A mobile module for a molten component assembly equipment

CN224625487UActive Publication Date: 2026-08-11WENZHOU FUERTE ELECTRICAL APPLIANCES CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-26
Publication Date
2026-08-11

AI Technical Summary

Technical Problem

[0005]对于组装设备,工作人员需要将工位在冲压模块、开孔模块、销钉模块中来回移动,使得工作人员整体操作较为繁琐且复杂,不利于载熔件的快速组装

Benefits of technology

1.工位由于第一移动结构的推动,让工位能够从滑轨移动至移动抬升组件中,移动抬升组件能够带动工位落下,然后移动推动组件能够带动工位从移动抬升组件中移动至移动运输结构中,移动运输结构让工位从一个移动抬升组件中移动至另一个移动抬升组件中,并且由另一个移动抬升组件驱动工位抬升,再加上移动推动组件带动工位移动至滑轨中,然后由移动定位结构带动工位在滑轨上滑动,从而实现工位在滑轨、移动抬升组件、移动运输结构、移动抬升组件之间循环移动,使得工位能够稳定的循环利用,避免工作人员手动实现工位复位的操作,加快产品的加工效率。

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Abstract

This application relates to the technical field of assembling molten parts, and discloses a moving module of a molten part assembly equipment, including a base, a workstation, a moving module, a stamping module, an opening module, and a pin module. The base is provided with a slide rail for moving the workstation. The moving module includes a moving positioning structure, a moving transport structure, and two moving lifting structures. The moving lifting structure includes a moving lifting component and a moving pushing component. The moving lifting component is used to realize the vertical movement of the workstation, and the moving pushing component is used to push the workstation to the moving transport structure or to the slide rail. This application realizes the cyclical movement of the workstation between the slide rail, the moving lifting component, the moving transport structure, and the moving lifting component through the moving positioning structure, the moving transport structure, and the moving lifting component, so that the workstation can be stably reused, avoiding the need for manual resetting of the workstation by the operator, and further accelerating the processing efficiency of the product.
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Description

Technical Field

[0001] This application relates to the technical field of assembling molten components, and in particular to a mobile module of a molten component assembly device. Background Technology

[0002] A fuse is an electrical safety device that works based on the principle of current thermal effect. The fuse carrier is an important component of the fuse. The fuse carrier is used to fix and install the fuse. The fuse carrier is usually assembled manually by workers in sequence through multiple assembly modules.

[0003] Reference Figure 1 The molten component includes a molten tube, a pressure relief tube, an upper ring pressure relief cap assembly, and a lower ring rotating plate assembly. The upper ring pressure relief cap assembly and the lower ring rotating plate assembly are respectively fixed to both sides of the molten tube by stamping. The pressure relief tube is equipped with a cap and is inserted into the molten tube. The cap is threaded onto the molten tube. Finally, four through holes are opened on the outer surface of the molten tube. The operator inserts a pin through the upper ring pressure relief cap assembly or the lower ring rotating plate assembly into the through holes to assemble the molten component.

[0004] The assembly equipment includes a base, on which are provided a workstation, a stamping module, a hole-opening module, and a pin module. The workstation is used to place the molten material, the stamping module is used to stamp and fix the molten tube, the upper ring pressure relief cap assembly, and the lower ring rotating plate assembly, the hole-opening module is used to open holes in the molten tube, and the pin module is used to insert pins through the upper ring pressure relief cap assembly or the lower ring rotating plate assembly into the holes.

[0005] For the assembly equipment, workers need to move back and forth between the stamping module, the hole-making module, and the pin module, making the overall operation cumbersome and complicated, which is not conducive to the rapid assembly of the molten parts. Utility Model Content

[0006] To address the issue of the need for the melting point station to move back and forth, this application provides a moving module for a melting point assembly device.

[0007] This application provides a movable module for a molten component assembly device, which adopts the following technical solution: A movable module of a molten component assembly equipment includes a base. The base has a workstation, a movable module, a stamping module, a hole-opening module, and a pin module. The base has a slide rail for moving the workstation. The movable module transports the workstation between the stamping module, the hole-opening module, and the pin module. The stamping module is used to stamp and fix the molten tube, the upper ring pressure relief cap assembly, and the lower ring rotating plate assembly. The hole-opening module is used to open holes in the molten tube. The pin module is used to insert pins through the upper ring pressure relief cap assembly or the lower ring rotating plate assembly into the holes. The movable module includes a moving... The system includes a positioning structure, a mobile transport structure, and two mobile lifting structures. The mobile positioning structure and the mobile transport structure are both mounted on a base. Both structures allow the workstation to slide on a slide rail. The mobile lifting structure moves the workstation between the mobile transport structure and the slide rail. Each mobile lifting structure includes a mobile lifting component and a mobile pushing component, both mounted on the base. The mobile lifting component enables vertical movement of the workstation, and the mobile pushing component propels the workstation to either the mobile transport structure or the slide rail.

[0008] By adopting the above technical solution, the workstation is moved from the slide rail to the moving lifting component by the first moving structure. The moving lifting component lowers the workstation, and then the moving pushing component moves the workstation from the moving lifting component to the moving transport structure. The moving transport structure moves the workstation from one moving lifting component to another, and the other moving lifting component lifts the workstation. In addition, the moving pushing component moves the workstation to the slide rail, and then the moving positioning structure moves the workstation to slide on the slide rail. This achieves the cyclical movement of the workstation between the slide rail, the moving lifting component, the moving transport structure, and the moving lifting component, enabling the workstation to be stably reused. This avoids the need for manual resetting of the workstation by the operator and further accelerates the processing efficiency of the product.

[0009] Optionally, the mobile transport structure includes a conveyor belt and a support frame, both of which are mounted on a base. The support frame allows the workstation to slide, and the conveyor belt is used to move the workstation. The workstation is provided with a moving bar, and the conveyor belt is provided with multiple transport blocks. When the moving bar is located between two adjacent transport blocks, the conveyor belt can move the workstation.

[0010] By adopting the above technical solution, the workstation is slidably connected to the support frame to reduce the force exerted by the conveyor belt on the workstation. This reduces the force exerted by the conveyor belt on the workstation, allowing the conveyor belt to move the workstation with less power. Furthermore, the moving bar is located on the transmission block, so that when the conveyor belt rotates, it drives the transmission block to move, which in turn drives the moving bar to move, thus allowing the workstation to move smoothly on the support frame.

[0011] Optionally, the surface of the moving strip away from the workstation is a moving ramp, and the distance between the moving ramp and the workstation gradually decreases along the direction in which the moving transport structure drives the workstation to move. The moving ramp is located on the moving path of the transport block.

[0012] By adopting the above technical solution, the distance between the moving inclined plane and the workstation gradually decreases along the direction of the moving transport structure, so that the force of the moving block on the moving strip can be divided into a positive pushing force and an upward supporting force, thereby reducing the gravity of the workstation on the conveyor belt, and enabling the conveyor belt to smoothly move the workstation.

[0013] Optionally, the transmission block is tilted in the direction in which the moving transport structure drives the workstation to move, and the transmission block abuts against the moving inclined surface.

[0014] By adopting the above technical solution, the transmission block is tilted in the direction that the moving transport structure drives the workstation to move, and the transmission block abuts against the moving inclined surface, which increases the contact area between the transmission block and the moving strip, reduces the pressure of the transmission block on the moving strip, and reduces the possibility of damage to the moving strip or the transmission block.

[0015] Optionally, the moving positioning structure includes a first moving structure and a first positioning structure. The first moving structure includes a first pushing component, a first lifting component, and a pushing block. The pushing block is disposed on the first lifting component, the first lifting component is disposed on the first pushing component, and the first pushing component is disposed on a base. The first lifting component is used to drive the pushing block to rise and fall, and the first pushing component is used to drive the pushing block to move a fixed distance. Two adjacent workstations abut against each other. The first positioning structure is used to restrict the movement of the workstations. When the first pushing component is activated, the first positioning structure is used to position the workstations in the stamping module, the hole-opening module, and the pin module.

[0016] By adopting the above technical solution, the first lifting component drives the pushing block to rise, and the first pushing component drives the pushing block to move, so that the pushing block can slide on the slide rail. In addition, the two adjacent stations abut against each other, allowing the station to move a fixed distance on the slide rail. Furthermore, the first positioning structure limits the station, so that the station will not move after moving a fixed distance. This allows the station to be stably positioned in the stamping module, the hole-opening module, and the pin module, so that the products in the station can be processed stably. This reduces the situation of failure in processing the melt-carrying parts due to positioning errors, thereby increasing the yield of processed products.

[0017] Optionally, the first positioning structure includes a positioning component and a positioning block. The positioning block is disposed on the positioning component, and the positioning component is disposed on the base. The workstation has a positioning groove for the positioning block to be inserted. The positioning component is used to drive the positioning block to be inserted into the positioning groove. When the positioning block is inserted into the positioning groove, the workstation is located at the position corresponding to the stamping module, the hole-opening module, or the pin module.

[0018] By adopting the above technical solution, the positioning component drives the positioning block to move, allowing the positioning block to be smoothly inserted into the positioning slot. This enables the positioning block to restrict the movement of the workstation, thus allowing the positioning block to smoothly stop the workstation in the stamping module, hole-opening module, or pin module, ensuring that the workstation is in the corresponding position and further increasing the accuracy of the workstation.

[0019] Optionally, the movable lifting component is provided with a movable plate, which is used to lift or lower the movable plate; when the movable plate is aligned with the slide rail, the first pushing component drives the workstation to move on the slide rail, and the movable pushing component drives the workstation from the movable plate to the slide rail.

[0020] By adopting the above technical solution, the moving lifting component drives the moving plate to rise or fall, so that the moving plate can be aligned with the slide rail. First, the first pushing component drives the station to move on the slide rail, and then the moving pushing component drives the station to move on the slide rail. Therefore, the moving pushing component only needs to drive one station to move, reducing the force of the moving pushing component and making it less likely to be damaged by pushing too many stations.

[0021] Optionally, the movable lifting assembly includes a movable motor, a movable lead screw, and a movable guide rod. The movable motor and the movable guide rod are mounted on a base. The movable lead screw is mounted on the drive shaft of the movable motor and is threadedly connected to a movable plate. The movable guide rod passes through the movable plate. When the movable motor is started, the movable plate moves on the movable guide rod.

[0022] By adopting the above technical solution, the moving motor drives the moving screw to rotate, which in turn drives the moving plate to move. Since the moving guide rod passes through the moving plate, the moving plate can move smoothly on the moving guide rod, thereby raising or lowering the moving plate and enabling the workstation to move from the moving plate to the slide rail or from the slide rail to the moving plate.

[0023] In summary, this application includes at least one of the following beneficial technical effects: 1. Due to the push of the first moving structure, the workstation can move from the slide rail to the moving lifting component. The moving lifting component can lower the workstation, and then the moving pushing component can move the workstation from the moving lifting component to the moving transport structure. The moving transport structure moves the workstation from one moving lifting component to another, and the other moving lifting component drives the workstation to rise. In addition, the moving pushing component moves the workstation to the slide rail, and then the moving positioning structure drives the workstation to slide on the slide rail. This realizes the cyclical movement of the workstation between the slide rail, the moving lifting component, the moving transport structure, and the moving lifting component, so that the workstation can be stably reused, avoiding the need for manual resetting of the workstation by the operator, and speeding up the product processing efficiency.

[0024] 2. The first lifting component drives the pushing block to rise, and the first pushing component drives the pushing block to move, so that the pushing block can slide on the slide rail. In addition, the two adjacent stations abut against each other, allowing the station to move a fixed distance on the slide rail. The first positioning structure limits the station, so that the station will not move after moving a fixed distance. This allows the station to be stably positioned in the stamping module, the hole-opening module and the pin module, so that the products in the station can be processed stably. This reduces the situation of failure in processing the melt-carrying parts due to positioning errors, thereby increasing the yield of processed products. Attached Figure Description

[0025] Figure 1 This is a schematic diagram of the background technology; Figure 2 This is a structural schematic diagram of an embodiment of this application; Figure 3 This is a schematic diagram highlighting the structure of the mobile module in the embodiments of this application; Figure 4 This is a structural diagram highlighting the mobile transportation structure in the embodiments of this application.

[0026] Reference numerals: 100, base; 101, slide rail; 102, moving module; 103, moving positioning structure; 104, upper ring pressure relief cap assembly mounting module; 105, lower ring rotating seat plate assembly mounting module; 106, fusion tube mounting module; 107, stamping module; 108, detection module; 109, opening module; 110, pin module; 111, pressure relief tube mounting module; 112, material unloading module; 113, workstation; 114, mounting base; 115, moving block; 116, fixing block; 117, mounting block; 118, first placement slot; 119, first placement hole; 120, second placement slot; 121 122. Second placement hole; 123. First moving structure; 124. First positioning structure; 125. First pushing assembly; 126. First lifting assembly; 127. Pushing block; 128. Positioning assembly; 129. Positioning block; 130. Moving transport structure; 131. Moving lifting structure; 132. Conveyor belt; 133. Support frame; 134. Conveyor block; 135. Moving strip; 136. Moving inclined plane; 137. Moving lifting assembly; 138. Moving pushing assembly; 139. Moving motor; 140. Moving lead screw; 141. Moving guide rod; 142. Moving bracket; 143. Moving plate; 300. Fusion tube; 301. Pressure relief tube; 302. Upper ring pressure relief cap assembly; 303. Lower ring rotating plate assembly; 304. Tube cap; 305. Perforation; 306. Pin. Detailed Implementation

[0027] The following is in conjunction with the appendix Figure 2-4 This application will be described in further detail.

[0028] This embodiment discloses a movable module for a molten component assembly device. (Refer to...) Figure 2A molten component assembly device includes a base 100, on which are mounted a slide rail 101, a moving module 102, an upper ring pressure relief cap assembly mounting module 104, a lower ring rotary seat launching plate assembly mounting module 105, a molten tube mounting module 106, a stamping module 107, a detection module 108, a hole-opening module 109, a pin module 110, a pressure relief tube mounting module 111, and a material unloading module 112. Multiple workstations 113 are slidably connected to the slide rail 101, providing space for the molten tube, the upper ring pressure relief cap assembly, and the lower ring rotary seat launching plate assembly. The moving module 102 is used to move the workstation 113 on different modules. The upper ring pressure relief cap assembly mounting module 104 is used to mount the upper ring pressure relief cap assembly on the workstation 113. The lower ring rotary seat launching plate assembly mounting module 105 is used to mount the lower ring rotary seat launching plate assembly on the workstation 113. The melting tube mounting module 106 is used to mount the melting tube on the workstation 113. The stamping module 107 is used to stamp and fix the upper ring pressure relief cap assembly, melting tube, and lower ring rotary seat launching plate assembly. The detection module 108 is used to detect the stamped product. The hole-opening module 109 is used to open the melting tube. The pin module 110 is used to insert pins into the upper ring pressure relief cap assembly, melting tube, and lower ring rotary seat launching plate assembly and melting tube. The pressure relief tube mounting module 111 is used to install the pressure relief tube in the upper ring pressure relief cap assembly. The unloading module 112 is used to unload the product.

[0029] Reference Figure 3 Workstation 113 includes a mounting base 114, a movable block 115, and a fixed block 116. The mounting base 114 is slidably connected to the slide rail 101. The movable block 115 is slidably connected to the mounting base 114, and the fixed block 116 is fixedly connected to the mounting base 114. The movable block 115 slides along the length of the mounting base 114. Four mounting blocks 117 are fixedly connected to the mounting base 114. The mounting base 114 and the four mounting blocks 117 form an I-shape, that is, two mounting blocks 117 are located on one side of the mounting base 114, and the other two mounting blocks 117 are located on the other side of the mounting base 114. Adjacent workstations 113 abut against each other.

[0030] Reference Figure 3 The movable block 115 has a first placement groove 118 on its surface for placing the upper ring pressure relief cap assembly. A first placement hole 119, communicating with the first placement groove 118, is formed on the surface of the movable block 115 near the fixed block 116, and the first placement hole 119 is used for placing the melting tube. The fixed block 116 has a second placement groove 120 on its surface for placing the upper ring pressure relief cap assembly. A second placement hole 121, communicating with the second placement groove 120, is formed on the surface of the fixed block 116 near the movable block 115, and the second placement hole 121 is used for placing the melting tube. One end of the melting tube can be located in the first placement hole 119, and the other end of the melting tube can be located in the second placement hole 121.

[0031] Reference Figure 3 There are two slide rails 101, which extend along the length of the base 100. The mounting base 114 is slidably connected to the slide rail 101. The mounting blocks 117 in the two adjacent mounting bases 114 abut against each other. The mounting blocks 117 are slidably connected to the slide rail 101, that is, the two adjacent workstations 113 abut against each other.

[0032] Reference Figure 2 , Figure 3 and Figure 4 The moving module 102 includes a moving positioning structure 103, a moving transport structure 130, and two moving lifting structures 131. The moving positioning structure 103 drives the station 113 to move on the slide rail 101 and positions the station 113 sequentially on different modules. The moving transport structure 130 drives the station 113 to move from the unloading module 112 to the upper ring pressure relief cap assembly mounting module 104. The moving lifting structures 131 drive the station 113 to move from the moving positioning structure 103 and the moving transport structure 130.

[0033] Reference Figure 2 and Figure 3 The moving positioning structure 103 includes multiple first moving structures 122 and multiple first positioning structures 123. The first moving structures 122 are used to move the workstation 113 on the slide rail 101. The first positioning structures 123 are used to position the workstation 113 between the upper ring pressure relief cap assembly installation module 104, the lower ring rotary seat plate assembly installation module 105, the melting tube installation module 106, the stamping module 107, the hole opening module 109, the pin module 110, or the pressure relief tube installation module 111.

[0034] Reference Figure 3 The first moving structure 122 includes a first pushing component 124, a first lifting component 125, and a pushing block 126. The first pushing component 124 includes a pushing drive, which can be a slide table, and the slide table is mounted on the base 100. The first lifting component 125 includes a lifting cylinder, which is mounted on the slide table. The slide table drives the lifting cylinder to move along the length of the slide rail 101. The pushing block 126 is fixedly connected to the drive shaft of the lifting cylinder. The lifting cylinder drives the pushing block 126 to be lifted between the two slide rails 101, allowing the slide table to move the mounting base 114 via the pushing block 126, thus enabling the first moving structure 122 to move the workstation 113 a fixed distance.

[0035] Reference Figure 3The first positioning structure 123 includes a positioning component 127 and two positioning blocks 128. The positioning component 127 includes a positioning cylinder. Both positioning blocks 128 are fixedly connected to the drive shaft of the positioning cylinder, and the positioning blocks 128 are cylindrical. Two positioning grooves 129 are provided on the side of the mounting base 114 for the positioning blocks 128 to be inserted. When the mounting base 114 moves to the appropriate position, the positioning cylinder drives the positioning blocks 128 to move, allowing the positioning blocks 128 to be inserted into the positioning grooves 129, thereby fixing the mounting base 114 on the slide rail 101 and improving the accuracy of the mounting base 114 on the slide rail 101.

[0036] Reference Figure 4 The mobile transport structure 130 includes a conveyor belt 132 and a support frame 133. Both the conveyor belt 132 and the support frame 133 are mounted on the base 100, and are located on the side of the slide rail 101 closest to the ground. A plurality of transport blocks 134 are fixedly connected to the outer surface of the conveyor belt 132, and the plurality of transport blocks 134 are arranged in an array along the length of the conveyor belt 132.

[0037] Reference Figure 3 and Figure 4 Two movable bars 135 are fixedly connected to the surface of the mounting base 114 near the ground. The movable bars 135 can be inserted between two adjacent transmission blocks 134. The surfaces of the movable bars 135 near or away from the mounting base 114 are inclined surfaces 136, meaning the movable bars 135 are tilted to one side. The distance between the inclined surface 136 and the mounting base 114 gradually increases along the direction of movement of the station 113 on the slide rail 101. The inclined surface 136 is located on the movement path of the transmission block 134. The transmission block 134 tilts in the direction in which the moving transport structure 130 moves the station 113, and the transmission block 134 abuts against the inclined surface 136.

[0038] Reference Figure 3 and Figure 4 When the movable lifting structure 131 moves the mounting base 114 into the movable transport structure 130, the movable bar 135 can be inserted between two adjacent transmission blocks 134, so that the conveyor belt 132 can stably drive the mounting base 114 to move. At this time, the direction of movement of the mounting base 114 in the conveyor belt 132 is opposite to the direction of movement of the mounting base 114 in the slide rail 101.

[0039] Reference Figure 3The movable lifting structure 131 includes a movable lifting assembly 137 and a movable pushing assembly 138. The movable lifting assembly 137 includes a movable motor 139, a movable lead screw 140, and two movable guide rods 141. The movable lead screw 140 is rotatably connected to the base 100, and the two movable guide rods 141 are fixedly connected to the base 100. The movable lead screw 140 is fixedly connected to the drive shaft of the movable motor 139. A movable bracket 142 is fixedly connected to the base 100, and the movable motor 139 is fixedly connected to the movable bracket 142. A movable plate 143 is threadedly connected to the movable lead screw 140, and the movable plate 143 is slidably connected to the movable guide rods 141, and the movable plate 143 is provided for the placement of the workstation 113.

[0040] Reference Figure 3 and Figure 4 When the moving motor 139 is started, the moving motor 139 drives the moving plate 143 to move vertically through the moving screw 140, so that the work station 113 can move from the slide rail 101 or the conveyor belt 132 to the moving plate 143, or the work station 113 can move from the moving plate 143 to the slide rail 101 or the conveyor belt 132.

[0041] Reference Figure 3 The moving push assembly 138 includes a moving push cylinder, which is mounted on the base 100. The moving push cylinder is used to move the workstation 113 on the moving plate 143.

[0042] Reference Figure 3 and Figure 4 Workstation 113 moves from slide rail 101 to moving plate 143. Moving motor 139 starts, causing moving screw 140 to move moving plate 143. Simultaneously, moving push cylinder moves workstation 113 on moving plate 143, allowing workstation 113 to smoothly move onto conveyor belt 132. Workstation 113 moves from conveyor belt 132 to moving plate 143. Moving motor 139 starts, causing moving screw 140 to move moving plate 143. At this time, first push assembly 124 moves workstation 113, and then moving push cylinder moves workstation 113 onto slide rail 101.

[0043] The implementation principle of the moving module of the assemblies for molten components according to this application is as follows: the moving positioning structure 103 drives the workstation 113 to move on the slide rail 101 and positions the workstation 113 in different modules. The moving lifting structure 131 drives the workstation 113 to move into the moving transport structure 130, so that the moving transport structure 130 realizes the movement of the workstation 113. Finally, the moving lifting structure 131 drives the workstation 113 to move onto the slide rail 101, realizing the reciprocating use of the workstation 113.

[0044] Unless otherwise defined, the technical or scientific terms used in this application shall have the ordinary meaning understood by one of ordinary skill in the art to which this application pertains. The terms "first," "second," "third," and similar terms used in this application specification and claims do not indicate any order, quantity, or importance, but are merely used to distinguish different components. The terms "an" or "a" and similar terms do not indicate a quantity limitation, but rather indicate the presence of at least one. The terms "comprising" or "including" and similar terms mean that the elements or objects preceding "comprising" or "including" encompass the elements or objects listed following "comprising" or "including" and their equivalents, and do not exclude other elements or objects. "Above," "below," "left," "right," etc., are used only to indicate relative positional relationships; when the absolute position of the described object changes, the relative positional relationship may also change accordingly.

[0045] The above description is only a preferred embodiment of this application and is not intended to limit this application. Any modifications, equivalent substitutions, improvements, etc., made within the design concept of this application should be included within the protection scope of this application.

Claims

1. A movable module of a molten component assembly equipment, characterized in that: The system includes a base (100), on which a workstation (113), a moving module (102), a stamping module (107), a punching module (109), and a pin module (110) are provided. The base (100) is provided with a slide rail (101) for moving the workstation (113). The moving module (102) is used to move the workstation (113) between the stamping module (107), the punching module (109), and the pin module (110). In the transportation process, the stamping module (107) is used to stamp and fix the melting tube, the upper ring pressure relief cap assembly, and the lower ring rotating plate assembly; the hole-opening module (109) is used to open holes in the melting tube; the pin module (110) is used to insert pins through the upper ring pressure relief cap assembly or the lower ring rotating plate assembly into the holes; and the moving module (102) includes a moving positioning structure (103), a moving transportation structure (130), and two moving... The movable lifting structure (131) includes a movable positioning structure (103) and a movable transport structure (130), both of which are mounted on a base (100). Both the movable positioning structure (103) and the movable transport structure (130) allow the workstation (113) to slide on a slide rail (101). The movable lifting structure (131) is used to move the workstation (113) between the movable transport structure (130) and the slide rail (101). The movable lifting structure (131) includes a movable lifting component (137) and a movable pushing component (138), both of which are mounted on a base (100). The movable lifting component (137) is used to move the workstation (113) vertically, and the movable pushing component (138) is used to push the workstation (113) to the movable transport structure (130) or to the slide rail (101).

2. The moving module of the assemblies for assembling melt-carrying components according to claim 1, characterized in that: The mobile transport structure (130) includes a conveyor belt (132) and a support frame (133). Both the conveyor belt (132) and the support frame (133) are mounted on a base (100). The support frame (133) allows the workstation (113) to slide. The conveyor belt (132) is used to move the workstation (113). The workstation (113) is provided with a moving bar (135), and the conveyor belt (132) is provided with multiple transport blocks (134). When the moving bar (135) is located between two adjacent transport blocks (134), the conveyor belt (132) can move the workstation (113).

3. The moving module of the assemblies for assembling melt-carrying components according to claim 2, characterized in that: The surface of the moving bar (135) away from the workstation (113) is a moving ramp (136). The distance between the moving ramp (136) and the workstation (113) gradually decreases along the direction in which the moving transport structure (130) moves the workstation (113). The moving ramp (136) is located on the moving path of the transport block (134).

4. The moving module of the assemblies for assembling melt-carrying components according to claim 3, characterized in that: The transmission block (134) tilts in the direction in which the moving transport structure (130) drives the workstation (113) to move, and the transmission block (134) abuts against the moving inclined surface (136).

5. The moving module of the assemblies for assembling melt-carrying components according to claim 1, characterized in that: The mobile positioning structure (103) includes a first mobile structure (122) and a first positioning structure (123). The first mobile structure (122) includes a first pushing component (124), a first lifting component (125), and a pushing block (126). The pushing block (126) is disposed on the first lifting component (125), the first lifting component (125) is disposed on the first pushing component (124), and the first pushing component (124) is disposed on the base (100). The component (125) is used to drive the push block (126) to rise and fall. The first push component (124) is used to drive the push block (126) to move a fixed distance. Two adjacent workstations (113) abut against each other. The first positioning structure (123) is used to restrict the movement of the workstation (113). When the first push component (124) is started, the first positioning structure (123) is used to position the workstation (113) in the stamping module (107), the hole-opening module (109), and the pin module (110).

6. The moving module of the assemblies for assembling melt-carrying components according to claim 5, characterized in that: The first positioning structure (123) includes a positioning component (127) and a positioning block (128). The positioning block (128) is disposed on the positioning component (127), and the positioning component (127) is disposed on the base (100). The workstation (113) is provided with a positioning groove (129) for the positioning block (128) to be inserted. The positioning component (127) is used to drive the positioning block (128) to be inserted into the positioning groove (129). When the positioning block (128) is inserted into the positioning groove (129), the workstation (113) is located at the position corresponding to the stamping module (107), the hole-opening module (109), or the pin module (110).

7. The moving module of the assemblies for assembling melt-carrying components according to claim 5, characterized in that: The movable lifting component (137) is provided with a movable plate (143), which is used to lift or lower the movable plate (143). When the movable plate (143) is aligned with the slide rail (101), the first pushing component (124) drives the station (113) to move on the slide rail (101), and the movable pushing component (138) drives the station (113) to move from the movable plate (143) to the slide rail (101).

8. The moving module of the assemblies for assembling melt-carrying components according to claim 7, characterized in that: The movable lifting assembly (137) includes a movable motor (139), a movable lead screw (140), and a movable guide rod (141). The movable motor (139) and the movable guide rod (141) are mounted on the base (100). The movable lead screw (140) is mounted on the drive shaft of the movable motor (139). The movable lead screw (140) is threaded onto a movable plate (143). The movable guide rod (141) passes through the movable plate (143). When the movable motor (139) is started, the movable plate (143) moves on the movable guide rod (141).