Heat pipe processing machine

The automated heat pipe manufacturing machine addresses inefficiencies and errors in manual material installation by using a copper pipe transport and material delivery system to ensure precise and efficient assembly.

CN114210885BActive Publication Date: 2025-07-15黄冰
View PDF 4 Cites 0 Cited by

Patent Information

Application Number
CN202111481667.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-12-06
Publication Date
2025-07-15
Estimated Expiration
2041-12-06

AI Technical Summary

Technical Problem

During the processing of existing thermal conduits, manual installation of metal wire or metal mesh is inefficient, costly, and easy to misinstall and misinstall.

Method used

Design a thermal conduit processing machine, including a machine, a workbench, a copper pipe conveying mechanism, multiple groups of transport mechanisms and material pushing mechanisms, to realize the automatic conveying and material pushing processing of copper pipes and materials.

Benefits of technology

Improve processing efficiency, avoid misinstallation and misinstallation problems, and realize fully automated thermal conduit production.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN114210885B_ABST
    Figure CN114210885B_ABST
Patent Text Reader

Abstract

The present invention discloses a heat pipe processing machine, which comprises: a machine platform, a workbench, a copper pipe conveying mechanism, multiple sets of conveying mechanisms and a material pushing mechanism; the workbench is arranged on the machine platform; the copper pipe conveying mechanism comprises a fixed platform arranged on the machine platform, the fixed platform is docked with the workbench, and the copper pipe conveying mechanism can transport the copper pipe to the fixed platform and fix the copper pipe; multiple sets of conveying mechanisms are all arranged on the machine platform, and at least two sets of the conveying mechanisms can respectively drive different materials to the workbench; the material pushing mechanism is arranged on the machine platform, and the material pushing mechanism can drive the material on the workbench to move into the copper pipe located on the fixed platform. The fully mechanical automation processing can not only greatly increase the processing efficiency, but also the multiple sets of conveying mechanisms can stably feed different materials, so the problems of misloading and missing loading can be effectively avoided.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the field of heat pipes, and particularly to a heat pipe processing machine. Background Art

[0002] A heat pipe is a hollow tube with liquid inside. When there is a temperature difference at both ends of the heat pipe, the liquid at one end will quickly vaporize and condense at the other end, thereby achieving the effect of rapid cooling and heat dissipation. In order to increase the flow rate of the liquid inside the heat pipe, a medium is usually added to the heat pipe, such as common metal wires or metal meshes. Currently, during the process of processing heat pipes, metal wires or metal meshes and other materials are usually manually installed into small copper tubes. However, manual processing not only has the disadvantages of low efficiency and high cost, but also, during the process of installing multiple different materials into the copper tube, manual operation is prone to problems such as misloading and missing loading. Summary of the Invention

[0003] The present invention aims to at least solve one of the technical problems existing in the prior art. For this purpose, the present invention provides a heat pipe processing machine that can automatically insert materials into a copper tube.

[0004] The heat pipe processing machine according to the first aspect embodiment of the present invention includes: a machine table, a workbench, a copper tube conveying mechanism, multiple sets of conveying mechanisms, and a pushing mechanism; the workbench is arranged on the machine table; the copper tube conveying mechanism includes a fixed table arranged on the machine table, the fixed table is docked with the workbench, and the copper tube conveying mechanism can transport the copper tube to the fixed table and fix the copper tube; multiple sets of conveying mechanisms are all arranged on the machine table, and at least two sets of the conveying mechanisms can respectively drive different materials to the workbench; the pushing mechanism is arranged on the machine table, and the pushing mechanism can drive the materials on the workbench to move and extend into the copper tube located on the fixed table.

[0005] The heat pipe processing machine according to the embodiment of the present invention has at least the following beneficial effects: The copper tube transportation mechanism transports the copper tube to the fixed table and relatively fixes the copper tube with the fixed table. At the same time, the conveying mechanisms can respectively drive different materials to the workbench. Subsequently, the pushing mechanism is activated and pushes each material on the workbench to move, and finally all the materials on the workbench are pushed into the material fixed on the fixed table, thereby completing the processing operation of the heat pipe.

[0006] Through the combined action of the copper tube conveying mechanism and multiple sets of conveying mechanisms, the copper tube and different materials can be automatically transported to the processing position, and the pushing mechanism is used for pushing and processing. The fully mechanical automated processing can not only greatly increase the processing efficiency, but also the multiple sets of conveying mechanisms can stably load different materials, so the problems of misloading and missing loading can be effectively avoided.

[0007] According to some embodiments of the present invention, the copper tube conveying mechanism further includes a loading magazine, a feeding assembly, and a discharging magazine. The feeding assembly can drive the copper tube to move from the loading magazine to the fixed table, and the feeding assembly can drive the copper tube to move from the fixed table to the discharging magazine. The loading magazine can be used to store the copper tubes to be processed, and the discharging magazine can receive the processed copper tubes.

[0008] According to some embodiments of the present invention, the feeding assembly includes: a material pushing member, a conveying air cylinder, a connecting seat, and a conveying seat; the material pushing member is arranged in the loading magazine, a material pushing air cylinder is arranged on the machine table, and the material pushing air cylinder is connected to the material pushing member and can drive it to lift the copper tube in the loading magazine; the conveying air cylinder is connected to the connecting seat and can drive the connecting seat to reciprocate between the loading magazine and the discharging magazine, and a first lifting air cylinder is arranged on the connecting seat, and the first lifting air cylinder is connected to the conveying seat.

[0009] According to some embodiments of the present invention, the conveying mechanism includes: a driving wheel set, a cutting component, and a material conveying component; the driving wheel set can drive the material to move; the cutting component is arranged on the machine table and is located between the driving wheel set and the workbench, and the cutting component can cut the material; the material conveying component is arranged on the machine table, and the material conveying component can drive the material to move close to the end of the workbench close to the fixed table.

[0010] According to some embodiments of the present invention, the conveying mechanism further includes a shaping wheel set, and the shaping wheel set is located between the cutting component and the driving wheel set and can shape the material.

[0011] According to some embodiments of the present invention, the driving wheel set is docked with the workbench through the cutting component; the material conveying component includes a third driving device arranged on the machine table, the third driving device is connected with a sliding seat and can drive the sliding seat to move along the workbench; a second lifting air cylinder is connected to the sliding seat, and the second lifting air cylinder is connected with a pressing plate that can press the material and drive the material to move along the workbench.

[0012] According to some embodiments of the present invention, the cutting component includes a cutting air cylinder, and the cutting air cylinder is connected with a cutting knife and can drive the cutting knife to move close to or away from the material.

[0013] According to some embodiments of the present invention, the conveying mechanism includes a transfer table, and the driving wheel set is docked with the transfer table through the material cutting assembly; the material transporting assembly includes a support frame disposed on the transfer table, and a material transporting seat movably connected to the support frame and capable of reciprocating between the transfer table and the workbench is provided on the support frame, and the material transporting seat is connected with a first driving device; a third lifting cylinder is arranged on the material transporting seat, the third lifting cylinder is connected with a material clamping seat, and a cylinder clamping jaw is arranged on the material clamping seat.

[0014] According to some embodiments of the present invention, a chute is arranged on the workbench, and the chute is docked with the fixed table; the material pushing mechanism includes a support table arranged on the machine table, and a material pushing seat capable of reciprocating along the length direction of the chute is arranged on the support table, and the material pushing seat is connected with a second driving device; a material pushing cylinder is arranged on the material pushing seat, the material pushing cylinder is connected with a material pushing rod, and the material pushing rod can extend into the chute and push the material in the chute to move into the copper tube.

[0015] According to some embodiments of the present invention, a guiding sleeve is arranged between the workbench and the fixed table, a folding cylinder is arranged on the workbench, the folding cylinder is connected with a folding block, and the folding block can move through the chute and drive the material on the chute to be partially folded; a bending assembly is further arranged between the folding block and the guiding sleeve.

[0016] Additional aspects and advantages of the present invention will be given in part in the following description, will become apparent in part from the following description, or will be understood through the practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] The above and / or additional aspects and advantages of the present invention will become apparent and be readily understood from the description of the embodiments in conjunction with the following drawings, wherein:

[0018] Figure 1 is a schematic diagram of a heat pipe processing machine according to an embodiment of the present invention;

[0019] Figure 2 is Figure 1 a schematic diagram showing the structural distribution of the heat pipe processing machine;

[0020] Figure 3 is Figure 1 a schematic diagram showing the copper tube conveying structure of the heat pipe processing machine;

[0021] Figure 4 is Figure 1 a schematic diagram showing the conveying structure of the heat pipe processing machine;

[0022] Figure 5 is Figure 1Schematic diagram of the workbench of the shown heat pipe processing machine;

[0023] Figure 6 is Figure 1 Schematic diagram of the bending component of the shown heat pipe processing machine;

[0024] Figure 7 is Figure 1 Schematic diagram of the pushing mechanism of the shown heat pipe processing machine;

[0025] Figure 8 is Figure 1 Schematic diagram of another embodiment of the conveying mechanism of the shown heat pipe processing machine;

[0026] Figure 9 is Figure 1 Schematic diagram of the material transporting component of the shown heat pipe processing machine.

[0027] Reference numerals: 100 is the machine platform,

[0028] 200 is the copper pipe conveying mechanism, 210 is the loading magazine, 213 is the ejecting cylinder, 215 is the ejecting part, 230 is the feeding component, 231 is the conveying cylinder, 233 is the connecting seat, 235 is the loading rack, 237 is the conveying seat, 239 is the first lifting cylinder, 250 is the fixed table, 251 is the slider, 253 is the fixed material rack, 255 is the fixed cylinder, 270 is the clamping component, 290 is the unloading magazine;

[0029] 300 is the workbench, 320 is the sliding groove, 330 is the folding cylinder, 335 is the folding block, 350 is the guiding sleeve, 360 is the bending component, 361 is the bending cylinder, 365 is the bending wheel, 371 is the third driving device, 372 is the sliding seat, 375 is the pressing plate, 376 is the telescopic cylinder, 378 is the second lifting cylinder,

[0030] 400 is the pushing mechanism, 410 is the support table, 420 is the second driving device, 430 is the pushing cylinder, 440 is the pushing jaw, 450 is the pushing rod;

[0031] 500 is the conveying mechanism, 510 is the driving wheel set, 520 is the steering wheel, 530 is the shaping wheel set, 540 is the supporting wheel set, 550 is the pressing part;

[0032] 700 is the transfer table;

[0033] 800 is the shearing component, 810 is the shearing cylinder, 820 is the shearing knife;

[0034] 900 is the material transporting component, 910 is the support frame, 920 is the first driving device, 930 is the transporting seat, 940 is the clamping seat, 950 is the cylinder jaw, 980 is the third lifting cylinder. Detailed Implementation Manner

[0035] The embodiments of the present invention will be described in detail below. Examples of the embodiments are shown in the accompanying drawings, where the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below by referring to the accompanying drawings are exemplary and are only used to explain the present invention and should not be construed as limiting the present invention.

[0036] In the description of the present invention, it should be understood that the orientation descriptions, such as up, down, front, back, left, right, etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, it should not be construed as limiting the present invention.

[0037] In the description of the present invention, the meaning of "several" is one or more, the meaning of "multiple" is two or more, and understandings such as "greater than", "less than", "exceeding", etc. do not include the present number, and understandings such as "above", "below", "within", etc. include the present number. If there is a description of "first" and "second", it is only for the purpose of distinguishing technical features and should not be construed as indicating or implying relative importance or implicitly indicating the quantity of the indicated technical features or implicitly indicating the sequence relationship of the indicated technical features.

[0038] In the description of the present invention, unless otherwise clearly defined, words such as "set", "installed", "connected", etc. should be understood in a broad sense. Those skilled in the art can reasonably determine the specific meanings of the above words in the present invention in combination with the specific content of the technical solution.

[0039] Refer to Figure 1, A heat pipe processing machine, comprising: a machine table 100, a workbench 300, a copper pipe conveying mechanism 200, multiple sets of conveying mechanisms 500, and a pushing mechanism 400; the workbench 300 is arranged on the machine table 100; the copper pipe conveying mechanism 200 includes a fixed table 250 arranged on the machine table 100, the fixed table 250 is docked with the workbench 300, and the copper pipe conveying mechanism 200 can transport the copper pipe to the fixed table 250 and fix the copper pipe; multiple sets of conveying mechanisms 500 are all arranged on the machine table 100, and at least two sets of conveying mechanisms 500 can drive different materials to the workbench 300 respectively; the pushing mechanism 400 is arranged on the machine table 100, and the pushing mechanism 400 can drive the materials on the workbench 300 to move into the copper pipe located on the fixed table 250. The copper pipe transportation mechanism transports the copper pipe to the fixed table 250 and relatively fixes the copper pipe with the fixed table 250. At the same time, the conveying mechanism 500 can drive different materials to the workbench 300 respectively. Subsequently, the pushing mechanism 400 is started, and the materials on the workbench 300 are pushed to move, and finally all the materials on the workbench 300 are pushed into the materials fixed on the fixed table 250, thereby completing the processing operation of the heat pipe. Through the combined action of the copper pipe conveying mechanism 200 and multiple sets of conveying mechanisms 500, the copper pipe and different materials can be automatically transported to the processing site and pushed for processing by the pushing mechanism 400. The fully mechanical automated processing can not only greatly increase the processing efficiency, but also the multiple sets of conveying mechanisms 500 can stably feed different materials, so the problems of misloading and missing loading can be effectively avoided.

[0040] Specifically, there are a slider 251 and a clamping assembly 270 on the machine table 100, and the fixed table 250 is connected to the slider 251. A fixed cylinder 255 is arranged on the fixed table 250, and the fixed cylinder 255 can tightly press the copper pipe at the clamping assembly 270.

[0041] Further, the clamping assembly 270 includes a clamping cylinder arranged above the connection between the fixed table 250 and the workbench 300.

[0042] Further, the slider 251 is slidably mounted on the machine table 100 through a fourth driving device.

[0043] In some embodiments, refer to Figure 2, the copper tube conveying mechanism 200 further includes a loading box 210, a feeding assembly 230, and a discharging box 290. The feeding assembly 230 can drive the copper tube to move from the loading box 210 to the fixed table 250, and the feeding assembly 230 can drive the copper tube to move from the fixed table 250 to the discharging box 290. The loading box 210 can be used to store the copper tubes to be processed, while the discharging box 290 can receive the processed copper tubes. By driving the copper tubes before and after processing through the feeding assembly 230, the feeding and discharging processes of the copper tubes can be made more orderly, and the operation efficiency can also be greatly improved.

[0044] In some embodiments, referring to Figure 3 , the feeding assembly 230 includes: a material pushing member 215, a conveying cylinder 231, a connecting seat 233, and a conveying seat 237; the material pushing member 215 is arranged in the loading box 210, a material pushing cylinder 213 is arranged on the machine table 100, and the material pushing cylinder 213 is connected to the material pushing member 215 and can drive it to lift the copper tube in the loading box 210; the conveying cylinder 231 is connected to the connecting seat 233 and can drive the connecting seat 233 to reciprocate between the loading box 210 and the discharging box 290. A first lifting cylinder 239 is arranged on the connecting seat 233, and the first lifting cylinder 239 is connected to the conveying seat 237. After the material pushing cylinder 213 drives the material pushing member 215 to move and the material pushing member 215 lifts the copper tube, the conveying cylinder 231 can drive the conveying seat 237 to move close to the loading box 210 through the connecting seat 233. Subsequently, the first lifting cylinder 239 drives the conveying seat 237 to descend and pick up the lifted copper tube. Subsequently, the conveying cylinder 231 drives the conveying seat 237 to move again through the connecting seat 233, so that the conveying seat 237 can transport the copper tube to the fixed table 250. When the copper tube on the fixed table 250 is processed, the conveying seat 237 ascends and descends relative to the fixed seat again and picks up the processed copper tube, and finally transports the copper tube to the discharging box 290 to complete the discharging operation. The cooperation between the material pushing member 215 and the material pushing cylinder 213 can directly push the copper tube out of the loading box 210, facilitating the picking up of the copper tube for processing; while the cooperation between the conveying cylinder 231, the connecting seat 233, and the conveying seat 237 can drive the material to move from the loading box 210 to the fixed table 250 or the discharging box 290 respectively, so that the processing process can be made more automated, thereby improving the processing efficiency and accuracy.

[0045] Specifically, the material pushing member 215 is a material pushing rod with the same thickness as the copper tube. Of course, the material pushing member 215 can also be composed of other components, such as a push rod (not shown in the figure), etc. The specific implementation method can be adjusted according to the actual situation and is not limited here.

[0046] Specifically, a loading rack 235 is provided on the conveying seat 237, and two fixed racks 253 are provided on the fixed seat. The conveying seat 237 moves between the two fixed racks 253 on the fixed seat. Thus, when the conveying seat 237 moves up and down, it will pass through the loading plane formed by the two fixed racks 253 on the fixed seat, thereby achieving the effect of picking up or placing materials.

[0047] In some embodiments, referring to Figure 4 , the conveying mechanism 500 includes: a driving wheel set 510, a material cutting assembly 800, and a material feeding assembly; the driving wheel set 510 can drive the movement of the material; the material cutting assembly 800 is disposed on the machine table 100 and is located between the driving wheel set 510 and the workbench 300, and the material cutting assembly 800 can cut the material; the material transporting assembly 900 is disposed on the machine table 100, and the material transporting assembly 900 can drive the material to move close to the junction of the workbench 300 and the fixed table 250. Filamentous, strip-shaped or net-shaped materials can be wound around the driving wheel set 510. The driving wheel set 510 can not only provide a storage site for the material, but also directly and effectively drive the material to move after the driving wheel set 510 rotates, thereby facilitating the transportation of the material to the workbench 300 for processing. The material cutting assembly 800 can cut filamentous, strip-shaped or net-shaped materials, thereby separating the part required for single processing from the stored materials, and then enabling the processing of this part. The material transporting assembly 900 can drive the part cut by the material cutting assembly 800 to move relative to the workbench 300 to be close to the fixed table 250, thereby facilitating the pusher mechanism 400 to perform the pusher operation on the material.

[0048] Specifically, the conveying mechanism 500 further includes a plurality of steering wheels 520, and the material on the driving wheel set 510 passes through each steering wheel 520 and finally is parallel to the workbench 300.

[0049] In some embodiments, referring to Figure 4 , the conveying mechanism 500 further includes a shaping wheel set 530, and the shaping wheel set 530 is located between the material cutting assembly 800 and the driving wheel set 510 and can shape the material. The shaping wheel set 530 can extrude and shape the material, so that the material moves to the workbench 300 in a shape convenient for processing into a straight shape or a flat shape, and then the process of the material entering the copper tube can be made smoother.

[0050] In some embodiments, referring to Figure 5, the driving wheel set 510 is docked with the workbench 300 through the material cutting assembly 800; the material transporting assembly 900 includes a third driving device 371 arranged on the machine table 100. The third driving device 371 is connected with a sliding seat 372 and can drive the sliding seat 372 to move along the workbench 300; a second lifting cylinder 378 is connected to the sliding seat 372, and the second lifting cylinder 378 is connected with a pressing plate 375 that can press the material and drive the material to move along the workbench 300. After the third driving device 371 drives the pressing plate 375 to approach the workpiece through the sliding seat 372, the second lifting cylinder 378 will drive the pressing plate 375 to descend, so that the pressing plate 375 presses the material onto the workbench 300. Subsequently, the third driving device 371 operates again and drives the pressing plate 375 to move close to the fixed table 250. During the movement of the pressing plate 375, the pressing plate 375 will drive the material to move along with the pressing plate, so as to directly and effectively move the material to be adjacent to the fixed table 250, facilitating the pusher mechanism 400 to push the material into the copper tube.

[0051] Further, a telescopic cylinder 376 is arranged between the sliding seat 372 and the second lifting cylinder 378. The telescopic cylinder 376 can drive the second lifting cylinder 378 to approach or move away from the workbench 300, so as to achieve the pressing effect or avoid interference of the second lifting cylinder 378 and the pressing plate 375 with the operations on the workbench 300.

[0052] In some embodiments, referring to Figure 8 , the material cutting assembly 800 includes a material cutting cylinder 810. The material cutting cylinder 810 is connected with a material cutting knife 820 and can drive the material cutting knife 820 to move close to or away from the material. After the material cutting cylinder 810 is started, it will drive the material cutting knife 820 to move close to the material, so as to cut the material and complete the material cutting operation. After the material cutting operation is completed, the material cutting cylinder 810 will drive the material cutting knife 820 to move away from the material, so as to avoid additional damage to the transported material by the material cutting knife 820.

[0053] In some embodiments, referring to Figure 9, the conveying mechanism 500 includes a transfer table 700, and the driving wheel set 510 is docked with the transfer table 700 through a material cutting assembly 800; the material transporting assembly 900 includes a support frame 910 disposed on the transfer table 700, and a material transporting seat 930 that is movably connected to the support frame 910 and can reciprocate between the transfer table 700 and the workbench 300 is connected to the material transporting seat 930 with a first driving device 920; a third lifting cylinder 980 is disposed on the material transporting seat 930, the third lifting cylinder 980 is connected with a material clamping seat 940, and a cylinder gripper 950 is disposed on the material clamping seat 940. The transfer table 700 can temporarily store the cut materials, thus providing a prerequisite for the material transportation of the material transporting assembly 900. When the material transporting seat 930 moves above the transfer table 700, the third lifting cylinder 980 can drive the cylinder gripper 950 to descend, so as to clamp the materials on the transfer table 700. Subsequently, the third lifting cylinder 980 drives the cylinder gripper 950 to rise, and the material transporting seat 930 drives the materials to move above the workbench 300 through the cylinder gripper 950, and the third lifting cylinder 980 drives the cylinder gripper 950 to descend again, so as to place the materials on the workbench 300. Through the mutual cooperation among the transfer table 700, the material transporting seat 930 and the cylinder gripper 950, the materials can be effectively driven to move onto the workbench 300, thus facilitating the subsequent processing operations.

[0054] Specifically, a support wheel set 540 is disposed between the transfer table 700 and the driving wheel set 510. The support wheel set 540 can prevent the materials between the transfer table 700 and the driving wheel set 510 from falling, thereby improving the integrity of the materials before processing.

[0055] In some embodiments, referring to Figure 7 , a chute 320 is disposed on the workbench 300, and the chute 320 is docked with the fixed table 250; the material pushing mechanism 400 includes a support table 410 disposed on the machine table 100, and a material pushing seat that can reciprocate along the length direction of the chute 320 is disposed on the support table 410, and the material pushing seat is connected with a second driving device 420; a material pushing cylinder 430 is disposed on the material pushing seat, the material pushing cylinder 430 is connected with a material pushing rod 450, and the material pushing rod 450 can extend into the chute 320 and push the materials in the chute 320 to move into the copper tube. After the material pushing cylinder 430 drives the material pushing rod 450 to extend into the chute 320, the second driving device 420 is started, and drives the material pushing rod 450 to move along the chute 320 through the material pushing seat, so that the material pushing rod 450 pokes the materials into the copper rod, and thus the material pushing operation is completed. The cooperation between the material pushing rod 450 and the material pushing seat can effectively drive the materials into the copper tube, thus directly and effectively completing the material pushing operation.

[0056] Specifically, a pusher gripper 440 is provided between the pusher rod 450 and the pusher cylinder 430. The pusher cylinder 430 is connected to the pusher gripper 440. The pusher gripper 440 clamps the pusher rod 450 and can drive its movement.

[0057] In some embodiments, with reference to Figure 6 , a guiding sleeve 350 is provided between the workbench 300 and the fixed table 250. A folding cylinder 330 is provided on the workbench 300. The folding cylinder 330 is connected to a folding block 335. The folding block 335 can move through the sliding groove 320 and drive the material on the sliding groove 320 to be partially folded; a bending assembly 360 is further provided between the folding block 335 and the guiding sleeve 350. After the folding cylinder 330 is started, it will drive the folding block 335 to move through the sliding groove 320. When there is material in the sliding groove 320, the folding block 335 will push a part of the material and cause that part to flip. The flipped material is more convenient for providing a force application site for the pusher rod 450, so as to ensure that the pusher rod 450 can effectively push the material into the copper tube. And the bending assembly 360 can initially bend the material, so that the material can adapt to form a semi-tubular shape with the copper tube, and further ensure that the material can smoothly enter the copper tube.

[0058] Specifically, the bending assembly 360 includes a bending cylinder 361 provided above the workbench 300. The bending cylinder 361 is connected to a bending wheel 365. The bending cylinder 361 can drive the bending wheel 365 to descend and press tightly on the material in the sliding groove 320.

[0059] Furthermore, an inner circular groove is provided on the bending wheel 365. The inner circular groove can cooperate with the sliding groove 320 to press the material into an approximately circular tubular shape, so as to facilitate the pusher rod 450 to push the material into the copper tube.

[0060] Specifically, the above-mentioned first driving device 920, second driving device 420, third driving device 371 and fourth driving device are all combinations of a motor and a belt driving mechanism. Of course, the specific configuration methods of the first driving device 920, second driving device 420, third driving device 371 and fourth driving device are not unique. For example, they can also be replaced with components such as hydraulic cylinders (not shown in the figure). The specific configuration methods of the first driving device 920, second driving device 420, third driving device 371 and fourth driving device can also be different. The specific implementation methods can be adjusted accordingly according to the actual situation and are not limited here.

[0061] The technical features of the above-described embodiments can be combined arbitrarily. For the sake of brevity of description, not all possible combinations of the technical features in the above embodiments are described. However, as long as the combinations of these technical features do not conflict, they should all be considered as the scope described in this specification.

[0062] The embodiments of the present invention have been described in detail above in conjunction with the accompanying drawings. However, the present invention is not limited to the above embodiments, and various changes can be made without departing from the spirit of the present invention within the scope of knowledge possessed by those of ordinary skill in the art.

Claims

1. A heat pipe processing machine, characterized in that, Comprising: A machine platform (100); A workbench (300), arranged on the machine platform (100); A copper tube conveying mechanism (200), including a fixed platform (250) arranged on the machine platform (100), the fixed platform (250) being docked with the workbench (300), and the copper tube conveying mechanism (200) being capable of transporting a copper tube to the fixed platform (250) and fixing the copper tube; Multiple sets of conveying mechanisms (500), all arranged on the machine platform (100), at least two of the conveying mechanisms (500) being capable of driving different materials to the workbench (300) respectively; A material pushing mechanism (400), arranged on the machine platform (100), the material pushing mechanism (400) being capable of driving the material on the workbench (300) to move and extend into the copper tube located on the fixed platform (250); The conveying mechanism (500) includes a driving wheel set (510), a material cutting assembly (800) and a material transporting assembly (900); the driving wheel set (510) is capable of driving the material to move; the material cutting assembly (800) is arranged on the machine platform (100) and is located between the driving wheel set (510) and the workbench (300), and the material cutting assembly (800) is capable of cutting the material; the material transporting assembly (900) is arranged on the machine platform (100), and the material transporting assembly (900) is capable of driving the material to move close to the junction of the workbench (300) and the fixed platform (250); In one of the multiple sets of conveying mechanisms (500), the driving wheel set (510) is docked with the workbench (300) through the material cutting assembly (800), and the material transporting assembly (900) includes a third driving device (371) arranged on the machine platform (100), the third driving device (371) being connected with a sliding seat (372) and capable of driving the sliding seat (372) to move along the workbench (300); Another one of the multiple sets of conveying mechanisms (500) includes a transfer table (700), the driving wheel set (510) being docked with the transfer table (700) through the material cutting assembly (800), and the material transporting assembly (900) includes a support frame (910) arranged on the transfer table (700), a transporting seat (237) being movably connected to the support frame (910) and capable of reciprocating between the transfer table (700) and the workbench (300), and the transporting seat (237) being connected with a first driving device (920).

2. The heat pipe processing machine according to claim 1, wherein: The copper tube conveying mechanism (200) further includes a loading magazine (210), a feeding assembly (230) and an unloading magazine (290), the feeding assembly (230) being capable of driving the copper tube to move from the loading magazine (210) to the fixed platform (250), and the feeding assembly (230) being capable of driving the copper tube to move from the fixed platform (250) to the unloading magazine (290).

3. The heat pipe processing machine according to claim 2, wherein: The feeding assembly (230) includes: The ejector (215) is arranged inside the loading cartridge (210). A top feed cylinder (213) is arranged on the machine table (100). The top feed cylinder (213) is connected to the ejector (215) and can drive it to lift the copper tubes inside the loading cartridge (210). The conveying cylinder (231), the connecting seat (233) and the conveying seat (237). The conveying cylinder (231) is connected to the connecting seat (233) and can drive the connecting seat (233) to reciprocate between the loading cartridge (210) and the unloading cartridge (290). A first lifting cylinder (239) is arranged on the connecting seat (233). The first lifting cylinder (239) is connected to the conveying seat (237).

4. The heat pipe processing machine according to claim 1, wherein: The conveying mechanism (500) further includes a shaping wheel set (530). The shaping wheel set (530) is located between the material cutting assembly (800) and the driving wheel set (510) and can shape the material.

5. The heat pipe processing machine according to claim 1, wherein: A second lifting cylinder (378) is connected to the sliding seat (372). The second lifting cylinder (378) is connected to a pressing plate (375) that can press the material and drive the material to move along the workbench (300).

6. The heat pipe processing machine according to claim 1, wherein: The material cutting assembly (800) includes a material cutting cylinder (810). The material cutting cylinder (810) is connected to a material cutting knife (820) and can drive the material cutting knife (820) to move closer to or away from the material.

7. The heat pipe processing machine according to claim 1, wherein: A third lifting cylinder (980) is arranged on the conveying seat (237). The third lifting cylinder (980) is connected to a clamping seat (940). A cylinder jaw (950) is arranged on the clamping seat (940).

8. The heat pipe processing machine according to claim 1, wherein: A chute (320) is arranged on the workbench (300). The chute (320) is docked with the fixed table (250). The pushing mechanism (400) includes a support table (410) arranged on the machine table (100). A pushing seat capable of reciprocating along the length direction of the chute (320) is configured on the support table (410). The pushing seat is connected to a second driving device (420). A pushing cylinder (430) is arranged on the pushing seat. The pushing cylinder (430) is connected to a pushing rod (450). The pushing rod (450) can extend into the chute (320) and push the material in the chute (320) to move into the copper tube.

9. The heat pipe processing machine according to claim 8, wherein: A guiding sleeve (350) is provided between the workbench (300) and the fixed table (250). A folding cylinder (330) is provided on the workbench (300). The folding cylinder (330) is connected to a folding block (335). The folding block (335) can move through the sliding groove (320) and drive the materials on the sliding groove (320) to be partially folded. A bending component (360) is further provided between the folding block (335) and the guiding sleeve (350).

Citation Information

Patent Citations

  • Necking machine

    CN111570642A

  • Multi -functionally rivet device from dynamic pressure

    CN207205156U

  • Heat pipe processing machine

    CN216989690U

  • Method for filling heat pipe wick structure and the like

    US20040111887A1