Cooling structure for radiating pipe production

By designing a cooling structure for the heat dissipation pipe of the rotating conveyor roller and the driving motor, the problem of the inability to rotate the outer surface of the heat dissipation pipe is solved, and all-round cooling and water resource recycling are achieved, which improves cooling efficiency and production efficiency.

CN223216547UActive Publication Date: 2025-08-12YIZHENG YONGHUI RADIATING PIPE MFG
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Patent Information

Application Number
CN202422209727.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-10
Publication Date
2025-08-12
Estimated Expiration
2034-09-10

AI Technical Summary

Technical Problem

During the production process of existing heat dissipation pipes, the outer surface of the heat dissipation pipe cannot rotate, resulting in the inability to contact the cooling medium in all directions, and the heat cannot be taken away quickly and effectively, extending the cooling time and reducing production efficiency.

Method used

A cooling structure for the production of heat dissipation pipe is designed, including rotating the installed conveyor roller and driving motor to ensure that the heat dissipation pipe continues to rotate during the transportation process, and achieves all-round and uniform cooling through the annular water pipe and water jet head, and recycle the cooling water, and combines the negative pressure drying structure to achieve rapid drying.

Benefits of technology

The all-round and uniform cooling of the heat dissipation pipe is achieved, the cooling efficiency is improved, the waste of water resources is reduced, and the maintenance process is simplified.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of heat dissipation pipe production, and particularly relates to a heat dissipation pipe production cooling structure which comprises a box body, two rotating shafts are symmetrically and rotationally installed between the two sides of the box body in a penetrating mode, conveying rollers are installed on the outer walls of the rotating shafts, rotating rollers are installed on the outer walls of the rotating shafts, and one end of each rotating shaft is connected with the output end of a driving motor in a matched mode. Limiting plates are installed on the inner wall of the top side of the box body, and supporting rollers are cooperatively installed between the two sides of the box body through connecting shafts. A radiating pipe enters the box body from the feeding port and penetrates through the rotating roller to reach the conveying roller, meanwhile, the conveying motor and the driving motor are started, the driving motor drives the rotating roller to rotate, then the radiating pipe rotates, the limiting plate limits the radiating pipe, meanwhile, under cooperation of the conveying motor, the conveying roller rotates along with the rotating roller, and under auxiliary supporting of the supporting roller, the radiating pipe is conveyed to the box body. According to the scheme, the heat dissipation pipes can continuously rotate in the conveying process, comprehensive cooling operation is achieved, and the cooling efficiency is effectively improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of heat dissipation pipe production, in particular to a heat dissipation pipe production cooling structure. Background Art

[0002] A heat pipe is a tube used to transfer heat and promote heat dissipation. It is usually made of metal and has good thermal conductivity. During the stretching process of the heat pipe, a large amount of heat will be generated. If it is not cooled in time, the performance of the material will change. Therefore, a cooling structure is needed.

[0003] A Chinese patent, CN112284032A, discloses a cooling device for metal pipe processing. The device comprises a main body with a water collection tank fixedly mounted above it. Multiple sets of mounting brackets are fixedly mounted on a metal mesh, each with a conveyor roller fixedly mounted on it. A cooling ring is fixedly mounted between adjacent conveyor rollers, with a connection provided at the top of the cooling ring. A first pump and a second pump are fixedly mounted within the main body. This utility model features high cooling efficiency, high safety, and energy conservation and environmental protection.

[0004] However, the above-mentioned cooling device still has some problems. In actual application, when the heat dissipation pipe is transported, the outer surface of the heat dissipation pipe cannot be rotated and cannot contact the cooling medium in all directions. The heat cannot be taken away quickly and effectively, thereby extending the cooling time and reducing production efficiency. Therefore, a heat dissipation pipe production cooling structure is proposed to address the above problems. Utility Model Content

[0005] In order to make up for the deficiencies of the prior art and solve the problems raised in the background art, the utility model proposes a cooling structure for producing a heat dissipation pipe.

[0006] The technical solution adopted by the utility model to solve its technical problems is as follows: a heat pipe production cooling structure described in the utility model includes a box body, two rotating shafts are symmetrically and rotatably installed between the two sides of the box body, and conveying rollers are installed on the outer walls of the rotating shafts. One end of the rotating shaft is respectively installed with a driving wheel and a driven wheel, and the driving wheel and the driven wheel are connected by a belt. An L-shaped seat is installed on one side of the box body, and a conveying motor is installed inside the L-shaped seat. One end of the rotating shaft is matched with the output end of the conveying motor. Two rotating shafts are symmetrically and rotatably installed on one side of the box body, and rotating rollers are installed on the outer wall of the rotating shaft. A driving motor is installed on the other side of the box body, and one end of the rotating shaft is matched with the output end of the driving motor. A limit plate is installed on the top inner wall of the box body, and the limit plate is located above one of the rotating rollers. Three supporting rollers are equidistantly installed between the two sides of the box body through a connecting shaft. The supporting rollers are located between the two conveying rollers, so that the heat pipe can rotate continuously during the conveying process, ensuring that the cooling water can contact the surface of the heat pipe in an all-round and uniform manner, thereby realizing comprehensive cooling operation and effectively improving the cooling efficiency.

[0007] Preferably, a feed port and a discharge port are respectively provided on both sides of the box body, wherein the rotating roller is installed on one side of the feed port, and a movable door is installed on one side of the box body through a hinge, and a handle is installed on one side of the movable door, which facilitates the entry and exit of the heat dissipation pipe and is also convenient for cleaning and maintenance of the inside of the box body when necessary.

[0008] Preferably, a filter plate is installed at the middle end of the box body, and the filter plate divides the box body into a cooling chamber and a water storage chamber at the upper and lower parts. The conveying roller is installed inside the cooling chamber, which ensures the recycling of cooling water and reduces the waste of water resources.

[0009] Preferably, three annular water pipes are equidistantly installed on the inner side of the box body, six water spray heads are installed on the inner wall of the annular water pipe, a connecting pipe is connected to one side of the water storage chamber, a refrigerator and a pump are sequentially installed on the outer wall of the connecting pipe, one end of the connecting pipe is connected to a delivery pipe, the delivery pipe is installed inside the top side of the box body and is connected to the annular water pipe, so as to achieve all-round and uniform cooling of the surface of the heat dissipation pipe and improve the cooling effect.

[0010] Preferably, an installation cavity is installed at one end of the top side of the box body, the top side of the installation cavity is connected to an air inlet pipe, a negative pressure motor is installed on the top side of the installation cavity, the output end of the negative pressure motor rotates through the interior of the installation cavity and is installed with three fan blades, an electric heating mesh plate is installed on the inner wall of the middle end of the installation cavity, a bent pipe is connected to the outer wall of the bottom end of the installation cavity, one end of the bent pipe is connected to an annular air duct, six air nozzles are installed on the inner wall of the annular air duct, and the annular air duct is installed on the side of the inner wall of the box body close to the discharge port, so as to realize rapid drying of the heat dissipation pipe and facilitate the subsequent collection of the heat dissipation pipe.

[0011] Preferably, a control panel is installed on one side outer wall of the box body, and the control panel is used to control the operation of the electrical components inside the device, thereby realizing centralized control of the electrical components inside the device.

[0012] The utility model is beneficial in that:

[0013] 1. The heat dissipation pipe of the utility model enters the box from the feed port, passes through the rotating roller and reaches the conveying roller. The conveying motor and the drive motor are started at the same time. The drive motor drives the rotating roller to rotate, thereby rotating the heat dissipation pipe. The limit plate plays a certain role in limiting the heat dissipation pipe. At the same time, with the cooperation of the conveying motor, the conveying roller rotates accordingly. With the auxiliary support of the support roller, the conveying roller stably conveys the heat dissipation pipe. This solution enables the heat dissipation pipe to rotate continuously during the conveying process, realizing comprehensive cooling operation and effectively improving cooling efficiency.

[0014] 2. When the pump of the utility model is started, the water in the water storage chamber is extracted through the connecting pipe. After being cooled by the refrigerator, the water enters the delivery pipe and is distributed to each annular water pipe. Finally, water is sprayed to the heat dissipation pipe through the sprinkler head, thereby achieving all-round and uniform cooling of the heat dissipation pipe. The cooled water will pass through the filter plate and flow back to the water storage chamber again, thus realizing the recycling of cooling water and reducing the waste of water resources. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0016] Figure 1 This is a schematic diagram of the structure of the utility model from the middle axis side view;

[0017] Figure 2 Schematic diagram of the main structure inside the box;

[0018] Figure 3It is a schematic diagram of the rear view of the cooling structure;

[0019] Figure 4 It is a structural diagram of the rotary conveying component;

[0020] Figure 5 Schematic diagram of the cooling component structure

[0021] Figure 6 Schematic diagram of the drying component structure.

[0022] In the figure: 1. Box body; 2. Rotating shaft; 3. Conveying roller; 4. Driving wheel; 5. Driven wheel; 6. Belt; 7. L-shaped seat; 8. Conveying motor; 9. Rotating shaft; 10. Rotating roller; 11. Driving motor; 12. Limiting plate; 13. Support roller; 14. Feed port; 15. Discharge port; 16. Movable door; 17. Handle; 18. Filter plate; 19. Annular water pipe; 20. Sprinkler head; 21. Connecting pipe; 22. Refrigerator; 23. Pump; 24. Conveying pipe; 25. Installation cavity; 26. Air inlet pipe; 27. Negative pressure motor; 28. Fan blade; 29. Electric heating grid plate; 30. Bend pipe; 31. Annular air duct; 32. Air nozzle; 33. Control panel. DETAILED DESCRIPTION

[0023] The following will be combined with the accompanying drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described 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.

[0024] See also Figure 1-6As shown, a heat pipe production cooling structure includes a box body 1, two rotating shafts 2 are symmetrically installed between the two sides of the box body 1 for rotation, and conveying rollers 3 are installed on the outer walls of the rotating shafts 2. One end of the rotating shaft 2 is respectively installed with a driving wheel 4 and a driven wheel 5, and the driving wheel 4 and the driven wheel 5 are connected by a belt 6. An L-shaped seat 7 is installed on one side of the box body 1, and a conveying motor 8 is installed inside the L-shaped seat 7. One end of the rotating shaft 2 is cooperated with the output end of the conveying motor 8. Two rotating shafts 9 are symmetrically installed on one side of the box body 1 for rotation, and a rotating roller 10 is installed on the outer wall of the rotating shaft 9. , a driving motor 11 is installed on the other side of the box body 1, one end of the rotating shaft 9 is connected to the output end of the driving motor 11, a limit plate 12 is installed on the inner wall of the top side of the box body 1, and the limit plate 12 is located above one of the rotating rollers 10. Three supporting rollers 13 are equidistantly installed between the two sides of the box body 1 through a connecting shaft. A feed port 14 and a discharge port 15 are respectively provided on both sides of the box body 1. A movable door 16 is installed on one side of the box body 1 through a hinge. A handle 17 is installed on one side of the movable door 16. A control panel 33 is installed on the outer wall of one side of the box body 1; when working, in actual operation, During the application, when the heat dissipation pipe is transported, the outer surface of the heat dissipation pipe cannot be rotated, and cannot contact the cooling medium in all directions. The heat cannot be taken away quickly and effectively, thereby prolonging the cooling time and reducing the production efficiency. First, the heat dissipation pipe enters the box body 1 from the feed port 14, and then passes through the rotating roller 10 to the conveying roller 3. At the same time, the conveying motor 8 and the driving motor 11 are started. The driving motor 11 drives the rotating roller 10 to rotate, thereby enabling the heat dissipation pipe to rotate. The limiting plate 12 plays a certain limiting role on the heat dissipation pipe, ensuring that the heat dissipation pipe enters the subsequent conveying link in the correct position and posture, and at the same time, the output end of the conveying motor 8 It drives the rotating shaft 2 connected to it to rotate, and the driving wheel 4 at one end of the rotating shaft 2 drives the driven wheel 5 to rotate through the belt 6, so that the two rotating shafts 2 rotate synchronously, so that the conveying roller 3 rotates accordingly. With the auxiliary support of the supporting roller 13, the conveying roller 3 stably conveys the heat dissipation tube, so that it moves from the feed port 14 to the discharge port 15. Finally, the movable door 16 can be opened through the handle 17 to maintain or clean the device. This solution enables the heat dissipation tube to rotate continuously during the conveying process, ensuring that the cooling water can contact the surface of the heat dissipation tube in an all-round and uniform manner, thereby realizing comprehensive cooling operation and effectively improving the cooling efficiency.

[0025] See also Figure 1-6 As shown, a filter plate 18 is installed at the middle end of the box body 1, and the filter plate 18 divides the box body 1 into a cooling chamber and a water storage chamber at the top and bottom, wherein the conveying roller 3 is installed inside the cooling chamber;

[0026] Three annular water pipes 19 are equidistantly installed on the inner side of the box body 1, and six water spray heads 20 are installed on the inner wall of the annular water pipe 19. A connecting pipe 21 is connected to one side of the water storage chamber, and a refrigerator 22 and a pump 23 are sequentially installed on the outer wall of the connecting pipe 21. One end of the connecting pipe 21 is connected to a delivery pipe 24, which is installed inside the top side of the box body 1 and is connected to the annular water pipe 19.

[0027] An installation cavity 25 is installed at one end of the top side of the box body 1, and an air inlet pipe 26 is connected to the top side of the installation cavity 25. A negative pressure motor 27 is installed on the top side of the installation cavity 25, and the output end of the negative pressure motor 27 rotates to penetrate the interior of the installation cavity 25 and is installed with three fan blades 28. An electric heating mesh plate 29 is installed on the inner wall of the middle end of the installation cavity 25, and a bend pipe 30 is connected to the outer wall of the bottom end of the installation cavity 25. One end of the bend pipe 30 is connected to an annular air duct 31, and six air nozzles 32 are installed on the inner wall of the annular air duct 31; when working, a large amount of heat will be generated during the stretching process of the heat dissipation pipe. If it is not cooled in time, the performance of the material will change. Therefore, a cooling structure is needed. During the transportation process, the pump 23 is started to extract the water in the water storage cavity through the connecting pipe 21. The water passes through the system After cooling by the cooler 22, the water enters the delivery pipe 24 and is distributed to each annular water pipe 19. Finally, water is sprayed to the heat dissipation pipe through the sprinkler head 20, thereby achieving all-round and uniform cooling of the heat dissipation pipe. The cooled water will pass through the filter plate 18 and flow back to the water storage chamber again, thereby achieving the recycling of cooling water and reducing the waste of water resources. After cooling, the heat dissipation pipe continues to be transported toward the discharge port 15. When it approaches the discharge port 15, the negative pressure motor 27 starts, driving the fan blades 28 to rotate, generating negative pressure in the installation cavity 25, and the outside air enters the installation cavity 25 from the air inlet pipe 26. After being heated by the electric heating mesh plate 29, the air enters the annular air duct 31 through the bend 30, and is then blown out from the air nozzle 32, quickly drying the heat dissipation pipe for subsequent collection. The specific model of the cooler 22 is TEC1-12703.

[0028] Working principle: First, the heat dissipation pipe enters the box body 1 from the feed inlet 14, and then passes through the rotating roller 10 to the conveying roller 3, and at the same time, the conveying motor 8 and the driving motor 11 are started. The driving motor 11 drives the rotating roller 10 to rotate, thereby enabling the heat dissipation pipe to rotate, wherein the limit plate 12 plays a certain limiting role on the heat dissipation pipe, ensuring that the heat dissipation pipe enters the subsequent conveying link in the correct position and posture. At the same time, the output end of the conveying motor 8 drives the rotating shaft 2 connected thereto to rotate, and the driving wheel 4 at one end of the rotating shaft 2 drives the driven wheel 5 to rotate through the belt 6, thereby making the two rotating shafts 2 rotate synchronously, so that the conveying roller 3 rotates accordingly, and with the auxiliary support of the supporting roller 13, the conveying roller 3 stably conveys the heat dissipation pipe, so that it moves from the feed inlet 14 to the discharge port 15. This scheme enables the heat dissipation pipe to rotate continuously during the conveying process, ensuring that the cooling water can contact the surface of the heat dissipation pipe in an all-round and uniform manner, thereby realizing comprehensive cooling operation and effectively improving the cooling efficiency;

[0029] During the transportation process, the pump 23 is started to extract the water in the water storage chamber through the connecting pipe 21. After the water is cooled by the refrigerator 22, it enters the delivery pipe 24 and is distributed to each annular water pipe 19. Finally, water is sprayed to the heat dissipation pipe through the sprinkler head 20, so as to achieve all-round and uniform cooling of the heat dissipation pipe. The cooled water will pass through the filter plate 18 and flow back to the water storage chamber again, thus realizing the recycling of cooling water and reducing the waste of water resources. After cooling, the heat dissipation pipe continues to be transported toward the discharge port 15. When it approaches the discharge port 15, the negative pressure motor 27 is started, driving the fan blades 28 to rotate, generating negative pressure in the installation chamber 25, and the outside air enters the installation chamber 25 from the air inlet pipe 26. After the air is heated by the electric heating mesh plate 29, it enters the annular air duct 31 through the bend pipe 30 and is blown out from the air nozzle 32, quickly drying the heat dissipation pipe for subsequent collection.

[0030] Finally, the movable door 16 can be opened by the handle 17 to perform maintenance or cleaning on the device.

[0031] Throughout this specification, references to terms such as "one embodiment," "example," or "specific example" indicate that a specific feature, structure, material, or characteristic described in conjunction with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, schematic representations of these terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.

[0032] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and improvements may be made to the present invention without departing from the spirit and scope of the present invention, and such changes and improvements fall within the scope of the present invention as claimed.

Claims

1. A cooling structure for producing a heat pipe, characterized by: The invention comprises a box body (1), two rotating shafts (2) are symmetrically and rotatably installed between the two sides of the box body (1), a conveying roller (3) is installed on the outer wall of each rotating shaft (2), a driving wheel (4) and a driven wheel (5) are respectively installed at one end of the rotating shaft (2), and the driving wheel (4) and the driven wheel (5) are connected by a belt (6), an L-shaped seat (7) is installed on one side of the box body (1), a conveying motor (8) is installed inside the L-shaped seat (7), one end of the rotating shaft (2) is connected to the output end of the conveying motor (8), and the box body (1) Two rotating shafts (9) are symmetrically mounted on one side of the box body (1), a rotating roller (10) is mounted on the outer wall of the rotating shaft (9), a driving motor (11) is mounted on the other side of the box body (1), one end of the rotating shaft (9) is connected to the output end of the driving motor (11), a limiting plate (12) is mounted on the top inner wall of the box body (1), the limiting plate (12) is located above one of the rotating rollers (10), three supporting rollers (13) are equidistantly mounted between the two sides of the box body (1) through a connecting shaft, and the supporting roller (13) is located between the two conveying rollers (3).

2. The cooling structure for producing a heat pipe according to claim 1, characterized in that: A feed port (14) and a discharge port (15) are respectively provided on both sides of the box body (1), wherein the rotating roller (10) is installed on one side of the feed port (14); a movable door (16) is installed on one side of the box body (1) through a hinge, and a handle (17) is installed on one side of the movable door (16).

3. The cooling structure for producing a heat pipe according to claim 2, characterized in that: A filter plate (18) is installed at the middle end of the box body (1), and the filter plate (18) divides the box body (1) into a cooling chamber and a water storage chamber at the top and bottom, wherein the conveying roller (3) is installed inside the cooling chamber.

4. The cooling structure for producing a heat pipe according to claim 3, characterized in that: Three annular water pipes (19) are equidistantly installed on the inner side of the box body (1), and six water spray heads (20) are installed on the inner wall of the annular water pipe (19). One side of the water storage chamber is connected to a connecting pipe (21), and a refrigerator (22) and a pump (23) are sequentially installed on the outer wall of the connecting pipe (21). One end of the connecting pipe (21) is connected to a delivery pipe (24), and the delivery pipe (24) is installed inside the top side of the box body (1) and is connected to the annular water pipe (19).

5. The cooling structure for producing a heat pipe according to claim 4, characterized in that: A mounting cavity (25) is installed at one end of the top side of the box body (1), an air inlet pipe (26) is connected to the top side of the mounting cavity (25), a negative pressure motor (27) is installed on the top side of the mounting cavity (25), the output end of the negative pressure motor (27) rotates through the interior of the mounting cavity (25) and is installed with three fan blades (28), an electric heating mesh plate (29) is installed on the inner wall of the middle end of the mounting cavity (25), a bend (30) is connected to the outer wall of the bottom end of the mounting cavity (25), one end of the bend (30) is connected to an annular air duct (31), six air nozzles (32) are installed on the inner wall of the annular air duct (31), and the annular air duct (31) is installed on the inner wall of the box body (1) near the discharge port (15).

6. The cooling structure for producing a heat pipe according to claim 5, characterized in that: A control panel (33) is installed on one side outer wall of the box body (1), and the control panel (33) is used to control the operation of electrical components inside the device.

Citation Information

Patent Citations

  • Metal pipe machining cooling device

    CN112284032A