A kind of insulating gloves, insulating boots pressure detection after quick draining drying device
Patent Information
- Application Number
- CN202520936388.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-13
- Publication Date
- 2026-08-18
- Estimated Expiration
- 2035-05-13
AI Technical Summary
[0004]为了绝缘手套、绝缘靴测试完成后需要等水沥干,耗时较长,并且长时间未干燥不仅影响正常使用、生产、运营,而且极易导致绝缘手套、绝缘靴内部因水分残留滋生霉菌的问题,本实用新型提供一种绝缘手套、绝缘靴耐压检测后快速沥水烘干装置;绝缘手套和绝缘靴耐压检测后,将其放置在箱体内,水能够通过出水孔快速排出,热风机产生的热风通过透气孔均匀吹出,能够全方位、快速地对绝缘手套和绝缘靴内部进行烘干,快速沥水和烘干功能,能够迅速去除内部水分,冷热风双模式设计可根据材质特性切换,避免高温对橡胶材料的损伤,同时冷风模式能快速冷凝残留水蒸气,提升干燥效率
绝缘手套和绝缘靴耐压检测后,将其放置在箱体内,水能够通过出水孔快速排出,热风机产生的热风通过热风输送管传输至分流管,再从支撑杆表面的透气孔均匀吹出,能够全方位、快速地对绝缘手套和绝缘靴内部进行烘干,快速沥水和烘干功能,能够迅速去除内部水分,冷热风双模式设计可根据材质特性切换,避免高温对橡胶材料的损伤,同时冷风模式能快速冷凝残留水蒸气,提升干燥效率,隔离球采用绝缘材料支撑,避免烘干过程中金属接触导致的局部过热,保护绝缘层分子结构稳定性。
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Figure CN224650177U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of power equipment technology, specifically relating to a rapid water-draining and drying device for insulating gloves and boots after withstand voltage testing. Background Technology
[0002] Withstand voltage testing of insulating gloves and boots is a key testing step to ensure that their electrical insulation performance meets safety standards. It is mainly used to verify their insulation strength and sealing performance under high voltage environment, and is a core measure to ensure the safety of workers.
[0003] When conducting withstand voltage tests on insulating gloves and boots, water needs to be placed inside. After the test, the water needs to be drained, which takes a long time. Not drying for a long time not only affects normal use, production, and operation, but also easily leads to mold growth inside the insulating gloves and boots due to residual moisture, causing damage to insulation performance or accelerated aging and shortening service life, resulting in safety hazards for subsequent operations. Therefore, a rapid water draining and drying device for insulating gloves and boots after withstand voltage testing is proposed. Utility Model Content
[0004] After testing, insulating gloves and boots require a long drying time, which not only affects normal use, production, and operation but also easily leads to mold growth due to residual moisture inside the gloves and boots. This invention provides a rapid dehydration and drying device for insulating gloves and boots after withstand voltage testing. After the withstand voltage test, the gloves and boots are placed in the chamber, where water is quickly drained through the drain hole, and hot air generated by a hot air blown evenly through the vent holes, effectively and quickly drying the inside of the gloves and boots from all directions. The rapid dehydration and drying functions quickly remove internal moisture. The dual-mode design (hot and cold air) can be switched according to material characteristics to avoid damage to rubber materials from high temperatures. Simultaneously, the cold air mode quickly condenses residual water vapor, improving drying efficiency.
[0005] To achieve the above objectives, this utility model is implemented through the following technical solution: A rapid draining and drying device for insulating gloves and boots after withstand voltage testing mainly includes a water tank bottom plate, a box body, a box cover, a temperature sensor, a cooler, a supporting ventilation mechanism, and a control panel. The water tank bottom plate has a water outlet at its end. The box body is installed on the top of the water tank bottom plate, and the box cover is detachably installed on the top of the box body. The box body has an internal cavity structure, and the water tank bottom plate, box body, and box cover form a rectangular sealed space. The temperature sensor is installed on the inner wall of the box body. The cooler is symmetrically installed on both sides of the box body and communicates with the interior of the box body. The supporting ventilation mechanism is installed on the top of the water tank bottom plate. Located inside the enclosure, the ventilation mechanism includes a support frame, a hot air blower, a hot air delivery pipe, a distribution pipe, and support rods. The support frame is installed on top of the bottom plate of the water tank and is located inside the enclosure. The hot air blower is installed at the end of the support frame. The hot air delivery pipe and the distribution pipe are installed on top of the support frame. The hot air delivery pipe is connected to the hot air blower, and the distribution pipe is connected to the hot air delivery pipe. Multiple support rods are vertically installed on the top of the distribution pipes. Ventilation holes are evenly distributed on the surface of the support rods. An insulating ball made of insulating material is set at the top of the support rods. The control panel is installed on the side wall of the enclosure. A wiring plug is set at the bottom of the enclosure. The temperature sensor, the cold air blower, the hot air blower, and the control panel are electrically connected.
[0006] The insulating ball at the top of the support rod used to place insulating gloves and insulating boots is made of epoxy resin or ceramic, and its diameter is larger than the cross-section of the top of the support rod.
[0007] Sealing rings are provided at the connection points of the hot air delivery pipe and the hot air blower, the hot air delivery pipe and the distribution pipe, and the distribution pipe and the support rod.
[0008] The lid of the box is equipped with a handle.
[0009] The beneficial effects of this utility model are: After the insulating gloves and boots undergo withstand voltage testing, they are placed inside the chamber. Water can be quickly drained through the drain hole. Hot air generated by the hot air blower is transmitted to the distribution pipe through the hot air delivery pipe, and then blown out evenly from the vent holes on the surface of the support rod. This allows for comprehensive and rapid drying of the inside of the insulating gloves and boots. The rapid water draining and drying functions can quickly remove internal moisture. The dual-mode design of hot and cold air can be switched according to the material characteristics to avoid damage to the rubber material from high temperature. At the same time, the cold air mode can quickly condense residual water vapor, improving drying efficiency. The isolation ball is supported by insulating material to avoid local overheating caused by metal contact during the drying process, thus protecting the molecular structure stability of the insulation layer. Attached Figure Description
[0010] Figure 1 This is an isometric schematic diagram of the present invention.
[0011] Figure 2 This is a floor plan of the control panel.
[0012] Figure 3 This is a three-dimensional schematic diagram of the present invention.
[0013] Figure 4 This is a three-dimensional schematic diagram of the supporting ventilation mechanism.
[0014] Figure 5 This is a 3D schematic diagram of the bottom plate of the sink.
[0015] Figure 6 This is an exploded view of this utility model.
[0016] Figure 7 This is a schematic diagram of the working principle of this utility model. Detailed Implementation
[0017] To make the objectives, technical solutions, and beneficial effects of this utility model clearer, the preferred embodiments of this utility model will be described in detail below with reference to the accompanying drawings, so as to facilitate the understanding of those skilled in the art.
[0018] This utility model discloses a rapid dewatering and drying device for insulating gloves and boots after withstand voltage testing. The device mainly includes a water tank bottom plate 1, a box body 2, a box cover 3, a temperature sensor 4, a cooler 5, a supporting ventilation mechanism 6, and a control panel 7. The water tank bottom plate 1 has a water outlet 11 at one end. The box body 2 is installed on the top of the water tank bottom plate 1. The box cover 3 is detachably installed on the top of the box body 2. The box body 2 has an internal cavity structure. The water tank bottom plate 1, box body 3, and box cover 3 form a rectangular sealed space. The temperature sensor 4 is installed on the inner wall of the box body 2. The cooler 5 is symmetrically installed on both sides of the box body 2 and communicates with the interior of the box body 2. The supporting ventilation mechanism 6 is installed on the top of the water tank bottom plate 1, located inside the box body 2, and supports the ventilation mechanism 6. The air mechanism 6 includes a support frame 61, a hot air blower 62, a hot air delivery pipe 63, a diversion pipe 64, and support rods 65. The support frame 61 is installed at the top of the water tank bottom plate 1 and is located inside the box body 2. The hot air blower 62 is installed at the end of the support frame 61. The hot air delivery pipe 63 and the diversion pipe 64 are installed at the top of the support frame 61. The hot air delivery pipe 63 is connected to the hot air blower 62, and the diversion pipe 64 is connected to the hot air delivery pipe 63. Multiple support rods 65 are vertically installed at the top of the diversion pipe 64. Ventilation holes 651 are evenly distributed on the surface of the support rods 65. An insulating ball 652 made of insulating material is provided at the top of the support rods 65. The control panel 7 is installed on the side wall of the box body 2. A wiring plug 21 is provided at the bottom of the box body 2. The temperature sensor 4, the cold air blower 5, and the hot air blower 62 are electrically connected to the control panel 7.
[0019] like Figure 4 , Figure 6 , Figure 7As shown, the isolation ball 652 at the top of the support rod 65 used to place the insulating gloves and boots is made of epoxy resin or ceramic, and its diameter is larger than the cross-section of the top of the support rod 65. The insulating gloves or boots that have passed the pressure test and have residual moisture are inverted and put on the isolation ball 652 at the top of the support rod 65. Since the isolation ball 652 is made of epoxy resin or ceramic and its diameter is larger than the cross-section of the top of the support rod 65, it can ensure that the insulating gloves and boots are hung stably and prevent them from slipping. The residual moisture inside the insulating gloves and boots flows downward naturally under the action of gravity and is finally discharged from the water outlet 11.
[0020] Sealing rings are provided at the connection points of the hot air delivery pipe 63 and the hot air blower 62, the connection points of the hot air delivery pipe 63 and the diversion pipe 64, and the connection points of the diversion pipe 64 and the support rod 65; these can effectively prevent hot air leakage and ensure hot air transmission efficiency.
[0021] like Figure 3 , Figure 6 As shown, the lid 3 is provided with a handle 31 for easy opening and closing.
[0022] Work process: Place the device in a stable working area and connect it to the power supply via the connector 21 to ensure it is powered on. Then, the operator uses handle 31 to open the cover 3 and places the insulating gloves and boots, which have undergone withstand voltage testing, onto the support rods 65 of the ventilation mechanism 6. Since the insulating ball 652 at the top of the support rod 65 is made of epoxy resin or ceramic and has a diameter larger than the top cross-section of the support rod 65, it prevents the insulating gloves and boots from slipping off and avoids direct contact with the support rods 65. After the insulating gloves and boots are in place, the water inside will flow downwards under gravity and drain through the water outlet 11 at the end of the water tank bottom plate 1, achieving rapid drainage. Set the required drying temperature and time parameters via the control panel 7, and start the hot air blower 62. The hot air blower 62 generates hot air, which is transmitted through the hot air delivery pipe 63 to the distribution pipe 64. The distribution pipe 64 distributes the hot air to each support rod 65, and the hot air is then blown out from the evenly distributed vents 651 on the surface of the support rods 65. The device thoroughly dries the inside of the insulating gloves and boots. During the drying process, a temperature sensor 4 installed on the inner wall of the chamber 2 monitors the temperature inside the chamber 2 in real time and feeds the temperature data back to the control panel 7. If the temperature inside the chamber 2 is too high and exceeds the set safety range, the control panel 7 can automatically adjust the power of the hot air blower 62 or temporarily shut it off to prevent damage to the insulating gloves and boots due to excessive temperature. At the same time, the control panel 7 will control the cold air blowers 5 symmetrically installed on both sides of the chamber 2 to start, blowing cold air into the chamber 2 to accelerate air convection and lower the temperature, ensuring that the drying process takes place in a suitable temperature environment. When the preset drying time is reached, the hot air blower 62 and the cold air blower 5 automatically stop working. The chamber cover 3 is opened, and the dried insulating gloves and boots are removed from the support rod 65. The device completes one working cycle and can proceed to the next round of draining and drying operations. Compared with the traditional natural air drying method, the efficiency is improved, while avoiding mold growth and material aging, ensuring long-term stable insulation performance.
[0023] Finally, it should be noted that the above preferred embodiments are only used to illustrate the technical solution of this utility model and are not intended to limit it. Although the utility model has been described in detail through the above preferred embodiments, those skilled in the art should understand that various changes can be made to it in form and detail without departing from the scope defined by the claims of this utility model.
Claims
1. An insulation glove, insulation boot pressure detection after quick draining drying device, characterized in that: The system includes a water tank bottom plate (1), a box body (2), a box cover (3), a temperature sensor (4), a cooler (5), a support ventilation mechanism (6), and a control panel (7). The water tank bottom plate (1) has a water outlet hole (11) at one end. The box body (2) is installed on the top of the water tank bottom plate (1). The box cover (3) is installed on the top of the box body (2) in an openable manner. The box body (2) has a cavity structure inside. The water tank bottom plate (1), the box body (2), and the box cover (3) form a rectangular sealed space. The temperature sensor (4) is installed on the inner wall of the box body (2). The cooler (5) is symmetrically installed on both sides of the box body (2) and communicates with the inside of the box body (2). The support ventilation mechanism (6) is installed on the top of the water tank bottom plate (1) and is located inside the box body (2). The support ventilation mechanism (6) includes a support frame (61), a hot air blower (62), a hot air delivery pipe (63), a diversion pipe (64), and a support rod (65). The hot air blower (62) is installed at the top of the bottom plate (1) of the water tank and inside the box (2). The hot air conveying pipe (63) and the diversion pipe (64) are installed at the top of the support frame (61). The hot air conveying pipe (63) is connected to the hot air blower (62), and the diversion pipe (64) is connected to the hot air conveying pipe (63). Multiple support rods (65) are vertically installed at the top of the diversion pipe (64). The surface of the support rod (65) is evenly distributed with ventilation holes (651). The top of the support rod (65) is provided with an isolation ball (652) made of insulating material. The control panel (7) is installed on the side wall of the box (2). The bottom of the box (2) is provided with a wiring plug (21). The temperature sensor (4), the cold air blower (5), the hot air blower (62) are electrically connected to the control panel (7). The isolation ball (652) is made of epoxy resin or ceramic and its diameter is larger than the top cross section of the support rod (65).
2. The device for rapid draining and drying of insulating gloves, insulating boots after pressure detection according to claim 1, characterized in that: Sealing rings are provided at the connection points of the hot air delivery pipe (63) and the hot air blower (62), the connection points of the hot air delivery pipe (63) and the diversion pipe (64), and the connection points of the diversion pipe (64) and the support rod (65).
3. The device for rapid draining and drying of insulating gloves, insulating boots after pressure detection according to claim 1 or 2, characterized in that: The lid (3) is provided with a handle (31).