Energy storage system cable processing device and processing method
By setting a water-absorbing sponge and a heat-conducting ball structure in the cable drying device, the problems of frequent tool replacement and water vapor drifting during the cable drying process are solved, and efficient drying and environmental protection are achieved.
Patent Information
- Application Number
- CN202411254173.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-06
- Publication Date
- 2025-09-30
- Estimated Expiration
- 2044-09-06
AI Technical Summary
In the prior art, the cable drying process requires frequent replacement of wiping tools, which takes a long time, and the evaporation of water vapor causes damage to precision equipment.
The structure design includes a first box body, a second box body and a water collecting tank. A water-absorbing sponge is used to absorb water droplets on the surface of the cable. The hot air conveying pipe blows hot air to dry it. The hot air liquefies water vapor in the heat-conducting ball and collects it in the water collecting tank to prevent water vapor from entering the surrounding environment.
It achieves efficient cable drying, reduces the frequency of sponge replacement, reduces ambient humidity, and protects the integrity of precision equipment.
Smart Images

Figure CN119207910B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of cable processing, in particular to an energy storage system cable processing device and a processing method. Background Art
[0002] When installing the energy storage system, the various devices are mostly connected together using cables. During the processing of the cables, water cooling is often used to cool the cables. After cooling, the cables are dried using drying equipment to remove moisture from the cable surface.
[0003] At present, when drying cables, most of them use wiping tools to wipe off the water droplets on the cables and then dry them, or directly use drying equipment to dry them. During the former, the wiping tools need to be replaced frequently to prevent the wiping tools from being saturated and unable to absorb water, which is more troublesome. Direct drying will consume a long drying time, and during drying, water will float into the surrounding air in the form of water vapor, which will increase the surrounding air humidity. These water vapors will re-liquefy when they encounter the casing of the peripheral equipment. If they penetrate into the interior of the precision equipment, they will cause damage to the precision equipment. Summary of the Invention
[0004] In response to the problems in the prior art, the present invention provides an energy storage system cable processing device and a processing method.
[0005] The evaporation tube of the present invention is connected with the air purifier in thekiln through the hole, and the evaporation tube of the air purifier is connected with the air purifier in the kiln through the hole. The evaporation tube of claim 1, wherein the evaporation tube has a first end fixedly connected to the evaporation tube of the second casing and a second end fixedly connected to the evaporation tube of the second casing.
[0006] Specifically, the annular tubes are located on the same center line as the drying cylinder, a plurality of fixed blocks are fixedly connected to the outer walls of the annular tubes at equal intervals, and the sides of the fixed blocks away from the annular tubes are fixedly connected to the inner wall of the drying cylinder.
[0007] Specifically, a fifth through hole is formed on the upper side wall of the second box body close to the first box body, and the drying cable passes through the fifth through hole transversely. The diameter of the fifth through hole is larger than that of the drying cable.
[0008] Specifically, the heat-conducting ball is a hollow structure, a plurality of air holes are opened on the side wall of the heat-conducting ball, and the diameter of the air holes is larger than the diameter of the support rod. The upper end of the support rod passes through one of the air holes and is fixedly connected to the inner wall of the heat-conducting ball.
[0009] Specifically, the lower end of the water-absorbing sponge has a convex structure and is fixedly connected to the inner wall of the lower end of the first box body. The lower end of the water-absorbing sponge is located between the fourth through hole and one end of the first connecting tube connected to the first box body. The distance between the front and rear sides of the lower end of the water-absorbing sponge is smaller than the distance between the front and rear sides inside the first box body.
[0010] Specifically, the first connecting tube and the second connecting tube are both inclined, the end of the first connecting tube connected to the first box is higher than the end connected to the connecting ball, and the end of the second connecting tube connected to the second box is higher than the end connected to the connecting ball.
[0011] Specifically, the support plate, support rod and heat-conducting ball are made of the same heat-conducting metal, and the distance between the two sides of the support plate is smaller than the distance between the two sides inside the water collecting tank.
[0012] The processing method using the energy storage system cable processing device includes the following steps:
[0013] Step 1: Turn on the power and start the hot air blower. The hot air blower delivers hot air to the inside of the first box and the multiple annular tubes. Connect one end of the drying cable to a rod-shaped structure. Pass one end of the rod-shaped structure through the first box, the drying cylinder, and the second box in sequence. Pull the drying cable through the rod-shaped structure and pass it through the first box, the drying cylinder, and the second box. Untie the drying cable and connect the drying cable to the winding device.
[0014] Step 2: Start the winding device, which pulls the drying cable to slide slowly in the first box, the drying cylinder and the second box. During this process, the water-absorbing sponge in the first box absorbs the water droplets on the surface of the drying cable. According to the principle of capillary absorption, the water on the upper end of the water-absorbing sponge will gradually move downward, and the hot air entering the first box will dry the water-absorbing sponge. When the drying cable enters the drying cylinder, several annular tubes will blow hot air to the drying cable to dry the drying cable. The hot air then enters the second box. The hot air in the first and second boxes enters the connecting ball through the first connecting tube and the second connecting tube. After the hot air contacts the heat-conducting ball, the support rod and the support plate, the water vapor in the hot air will liquefy and flow into the water collecting tank. At the same time, the refrigeration plate will cool the support plate, the support rod and the heat-conducting ball to ensure the cooling effect.
[0015] Step 3: After drying, open the water collecting tank and drain the accumulated water in the water collecting tank. At the same time, drain a small amount of accumulated water inside the first box body and the second box body.
[0016] Beneficial effects of the present invention:
[0017] (1) The present invention provides a first box body and a second box body on both sides of the drying cylinder, and the first box body and the second box body are connected to a connecting ball equipped with a heat-conducting ball. During drying, air with water vapor will enter the connecting ball. After contacting the heat-conducting ball, the water vapor will be re-liquefied and flow into the water collecting tank for storage, which can minimize the impact on the surrounding environment and prevent water vapor from entering the surrounding precision equipment and damaging the precision wet equipment.
[0018] (2) The present invention sets a water-absorbing sponge inside the first box body, and uses the water-absorbing sponge to wipe off the water droplets attached to the surface of the cable. At the same time, the hot air delivery pipe also blows hot air into the first box body to dry the water-absorbing sponge. Then, the air with water vapor will enter the connecting ball and be liquefied and stored, so there is no need to frequently replace the water-absorbing sponge. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] The present invention will be further described below with reference to the accompanying drawings and examples.
[0020] Figure 1 A schematic diagram of the external structure provided by the present invention;
[0021] Figure 2 The cross-sectional structure provided by the present invention is schematically shown Figure 1 ;
[0022] Figure 3 The cross-sectional structure provided by the present invention is schematically shown Figure 2 ;
[0023] Figure 4 for Figure 3 A magnified image of the area at center A;
[0024] Figure 5 This is a schematic structural diagram of the water-absorbing sponge provided by the present invention in the first box.
[0025] In the figure: 1. First box body; 2. Second box body; 3. Water collecting tank; 4. Water-absorbing sponge; 5. Drying cylinder; 6. Hot air delivery pipe; 7. Hot air blower; 8. First through hole; 9. Ring pipe; 10. Fixed block; 11. Air inlet pipe; 12. Second through hole; 13. Mounting pipe; 14. Connecting ball; 15. First connecting pipe; 16. Support plate; 17. Heat-conducting ball; 18. Support rod; 19. Refrigeration plate; 20. Support; 21. Third through hole; 22. Fourth through hole; 23. Nozzle; 24. Second connecting pipe; 25. Drying cable; 26. Fifth through hole; 27. Fixed pipe. DETAILED DESCRIPTION
[0026] In order to make the technical means, creative features, objectives and effects achieved by the present invention easier to understand, the present invention is further described below in conjunction with specific implementation methods.
[0027] like Figure 1-Figure 5 As shown, the energy storage system cable processing device of the present invention includes a first box body 1, a second box body 2 and a water collecting box 3. The four corners of the lower ends of the first box body 1 and the second box body 2 are fixedly connected to the support 20. The interior of the first box body 1 is fixedly connected to a water-absorbing sponge 4. A fourth through hole 22 is provided on the side wall of the lower end of the first box body 1 close to the second box body 2. The upper ends of the first box body 1 and the second box body 2 are jointly fixedly connected to a drying cylinder 5. A hot air conveying pipe 6 is fixedly connected to the outer wall of the lower end of the drying cylinder 5. The hot air conveying pipe 6 is close to the second box body. 2 is fixedly connected to a hot air blower 7 through a fixed pipe 27, and one end of the hot air delivery pipe 6 close to the first box body 1 is fixedly connected to the outside of the fourth through hole 22. A plurality of first through holes 8 are evenly spaced on the side wall of the upper end of the hot air delivery pipe 6. A plurality of annular pipes 9 are evenly spaced in the middle of the inner side of the drying cylinder 5. The number of annular pipes 9 is the same as the number of the first through holes 8 and corresponds one to one. The lower ends of the plurality of annular pipes 9 are fixedly connected to the inner wall of the drying cylinder 5 through the air inlet pipe 11. The drying cylinder 5 between the plurality of air inlet pipes 11 and the first through holes 8 corresponding to the annular pipes 9 A second through hole 12 is provided on each side wall, and a plurality of nozzles 23 are fixedly connected to the inner sides of the annular tubes 9 at equal intervals. A drying cable 25 is inserted through the first box body 1, the second box body 2 and the drying cylinder 5. A third through hole 21 is provided on the side wall of the upper middle part of the water collecting tank 3. A mounting tube 13 is vertically fixedly connected to the outer side of the upper end opening of the third through hole 21. A connecting ball 14 is fixedly connected to the upper end of the mounting tube 13. The connecting ball 14 is a hollow structure and is symmetrically fixedly connected to the first connecting tube 15 and the second connecting tube 24 on the side wall. The first connecting tube 15 is far away. One end away from the connecting ball 14 is fixedly connected to the first box body 1, and the end of the second connecting pipe 24 away from the connecting ball 14 is fixedly connected to the second box body 2. The upper end of the interior of the water collecting tank 3 is fixedly connected to the support plate 16, and the joint between the back of the support plate 16 and the water collecting tank 3 is fixedly connected to the refrigeration plate 19. The middle part of the upper end of the support plate 16 is vertically fixedly connected to the support rod 18. The upper end of the support rod 18 is inserted into the interior of the connecting ball 14 and the end is fixedly connected to the heat conducting ball 17, which can cool the hot air, liquefy the water vapor in the hot air, and avoid increasing the humidity of the surrounding air.
[0028] Specifically, the plurality of annular tubes 9 are located on the same center line as the drying cylinder 5, and a plurality of fixed blocks 10 are fixedly connected to the outer walls of the plurality of annular tubes 9 at even intervals. The side of the plurality of fixed blocks 10 away from the annular tubes 9 is fixedly connected to the inner wall of the drying cylinder 5, which can stabilize the annular tubes 9 and reduce the load on the air inlet pipe 11.
[0029] Specifically, a fifth through hole 26 is opened on the upper side wall of the second box body 2 close to the first box body 1, and the drying cable 25 passes through the fifth through hole 26 horizontally. The diameter of the fifth through hole 26 is larger than that of the drying cable 25, which facilitates the entry of hot air into the second box body 2.
[0030] Specifically, the heat-conducting ball 17 has a hollow structure, and a plurality of air holes are provided on the side wall of the heat-conducting ball 17. The diameter of the air holes is larger than the diameter of the support rod 18. The upper end of the support rod 18 passes through one of the air holes and is fixedly connected to the inner wall of the heat-conducting ball 17, so that the support rod 18 can support the heat-conducting ball 17 without affecting the flow of hot air in and outside the heat-conducting ball 17.
[0031] Specifically, the lower end of the water-absorbing sponge 4 has a convex structure and is fixedly connected to the inner wall of the lower end of the first box body 1. The lower end of the water-absorbing sponge 4 is located between the fourth through hole 22 and one end of the first connecting tube 15 connected to the first box body 1. The distance between the front and rear sides of the lower end of the water-absorbing sponge 4 is smaller than the distance between the front and rear sides inside the first box body 1, ensuring that the hot air entering the first box body 1 can enter the first connecting tube 15.
[0032] Specifically, the first connecting pipe 15 and the second connecting pipe 24 are both arranged at an angle, and the end of the first connecting pipe 15 connected to the first box body 1 is higher than the end connected to the connecting ball 14, and the end of the second connecting pipe 24 connected to the second box body 2 is higher than the end connected to the connecting ball 14, so as to facilitate the water liquefied in the first connecting pipe 15 and the second connecting pipe 24 to flow into the water collecting tank 3.
[0033] Specifically, the support plate 16, the support rod 18 and the heat-conducting ball 17 are made of the same heat-conducting metal, which facilitates the refrigeration plate 19 to cool the support plate 16, the support rod 18 and the heat-conducting ball 17 at the same time. The distance between the two sides of the support plate 16 is smaller than the distance between the two sides inside the water collecting tank 3, which facilitates the accumulation of liquefied water in the water collecting tank 3.
[0034] The processing method using the energy storage system cable processing device includes the following steps:
[0035] Step 1: Turn on the power and start the hot air blower 7. The hot air blower 7 delivers hot air to the interior of the first box 1 and the plurality of annular tubes 9. Connect one end of the drying cable 25 to a rod-shaped structure. Pass one end of the rod-shaped structure through the first box 1, the drying cylinder 5, and the second box 2 in sequence. Pull the drying cable 25 through the rod-shaped structure and pass it through the first box 1, the drying cylinder 5, and the second box 2. Untie the drying cable 25 and connect the drying cable 25 to the winding device.
[0036] The second step is to start the winding device, which pulls the drying cable 25 to slide slowly in the first box body 1, the drying cylinder 5 and the second box body 2. During this process, the water-absorbing sponge 4 in the first box body 1 will absorb the water droplets on the surface of the drying cable 25. According to the principle of capillary absorption, the water on the upper end of the water-absorbing sponge 4 will gradually move downward, and the hot air entering the first box body 1 will dry the water-absorbing sponge 4. When the drying cable 25 enters the drying cylinder 5, the several annular tubes 9 will blow hot air to the drying cable 25 to dry the drying cable 25. The hot air then enters the second box body 2. The hot air in the first box body 1 and the second box body 2 enters the connecting ball 14 through the first connecting tube 15 and the second connecting tube 24. After the hot air contacts the heat-conducting ball 17, the support rod 18 and the support plate 16, the water vapor in the hot air will liquefy and flow into the water collecting tank 3. At the same time, the refrigeration plate 19 will cool the support plate 16, the support rod 18 and the heat-conducting ball 17 to ensure the cooling effect.
[0037] Step 3: After drying, open the water collecting tank 3 and drain the accumulated water in the water collecting tank 3. At the same time, a small amount of accumulated water inside the first box body 1 and the second box body 2 can be drained.
[0038] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art should understand that the present invention is not limited to the above-described embodiments. The above-described embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An energy storage system cable processing device, comprising a first box body (1), a second box body (2) and a water collecting box (3), wherein four corners of the lower ends of the first box body (1) and the second box body (2) are fixedly connected to support pillars (20), characterized in that: A water-absorbing sponge (4) is fixedly connected to the interior of the first box (1), a fourth through hole (22) is provided on the side wall of the lower end of the first box (1) close to the second box (2), a drying cylinder (5) is fixedly connected to the upper end of the first box (1) and the second box (2), a hot air delivery pipe (6) is fixedly connected to the outer wall of the lower end of the drying cylinder (5), the end of the hot air delivery pipe (6) close to the second box (2) is fixedly connected to the hot air blower (7) through a fixed pipe (27), and the end of the hot air delivery pipe (6) close to the first box (1) is fixedly connected to the hot air blower (7). On the outside of the fourth through hole (22), a plurality of first through holes (8) are provided at equal intervals on the side wall of the upper end of the hot air delivery pipe (6), and a plurality of annular tubes (9) are provided at equal intervals in the middle of the inner side of the drying cylinder (5). The number of the annular tubes (9) is the same as the number of the first through holes (8) and corresponds one to one. The lower ends of the plurality of annular tubes (9) are fixedly connected to the inner wall of the drying cylinder (5) through the air inlet pipe (11), and a second through hole (12) is provided on the side wall of the drying cylinder (5) between the plurality of the air inlet pipes (11) and the first through holes (8) corresponding to the annular tubes (9). A plurality of nozzles (23) are fixedly connected to the inner side of the shaped tube (9) at equal intervals, a drying cable (25) is inserted through the first box body (1), the second box body (2) and the drying cylinder (5), a third through hole (21) is provided on the side wall of the upper middle portion of the water collecting box (3), a mounting tube (13) is vertically fixedly connected to the outer side of the upper end opening of the third through hole (21), a connecting ball (14) is fixedly connected to the upper end of the mounting tube (13), the connecting ball (14) is a hollow structure and the first connecting tube (15) and the second connecting tube (24) are symmetrically fixedly connected on the side wall, the third through hole (21) is provided with a third through hole (21), and a mounting tube (13) is fixedly connected to the outer side of the upper end opening of the third through hole (21), the upper end of the mounting tube (13) is fixedly connected to the connecting ball (14), the connecting ball (14) is a hollow structure and the first connecting tube (15) and the second connecting tube (24) are symmetrically fixedly connected on the side wall, One end of a connecting pipe (15) away from the connecting ball (14) is fixedly connected to the first box body (1), and one end of a second connecting pipe (24) away from the connecting ball (14) is fixedly connected to the second box body (2). The upper end of the interior of the water collecting tank (3) is fixedly connected to a support plate (16), and the connection between the back of the support plate (16) and the water collecting tank (3) is fixedly connected to a refrigeration plate (19). The middle part of the upper end of the support plate (16) is vertically fixedly connected to a support rod (18), and the upper end of the support rod (18) is inserted into the interior of the connecting ball (14) and the end thereof is fixedly connected to a heat conducting ball (17).
2. The energy storage system cable processing device according to claim 1, characterized in that: The plurality of annular tubes (9) are located on the same center line as the drying cylinder (5), and a plurality of fixed blocks (10) are fixedly connected to the outer walls of the plurality of annular tubes (9) at equal intervals, and the sides of the plurality of fixed blocks (10) away from the annular tubes (9) are fixedly connected to the inner wall of the drying cylinder (5).
3. The energy storage system cable processing device according to claim 1, characterized in that: A fifth through hole (26) is provided on the upper side wall of the second box body (2) close to the first box body (1), and the drying cable (25) passes through the fifth through hole (26) transversely. The diameter of the fifth through hole (26) is larger than the diameter of the drying cable (25).
4. The energy storage system cable processing device according to claim 1, characterized in that: The heat-conducting ball (17) is a hollow structure. A plurality of air holes are provided on the side wall of the heat-conducting ball (17). The diameter of the air holes is larger than the diameter of the support rod (18). The upper end of the support rod (18) passes through one of the air holes and is fixedly connected to the inner wall of the heat-conducting ball (17).
5. The energy storage system cable processing device according to claim 1, characterized in that: The lower end of the water-absorbing sponge (4) has a convex structure and is fixedly connected to the inner wall of the lower end of the first box (1). The lower end of the water-absorbing sponge (4) is located between the fourth through hole (22) and one end of the first connecting pipe (15) connected to the first box (1). The distance between the front and rear sides of the lower end of the water-absorbing sponge (4) is smaller than the distance between the front and rear sides inside the first box (1).
6. The energy storage system cable processing device according to claim 1, characterized in that: The first connecting tube (15) and the second connecting tube (24) are both arranged at an angle, the end of the first connecting tube (15) connected to the first box (1) being higher than the end connected to the connecting ball (14), and the end of the second connecting tube (24) connected to the second box (2) being higher than the end connected to the connecting ball (14).
7. The energy storage system cable processing device according to claim 1, characterized in that: The support plate (16), support rod (18) and heat-conducting ball (17) are made of the same heat-conducting metal, and the distance between the two sides of the support plate (16) is smaller than the distance between the two sides inside the water collecting tank (3).
8. A processing method using the energy storage system cable processing device according to any one of claims 1 to 7, characterized in that: The following steps are involved: Step 1: Turn on the power supply and start the hot air blower (7), so that the hot air blower (7) delivers hot air to the inside of the first box (1) and the plurality of annular tubes (9), connect one end of the drying cable (25) to a rod-shaped structure, and pass one end of the rod-shaped structure through the first box (1), the drying cylinder (5), and the second box (2) in sequence, pull the drying cable (25) through the rod-shaped structure, pass the drying cable (25) through the first box (1), the drying cylinder (5), and the second box (2), untie the drying cable (25), and connect the drying cable (25) and the winding device together; Step 2: Start the reeling device. The reeling device pulls the drying cable (25) to slide slowly in the first box (1), the drying cylinder (5) and the second box (2). During this process, the water-absorbing sponge (4) in the first box (1) absorbs the water droplets on the surface of the drying cable (25). According to the capillary absorption principle, the water on the upper end of the water-absorbing sponge (4) will gradually move downward, and the hot air entering the first box (1) will dry the water-absorbing sponge (4). When the drying cable (25) enters the interior of the drying cylinder (5), a number of annular tubes (9) will move the water droplets to the drying cable (25). ) blows hot air to dry the drying cable (25), and the hot air then enters the second box (2). The hot air in the first box (1) and the second box (2) enters the connecting ball (14) through the first connecting pipe (15) and the second connecting pipe (24). After the hot air contacts the heat-conducting ball (17), the support rod (18) and the support plate (16), the water vapor in the hot air will liquefy and flow into the water collecting tank (3). At the same time, the refrigeration plate (19) will cool the support plate (16), the support rod (18) and the heat-conducting ball (17) to ensure the cooling effect; Step 3: After drying is completed, the water collecting tank (3) is opened to drain the accumulated water in the water collecting tank (3). At the same time, a small amount of accumulated water inside the first box body (1) and the second box body (2) can be drained.
Citation Information
Patent Citations
Efficient drying device for cable surface
CN219832314U
Cooling apparatus for superconductive power apparatus and cooling method for superconductive power apparatus
JP2016186983A