A heat pipe orifice shaping assembly and high-speed rotary shrinking machine necking device

By automating the lifting and feeding mechanisms and adjusting the motor-driven sliding frame, the problems of low efficiency and specification compatibility in manual feeding in heat pipe nozzle shaping equipment are solved, achieving efficient automated processing and heat dissipation.

CN122125128APending Publication Date: 2026-06-02GUANGDONG CONGZHONG THERMAL TECH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
GUANGDONG CONGZHONG THERMAL TECH CO LTD
Filing Date
2026-04-23
Publication Date
2026-06-02

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Abstract

This invention belongs to the field of heat pipe processing, specifically a heat pipe nozzle shaping component and a high-speed spinning shrinking machine. Addressing the problem of labor-intensive manual placement of heat pipes, this invention proposes the following solution: A frame is included, with a feeding mechanism and a receiving box mounted on its surface for placing unprocessed heat pipes and collecting shaped heat pipes, respectively. The feeding mechanism includes a feeding box bolted to the top of the frame, with an inclined bottom and through holes on both the bottom and the frame surface; a lifting mechanism positioned below the through holes to lift one of the heat pipes; and a feeding mechanism. This invention avoids errors caused by manual operation, effectively improves feeding efficiency, adapts to batch processing needs, and can process heat pipes of different lengths, enhancing the flexibility of equipment use.
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Description

Technical Field

[0001] This invention relates to the field of heat pipe processing technology, and in particular to a heat pipe nozzle shaping component and a high-speed spinning shrinking machine for nozzle reduction. Background Technology

[0002] Heat pipes are widely used in electronic devices, industrial heat dissipation systems and other fields. In the production and processing of heat pipes, the shaping of the pipe ends is an important process to ensure their subsequent assembly and heat dissipation performance. At present, the industry mostly uses special equipment to shape the pipe ends of heat pipes to meet the installation requirements of different scenarios. These devices usually need to complete a series of operations such as conveying, fixing, shaping and collecting heat pipes to ensure the continuity of the processing flow.

[0003] Existing equipment for shaping the nozzles of heat-conducting pipes has many problems in practical use. For example, the feeding process often requires manual assistance to place the heat-conducting pipes, which is not only labor-intensive but also prone to causing disordered arrangement of the heat-conducting pipes due to operational errors, affecting processing efficiency. At the same time, most equipment can only adapt to heat-conducting pipes of a single length specification. When changing the processing specification, multiple parts need to be disassembled and replaced, which is cumbersome and increases processing costs and time. In order to address the above problems, this invention proposes a heat-conducting pipe nozzle shaping component and a high-speed spin forming machine nozzle reducing device. Summary of the Invention

[0004] This invention provides a heat pipe nozzle shaping component and a high-speed spin shrinking machine for nozzle shrinking, which solves the problem of the drawback of manual placement of heat pipes in the prior art, which is not only labor-intensive.

[0005] This invention provides the following technical solution: A heat-conducting pipe nozzle shaping assembly includes: a frame, on the surface of which is mounted a feeding mechanism and a receiving box for placing unprocessed heat-conducting pipes and collecting shaped heat-conducting pipes, respectively. The feeding mechanism includes a feeding box, which is fixed to the top of the frame by bolts. The bottom of the feeding box is inclined and both the bottom and the surface of the frame are provided with through holes. A lifting mechanism is provided below the through hole to lift one of the heat pipes; A feeding mechanism is provided between a feeding box and a receiving box for conveying the heat-conducting pipe; A fixing mechanism is provided on the top of the frame. The heat pipe is fed to the fixing mechanism by the feeding mechanism and then clamped and fixed by the fixing mechanism.

[0006] Furthermore, the lifting mechanism includes a base frame fixed to the inner wall of the top of the frame. A first cylinder is fixedly connected to one side of the base frame. A mounting plate is fixedly connected to one end of the piston rod of the first cylinder. A horizontal plate is fixed to one side of the mounting plate by bolts. Multiple push rods are fixed to one side of the horizontal plate by bolts. The top of each push rod is provided with a slot that matches the heat conduction pipe. The push rod rises through the through hole and lifts one of the heat conduction pipes.

[0007] Furthermore, two guide rods are fixedly connected between the inner walls of the two sides of the feeding box, and a positioning plate is slidably connected between the two guide rods to limit the heat conduction tube. A through-hole set screw is threaded to the top of the positioning plate, and the set screw abuts against the top of the feeding box.

[0008] Furthermore, the feeding mechanism includes a second cylinder fixed to the inner wall of the top of the frame. The piston rod of the second cylinder is horizontally arranged and a third cylinder is fixedly installed at one end. The piston rod of the third cylinder is vertically arranged and two fixed rods are fixedly connected to one end. The ends of the two fixed rods are fixed together, and a first slider is slidably connected between the two fixed rods. A feeding plate is fixedly connected to one end of each fixed rod and one side of the first slider. The surface of the feeding plate is horizontally arranged and has multiple evenly arranged first grooves for supporting the heat conduction pipe.

[0009] Furthermore, the feeding mechanism also includes a fixed frame fixed to the surface of the frame. The fixed frame is n-shaped, and a support block is fixedly connected to the top of the fixed frame. A sliding frame slides on the surface of the fixed frame via a guide rail. A guide plate is fixed to one side of the sliding frame and one side of the support block by bolts. The surface of the guide plate is provided with multiple evenly arranged second grooves, which cooperate with the first grooves. The surface of the guide plate is provided with a first inclined surface, which faces the receiving box to guide the processed heat-conducting pipe. A guide block is fixedly connected to the top of the sliding frame, and a second inclined surface is provided on one side of the guide block to guide the heat-conducting pipe.

[0010] Furthermore, a first motor is fixedly connected to one side of the fixed frame, and a screw is fixed to one end of the output shaft of the first motor through a coupling. One end of the screw is rotatably connected to the fixed frame, and the screw thread passes through the sliding frame.

[0011] Furthermore, a second slider is slidably connected between the two fixed rods, and the second slider is fixed to the first slider. A column is fixed to the surface of the second slider, and two drive rods are fixedly connected to the top of the sliding frame. The column is located between the two drive rods.

[0012] Furthermore, the fixing mechanism includes a bracket and a lower clamping block. The lower clamping block is fixed to the top of the support block, the bracket is fixed to the surface of the frame, and a fourth cylinder is fixedly connected to the inner wall of the top of the bracket. One end of the piston rod of the fourth cylinder is fixedly connected to an upper clamping block, which is located above the lower clamping block.

[0013] The high-speed spinning mill necking equipment includes a heat-conducting pipe neck shaping component, a fifth cylinder, and a sliding seat that slides on the surface of the frame via a guide rail. A second motor is fixedly connected to the top of the sliding seat, and a shaping head is fixedly connected to one end of the output shaft of the second motor. The fifth cylinder is fixedly installed on one side of the frame, and one end of the piston rod of the fifth cylinder is fixed to the sliding seat.

[0014] Furthermore, a fixed cylinder is fixedly connected to the surface of the frame, and a through push-pull rod is slidably connected to one end of the fixed cylinder. A piston is fixedly connected to one end of the push-pull rod, and the piston slides inside the fixed cylinder. The push-pull rod is fixed to a sliding seat, and a second air outlet pipe is fixedly connected to the surface of the sliding seat. One end of the second air outlet pipe faces the shaping head, and a flexible hose is fixedly connected between the second air outlet pipe and the fixed cylinder. An air outlet box is fixedly connected to the bottom inner wall of the receiving box, and multiple air outlet holes are provided on the top of the air outlet box. A first air outlet pipe is fixedly connected between the air outlet box and the fixed cylinder, and the first air outlet pipe and the second air outlet pipe are located on both sides of the piston, respectively.

[0015] It should be understood that the above general description and the following detailed description are merely exemplary and do not limit the invention.

[0016] In this invention, by using the lifting mechanism and the feeding mechanism in combination, the lifting mechanism's top rod precisely lifts a single heat-conducting pipe with the help of the slot, and the feeding plate moves in a U-shape to receive and transport the heat-conducting pipe. There is no need for manual feeding, realizing the automated flow of the heat-conducting pipe from the feeding mechanism to the fixing mechanism, avoiding errors caused by manual operation, effectively improving feeding efficiency, and adapting to batch processing needs.

[0017] In this invention, by using the positioning plate, the first motor, the sliding frame, and the drive rod in combination, the positioning plate can be adjusted by loosening the set screw to change the limiting distance of the heat conduction tube. When the first motor drives the sliding frame to move, the drive rod pushes the column to adjust the position of the feeding plate and at the same time changes the spacing of the movable guide plate. It can adapt to the processing of heat conduction tubes of different lengths and specifications without replacing the entire set of equipment, thus enhancing the flexibility of equipment use. In this invention, by using the fixed cylinder, piston, second air outlet pipe, and air outlet box in combination, the sliding seat moves and drives the piston to slide inside the fixed cylinder, so that air is blown through the second air outlet pipe to the molding head for cooling and through the air outlet box to the molding end of the heat conduction pipe. This not only avoids the molding head from being worn due to high temperature and the high temperature affecting the molding quality, but also accelerates the heat dissipation of the heat conduction pipe and solves the problem of the heat conduction pipe being inconvenient to collect after molding. Attached Figure Description

[0018] Figure 1 This is a first-view three-dimensional structural schematic diagram of a heat-conducting pipe nozzle shaping component and a high-speed spinning machine nozzle reduction device provided in an embodiment of the present invention. Figure 2 This is a second-view three-dimensional structural schematic diagram of a heat-conducting pipe nozzle shaping component and a high-speed spinning machine nozzle-shrinking device provided in an embodiment of the present invention. Figure 3 This is a schematic diagram of the lifting mechanism installation structure of a heat-conducting pipe nozzle shaping component and a high-speed spinning machine nozzle reducing equipment provided in an embodiment of the present invention; Figure 4 This is a schematic diagram of the feeding mechanism structure of a heat-conducting pipe nozzle shaping component and a high-speed spinning machine nozzle reduction device provided in an embodiment of the present invention. Figure 5 This is a schematic diagram of the guide plate installation structure of a heat-conducting pipe nozzle shaping component and a high-speed spinning mill nozzle reduction device provided in an embodiment of the present invention; Figure 6 This is a schematic diagram of the shaping head installation structure of a heat-conducting pipe nozzle shaping component and a high-speed spinning machine nozzle reduction device provided in an embodiment of the present invention.

[0019] Figure label: 1. Frame; 2. Receiving box; 3. Discharging box; 4. Lifting mechanism; 5. Feeding mechanism; 6. Fixing mechanism; 7. Base frame; 8. First cylinder; 9. Mounting plate; 10. Horizontal plate; 11. Push rod; 12. Groove; 13. Guide rod; 14. Positioning plate; 15. Push screw; 17. Second cylinder; 18. Third cylinder; 19. Fixing rod; 20. Feeding plate; 21. First slider; 22. Second slider; 23. Column; 24. Fixing frame; 25. 1. First motor; 26. Screw; 27. Sliding frame; 28. Guide block; 29. ​​Guide plate; 30. Support block; 31. Lower clamping block; 32. Drive rod; 33. Bracket; 34. Fourth cylinder; 35. Upper clamping block; 36. Sliding seat; 37. Second motor; 38. Shaping head; 39. Fifth cylinder; 40. Fixed cylinder; 41. Piston; 42. Push-pull rod; 43. Hose; 44. First air outlet pipe; 45. Second air outlet pipe; 46. Air outlet box. Detailed Implementation

[0020] The embodiments of the present invention will now be described with reference to the accompanying drawings.

[0021] In the description of the embodiments of the present invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "connection" and "installation" should be interpreted broadly. For example, "connection" can be a detachable connection or a non-detachable connection; it can be a direct connection or an indirect connection through an intermediate medium. Furthermore, "connection" can be a direct connection or an indirect connection through an intermediate medium. "Fixed" means that the devices are connected to each other and their relative positional relationship remains unchanged after the connection. The directional terms mentioned in the embodiments of the present invention, such as "inner," "outer," "top," and "bottom," are only for reference to the directions in the accompanying drawings. Therefore, the directional terms used are for better and clearer explanation and understanding of the embodiments of the present invention, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on the embodiments of the present invention.

[0022] References to "one embodiment" or "some embodiments" as used in this specification mean that a particular feature, structure, or characteristic described in connection with that embodiment is included in one or more embodiments of the invention. Therefore, the phrases "in one embodiment," "in some embodiments," "in other embodiments," "in still other embodiments," etc., appearing in different parts of this specification do not necessarily refer to the same embodiment, but rather mean "one or more, but not all, embodiments," unless otherwise specifically emphasized. The terms "comprising," "including," "having," and variations thereof mean "including, but not limited to," unless otherwise specifically emphasized. Example 1

[0023] Reference Figures 1-6 A heat-conducting pipe nozzle shaping assembly includes a frame 1. The surface of the frame 1 is equipped with a feeding mechanism and a receiving box 2 for placing unprocessed heat-conducting pipes and collecting shaped heat-conducting pipes, respectively. The feeding mechanism and the receiving box 2 are located at both ends of the surface of the frame 1, forming the start and end points of the processing flow, ensuring that the heat-conducting pipes flow in an orderly manner during the processing. The feeding mechanism includes a feeding box 3, which is fixed to the top of the frame 1 by bolts. The bottom of the feeding box 3 is inclined and has through holes on both the bottom and the surface of the frame 1. The inclined bottom of the feeding box 3 can be moved naturally to the bottom by the weight of the heat pipe itself. The two through holes are square, consistent and aligned vertically, providing a channel for the heat pipe to be lifted later. Lifting mechanism 4 is located below the through hole and is used to lift one of the heat conduction pipes for feeding. The feeding mechanism 5 is set between the feeding box 3 and the receiving box 2 to transport the heat-conducting pipe; The fixing mechanism 6 is located on the top of the frame 1. The heat conduction pipe is transported to the fixing mechanism 6 by the feeding mechanism 5 and then clamped and fixed by the fixing mechanism 6.

[0024] In this invention, the lifting mechanism 4 includes a base frame 7 fixed to the inner wall of the top of the frame 1. A first cylinder 8 is fixedly connected to one side of the base frame 7. A mounting plate 9 is fixedly connected to one end of the piston rod of the first cylinder 8. A horizontal plate 10 is fixed to one side of the mounting plate 9 by bolts. A plurality of push rods 11 are fixed to one side of the horizontal plate 10 by bolts. The top of each push rod 11 is provided with a slot 12 that matches the heat conduction pipe. The push rod 11 rises through the through hole and lifts one of the heat conduction pipes, activating the first cylinder 8. The first cylinder 8 drives the mounting plate 9 to move upward, which in turn drives the push rod 11 to move upward, passing through the through hole and lifting the heat conduction pipe located on the through hole upward. Example 2

[0025] Reference Figures 1-6 An improved heat pipe orifice shaping component is provided based on Example 1.

[0026] In this invention, two guide rods 13 are fixedly connected between the inner walls of the two sides of the feeding box 3. A positioning plate 14 is slidably connected between the two guide rods 13 to limit the heat conduction tube. A through-hole set screw 15 is threaded to the top of the positioning plate 14. The set screw 15 abuts against the top of the feeding box 3. The heat conduction tube can be limited by the positioning plate. After the set screw 15 is released, the positioning plate 14 can be moved, thereby changing the limiting distance of the heat conduction tube, making it flexible to use.

[0027] In particular, the feeding mechanism 5 includes a second cylinder 17 fixed to the inner wall of the top of the frame 1. The piston rod of the second cylinder 17 is horizontally arranged and a third cylinder 18 is fixedly installed at one end. The piston rod of the third cylinder 18 is vertically arranged and two fixed rods 19 are fixedly connected at one end. The ends of the two fixed rods 19 are fixed together, and a first slider 21 is slidably connected between the two fixed rods 19. A feeding plate 20 is fixedly connected to one end of the fixed rods 19 and one side of the first slider 21. The surface of the feeding plate 20 is horizontally arranged and has multiple evenly arranged first grooves for supporting the heat conduction pipe. The piston rod of the third cylinder 18 retracts, causing the feeding plate 20 to descend. Then the second cylinder 17 is activated, causing the end of the feeding plate 20 to move below the heat conduction pipe. The third cylinder 18 is activated, pushing the heat conduction pipe upward. The second cylinder 17 is reset, and then the third cylinder 18 descends. This process is repeated to make the feeding plate 20 move in a U-shape, thereby cyclically delivering the heat conduction pipe.

[0028] It should be noted that the feeding mechanism 5 also includes a fixed frame 24 fixed to the surface of the frame 1. The fixed frame 24 is n-shaped. A support block 30 is fixedly connected to the top of the fixed frame 24. A sliding frame 27 slides on the surface of the fixed frame 24 via a guide rail. A guide plate 29 is fixed to one side of the sliding frame 27 and one side of the support block 30 by bolts. A plurality of evenly arranged second grooves are opened on the surface of the guide plate 29. The second grooves cooperate with the first grooves. A first inclined surface is provided on the surface of the guide plate 29. The first inclined surface faces the receiving box 2 to guide the processed heat-conducting pipe. As the feeding plate 20 moves, the heat-conducting pipe can enter the receiving box 2 along the first inclined surface at one end of the guide plate 29 for easy collection. A guide block 28 is fixedly connected to the top of the sliding frame 27. A second inclined surface is provided on one side of the guide block 28 to guide the heat-conducting pipe. When the heat-conducting pipe moves, it can move along the second inclined surface to keep each heat-conducting pipe in the same position for the narrowing operation, thereby improving the quality of the finished product.

[0029] In this invention, a first motor 25 is fixedly connected to one side of the fixed frame 24. One end of the output shaft of the first motor 25 is fixed to a screw 26 via a coupling. One end of the screw 26 is rotatably connected to the fixed frame 24. The screw 26 is threaded through the sliding frame 27. A second slider 22 is slidably connected between two fixed rods 19. The second slider 22 is fixed to the first slider 21. A column 23 is fixed to the surface of the second slider 22. Two drive rods 32 are fixedly connected to the top of the sliding frame 27. The column 23 is located between the two drive rods 32. When the first motor 25 is started, the first motor 25 drives the sliding frame 27 to move. The sliding frame 27 drives the guide plate 29 on one side to move. The sliding frame 27 also pushes the column 23 to move via the drive rods 32, thereby driving the second slider 22 and the first slider 21 to move, changing the movement of the feed plate 20 on one side, and thus adapting to heat pipes of different lengths.

[0030] In particular, the fixing mechanism 6 includes a bracket 33 and a lower clamping block 31. The lower clamping block 31 is fixed to the top of the support block 30, and the bracket 33 is fixed to the surface of the frame 1. A fourth cylinder 34 is fixedly connected to the inner wall of the top of the bracket 33. One end of the piston rod of the fourth cylinder 34 is fixedly connected to an upper clamping block 35. The upper clamping block 35 is located above the lower clamping block 31. When the heat pipe is sent to the upper clamping block 31, the fourth cylinder 34 is activated to drive the upper clamping block 35 to move downward, thereby clamping the heat pipe.

[0031] The present invention also proposes a high-speed spin forming machine, including a heat-conducting pipe nozzle shaping assembly, a fifth cylinder 39, and a sliding seat 36 that slides on the surface of the frame 1 via a guide rail. A second motor 37 is fixedly connected to the top of the sliding seat 36, and a shaping head 38 is fixedly connected to one end of the output shaft of the second motor 37. The fifth cylinder 39 is fixedly installed on one side of the frame 1, and one end of the piston rod of the fifth cylinder 39 is fixed to the sliding seat 36. When the second motor 37 is started, it drives the shaping head 38 to rotate. Then, the fifth cylinder 39 is started, which drives the sliding seat 36 to move, thereby causing the shaping head 38 to contact the heat-conducting pipe. As the shaping head 38 moves, the end of the heat-conducting pipe is inserted into the shaping head 38, thereby completing the shaping.

[0032] Specifically, a fixed cylinder 40 is fixedly connected to the surface of the frame 1. A through push-pull rod 42 is slidably connected to one end of the fixed cylinder 40. A piston 41 is fixedly connected to one end of the push-pull rod 42. The piston 41 slides inside the fixed cylinder 40. The push-pull rod 42 is fixed to the sliding seat 36. A second air outlet pipe 45 is fixedly connected to the surface of the sliding seat 36. One end of the second air outlet pipe 45 faces the forming head 38. A flexible hose 43 is fixedly connected between the second air outlet pipe 45 and the fixed cylinder 40. An air outlet box 46 is fixedly connected to the bottom inner wall of the receiving box 2. Multiple air outlet holes are provided on the top of the air outlet box 46. The air outlet box 46 and the fixed cylinder 40 are connected... A first air outlet pipe 44 is fixedly connected to the piston 41. The first air outlet pipe 44 and the second air outlet pipe 45 are located on both sides of the piston 41. When the sliding seat 36 moves, the piston 41 is also driven to move by the push-pull rod 42. When the piston 41 moves to one end, the air in the fixed cylinder 40 is blown to the shaping head 38 through the hose 43 and the second air outlet pipe 45, thereby cooling it and reducing the heat generated during friction. When the piston 41 moves to the other end, the air is blown to the air outlet box 46 through the first air outlet pipe 44, and blown to the end of the heat pipe being shaped through the air outlet box 46, increasing the airflow effect, facilitating heat dissipation of the heat pipe and making it easier to collect.

[0033] The working principle and usage process of this technical solution are as follows: In this application, when in use, the heat-conducting pipe is placed in the feeding box 3, and then the first cylinder 8 is started. The first cylinder 8 drives the mounting plate 9 to move upward, which in turn drives the push rod 11 to move upward, passing through the through hole and lifting the heat-conducting pipe located on the through hole upward. At this time, the piston rod of the third cylinder 18 retracts, causing the feeding plate 20 to descend. Then the second cylinder 17 is started, causing the end of the feeding plate 20 to move below the heat-conducting pipe. The third cylinder 18 is started to lift the heat-conducting pipe upward. The second cylinder 17 is reset, and then the third cylinder 18 descends. This process is repeated to make the feeding plate 20 move in a U-shape, thereby cyclically delivering the heat-conducting pipe. When the heat pipe is delivered above the lower clamping block 31, the fourth cylinder 34 starts and drives the upper clamping block 35 to move downward, thereby clamping the heat pipe. Then the second motor 37 starts and drives the shaping head 38 to rotate. Subsequently, the fifth cylinder 39 starts and drives the sliding seat 36 to move, thereby causing the shaping head 38 to contact the heat pipe. As the shaping head 38 moves, the end of the heat pipe is inserted into the shaping head 38, thereby completing the shaping. Then the shaping head 38 is reset. After shaping, as the feeding plate 20 moves, the heat pipe enters the receiving box 2 along the guide plate 29. When the sliding seat 36 moves, the piston 41 is also driven to move by the push-pull rod 42. When the piston 41 moves to one end, the air in the fixed cylinder 40 is blown to the shaping head 38 through the hose 43 and the second air outlet pipe 45, thereby cooling it and reducing the heat generated during friction. When the piston 41 moves to the other end, the air is blown to the air outlet box 46 through the first air outlet pipe 44, and blown to the end of the heat pipe being shaped through the air outlet box 46, increasing the airflow effect, facilitating heat dissipation of the heat pipe and making it easier to collect. After loosening the set screw 15, the positioning plate 14 can be moved, thereby changing the limiting distance of the heat pipe. At the same time, the first motor 25 is started, which drives the sliding frame 27 to move. The sliding frame 27 drives the guide plate 29 on one side to move. The sliding frame 27 also pushes the column 23 to move through the drive rod 32, thereby driving the second slider 22 and the first slider 21 to move, changing the movement of the feed plate 20 on one side, thus adapting to heat pipes of different lengths and making it flexible to use.

[0034] The above are merely specific embodiments of the present invention, but the scope of protection of the present invention is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in the present invention should be included within the scope of protection of the present invention. In the absence of conflict, the embodiments and features of the embodiments of the present invention can be combined with each other. Therefore, the scope of protection of the present invention should be determined by the scope of the claims.

Claims

1. A heat pipe orifice shaping assembly, characterized in that, include: The frame (1) is equipped with a feeding mechanism and a receiving box (2) on its surface, which are used to place unprocessed heat-conducting pipes and collect the shaped heat-conducting pipes, respectively. The feeding mechanism includes a feeding box (3), which is fixed to the top of the frame (1) by bolts. The bottom of the feeding box (3) is inclined and both the bottom and the surface of the frame (1) are provided with through holes. A lifting mechanism (4) is provided below the through hole to lift one of the heat pipes; The feeding mechanism (5) is arranged between the feeding box (3) and the receiving box (2) for conveying the heat-conducting pipe; The fixing mechanism (6) is located on the top of the frame (1). The heat pipe is fed to the fixing mechanism (6) by the feeding mechanism (5) and then the heat pipe is clamped and fixed by the fixing mechanism (6).

2. The heat-conducting pipe orifice shaping assembly according to claim 1, characterized in that, The lifting mechanism (4) includes a base frame (7) fixed to the inner wall of the top of the frame (1). A first cylinder (8) is fixedly connected to one side of the base frame (7). A mounting plate (9) is fixedly connected to one end of the piston rod of the first cylinder (8). A horizontal plate (10) is fixed to one side of the mounting plate (9) by bolts. A plurality of top rods (11) are fixed to one side of the horizontal plate (10) by bolts. The top of each top rod (11) is provided with a slot (12) that matches the heat pipe. The top rod (11) rises through the through hole and lifts one of the heat pipes.

3. The heat-conducting pipe orifice shaping assembly according to claim 2, characterized in that, Two guide rods (13) are fixedly connected between the inner walls of the two sides of the feeding box (3). A positioning plate (14) is slidably connected between the two guide rods (13) to limit the heat conduction tube. A through top screw (15) is threaded to the top of the positioning plate (14). The top screw (15) abuts against the top of the feeding box (3).

4. The heat-conducting pipe orifice shaping assembly according to claim 1, characterized in that, The feeding mechanism (5) includes a second cylinder (17) fixed to the inner wall of the top of the frame (1). The piston rod of the second cylinder (17) is horizontally arranged and a third cylinder (18) is fixedly installed at one end. The piston rod of the third cylinder (18) is vertically arranged and two fixed rods (19) are fixedly connected at one end. The ends of the two fixed rods (19) are fixed to each other. A first slider (21) is slidably connected between the two fixed rods (19). A feeding plate (20) is fixedly connected to one side of the first slider (21) between the ends of the fixed rods (19). The surface of the feeding plate (20) is horizontally arranged and has multiple uniformly arranged first grooves for supporting the heat conduction pipe.

5. The heat-conducting pipe orifice shaping assembly according to claim 4, characterized in that, The feeding mechanism (5) also includes a fixed frame (24) fixed on the surface of the frame (1). The fixed frame (24) is n-shaped. A support block (30) is fixedly connected to the top of the fixed frame (24). A sliding frame (27) is slidably connected to the surface of the fixed frame (24) via a guide rail. A guide plate (29) is fixed to one side of the sliding frame (27) and one side of the support block (30) by bolts. A plurality of evenly arranged second grooves are opened on the surface of the guide plate (29). The second grooves are used in conjunction with the first grooves. A first inclined surface is provided on the surface of the guide plate (29). The first inclined surface faces the receiving box (2) to guide the processed heat pipe. A guide block (28) is fixedly connected to the top of the sliding frame (27). A second inclined surface is provided on one side of the guide block (28) to guide the heat pipe.

6. The heat-conducting pipe orifice shaping assembly according to claim 5, characterized in that, A first motor (25) is fixedly connected to one side of the fixed frame (24). One end of the output shaft of the first motor (25) is fixed with a screw (26) through a coupling. One end of the screw (26) is rotatably connected to the fixed frame (24). The screw (26) is threaded through the sliding frame (27).

7. The heat-conducting pipe orifice shaping assembly according to claim 6, characterized in that, A second slider (22) is slidably connected between two fixed rods (19). The second slider (22) is fixed to the first slider (21). A column (23) is fixed on the surface of the second slider (22). Two drive rods (32) are fixedly connected to the top of the sliding frame (27). The column (23) is located between the two drive rods (32).

8. The heat-conducting pipe orifice shaping assembly according to claim 4, characterized in that, The fixing mechanism (6) includes a bracket (33) and a lower clamping block (31). The lower clamping block (31) is fixed on the top of the support block (30). The bracket (33) is fixed on the surface of the frame (1). A fourth cylinder (34) is fixedly connected to the inner wall of the top of the bracket (33). One end of the piston rod of the fourth cylinder (34) is fixedly connected to an upper clamping block (35). The upper clamping block (35) is located above the lower clamping block (31).

9. A high-speed spin forming machine for reducing the nozzle, comprising a heat-conducting pipe nozzle shaping component as described in any one of claims 1-8, characterized in that, It also includes a fifth cylinder (39) and a sliding seat (36) that slides on the surface of the frame (1) via a guide rail. A second motor (37) is fixedly connected to the top of the sliding seat (36). A shaping head (38) is fixedly connected to one end of the output shaft of the second motor (37). The fifth cylinder (39) is fixedly installed on one side of the frame (1). One end of the piston rod of the fifth cylinder (39) is fixed to the sliding seat (36).

10. The high-speed spinning mill necking device according to claim 9, characterized in that, A fixed cylinder (40) is fixedly connected to the surface of the frame (1). A through push-pull rod (42) is slidably connected to one end of the fixed cylinder (40). A piston (41) is fixedly connected to one end of the push-pull rod (42). The piston (41) slides inside the fixed cylinder (40). The push-pull rod (42) is fixed to the sliding seat (36). A second air outlet pipe (45) is fixedly connected to the surface of the sliding seat (36). One end of the second air outlet pipe (45) faces the shaping head (38). A hose (43) is fixedly connected between the second air outlet pipe (45) and the fixed cylinder (40). An air outlet box (46) is fixedly connected to the bottom inner wall of the receiving box (2). Multiple air outlet holes are provided on the top of the air outlet box (46). A first air outlet pipe (44) is fixedly connected between the air outlet box (46) and the fixed cylinder (40). The first air outlet pipe (44) and the second air outlet pipe (45) are located on both sides of the piston (41).