A cable surface water removal device for high-voltage power maintenance
By designing water removal components, extrusion mechanism, replacement mechanism and adjustment components, the problems of cable water removal device damage to cable surface, short sponge life and cleaning blind spots are solved, efficient water removal and simple replacement are achieved, and cable cleanliness and service life are improved.
Patent Information
- Application Number
- CN202411757639.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-03
- Publication Date
- 2025-09-05
- Estimated Expiration
- 2044-12-03
AI Technical Summary
Existing cable water removal devices may damage the cable surface during water removal. The life of the sponge is shortened after a long period of use, it is difficult to replace the sponge, and it is difficult to clean the dead corners at the transition connection between thin cables and thick cables. The diameter of the device needs to change with the cable diameter.
A cable surface water removal device including water removal components, extrusion mechanism, replacement mechanism, adjustment component and drying mechanism is designed. The extrusion rod and sponge combination is used to remove moisture. The sponge replacement is simplified by the replacement mechanism, the adjustment components are adapted to different cable diameters, and the corner cleaning mechanism handles cleaning dead corners.
Effectively remove moisture on the surface of the cable, extend the service life of the sponge, simplify sponge replacement, avoid damage to the cable surface, and improve cleanliness and service life.
Smart Images

Figure CN119400525B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the field of cable surface dewatering, and in particular to a cable surface dewatering device for high-voltage power maintenance. Background Art
[0002] Cables include power cables, control cables, compensation cables, shielded cables, high-temperature cables, computer cables, signal cables, coaxial cables, fire-resistant cables, marine cables, mining cables, and aluminum alloy cables. They are composed of single or multi-strand conductors and an insulating layer, and are used to connect circuits and electrical appliances. After the outer sheath is extruded through an extruder, it needs to be cooled in a cooling chamber before the product logo is marked on the cooled sheath using a laser or spray marking method. Failure to completely remove the cooling water from the cable can cause marking defects, affecting product quality.
[0003] The existing cable dewatering devices do not consider whether the cable surface will be damaged when the dewatering material is directly contacted with the cable skin multiple times during dewatering. When using a sponge to absorb water, the long-term storage of water stains in the sponge will affect the service life of the sponge. There is also the problem of collecting and replacing the sponge. Since the thickness of the cable will change, the diameter of the device needs to change accordingly with the cable diameter during dewatering. There is a cleaning dead corner at the transition between thin and thick cables, which causes cleaning problems at corners. Summary of the Invention
[0004] In view of the shortcomings of the prior art, the present invention solves the technical problems thereof by adopting the following technical solutions: a cable surface dewatering device for high-voltage power maintenance according to the present invention comprises a base, an inner cavity of the base is slidably connected to a dewatering component, an outer surface of the dewatering component is rotatably connected to an adjusting component, an inner cavity of the adjusting component is slidably connected to a thin cable, and an end of the thin cable away from the dewatering component is fixedly connected to a thick cable;
[0005] The dewatering component includes a moving ring, the inner cavity of the moving ring is rotatably connected to the central rotating shaft, the inner cavity of the central rotating shaft is fixedly connected to a driving rod, the end of the driving rod away from the central rotating shaft is fixedly connected to a dewatering shell, the side of the dewatering shell away from the driving rod is fixedly connected to a replacement mechanism, the inner cavity of the dewatering shell is rotatably connected to a groove rod, the inner cavity of the groove rod is rotatably connected to a small rotating shaft, the outer surface of the groove rod is slidably connected to a sponge, and the side of the groove rod away from the sponge is evenly provided with an extrusion mechanism, and the outer surface of the groove rod is fixedly connected to the outer surface of the extrusion mechanism.
[0006] The outer surface of the moving ring is slidably connected to the inner cavity of the base, and the water removal shell is fixedly connected to a water removal spring on one side close to the driving rod. The number of the driving rods is four, and the number of the replacement mechanisms is four. The moving ring in the water removal component slides along the base, so that the water removal component removes water along the surface of the cable. The driving rod in the central shaft acts on the water removal spring to control the distance between the water removal shell and the cable. A plurality of notches are provided on the slot rod in the water removal shell, and a plurality of sponges are arranged at intervals and placed in the notches. A squeezing mechanism is provided next to the sponge, and the rotation of the small shaft drives the squeezing mechanism to rotate along the surface of the sponge, so that the water treatment in the sponge is more thorough.
[0007] The extrusion mechanism includes a splint, the inner cavity of the splint is evenly provided with a telescopic plate, and the outer surface of the telescopic plate is slidably connected to the inner cavity of the splint, the telescopic plate is rotatably connected to a rotating shaft on one side away from the inner cavity of the splint, the outer surface of the rotating shaft is fixedly connected to a heater, and one end of the rotating shaft is fixedly connected to a squeezing rod away from the heater, the inner cavity of the squeezing rod is evenly provided with a desiccant, and the outer surface of the desiccant is fixedly connected to the inner cavity of the squeezing rod, the extrusion rod is slidably connected to an extension rod on the side of the splint away from the desiccant, and a water pump is evenly provided in the inner cavity of the splint on one side of the telescopic plate, and the inner cavity of the splint is fixedly connected to the outer surface of the water pump. The squeezing rod in the squeezing mechanism moves toward the sponge under the action of the telescopic plate, and the sponge is squeezed by the squeezing rods on both sides. At the same time, the water pump extracts the squeezed water and squeezes the extension rod toward the sponge to process the water in the center of the sponge, so that the water in the sponge is cleaned more thoroughly. At the same time, a desiccant is provided in the inner cavity of the squeezing rod to process the air and the moisture on the surface of the squeezing rod, and the heater evaporates part of the water.
[0008] The replacement mechanism includes a migration plate, the outer surface of the migration plate is fixedly connected with a transition spring, the end of the transition spring away from the migration plate is fixedly connected to a receiving plate, the side of the receiving plate away from the transition spring is slidably connected to a front baffle, the outer surface of the front baffle is fixedly connected with a contraction spring, the end of the contraction spring away from the front baffle is fixedly connected to the rear baffle, the bottom of the migration plate is evenly provided with sliding links, and the outer surface of the sliding link is fixedly connected to the outer surface of the migration plate. The positioning plate in the replacement mechanism corresponds to the sponge corner under the action of the sliding link, and the transition spring drives the migration plate to move toward the receiving plate, so that the sponge moves forward. When it reaches the appropriate position, the contraction spring acts on the front baffle and the rear baffle, so that the sponge is squeezed and clamped by the baffle, and at the same time the contraction spring is separated from the receiving plate, so that the sponge can be taken out in a centralized manner.
[0009] The end of the sliding link away from the migration plate is fixedly connected to the positioning plate, the inner cavity of the water removal shell is slidably connected to the outer surface of the sliding link, the side of the migration plate away from the transition spring is slidably connected to the outer surface of the water removal shell, and the outer surface of the rear baffle is slidably connected to the outer surface of the receiving plate.
[0010] The adjusting component includes a rotating motor, the inner cavity of the rotating motor is rotatably connected to an adjusting ring, the inner cavity of the adjusting ring is evenly provided with corner cleaning mechanisms, and the outer surface of the corner cleaning mechanism is fixedly connected to the inner cavity of the adjusting ring, the outer surface of the adjusting ring is rotatably connected to a drying mechanism, the rotating motor in the adjusting component drives the adjusting ring to rotate, and then drives the three corner cleaning mechanisms to rotate, the outer surface of the adjusting ring is provided with a drying mechanism, the drying mechanism can be suitable for cables of different diameters, and the size can be adjusted instantly, and it is suitable for different environments.
[0011] The drying mechanism includes a connecting plate, the outer surface of which is fixedly connected to an adjusting shell, the inner cavity of the adjusting shell is fixedly connected to an adjusting spring, the end of the adjusting spring away from the elastic shell is fixedly connected to a dryer, the end of the dryer away from the adjusting spring is evenly provided with a drying valve, and the outer surface of the drying valve is fixedly connected to the outer surface of the dryer, and the end of the connecting plate away from the adjusting shell is fixedly connected to a rotating motor. The rotating motor in the drying mechanism drives the connecting plate to rotate the adjusting spring in the adjusting shell to drive the dryer to move, thereby being suitable for processing residual moisture on the surface of cables of different sizes.
[0012] The corner cleaning mechanism includes a T-shaped frame, the inner cavity of the T-shaped frame is slidably connected to a control inner plate, the outer surface of the T-shaped frame is fixedly connected to a first-level scraper, one end of the first-level scraper away from the T-shaped frame is fixedly connected to a first-level brush, the side of the first-level scraper close to the first-level brush is slidably connected to a driving connecting plate, the end of the driving connecting plate away from the first-level scraper is fixedly connected to a second-level scraper, and the outer surface of the second-level scraper is fixedly connected to a second-level brush. In the corner cleaning mechanism, the extension and contraction of the inner plate on the T-shaped frame is controlled to adjust the distance between the first-level scraper and the second-level scraper and the corner, and at the same time, the driving connecting plate drives the second-level scraper to move horizontally to process stains at different positions of the corner, and uses the scraper to process stains that are difficult to clean on the surface, and then uses the first-level brush and the second-level brush to process surface dust to avoid damaging the cortex of the outer surface of the cable.
[0013] There are three drying mechanisms. The side of the secondary scraper away from the secondary brush is slidingly connected to the side of the T-frame close to the primary scraper. The end of the control inner plate away from the T-frame is fixedly connected to the inner cavity of the adjustment ring. The outer surface of the rotating motor is rotatably connected to the side of the moving ring away from the central rotating shaft.
[0014] The beneficial effects of the present invention are as follows:
[0015] 1. The present invention uses a squeezing mechanism to remove water stains that have been stored in the sponge for a long time, which affects the sponge's service life and is not conducive to the next use. The squeezing rod in the squeezing mechanism moves toward the sponge under the action of the telescopic plate. The sponge is squeezed by the squeezing rods on both sides to discharge the water. At the same time, the pump extracts the squeezed water and extends the rod to squeeze toward the sponge to process the water in the center of the sponge, making the water in the sponge clean more thoroughly. At the same time, a desiccant is provided in the inner cavity of the squeezing rod to process the water in the air and on the surface of the squeezing rod, and the heater evaporates part of the water.
[0016] 2. The present invention uses a replacement mechanism, so the sponge needs to be replaced in time after multiple uses. However, there are multiple sponges in the device for dewatering, and replacement is difficult. The positioning plate in the replacement mechanism corresponds to the corner of the sponge under the action of the sliding connecting rod, and the migration plate moves toward the receiving plate, so that the sponge moves forward. When it reaches the appropriate position, the contraction spring causes the sponge to be squeezed and clamped by the baffle, and at the same time the contraction spring separates from the receiving plate. The receiving plate is taken out to realize the centralized collection and processing of multiple sponges, making replacement easier and reducing the labor of the staff.
[0017] 3. The present invention removes moisture from surfaces of different sizes through a water removal component. A plurality of notches are provided on the slot rod in the water removal shell, and a plurality of sponges are arranged at intervals and placed in the notches to remove moisture from the cable surface through the sponge. The sponge material is relatively soft, which prevents the cortex of the cable surface from being scratched. At the same time, the sponge has a large deformation ability and a strong size change ability.
[0018] 4. The present invention uses a corner cleaning mechanism. Since there is a dead corner for cleaning at the transition between thin cables and thick cables, the inner plate is controlled to adjust the distance between the scraper and the corner. At the same time, the connecting plate is driven to drive the secondary scraper to move horizontally to process stains at different positions of the corner. The scraper is used to process stains that are difficult to clean on the surface, and then a brush is used to process surface dust to avoid damaging the cortex of the outer surface of the cable. The stains at the connection are processed, the cleanliness of the cable surface is improved, and the service life of the cable is increased.
[0019] 5. The present invention uses adjustment components and drying mechanisms. Due to the different thicknesses of cables, it is necessary to adjust the diameter of the water removal device during the water removal process. The outer surface of the adjustment ring is provided with a drying mechanism. The drying mechanism can be suitable for cables of different diameters and can be adjusted in size instantly, making it suitable for different environments. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 It is a front view of the present invention;
[0021] Figure 2 It is a structural schematic diagram of the cable water removal device of the present invention;
[0022] Figure 3 It is a structural schematic diagram of the water removal component of the present invention;
[0023] Figure 4 It is a structural schematic diagram of the slotted rod and the small rotating shaft of the present invention;
[0024] Figure 5 It is a structural schematic diagram of the extrusion mechanism of the present invention;
[0025] Figure 6 It is a structural schematic diagram of the replacement mechanism of the present invention;
[0026] Figure 7 It is a structural schematic diagram of the regulating component of the present invention;
[0027] Figure 8 It is a structural schematic diagram of the drying mechanism of the present invention;
[0028] Figure 9 It is a structural schematic diagram of the corner cleaning mechanism of the present invention;
[0029] In the figure: 1. Base; 2. Thick cable; 3. Water removal component; 301. Central shaft; 302. Extrusion mechanism; 3021. Clamp; 3022. Telescopic plate; 3023. Heater; 3024. Desiccant; 3025. Extension rod; 3026. Extrusion rod; 3027. Rotating shaft; 3028. Pump; 303. Sponge; 304. Water removal shell; 305. Replacement mechanism; 3051. Migration plate; 3052. Transition spring; 3053. Receiving plate; 3054. Front baffle; 3055. Contraction spring; 3056. Rear baffle; 3057. Positioning plate; 3058. Sliding link; 306 , small rotating shaft; 307, groove rod; 308, water removal spring; 309, driving rod; 310, moving circle; 4, thin cable; 5, adjusting component; 501, adjusting ring; 502, rotating motor; 503, drying mechanism; 5031, connecting plate; 5032, dryer; 5033, adjusting spring; 5034, adjusting shell; 5035, drying valve; 5036, rotating motor; 504, corner cleaning mechanism; 5041, T-shaped frame; 5042, first-level scraper; 5043, first-level brush; 5044, driving connecting plate; 5045, second-level brush; 5046, second-level scraper; 5047, control inner plate. DETAILED DESCRIPTION
[0030] The present invention will be described in further detail below with reference to the accompanying drawings and specific embodiments. The embodiments of the present invention are provided for purposes of illustration and description and are not intended to be exhaustive or to limit the invention to the disclosed forms. Many modifications and variations will be apparent to those skilled in the art. The embodiments are chosen and described to better illustrate the principles of the invention and its practical application, and to enable those skilled in the art to understand the invention and design various embodiments with various modifications suitable for specific applications.
[0031] Example, using Figures 1-8 A cable surface dewatering device for high-voltage power maintenance according to one embodiment of the present invention is described below.
[0032] like Figures 1-8 As shown, the cable surface dewatering device for high-voltage power maintenance of the present invention includes a base 1, a dewatering component 3 is slidably connected to the inner cavity of the base 1, an adjusting component 5 is rotatably connected to the outer surface of the dewatering component 3, a thin cable 4 is slidably connected to the inner cavity of the adjusting component 5, and a thick cable 2 is fixedly connected to the end of the thin cable 4 away from the dewatering component 3;
[0033] The dewatering component 3 includes a moving ring 310, the inner cavity of the moving ring 310 is rotatably connected to the central rotating shaft 301, the inner cavity of the central rotating shaft 301 is fixedly connected to the driving rod 309, the end of the driving rod 309 away from the central rotating shaft 301 is fixedly connected to the dewatering shell 304, the side of the dewatering shell 304 away from the driving rod 309 is fixedly connected to the replacement mechanism 305, the inner cavity of the dewatering shell 304 is rotatably connected to the groove rod 307, the inner cavity of the groove rod 307 is rotatably connected to the small rotating shaft 306, the outer surface of the groove rod 307 is slidably connected to the sponge 303, and the squeezing mechanism 302 is evenly arranged on the side of the groove rod 307 away from the sponge 303, and the outer surface of the groove rod 307 is fixedly connected to the outer surface of the squeezing mechanism 302.
[0034] The outer surface of the moving ring 310 is slidably connected to the inner cavity of the base 1, and the water removal shell 304 is fixedly connected to a water removal spring 308 on one side near the driving rod 309. There are four driving rods 309 and four changing mechanisms 305. The moving ring 310 in the water removal component 3 slides along the base 1, so that the water removal component 3 removes water along the surface of the cable. The driving rod 309 in the central rotating shaft 301 acts on the water removal spring 308, and the elasticity of the water removal spring 308 itself is used to control the distance between the water removal shell 304 and the cable. A plurality of notches are provided on the slot rod 307 in the water removal shell 304, and a plurality of sponges 303 are arranged at intervals and placed in the notches. A squeezing mechanism 302 is provided next to the sponge 303, and the small rotating shaft 306 rotates, driving the sponge 303 to move back and forth in position through friction, so that the sponge 303 moves along the surface of the squeezing mechanism 302, and the relative position of the sponge 303 and the squeezing mechanism 302 is adjusted, so that the water treatment in the sponge 303 is more thorough.
[0035] The extrusion mechanism 302 includes a splint 3021, the inner cavity of the splint 3021 is evenly provided with a telescopic plate 3022, and the outer surface of the telescopic plate 3022 is slidably connected to the inner cavity of the splint 3021, the telescopic plate 3022 is rotatably connected to the side of the splint 3021 away from the inner cavity of the splint 3021, the outer surface of the rotating shaft 3027 is fixedly connected to the heater 3023, and the end of the rotating shaft 3027 away from the heater 3023 is fixedly connected to the extrusion rod 3026, the inner cavity of the extrusion rod 3026 is evenly provided with a desiccant 3024, and the outer surface of the desiccant 3024 is fixedly connected to the inner cavity of the extrusion rod 3026, the extrusion rod 3026 is slidably connected to the side of the extrusion rod 3026 away from the desiccant 3024, and the splint 3021 is away from the telescopic plate 3022. The inner cavity on one side of the retractable plate 3022 is evenly provided with pumps 3028, and the inner cavity of the splint 3021 is fixedly connected to the outer surface of the pump 3028. The extrusion rod 3026 in the extrusion mechanism 302 moves toward the sponge 303 under the action of the retractable plate 3022, wherein the extension rod 3025 follows the extrusion rod 3026 to move toward the sponge 303. The sponge 303 is squeezed by the extension rods 3025 on the extrusion rods 3026 on both sides. At the same time, the pump 3028 extracts the squeezed water and processes the water in the center of the sponge 303, so that the water in the sponge 303 is cleaned more thoroughly. At the same time, the inner cavity of the extrusion rod 3026 is provided with a desiccant 3024 to process the air and the moisture on the surface of the extrusion rod 3026, and the heater 3023 evaporates part of the moisture.
[0036] The replacement mechanism 305 includes a migration plate 3051, the outer surface of the migration plate 3051 is fixedly connected to a transition spring 3052, the end of the transition spring 3052 away from the migration plate 3051 is fixedly connected to a receiving plate 3053, the side of the receiving plate 3053 away from the transition spring 3052 is slidably connected to a front baffle 3054, the outer surface of the front baffle 3054 is fixedly connected to a contraction spring 3055, the end of the contraction spring 3055 away from the front baffle 3054 is fixedly connected to a rear baffle 3056, the bottom of the migration plate 3051 is evenly provided with sliding links 3058, and the outer surface of the sliding links 3058 is fixedly connected to the outer surface of the migration plate 3051, and the positioning plate 3057 in the replacement mechanism 305 is fixedly connected to the sliding links 3058. Under the action, it corresponds to the corner of the sponge 303, that is, the sponge 303 is arranged in a sheet shape, the positioning plate 3057 is equipped with a squeezing device 302, and the transition spring 3052 drives the migration plate 3051 to move toward the receiving plate 3053, and the sliding link 3058 and the positioning plate 3057 follow the migration plate 3051 to move toward the receiving plate 3053, so that the sponge 303 moves forward. When it reaches the appropriate position, pressure is applied to the front baffle 3054 and the rear baffle 3056, so that the contraction spring 3055 is forced to contract, and the front baffle 3054 and the rear baffle 3056 approach each other, so that the sponge 303 is squeezed and clamped by the baffle, and then the contraction spring 3055 rebounds, and the front baffle 3054 and the rear baffle 3056 are reset, and the sponge 303 can be taken out in a centralized manner.
[0037] The end of the sliding link 3058 away from the migration plate 3051 is fixedly connected to the positioning plate 3057, the inner cavity of the water removal shell 304 is slidingly connected to the outer surface of the sliding link 3058, the side of the migration plate 3051 away from the transition spring 3052 is slidingly connected to the outer surface of the water removal shell 304, and the outer surface of the rear baffle 3056 is slidingly connected to the outer surface of the receiving plate 3053.
[0038] The adjusting component 5 includes a rotating motor 502, the inner cavity of the rotating motor 502 is rotatably connected to the adjusting ring 501, the inner cavity of the adjusting ring 501 is evenly provided with corner cleaning mechanisms 504, and the outer surface of the corner cleaning mechanism 504 is fixedly connected to the inner cavity of the adjusting ring 501, the outer surface of the adjusting ring 501 is rotatably connected to the drying mechanism 503, the rotating motor 502 in the adjusting component 5 drives the adjusting ring 501 to rotate, and then drives the three corner cleaning mechanisms 504 to rotate, the outer surface of the adjusting ring 501 is provided with a drying mechanism 503, the drying mechanism 503 can be suitable for cables of different diameters, and the size can be adjusted instantly, suitable for different environments.
[0039] The drying mechanism 503 includes a connecting plate 5031, the outer surface of which is fixedly connected to an adjusting shell 5034, the inner cavity of which is fixedly connected to an adjusting spring 5033, the end of the adjusting spring 5033 away from the elastic shell is fixedly connected to a dryer 5032, the end of the dryer 5032 away from the adjusting spring 5033 is evenly provided with a drying valve 5035, and the outer surface of the drying valve 5035 is fixedly connected to the outer surface of the dryer 5032, the end of the connecting plate 5031 away from the adjusting shell 5034 is fixedly connected to a rotating motor 5036, and the rotating motor 5036 in the drying mechanism 503 drives the connecting plate 5031 to rotate the adjusting spring 5033 in the adjusting shell 5034 to drive the dryer 5032 to move, thereby being suitable for processing residual moisture on the surface of cables of different sizes.
[0040] The corner cleaning mechanism 504 includes a T-shaped frame 5041, the inner cavity of the T-shaped frame 5041 is slidably connected to a control inner plate 5047, the outer surface of the T-shaped frame 5041 is fixedly connected to a primary scraper 5042, the end of the primary scraper 5042 away from the T-shaped frame 5041 is fixedly connected to a primary brush 5043, the side of the primary scraper 5042 close to the primary brush 5043 is slidably connected to a driving connecting plate 5044, the end of the driving connecting plate 5044 away from the primary scraper 5042 is fixedly connected to a secondary scraper 5046, and the outer surface of the secondary scraper 5046 is fixedly connected to the secondary scraper A secondary brush 5045 is fixedly connected to the corner cleaning mechanism 504, which controls the extension and retraction of the inner plate 5047 on the T-frame 5041, adjusts the distance between the primary scraper 5042 and the secondary scraper 5046 and the corner, and at the same time drives the connecting plate 5044 to drive the secondary scraper 5046 to move horizontally to handle stains at different positions of the corner, and uses the scraper to handle stains that are difficult to clean on the surface, and then uses the primary brush 5043 and the secondary brush 5045 to handle surface dust to avoid damaging the cortex of the outer surface of the cable.
[0041] There are three drying mechanisms 503. The side of the secondary scraper 5046 away from the secondary brush 5045 is slidingly connected to the side of the T-frame 5041 close to the primary scraper 5042. The end of the control inner plate 5047 away from the T-frame 5041 is fixedly connected to the inner cavity of the adjustment ring 501. The outer surface of the rotating motor 5036 is rotatably connected to the side of the moving ring 310 away from the central rotating shaft 301.
[0042] The specific workflow is as follows:
[0043] During operation, the cable width is observed, the sizes of the water removal component 3 and the adjustment component 5 are adjusted, the thin cable 4 is passed through the water removal component 3 and the adjustment component 5, the sponge 303 in the water removal component 3 is used to treat the water stains on the cable surface, and the water stains in the sponge 303 are treated by the squeezing mechanism 302, which is convenient for subsequent secondary use and improves the efficiency of the device; when the sponge 303 has completed multiple water removals, the sponges 303 are collectively replaced through the replacement mechanism 305, which is easy to operate; due to the different thicknesses of the cables, the diameter of the water removal device is adjusted by the adjustment component 5 during the water removal process; at the same time, there is a cleaning dead corner at the transition between the thin cable 4 and the thick cable 2, and the stains at the connection are treated through the corner cleaning mechanism 504, thereby improving the cleanliness of the cable surface and increasing the service life of the cable.
[0044] Obviously, the embodiments described are only some of the embodiments of the present invention, not all of them. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field and related fields without making creative efforts should fall within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described and explained in the present invention shall be implemented in accordance with conventional means in the field unless otherwise specified or limited.
Claims
1. A cable surface dewatering device for high-voltage power maintenance, comprising a base (1), characterized in that: The inner cavity of the base (1) is slidably connected to a water removal component (3), the outer surface of the water removal component (3) is rotatably connected to an adjustment component (5), the inner cavity of the adjustment component (5) is slidably connected to a thin cable (4), and one end of the thin cable (4) away from the water removal component (3) is fixedly connected to a thick cable (2); The dewatering component (3) comprises a moving ring (310), the inner cavity of the moving ring (310) is rotatably connected to a central rotating shaft (301), the inner cavity of the central rotating shaft (301) is fixedly connected to a driving rod (309), one end of the driving rod (309) away from the central rotating shaft (301) is fixedly connected to a dewatering shell (304), a side of the dewatering shell (304) away from the driving rod (309) is fixedly connected to a replacement mechanism (305), the inner cavity of the dewatering shell (304) is rotatably connected to a groove rod (307), the inner cavity of the groove rod (307) is rotatably connected to a small rotating shaft (306), the outer surface of the groove rod (307) is slidably connected to a sponge (303), and a squeezing mechanism (302) is evenly provided on the side of the groove rod (307) away from the sponge (303), and the outer surface of the groove rod (307) is fixedly connected to the outer surface of the squeezing mechanism (302).
2. The cable surface dewatering device for high-voltage power maintenance according to claim 1, characterized in that: The outer surface of the moving ring (310) is slidably connected to the inner cavity of the base (1); a water removal spring (308) is fixedly connected to one side of the water removal shell (304) close to the driving rod (309); the number of the driving rods (309) is four, and the number of the replacement mechanisms (305) is four.
3. The cable surface dewatering device for high-voltage power maintenance according to claim 1, characterized in that: The extrusion mechanism (302) comprises a clamping plate (3021), the inner cavity of the clamping plate (3021) is evenly provided with telescopic plates (3022), and the outer surface of the telescopic plates (3022) is slidably connected to the inner cavity of the clamping plate (3021), the side of the telescopic plates (3022) away from the inner cavity of the clamping plate (3021) is rotatably connected to a rotating shaft (3027), the outer surface of the rotating shaft (3027) is fixedly connected to a heater (3023), and the end of the rotating shaft (3027) away from the heater (3023) is fixedly connected to the inner cavity of the clamping plate (3021). An extrusion rod (3026) is provided. The inner cavity of the extrusion rod (3026) is evenly provided with a desiccant (3024), and the outer surface of the desiccant (3024) is fixedly connected to the inner cavity of the extrusion rod (3026). The side of the extrusion rod (3026) away from the desiccant (3024) is slidably connected to an extension rod (3025). The inner cavity of the splint (3021) away from the telescopic plate (3022) is evenly provided with a water pump (3028), and the inner cavity of the splint (3021) is fixedly connected to the outer surface of the water pump (3028).
4. The cable surface dewatering device for high-voltage power maintenance according to claim 2, characterized in that: The replacement mechanism (305) comprises a migration plate (3051), the outer surface of the migration plate (3051) is fixedly connected to a transition spring (3052), the end of the transition spring (3052) away from the migration plate (3051) is fixedly connected to a receiving plate (3053), the side of the receiving plate (3053) away from the transition spring (3052) is slidably connected to a front baffle (3054), the outer surface of the front baffle (3054) is fixedly connected to a contraction spring (3055), the end of the contraction spring (3055) away from the front baffle (3054) is fixedly connected to a rear baffle (3056), and sliding links (3058) are evenly arranged on the bottom of the migration plate (3051), and the outer surface of the sliding links (3058) is fixedly connected to the outer surface of the migration plate (3051).
5. The cable surface water removal device for high-voltage power maintenance according to claim 4, characterized in that: The end of the sliding link (3058) away from the migration plate (3051) is fixedly connected to the positioning plate (3057), the inner cavity of the water removal shell (304) is slidably connected to the outer surface of the sliding link (3058), the side of the migration plate (3051) away from the transition spring (3052) is slidably connected to the outer surface of the water removal shell (304), and the outer surface of the rear baffle (3056) is slidably connected to the outer surface of the receiving plate (3053).
6. The cable surface water removal device for high-voltage power maintenance according to claim 1, characterized in that: The adjusting component (5) comprises a rotating motor (502), the inner cavity of the rotating motor (502) is rotatably connected to an adjusting ring (501), the inner cavity of the adjusting ring (501) is evenly provided with corner cleaning mechanisms (504), and the outer surface of the corner cleaning mechanism (504) is fixedly connected to the inner cavity of the adjusting ring (501), and the outer surface of the adjusting ring (501) is rotatably connected to a drying mechanism (503).
7. The cable surface water removal device for high-voltage power maintenance according to claim 6, characterized in that: The drying mechanism (503) comprises a connecting plate (5031), the outer surface of the connecting plate (5031) is fixedly connected to an adjusting housing (5034), the inner cavity of the adjusting housing (5034) is fixedly connected to an adjusting spring (5033), the end of the adjusting spring (5033) away from the spring housing is fixedly connected to a dryer (5032), the end of the dryer (5032) away from the adjusting spring (5033) is evenly provided with a drying valve (5035), and the outer surface of the drying valve (5035) is fixedly connected to the outer surface of the dryer (5032), and the end of the connecting plate (5031) away from the adjusting housing (5034) is fixedly connected to a rotating motor (5036).
8. The cable surface water removal device for high-voltage power maintenance according to claim 6, characterized in that: The corner cleaning mechanism (504) comprises a T-shaped frame (5041), the inner cavity of the T-shaped frame (5041) is slidably connected to a control inner plate (5047), the outer surface of the T-shaped frame (5041) is fixedly connected to a primary scraper (5042), the end of the primary scraper (5042) away from the T-shaped frame (5041) is fixedly connected to a primary brush (5043), the side of the primary scraper (5042) close to the primary brush (5043) is slidably connected to a driving connecting plate (5044), the end of the driving connecting plate (5044) away from the primary scraper (5042) is fixedly connected to a secondary scraper (5046), and the outer surface of the secondary scraper (5046) is fixedly connected to a secondary brush (5045).
9. The cable surface water removal device for high-voltage power maintenance according to claim 8, characterized in that: The number of the drying mechanisms (503) is three. The side of the secondary scraper (5046) away from the secondary brush (5045) is slidably connected to the side of the T-shaped frame (5041) close to the primary scraper (5042). The end of the control inner plate (5047) away from the T-shaped frame (5041) is fixedly connected to the inner cavity of the adjustment ring (501). The outer surface of the rotating motor (5036) is rotatably connected to the side of the moving ring (310) away from the central rotating shaft (301).
Citation Information
Patent Citations
Environment-friendly cable dehumidification drying equipment
CN113465346A
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