side of the annular chamber 504 is bolted to an annular array of bolt inner plates 507, and the opposite side of the bolt inner plate 507 is provided with an inner rod 508, and the outer side of the inner rod 508 is provided with a winding coil 509.
[0042] In the embodiment of the application, when it is needed to be used, the bolt inner plate 507 on the annular chamber 504 is used to output power, so that the inner rod 508 and the winding coil 509 form a strong magnetic field at the inner edge of the annular chamber 504, and the outer side of the annular chamber 504 is provided with the armored plate 505 and the fin base 506, so that the protection and cooling effect of the equipment can be improved.
[0043] The working principle of the application is: when in use, the frame 101 is pulled by the pull rod 105, and the frame 101 moves to the suitable working position under the action of the moving wheel set 104, and the car plate 106 is used to splice and install each component, and the power output by the pneumatic pressure reducing plate 103 at one end of the side base plate 102 drives the output end to operate, so that the equipment achieves the effect of pressure reduction and braking; when it is needed to use, the output power is output by the bolt inner plate 507 on the annular warehouse 504, so that the built-in rod 508 and the winding coil 509 form a strong magnetic field at the inner edge of the annular warehouse 504; because the armored plate 505 and the fin base 506 are arranged on the outer edge of the annular warehouse 504, the protection and cooling effect of the equipment can be improved; after a strong electromagnetic field is formed, the power output by the pneumatic telescopic frame 303 on the front frame 301 drives the output end to operate, so that the lifting sleeve 304 operates to a suitable height, and the water inlet nozzle 308 on the lifting cabin 305 is aligned with the water body to be adsorbed; the water body enters the lifting sleeve 304 through the water inlet nozzle 308 and flows into the flexible pipe 306, the connecting pipe 307 and the rotating pipe 206; because the bolt base 201 and the assembly sleeve disc 203 have a bolt connection structure, the pipeline can be effectively installed; after the installed sealing ring 204 and the deep groove ball shaft 205 are installed and matched, the rotating pipe 206 can still achieve a sealing effect during rotation; because the stator transmission assembly 5 generates a strong electromagnetic field, the installed spiral water pipe 209 has a spiral structure, and the side water pipe 2010 is arranged in an annular array around the central axis of the water collecting cabin 207; therefore, under the action of the electromagnetic field, the water flow can be efficiently rotated to produce an adaptive flow effect; through the cooperation of the rotor extraction mechanism 2 and the stator transmission assembly 5, the water flow enters the bearing inlet pipe 403 and the valve cabin 402, and the hydraulic cylinder 406 drives the output end to operate, so that the push rod 407 operates to make the valve plug 408 separate from the valve core ring 405, so that the water body can be output to the target location through the output pipe 404 of the output end of the valve cabin 402; when the hydraulic cylinder 406 cannot be used, the handle 4010 below the bearing base 409 is manually operated to make the rotating sleeve rod 4011 rotate, so that the threaded strip 4012 and the threaded cabin 4013 screw to make the mesh cover 4014 and the clamping plug sealing strip 4015 separate from the valve core ring 405, so that the water body can be output; because the bolt end frame 501, the assembly base plate 502 and the connecting frame 503 can bolt splice the annular warehouse 504, and the annular warehouse 504 is separated by a certain distance, the equipment can be cooled and effectively maintained.
[0044] It will be obvious to a person skilled in the art that the application is not limited to the details of the foregoing exemplary embodiments and can be implemented in other concrete forms without departing from the spirit or essential characteristics of the application. The embodiments are therefore to be considered in all respects as illustrative and not restrictive, the scope of the application being indicated by the appended claims rather than by the foregoing description, and all changes which come within the meaning and range of equivalency of the claims are therefore intended to be embraced therein. No reference signs in the claims should be considered as limiting the scope of the claims to the identity of the reference signs therein.
[0045] Furthermore, it should be understood that although the description is made on the basis of the embodiments, not every embodiment contains only one independent technical solution, and the description of the specification is only for the sake of clarity, and those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that those skilled in the art can understand.
Claims
1. A conductive electromagnetic water absorber, comprising a movable support assembly (1) and a stator transmission assembly (5), characterized in that: Bolt-connected rotor extraction mechanisms (2) are provided above both ends of the movable support assembly (1), a sleeve-connected water inlet component (3) is provided at the input end of the rotor extraction mechanism (2), a sleeve-connected valve control component (4) is provided at the output end of the rotor extraction mechanism (2), and a bolt-connected stator transmission assembly (5) is provided on the upper side of the rotor extraction mechanism (2); The mobile support assembly (1) includes a vehicle frame (101), a side base plate (102), a pneumatic decompression plate (103), a movable wheel group (104), a pull rod (105) and a vehicle plate (106); the side base plate (102) is provided on the outer side of the vehicle frame (101), and a sleeve-mounted pneumatic decompression plate (103) is provided on the inner side of one end of the side base plate (102); the movable wheel group (104) connected by bolts is provided on the lower side of the vehicle frame (101); the pull rod (105) is provided on the outer side of one end of the vehicle frame (101); and the vehicle plate (106) connected by bolts is provided on the top of the vehicle frame (101); The rotor extraction mechanism (2) comprises a bolt base (201), a sleeve base (202), an assembly disc (203), a sealing ring (204), a deep groove ball shaft (205), a rotating tube (206), a water collecting chamber (207), a center frame (208), a spiral water pipe (209) and a side water pipe (2010); the bolt base (201) is bolted to the top of the two ends of the vehicle plate (106); the sleeve base (202) is provided above the bolt base (201); the assembly disc (203) assembled with bolts is provided on the inner side of the sleeve base (202); the sealing ring (204) is provided on the inner side of the assembly disc (203); and the deep groove ball shaft (205) is provided on the inner side of the sealing ring (204); A rotating tube (206) is provided on the inner side of the deep groove ball shaft (205), a water collecting chamber (207) is provided on the inner end of the rotating tube (206), a center frame (208) is provided on the inner side of the middle portion of the water collecting chamber (207), a spiral water pipe (209) is provided on the opposite side of the water collecting chamber (207), and a side water pipe (2010) is provided on the outer side of the water collecting chamber (207). The stator transmission assembly (5) comprises a bolt end frame (501), an assembly substrate (502), a connecting frame (503), an annular bin (504), an armor plate (505), a fin base (506), a bolt inner plate (507), an inner rod (508) and a winding coil (509), wherein the bolt end frame (501) is bolted to the side of the sleeve base (202), an assembly substrate (502) is provided on the inner side of one end of the bolt end frame (501), and a connecting frame (503) is provided on the opposite side of the assembly substrate (502), and an annular bin (504) is provided on the inner end of the connecting frame (503); The outer side of the annular bin (504) is provided with armor plates (505) distributed in an annular array, and the outer side of the armor plates (505) is provided with a fin base (506), the inner side of the annular bin (504) is bolted with a bolt inner plate (507) distributed in an annular array, and the opposite side of the bolt inner plate (507) is provided with an internal rod (508), and the outer side of the internal rod (508) is provided with a wound winding coil (509).
2. A conductive electromagnetic water absorber according to claim 1, characterized in that: The water inlet component (3) includes a front frame (301), a front sleeve (302), a pneumatic telescopic frame (303), a lifting sleeve (304), a lifting cabin (305), a flexible pipe (306), a folding pipe (307) and a water inlet nozzle (308). The front frame (301) is arranged on the outside of one end of the sleeve base (202). The front sleeve (302) is arranged on the inner side of the front frame (301). A pneumatic telescopic frame (303) is provided below, and a lifting sleeve (304) is provided at the output end of the pneumatic telescopic frame (303), a lifting cabin (305) is provided on the inner side of the lifting sleeve (304), and a flexible tube (306) is provided above the lifting cabin (305), a folding tube (307) is provided above the flexible tube (306), and water inlet nozzles (308) distributed in a ring array are provided below the lifting cabin (305).
3. The conductive electromagnetic water absorber according to claim 1, characterized in that: The valve control component (4) includes a connecting frame (401), a valve chamber (402), a bearing inlet pipe (403), an output pipe (404), a valve core ring (405), a hydraulic cylinder (406), a push rod (407), a valve plug (408), a bearing base (409), a handle (4010), a rotating sleeve rod (4011), a threaded strip (4012), a threaded chamber (4013), a mesh cover (4014) and a plug-in seal (4015). The connecting frame (401) is arranged on the outside of the other end of the sleeve base (202). The outer end of the connecting frame (401) is provided with a valve cabin (402), the input end of the valve cabin (402) is provided with a sleeve-mounted bearing inlet pipe (403), the output end of the valve cabin (402) is provided with an output pipe (404), the inner side of the valve cabin (402) is provided with a sleeve-mounted valve core ring (405), the top end of the valve cabin (402) is provided with a hydraulic cylinder (406), and the output end of the hydraulic cylinder (406) is provided with a push rod (407), and the bottom end of the push rod (407) is provided with a valve plug (408).
4. A conductive electromagnetic water absorber according to claim 3, characterized in that: A bearing base (409) is provided below the valve cabin (402), and a handle (4010) is provided below the bearing base (409), a rotating sleeve rod (4011) is provided at the output end of the handle (4010), and a threaded strip (4012) is provided above the rotating sleeve rod (4011), a threaded cabin (4013) is provided on the outer side of the threaded strip (4012), a mesh cover (4014) is provided above the threaded strip (4012), and a plug-in seal (4015) is provided above the side of the mesh cover (4014).
Citation Information
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