Combined cooling equipment for wire and cable processing

Through combined cooling equipment combined with water cooling and air cooling technology, the problems of water cooling occupying a large area, consume a lot of water, and uneven cooling in wire and cable processing are solved, and efficient and uniform cable cooling and drying are achieved, reducing resource consumption and improving processing efficiency.

CN120452931APending Publication Date: 2025-08-08JIANGSU SU CABLE CO LTD
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Patent Information

Application Number
CN202510664914.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-22
Publication Date
2025-08-08

AI Technical Summary

Technical Problem

During the existing wire and cable processing process, traditional water-cooling cooling devices occupy a large area, consume a large amount of water, have high refrigeration costs, and have poor cooling effect. The moisture on the surface of the cable after cooling affects the subsequent process. Traditional air-cooling equipment occupies a large volume and is uneven cooling.

Method used

The combined cooling equipment is adopted, combined with water cooling and air cooling technology, pre-cooling is performed through the introduction device, the cooling device is performed by cooling multi-angle cooling, the drying device dissipates heat, and efficient cooling and drying is achieved by combining water mist and air cooling, realizing water flow recycling and centralized heat treatment.

Benefits of technology

It realizes efficient and uniform cable cooling and drying, reduces water resource consumption, reduces equipment space, improves cooling efficiency, and facilitates cable collection and processing.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of cooling equipment, and particularly discloses combined cooling equipment for wire and cable processing. According to the combined cooling equipment for wire and cable processing, the purposes of cooling and drying a cable are achieved, the equipment is supported through the bottom plate support, the cable is guided in, fixed and pre-cooled through the guiding-in device, and therefore the situation that the strength of a cable material is affected due to the too high cooling speed is avoided, the cable is cooled through the cooling device, and the service life of the cable is prolonged. The cooling device is used for cooling cables of different thicknesses in a wrapping mode, the drying device is used for dissipating heat absorbed in the cooling device, hot air is blown to the surfaces of the cables, and therefore the surfaces of the cables are dried, and the purposes that water cooling is used for reducing the heat treatment problem caused by large air cooling occupied volume and high heating are achieved; the cooling problem caused by enhancing air cooling through water cooling is utilized, the heat dissipation effect of the air cooling is enhanced through water cooling, heat is concentrated through a water cooling machine, miniaturization treatment is carried out, and therefore heat dissipation is promoted.
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Description

Technical Field

[0001] The present invention relates to the technical field of cooling equipment, in particular to a combined cooling equipment for wire and cable processing. Background Art

[0002] With the rapid development of China's wire and cable industry, the number of new companies continues to rise, the industry's overall technological level has significantly improved, and the demand for wire and cable has also grown rapidly. However, during the cable processing process, the cooling device currently used is mostly water cooling. Due to space constraints in some factories, the use of strip water cooling tanks occupies a large area. The large number of pulleys can easily cause wear on the cables, affecting the appearance and quality of the products, hindering cooling, and failing to meet the needs of industry development.

[0003] Existing wire and cable processing often uses cooling water after extrusion. However, after a period of use, the cooling water's temperature rises and impurities accumulate, necessitating frequent replacement, resulting in a waste of water resources. Furthermore, the traditional method of flowing large amounts of cooling water over long distances consumes large amounts of water, resulting in high cooling costs and low cooling efficiency. This single method offers poor cooling effects and high efficiency. Furthermore, the outer surface of the cooled cable retains a significant amount of moisture, which, if left untreated, can affect subsequent processes. Summary of the Invention

[0004] To achieve the above objectives, the present invention is implemented through the following technical solutions: A combined cooling device for wire and cable processing, comprising a base plate bracket, the top of the base plate bracket is fixedly connected to an introduction device, the side of the introduction device is fixedly connected to a cooling device, the side of the cooling device is fixedly connected to a drying device, the bottom of the cooling device is fixedly connected to the top of the base plate bracket, and the bottom of the drying device is fixedly connected to the top of the base plate bracket;

[0005] The introduction device includes an introduction bracket, the inner wall of the introduction bracket is rotatably connected to the pre-cooling component, the side of the introduction bracket is fixedly connected to the first motor, the side of the pre-cooling component is connected to the first water pipe, the top of the introduction bracket is fixedly connected to the water reservoir, the side of the water reservoir is connected to the water inlet end of the water pump, the water outlet end of the water pump is connected to the second water pipe, the bottom of the introduction bracket is fixedly connected to the first guide plate, the side of the introduction bracket is fixedly connected to the side of the cooling device, the bottom of the introduction bracket is fixedly connected to the top of the base plate bracket, the drive shafts of the pre-cooling component and the water pump are fixedly connected to the drive shaft of the first motor through a belt transmission device, the end of the second water pipe away from the water pump is connected to the side of the cooling device, the drive shaft of the first motor rotates, and the drive shaft of the first motor rotates. The belt transmission mechanism is driven to rotate, thereby driving the cooling shell to rotate, and water is added through the water reservoir. The water flows through the first water pipe into the interior of the porous tube, and flows into the inner wall of the cooling shell through the holes on the porous tube. The water flows out through the water outlet, and the cable moves on the surface of the cooling shell. The cable is guided by the separating ring to avoid the cable from being offset during the movement. The water flows directly into contact with the cable through the water outlet, and a small amount of water flows through the porous tube for early cooling, thereby reducing the cooling speed and the stress changes caused by the cooling speed. The water flows through the first guide plate and is automatically guided by gravity, thereby returning to the interior of the cooling device for cooling, and then passes through the second water pipe under the action of the water pump to the interior of the water reservoir to realize the recycling of the water.

[0006] Preferably, the pre-cooling component includes a cooling shell, a side of the cooling shell is provided with a water outlet, the side of the cooling shell is fixedly connected to a separator ring, the water outlet is arranged on both sides of the separator ring, the inner wall of the cooling shell is provided with a water flow groove, the inner wall of the cooling shell is fixedly connected to a porous tube bracket, the side of the porous tube bracket is penetrated and rotatably connected to a porous tube, the porous tube penetrates the side of the inlet bracket and is fixedly connected to the inlet bracket, and the porous tube is connected to the first water pipe.

[0007] Preferably, the cooling device includes a cooling bracket, the bottom of the cooling bracket is fixedly connected to a reflux pool, the bottom of the inner wall of the reflux pool is fixedly connected to a round-shaped baffle, the inner wall of the round-shaped baffle is fixedly connected to a condenser, the bottom of the condenser is fixedly connected to a heat exchange device, the inner wall side of the cooling bracket is fixedly connected to a second guide plate, the top of the cooling bracket is fixedly connected to an air-cooled bracket, the inner wall side of the air-cooled bracket is fixedly connected to a cooling assembly, the side of the reflux pool is connected to the second water pipe, the side of the inlet bracket is fixedly connected to the side of the cooling bracket, and the bottom of the heat exchange device is fixedly connected to the top of the base plate bracket.

[0008] Preferably, the cooling assembly includes a main cooling unit, the top of the main cooling unit is fixedly connected to a spring sheet, the end of the spring sheet away from the main cooling unit is fixedly connected to a sub-cooling unit, the bottom of the rotation center of the sub-cooling unit is fixedly connected to a connecting column, the side of the connecting column is rotatably connected to a connecting bracket through a rotating shaft, the bottom of the connecting bracket is rotatably connected to a fixed end of a first telescopic rod through a rotating shaft, the side of the main cooling unit is fixedly connected to the inner wall of the air-cooling bracket, the cooling assembly cools by air flow and water mist, the water flow is atomized and sprayed onto the surface of the cable with air, and falls naturally under the action of gravity, and enters the inner part of the circular baffle under the guidance of the second guide plate, and the inside of the circular baffle The zigzag design increases the water flow path and increases the contact area with the condenser. The condenser is fixed inside the zigzag baffle, thereby cooling the water flow without affecting the water flow rate. Heat enters the interior of the heat exchange device through the zigzag baffle and is dissipated through the drying device. After the cable is introduced, the first telescopic rod moves downward under the action of the cable's own gravity. The downward movement of the first telescopic rod drives the connecting bracket downward. The downward movement of the connecting bracket drives the auxiliary cooling unit to rotate along the spring sheet, thereby changing the wind direction angle of the auxiliary cooling unit. When the cable is thicker, the angle is automatically changed, so that the thicker cable can be cooled at multiple angles simultaneously, thereby preventing the problem of uneven cooling and incomplete cooling at different positions. The function of automatically adjusting the heat dissipation angle according to the weight of the cable is realized, thereby preventing the problem of uneven cooling of thicker cables.

[0009] Preferably, the main cooling unit includes a cooling base plate, the bottom of the cooling base plate is rotatably connected to a fan assembly, the top of the fan assembly is rotatably connected to a third water pipe, the top of the cooling base plate is fixedly connected to a second motor, the drive shaft of the second motor is transmission-connected to the fan assembly through a belt drive mechanism, the side of the cooling base plate is rotatably connected to a connecting rod through a rotating shaft, and the side of the connecting rod is rotatably connected to the side of the auxiliary cooling unit through a rotating shaft.

[0010] Preferably, the fan assembly includes a hollow fan shaft, the side of the hollow fan shaft is connected to a hard pipe, the bottom of the hard pipe is connected to an atomizing nozzle, the side of the hollow fan shaft located on the side of the atomizing nozzle is fixedly connected to an air-cooled fan blade, the top of the hollow fan shaft is connected to a third water pipe, and the side of the hollow fan shaft is fixedly connected to the drive shaft of the second motor through a belt transmission device.

[0011] Preferably, the drying device includes a heat exchange fan, the top of the heat exchange fan is fixedly connected to a fixed air guide plate, and the bottom of the heat exchange fan is fixedly connected to the top of the base plate bracket;

[0012] The drying device also includes a heat dissipation base, the top of the heat dissipation base is fixedly connected to a limited sliding strip, the side of the limited sliding strip is sleeved and slidably connected to a connecting plate, the top of the connecting plate is fixedly connected to a roller bracket, the side of the roller bracket is rotatably connected to a wire roller, the bottom of the connecting plate is fixedly connected to a driven air guide plate adapted to the fixed air guide plate, the side of the heat dissipation base is fixedly connected to the side of the cooling bracket, the side of the connecting plate away from the roller bracket is fixedly connected to the side of the connecting bracket, the heat exchange fan performs directionally heat dissipation treatment on the heat in the heat exchange device, and the air is driven by the heat exchange fan and passes through the bottom of the fixed air guide plate The air is guided and flows along the surface of the fixed air guide plate. The air is driven by the fixed air guide plate and guided by the driven air guide plate. When the cable is too thick and drives the connecting bracket, the connecting bracket drives the connecting plate to move, and the movement of the connecting plate drives the driven air guide plate to move. The movement of the driven air guide plate changes the relative position between the driven air guide plate and the fixed air guide plate. The flow rate is changed under the condition that the hot air flow rate of the heat exchange fan remains unchanged, thereby accelerating the air flow rate passing through the cable surface, thereby taking away the moisture on the cable surface faster, thereby drying the cable, facilitating the collection and processing of the cable, and being dried so as to facilitate the storage and transportation of the cable.

[0013] The present invention provides a combined cooling device for wire and cable processing, which has the following beneficial effects:

[0014] 1. The combined cooling equipment for wire and cable processing is provided with a driving shaft of a first motor for rotation. The rotation of the driving shaft of the first motor drives the belt transmission mechanism to rotate, thereby driving the cooling shell to rotate. Water is added through the water reservoir, and the water flows through the first water pipe into the interior of the porous tube and flows into the inner wall of the cooling shell through the holes on the porous tube. The water flows out through the water outlet. The cable moves on the surface of the cooling shell and is guided by the separating ring to avoid the cable from being offset during the movement. The water flows directly into contact with the cable through the water outlet, and a small amount of water flows through the porous tube for early cooling, thereby reducing the cooling speed and the stress change caused by the cooling speed. The water flows through the first guide plate and is automatically guided by gravity, thereby returning to the interior of the cooling device for cooling, and then under the action of the water pump, it passes through the second water pipe to the interior of the water reservoir to realize the recycling of the water.

[0015] 2. The combined cooling equipment for wire and cable processing is provided with a cooling component for air flow and water mist generation for cooling. The water flow is atomized and sprayed on the surface of the cable along with the air, and falls naturally under the action of gravity. Under the guidance of the second guide plate, it enters the inner part of the meandering baffle. The meandering design inside the meandering baffle increases the water flow path and increases the contact area with the condenser. The condenser is fixed inside the meandering baffle, thereby realizing cooling of the water flow without affecting the flow rate of the water flow. Heat enters the interior of the heat exchange device through the meandering baffle and is dissipated through the action of the drying device. After the cable is introduced, the first telescopic rod is driven downward by the gravity of the cable itself. The downward movement of the first telescopic rod drives the connecting bracket to move downward. The downward movement of the connecting bracket drives the auxiliary cooling unit to rotate along the spring sheet, thereby changing the wind direction angle of the auxiliary cooling unit, so that the angle is automatically changed when the cable is thicker, so that the thicker cable can be cooled at multiple angles at the same time, thereby preventing the problems of uneven cooling and incomplete cooling at different positions. The function of automatically adjusting the heat dissipation angle according to the weight of the cable is realized, thereby preventing the problem of uneven cooling of thicker cables.

[0016] 3. The combined cooling equipment for wire and cable processing is provided with a water flow flowing through a third water pipe. The water flows through the third water pipe to the inside of the hollow shaft of the fan and flows, and is atomized and sprayed out through the action of the atomizing nozzle. The second motor is started, and the second motor drives the hollow shaft of the fan to rotate. The rotation of the hollow shaft of the fan drives the air-cooling fan blades to rotate. The rotation of the air-cooling fan blades drives the air to flow, so that the air drives the water mist to flow, so that the atomized water vapor moves under the driving action of the air and acts on the surface of the cable, thereby dissipating the heat of the cable. The heat in the air is concentrated into the water by combining water mist and air cooling for centralized treatment. At the same time, the spraying of water mist is conducive to evaporation on the surface of the cable, thereby taking away heat.

[0017] 4. The combined cooling equipment for wire and cable processing is provided with a heat exchange fan to carry out directionally heat dissipation treatment on the heat in the heat exchange device. The air is driven by the heat exchange fan to be guided through the bottom of the fixed air guide plate and flows along the surface of the fixed air guide plate. The air is driven by the fixed air guide plate and guided through the driven air guide plate. When the cable is too thick and drives the connecting bracket, the connecting bracket drives the connecting plate to move, and the movement of the connecting plate drives the driven air guide plate to move. The movement of the driven air guide plate changes the relative position between the driven air guide plate and the fixed air guide plate. The flow rate is changed while the hot air flow of the heat exchange fan remains unchanged, thereby accelerating the air flow rate passing through the cable surface, thereby taking away moisture on the cable surface more quickly, thereby drying the cable, facilitating the collection and processing of the cable, and being dried, which is beneficial for the storage and transportation of the cable. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 This is a schematic structural diagram of the combined cooling equipment for wire and cable processing of the present invention;

[0019] Figure 2 This is a structural schematic diagram of the introduction device of the present invention;

[0020] Figure 3 This is a schematic diagram of the structure of the pre-cooling component of the present invention;

[0021] Figure 4 This is a schematic structural diagram of the cooling device of the present invention;

[0022] Figure 5 This is a schematic diagram of the cooling assembly structure of the present invention;

[0023] Figure 6 This is a structural diagram of the main cooling unit of the present invention;

[0024] Figure 7 This is a schematic structural diagram of a fan assembly according to the present invention;

[0025] Figure 8 It is a structural schematic diagram of the drying device of the present invention.

[0026] In the figure: 1. bottom plate bracket; 2. introduction device; 3. cooling device; 4. drying device; 201. introduction bracket; 202. pre-cooling assembly; 203. first motor; 204. first water pipe; 205. water reservoir; 206. second water pipe; 207. water pump; 208. first guide plate; 2021. cooling shell; 2022. water outlet; 2023. separation ring; 2024. water flow trough; 2025. porous tube bracket; 2026. porous tube; 31. cooling bracket; 32. reflux tank; 33. round baffle; 34. condenser; 35. heat exchange device; 36. second guide plate; 37. air cooling bracket; 38. cooling group Components; 381, main cooling unit; 382, spring sheet; 383, auxiliary cooling unit; 384, connecting column; 385, connecting bracket; 386, first telescopic rod; 3811, cooling base plate; 3812, fan assembly; 3813, third water pipe; 3814, second motor; 3815, connecting rod; 38121, fan hollow shaft; 38122, hard pipe; 38123, atomizing nozzle; 38124, air-cooling fan blade; 401, heat exchange fan; 402, fixed air guide plate; 403, heat dissipation base plate; 404, limit slide; 405, connecting plate; 406, roller bracket; 407, wire roller; 408, driven air guide plate; DETAILED DESCRIPTION

[0027] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0028] See also Figure 1-Figure 3 The present invention provides a technical solution: a combined cooling device for wire and cable processing, comprising a base plate bracket 1, the top of the base plate bracket 1 is fixedly connected to an introduction device 2, the side of the introduction device 2 is fixedly connected to a cooling device 3, the side of the cooling device 3 is fixedly connected to a drying device 4, the bottom of the cooling device 3 is fixedly connected to the top of the base plate bracket 1, and the bottom of the drying device 4 is fixedly connected to the top of the base plate bracket 1.

[0029] The base plate bracket 1 supports the equipment, the introduction device 2 guides and fixes the cables and pre-cools them to prevent the strength of the cable material from being affected by excessive cooling speed. The cooling device 3 cools the cables and performs wrapping cooling on cables of different thicknesses to prevent cable quality problems caused by different cooling speeds at different locations due to excessive thickness. The drying device 4 dissipates the heat absorbed by the cooling device 3 and blows hot air to the surface of the cable to dry the surface of the cable, making it easier to collect and process. This method uses water cooling to reduce the large volume occupied by air cooling and the heat treatment problems caused by high heat generation. It also uses water cooling to enhance the cooling problem caused by air cooling. It uses water cooling to enhance the heat dissipation effect of air cooling and uses a water cooler to concentrate heat for miniaturization, thereby avoiding the large volume occupied by traditional air cooling equipment and the high water consumption of water cooling. The water is atomized to facilitate evaporation, thereby promoting heat dissipation.

[0030] The introduction device 2 includes an introduction bracket 201, the inner wall of which is rotatably connected to a pre-cooling component 202, a side of which is fixedly connected to a first motor 203, a side of which is connected to a first water pipe 204, a top of the introduction bracket 201 is fixedly connected to a water reservoir 205, a side of the water reservoir 205 is connected to the water inlet end of a water pump 207, a water outlet end of the water pump 207 is connected to a second water pipe 206, a bottom of the introduction bracket 201 is fixedly connected to a first guide plate 208, a side of the introduction bracket 201 is fixedly connected to a side of the cooling device 3, the bottom of the introduction bracket 201 is fixedly connected to the top of the base plate bracket 1, the drive shafts of the pre-cooling component 202 and the water pump 207 are fixedly connected to the drive shaft of the first motor 203 through a belt transmission device, and the end of the second water pipe 206 away from the water pump 207 is connected to the side of the cooling device 3.

[0031] The pre-cooling component 202 includes a cooling shell 2021, a water outlet 2022 is provided on the side of the cooling shell 2021, a separator ring 2023 is fixedly connected to the side of the cooling shell 2021, and the water outlet 2022 is arranged on both sides of the separator ring 2023. A water flow groove 2024 is provided on the inner wall of the cooling shell 2021, and a porous tube bracket 2025 is fixedly connected to the inner wall of the cooling shell 2021. The side of the porous tube bracket 2025 is penetrated and rotatably connected to a porous tube 2026. The porous tube 2026 penetrates the side of the inlet bracket 201 and is fixedly connected to the inlet bracket 201. The porous tube 2026 is connected to the first water pipe 204.

[0032] The power supply of the first motor 203 is turned on, and the drive shaft of the first motor 203 rotates. The rotation of the drive shaft of the first motor 203 drives the belt transmission mechanism to rotate, thereby driving the cooling shell 2021 to rotate. Water is added through the water reservoir 205, and the water flows through the first water pipe 204 into the interior of the porous pipe 2026, and flows into the inner wall of the cooling shell 2021 through the holes on the porous pipe 2026. The water flows out through the water outlet 2022, and the cable moves on the surface of the cooling shell 2021 and is moved under the action of the separation ring 2023. It is used to guide the cable to avoid the cable from being offset during movement. The water flows through the water outlet 2022 and directly contacts the cable. A small amount of water flows through the porous tube 2026 for early cooling, thereby reducing the cooling rate and the stress changes caused by the cooling rate. The water flows through the first guide plate 208 and is automatically guided by gravity, so as to flow back into the interior of the cooling device 3, be cooled, and then pass through the second water pipe 206 under the action of the water pump 207 to reach the interior of the water reservoir 205 to realize the recycling of the water flow.

[0033] See also Figure 1-Figure 5 The present invention provides a technical solution: the cooling device 3 includes a cooling bracket 31, the bottom of the cooling bracket 31 is fixedly connected to a reflux pool 32, the bottom of the inner wall of the reflux pool 32 is fixedly connected to a round-shaped baffle 33, the inner wall of the round-shaped baffle 33 is fixedly connected to a condensing pipe 34, the bottom of the condensing pipe 34 is fixedly connected to a heat exchange device 35, the inner wall side of the cooling bracket 31 is fixedly connected to a second guide plate 36, the top of the cooling bracket 31 is fixedly connected to an air-cooling bracket 37, the inner wall side of the air-cooling bracket 37 is fixedly connected to a cooling component 38, the side of the reflux pool 32 is connected to the second water pipe 206, the side of the inlet bracket 201 is fixedly connected to the side of the cooling bracket 31, and the bottom of the heat exchange device 35 is fixedly connected to the top of the bottom plate bracket 1.

[0034] The cooling assembly 38 includes a main cooling unit 381, the top of the main cooling unit 381 is fixedly connected to a spring sheet 382, the end of the spring sheet 382 away from the main cooling unit 381 is fixedly connected to a secondary cooling unit 383, the bottom of the rotation center of the secondary cooling unit 383 is fixedly connected to a connecting column 384, the side of the connecting column 384 is rotatably connected to a connecting bracket 385 through a rotating shaft, the bottom of the connecting bracket 385 is rotatably connected to a fixed end of a first telescopic rod 386 through a rotating shaft, and the side of the main cooling unit 381 is fixedly connected to the inner wall of the air-cooling bracket 37.

[0035] When the cable is cooled, the cooling assembly 38 is started to flow air and generate water mist for cooling. The water flow is atomized and sprayed on the surface of the cable along with the air, and falls naturally under the action of gravity. Under the guidance of the second guide plate 36, it enters the inner part of the return baffle 33. The return design inside the return baffle 33 increases the path of water flow and increases the contact area with the condenser 34. The condenser 34 is fixed inside the return baffle 33, thereby achieving cooling of the water flow without affecting the flow rate of the water flow. The heat enters the heat exchange through the return baffle 33. The interior of the device 35 dissipates heat through the action of the drying device 4. After the cable is introduced, the cable's own gravity drives the first telescopic rod 386 downward. The downward movement of the first telescopic rod 386 drives the connecting bracket 385 downward. The downward movement of the connecting bracket 385 drives the auxiliary cooling unit 383 to rotate along the spring plate 382, thereby changing the wind direction angle of the auxiliary cooling unit 383. When the cable is thick, the angle is automatically changed, so that the thick cable can be cooled at multiple angles simultaneously, thus preventing the problem of uneven cooling and incomplete cooling at different positions. The function of automatically adjusting the heat dissipation angle according to the weight of the cable is realized, thus preventing the problem of uneven cooling of thick cables.

[0036] See also Figure 1-Figure 7 The present invention provides a technical solution: the main cooling unit 381 includes a cooling base plate 3811, the bottom of the cooling base plate 3811 is rotatably connected to a fan assembly 3812, the top of the fan assembly 3812 is rotatably connected to a third water pipe 3813, the top of the cooling base plate 3811 is fixedly connected to a second motor 3814, the drive shaft of the second motor 3814 is transmission-connected to the fan assembly 3812 through a belt transmission mechanism, the side of the cooling base plate 3811 is rotatably connected to a connecting rod 3815 through a rotating shaft, and the side of the connecting rod 3815 is rotatably connected to the side of the auxiliary cooling unit 383 through a rotating shaft.

[0037] The fan assembly 3812 includes a hollow fan shaft 38121, the side of the hollow fan shaft 38121 is connected to a hard tube 38122, the bottom of the hard tube 38122 is connected to an atomizing nozzle 38123, the side of the hollow fan shaft 38121 located on the side of the atomizing nozzle 38123 is fixedly connected to an air-cooling fan blade 38124, the top of the hollow fan shaft 38121 is connected to the third water pipe 3813, and the side of the hollow fan shaft 38121 is fixedly connected to the drive shaft of the second motor 3814 through a belt transmission device.

[0038] During the cooling process, water flows through the third water pipe 3813, and the water flows through the third water pipe 3813 to the inside of the fan hollow shaft 38121 and flows, and is atomized and sprayed out through the action of the atomizing nozzle 38123, and the second motor 3814 is started, and the second motor 3814 drives the fan hollow shaft 38121 to rotate, and the rotation of the fan hollow shaft 38121 drives the air-cooling blades 38124 to rotate, and the rotation of the air-cooling blades 38124 drives the air to flow, so that the air drives the water mist to flow, so that the atomized water vapor moves under the driving action of the air and acts on the surface of the cable, thereby dissipating the heat of the cable, and the heat in the air is concentrated into the water for centralized treatment by combining water mist and air cooling. At the same time, the spraying of water mist is conducive to evaporation on the cable surface, thereby taking away heat.

[0039] See also Figures 1-8 , the present invention provides a technical solution: the drying device 4 includes a heat exchange fan 401, the top of the heat exchange fan 401 is fixedly connected to a fixed air guide plate 402, and the bottom of the heat exchange fan 401 is fixedly connected to the top of the bottom plate bracket 1;

[0040] The drying device 4 also includes a heat dissipation base plate 403, the top of the heat dissipation base plate 403 is fixedly connected to a limiting slide 404, the side of the limiting slide 404 is sleeved and slidably connected to a connecting plate 405, the top of the connecting plate 405 is fixedly connected to a roller bracket 406, the side of the roller bracket 406 is rotatably connected to a wire roller 407, the bottom of the connecting plate 405 is fixedly connected to a driven air guide plate 408 adapted to the fixed air guide plate 402, the side of the heat dissipation base plate 403 is fixedly connected to the side of the cooling bracket 31, and the side of the connecting plate 405 away from the roller bracket 406 is fixedly connected to the side of the connecting bracket 385.

[0041] Start the heat exchange fan 401, which performs a directionally heat dissipation process on the heat in the heat exchange device 35. The air is driven by the heat exchange fan 401 to be guided through the bottom of the fixed air guide plate 402 and flows along the surface of the fixed air guide plate 402. The air is driven by the fixed air guide plate 402 and guided through the driven air guide plate 408. When the cable is too thick and drives the connecting bracket 385, the connecting bracket 385 drives the connecting plate 405 to move. The movement of the connecting plate 405 drives the driven air guide plate 408 to move. The movement of the driven air guide plate 408 changes the relative position between the driven air guide plate 408 and the fixed air guide plate 402. The flow rate is changed while the hot air flow of the heat exchange fan 401 remains unchanged, thereby accelerating the air flow rate passing through the cable surface, thereby taking away moisture on the cable surface more quickly, thereby drying the cable, facilitating the collection and processing of the cable, and being dried, which is beneficial for the storage and transportation of the cable.

[0042] 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 combined cooling device for wire and cable processing, characterized by: The invention comprises a bottom plate support (1), the top of the bottom plate support (1) is fixedly connected to an introduction device (2), the side of the introduction device (2) is fixedly connected to a cooling device (3), the side of the cooling device (3) is fixedly connected to a drying device (4), the bottom of the cooling device (3) is fixedly connected to the top of the bottom plate support (1), and the bottom of the drying device (4) is fixedly connected to the top of the bottom plate support (1); The introduction device (2) comprises an introduction bracket (201), the inner wall of the introduction bracket (201) is rotatably connected to a pre-cooling component (202), the side of the introduction bracket (201) is fixedly connected to a first motor (203), the side of the pre-cooling component (202) is connected to a first water pipe (204), the top of the introduction bracket (201) is fixedly connected to a water reservoir (205), the side of the water reservoir (205) is connected to the water inlet end of a water pump (207), and the water outlet end of the water pump (207) is connected to a second water pipe (206), the bottom of the introduction bracket (201) is fixedly connected to a first guide plate (208), the side of the introduction bracket (201) is fixedly connected to the side of the cooling device (3), the bottom of the introduction bracket (201) is fixedly connected to the top of the base plate bracket (1), the drive shafts of the pre-cooling component (202) and the water pump (207) are fixedly connected to the drive shaft of the first motor (203) through a belt transmission device, and the end of the second water pipe (206) away from the water pump (207) is connected to the side of the cooling device (3).

2. The combined cooling device for wire and cable processing according to claim 1, characterized in that: The pre-cooling component (202) includes a cooling shell (2021), a water outlet (2022) is provided on the side of the cooling shell (2021), a separation ring (2023) is fixedly connected to the side of the cooling shell (2021), and the water outlet (2022) is arranged at positions on both sides of the separation ring (2023), a water flow groove (2024) is provided on the inner wall of the cooling shell (2021), a porous tube bracket (2025) is fixedly connected to the inner wall of the cooling shell (2021), a porous tube (2026) is passed through and rotatably connected to the side of the porous tube bracket (2025), the porous tube (2026) passes through the side of the inlet bracket (201) and is fixedly connected to the inlet bracket (201), and the porous tube (2026) is communicated with the first water pipe (204).

3. The combined cooling device for wire and cable processing according to claim 2, characterized in that: The cooling device (3) includes a cooling bracket (31), the bottom of the cooling bracket (31) is fixedly connected to a reflow pool (32), the bottom of the inner wall of the reflow pool (32) is fixedly connected to a round baffle (33), the inner wall of the round baffle (33) is fixedly connected to a condenser (34), the bottom of the condenser (34) is fixedly connected to a heat exchange device (35), the inner wall side of the cooling bracket (31) is fixedly connected to a second guide plate (36), the top of the cooling bracket (31) is fixedly connected to an air-cooling bracket (37), the inner wall side of the air-cooling bracket (37) is fixedly connected to a cooling assembly (38), the side of the reflow pool (32) is connected to the second water pipe (206), the side of the inlet bracket (201) is fixedly connected to the side of the cooling bracket (31), and the bottom of the heat exchange device (35) is fixedly connected to the top of the bottom plate bracket (1).

4. The combined cooling device for wire and cable processing according to claim 3, characterized in that: The cooling assembly (38) includes a main cooling unit (381), the top of the main cooling unit (381) is fixedly connected to a spring sheet (382), the end of the spring sheet (382) away from the main cooling unit (381) is fixedly connected to a secondary cooling unit (383), the bottom of the rotation center of the secondary cooling unit (383) is fixedly connected to a connecting column (384), the side of the connecting column (384) is rotatably connected to a connecting bracket (385) through a rotating shaft, the bottom of the connecting bracket (385) is rotatably connected to a fixed end of a first telescopic rod (386) through a rotating shaft, and the side of the main cooling unit (381) is fixedly connected to the inner wall of the air-cooling bracket (37).

5. The combined cooling device for wire and cable processing according to claim 4, characterized in that: The main cooling unit (381) includes a cooling base plate (3811), the bottom of the cooling base plate (3811) is rotatably connected to a fan assembly (3812), the top of the fan assembly (3812) is rotatably connected to a third water pipe (3813), the top of the cooling base plate (3811) is fixedly connected to a second motor (3814), the drive shaft of the second motor (3814) is transmission-connected to the fan assembly (3812) via a belt transmission mechanism, the side of the cooling base plate (3811) is rotatably connected to a connecting rod (3815) via a rotating shaft, and the side of the connecting rod (3815) is rotatably connected to the side of the auxiliary cooling unit (383) via a rotating shaft.

6. The combined cooling device for wire and cable processing according to claim 5, characterized in that: The fan assembly (3812) includes a hollow fan shaft (38121), the side of the hollow fan shaft (38121) is connected to a hard tube (38122), the bottom of the hard tube (38122) is connected to an atomizing nozzle (38123), and the side of the hollow fan shaft (38121) located on the side of the atomizing nozzle (38123) is fixedly connected to an air-cooling fan blade (38124).

7. The combined cooling device for wire and cable processing according to claim 6, characterized in that: The top of the fan hollow shaft (38121) is connected to the third water pipe (3813), and the side of the fan hollow shaft (38121) is fixedly connected to the drive shaft of the second motor (3814) through a belt transmission device.

8. The combined cooling device for wire and cable processing according to claim 4, characterized in that: The drying device (4) comprises a heat exchange fan (401), the top of the heat exchange fan (401) is fixedly connected to a fixed air guide plate (402), and the bottom of the heat exchange fan (401) is fixedly connected to the top of the bottom plate bracket (1); The drying device (4) further comprises a heat dissipation base plate (403), the top of the heat dissipation base plate (403) is fixedly connected to a limiting slide bar (404), the side of the limiting slide bar (404) is sleeved with and slidably connected to a connecting plate (405), the top of the connecting plate (405) is fixedly connected to a roller bracket (406), the side of the roller bracket (406) is rotatably connected to a wire roller (407), and the bottom of the connecting plate (405) is fixedly connected to a driven air guide plate (408) adapted to the fixed air guide plate (402).

9. The combined cooling device for wire and cable processing according to claim 8, characterized in that: The side of the heat dissipation base plate (403) is fixedly connected to the side of the cooling bracket (31), and the side of the connecting plate (405) away from the roller bracket (406) is fixedly connected to the side of the connecting bracket (385).