A threaded wire-winding vacuum tube wire-winding device and process
By designing an automated threaded winding vacuum tube winding device, the coordinated work of the conveying component and the winding component is used to solve the problem of inefficient manual winding and realize the efficient automatic winding process.
Patent Information
- Application Number
- CN202211614278.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-12-15
- Publication Date
- 2025-07-29
- Estimated Expiration
- 2042-12-15
AI Technical Summary
In the prior art, vacuum tube winding mainly relies on manual operation, resulting in waste of manpower and inefficient production efficiency.
A threaded winding vacuum tube winding device is designed, including conveying components and winding components. The winding process is automatically completed through mechanized means, and components such as conveyor belts, winding parts, laying parts and moving parts work together to achieve automatic winding of copper wire.
Improves winding efficiency, reduces manual operation, and improves production efficiency.
Smart Images

Figure CN116119293B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of threaded vacuum tube winding, in particular to a threaded winding vacuum tube winding device and process. Background Art
[0002] An electronic cigarette is an electronic product that imitates a cigarette, having the same appearance, smoke, taste and feeling as a cigarette. The heating system of the electronic cigarette relies on the internal vacuum tube for heating, and when the vacuum tube is processed, copper wires need to be wound around the outside. In the prior art, when winding the vacuum tube, most operations are carried out manually, which not only wastes a large amount of manpower, but also has low production efficiency. Summary of the Invention
[0003] The purpose of this part is to outline some aspects of the embodiments of the present invention and briefly introduce some preferred embodiments. Simplifications or omissions may be made in this part, as well as in the abstract and title of the present application, to avoid obscuring the purpose of this part, the abstract and the title, and such simplifications or omissions shall not be used to limit the scope of the present invention.
[0004] In view of the above and / or problems existing in the existing threaded winding vacuum tube winding device and process, the present invention is proposed.
[0005] Therefore, the problem to be solved by the present invention is that in the prior art, when winding the vacuum tube, most operations are carried out manually, which not only wastes a large amount of manpower, but also has low production efficiency.
[0006] To solve the above technical problems, the present invention provides the following technical solution: a threaded winding vacuum tube winding device and process, which includes a conveying assembly, including a baffle, a conveyor belt, support legs, a feeding member, guide columns, a guide plate, a slideway and a collection box. The conveyor belt is arranged on one side of the baffle, the support legs are fixed to the bottom of the baffle, the feeding member is located on top of the conveyor belt, the guide columns are fixed to the top of the baffle, one side of the guide plate is fixed to the baffle, one side of the slideway is fixed to the baffle, and the collection box is located below the slideway;
[0007] A winding assembly is arranged on the conveying assembly and includes a support rod, a fixed frame, a winding member, a wire feeding member and a moving member. One end of the support rod is fixed to the baffle, the fixed frame is fixed to the other end of the support rod, the winding member is located below the fixed frame, the wire feeding member is located on one side of the winding member, and the moving member is arranged inside the fixed frame.
[0008] As a preferred embodiment of the spiral winding vacuum tube winding device and process of the present invention, wherein: the feeding member includes a feeding box, a fixed bracket, a first cylinder, a first baffle, a second baffle and a connecting rod. The feeding box is located above the conveyor belt. The fixed bracket is fixed outside the feeding box. The first cylinder is arranged on one side of the feeding box. The first baffle is fixed to the output end of the first cylinder. The second baffle is located on one side of the feeding box. The two ends of the connecting rod are respectively fixed to the first baffle and the second baffle.
[0009] As a preferred embodiment of the spiral winding vacuum tube winding device and process of the present invention, wherein: the winding member includes a positioning plate, a first motor, a first positioning block, a second cylinder and a second positioning block. The positioning plate is located above the conveyor belt. The first motor is fixed to one side of the positioning plate. The first positioning block is fixed to the output shaft of the first motor. The second cylinder is fixed to one side of the positioning plate. The second positioning block is rotatably connected to the second cylinder.
[0010] As a preferred embodiment of the spiral winding vacuum tube winding device and process of the present invention, wherein: the winding member further includes a third cylinder, a pressing plate, a positioning post and a fourth cylinder. The third cylinder is fixed to the top of the positioning plate. The pressing plate is fixed to the output end of the third cylinder. One end of the positioning post is fixed to the pressing plate. The fourth cylinder is fixed to the top of the positioning plate.
[0011] As a preferred embodiment of the spiral winding vacuum tube winding device and process of the present invention, wherein: the wire releasing member includes a support plate, a roller, a positioning rod and a retaining ring. The support plate is fixed to one side of the baffle. The roller is located on one side of the support plate. The positioning rod is fixed inside the roller. One side of the retaining ring is fixed to the positioning rod.
[0012] As a preferred embodiment of the spiral winding vacuum tube winding device and process of the present invention, wherein: the wire releasing member further includes a connecting column, a fixed frame, a guide wheel and a second motor. One end of the connecting column is fixed to the fixed frame. The fixed frame is fixed to the other end of the connecting column. The guide wheel is rotatably connected to the inside of the fixed frame. The second motor is fixed to one side of the fixed frame.
[0013] As a preferred embodiment of the spiral winding vacuum tube winding device and process of the present invention, wherein: the wire releasing member further includes a guiding tube, a fixed block, a connecting plate, a fifth cylinder and a cutter. The guiding tube is located on one side of the fixed frame. The fixed block is fixed to the outside of the guiding tube. The connecting plate is fixed to the outside of the connecting column. The fifth cylinder is fixed to the top of the connecting plate. The cutter is fixed to the output end of the fifth cylinder.
[0014] As a preferred embodiment of the screw - type winding vacuum tube winding device and process of the present invention, wherein: the moving member includes a sliding rod and a movable block, the sliding rod is fixed inside the fixed frame, the movable block is located outside the sliding rod, and the fourth cylinder is fixed to the bottom of the movable block.
[0015] As a preferred embodiment of the screw - type winding vacuum tube winding device and process of the present invention, wherein: the moving member further includes a connecting block, a movable column, a supporting block, a positioning shaft and a third motor. The connecting block is fixed to the top of the movable block, the movable column is located inside the connecting block, the supporting block is fixed to the top of the fixed frame, the positioning shaft is fixed inside the connecting block, the third motor is located on one side of the fixed frame, a spiral groove is provided on the movable column, and the positioning shaft slides inside the spiral groove.
[0016] As a preferred embodiment of the screw - type winding vacuum tube winding device and process of the present invention, wherein: a plurality of screw - type vacuum tubes are placed in the feeding member, the feeding member quantitatively feeds the screw - type vacuum tubes, and they are conveyed by a conveyor belt.
[0017] When the screw - type vacuum tube moves below the winding member, the winding member clamps the screw - type vacuum tube.
[0018] The wire release member unwinds the copper wire, making the copper wire contact the screw - type vacuum tube. At this time, the copper wire is wound by the rotation of the winding member.
[0019] While winding, the moving member drives the winding member to move, thereby evenly winding the copper wire on the outer side of the screw - type vacuum tube.
[0020] The wound screw - type vacuum tubes are collected by a collection frame.
[0021] The beneficial effects of the present invention are as follows: The conveying assembly is used to convey the screw - type vacuum tubes. Through the setting of the winding assembly, it is used for the winding operation of the screw - type vacuum tube parts, thereby avoiding the situation of low working efficiency of manual winding. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the following drawings are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings. Among them:
[0023] Figure 1 It is the overall structure diagram of the screw - type winding vacuum tube winding device and process.
[0024] Figure 2It is a partial structure diagram of the feeding part of a screw - type winding vacuum tube winding device and process.
[0025] Figure 3 It is a structure diagram of the winding assembly of a screw - type winding vacuum tube winding device and process.
[0026] Figure 4 It is for the screw - type winding vacuum tube winding device and process Figure 3 The partial enlarged structure diagram at position A in it.
[0027] Figure 5 It is for the screw - type winding vacuum tube winding device and process Figure 3 The partial enlarged structure diagram at position B in it.
[0028] Figure 6 It is a structure diagram of the winding part of a screw - type winding vacuum tube winding device and process.
[0029] Figure 7 It is a structure diagram of the positioning plate of a screw - type winding vacuum tube winding device and process.
[0030] Figure 8 It is a sectional structure diagram of the connecting block of a screw - type winding vacuum tube winding device and process.
[0031] Figure 9 It is a front view structure diagram of the vacuum tube of a screw - type winding vacuum tube winding device and process. Specific embodiments
[0032] To make the above - mentioned objects, features and advantages of the present invention more obvious and understandable, the following will make a detailed description of the specific embodiments of the present invention with reference to the accompanying drawings of the specification.
[0033] In the following description, many specific details are set forth to facilitate a full understanding of the present invention. However, the present invention can also be implemented in other ways different from those described herein. Those skilled in the art can make similar extensions without departing from the connotation of the present invention. Therefore, the present invention is not limited by the specific embodiments disclosed below.
[0034] Secondly, the so - called "one embodiment" or "embodiment" herein refers to a specific feature, structure or characteristic that can be included in at least one implementation manner of the present invention. The appearances of "in one embodiment" in different places in this specification do not all refer to the same embodiment, nor are they separate or selectively exclusive embodiments from other embodiments.
[0035] Embodiment 1
[0036] Refer to Figure 1 、 Figure 3 and Figure 6, which is the first embodiment of the present invention. This embodiment provides a thread - type winding vacuum tube winding device and process. The thread - type winding vacuum tube winding device and process include a conveying component 100 and a winding component 200. The two cooperate to perform winding operations on the thread - type vacuum tube, and the working efficiency is high.
[0037] The conveying component 100 includes a baffle 101, a conveyor belt 102, support legs 103, a feeding member 104, guide columns 105, a guide plate 106, a slideway 107, and a collection box 108. The conveyor belt 102 is arranged on one side of the baffle 101. The support legs 103 are fixed to the bottom of the baffle 101. The feeding member 104 is located on top of the conveyor belt 102. The guide columns 105 are fixed to the top of the baffle 101. One side of the guide plate 106 is fixed to the baffle 101. One side of the slideway 107 is fixed to the baffle 101. The collection box 108 is located below the slideway 107.
[0038] The baffle 101 is used for installing the conveyor belt 102, and the two are supported by the support legs 103. Through the setting of the feeding member 104, it is used for feeding the thread - type vacuum tube and conveying it through the conveyor belt 102. Through the setting of the guide columns 105 and the guide plate 106, it is used to apply a guiding force to the thread - type vacuum tube to prevent its angle from shifting during movement. When the thread - type vacuum tube flows out of the feeding member 104, the angle is such that the conveyor belt 102 is in a vertical state. When it contacts the guide column 105, its angle will shift by 90 degrees, and at this time, it is in a horizontal state with the conveyor belt 102. When passing through the guide plate 106, its angle will be straightened, thus avoiding the situation of its deviation. The collection box 108 is used for collecting the wound thread - type vacuum tubes.
[0039] The winding component 200 is arranged on the conveying component 100 and includes a support rod 201, a fixed frame 202, a winding member 203, a wire - releasing member 204, and a moving member 205. One end of the support rod 201 is fixed to the baffle 101, and the fixed frame 202 is fixed to the other end of the support rod 201. The winding member 203 is located below the fixed frame 202. The wire - releasing member 204 is located on one side of the winding member 203. The moving member 205 is arranged inside the fixed frame 202.
[0040] The number of the support rods 201 is four, which are used for supporting and fixing the fixed frame 202. The fixed frame 202 is used for installing the moving member 205. Through the setting of the winding member 203, it is used to clamp and lift the thread - type vacuum tube on top of the conveyor belt 102 and drive it to rotate. At this time, the copper wire is conveyed to the surface of the thread - type vacuum tube through the wire - releasing member 204. When the thread - type vacuum tube rotates, it can wind the copper wire, and the moving member 205 drives the winding member 203 to move, so that the copper wire is evenly wound on the surface of the thread - type vacuum tube.
[0041] Embodiment 2
[0042] Refer to Figures 1 to 8 , which is the second embodiment of the present invention. This embodiment is based on the previous embodiment.
[0043] Specifically, the feeding member 104 includes a feeding box 104a, a fixing bracket 104b, a first cylinder 104c, a first baffle 104d, a second baffle 104e, and a connecting rod 104f. The feeding box 104a is located above the conveyor belt 102. The fixing bracket 104b is fixed to the outside of the feeding box 104a. The first cylinder 104c is disposed on one side of the feeding box 104a. The first baffle 104d is fixed to the output end of the first cylinder 104c. The second baffle 104e is located on one side of the feeding box 104a. Both ends of the connecting rod 104f are fixed to the first baffle 104d and the second baffle 104e respectively.
[0044] The feeding box 104a is in the shape of a square funnel and is used for storing the threaded vacuum tubes. The fixing bracket 104b is used to support and fix the feeding box 104a. The number of the connecting rods 104f is two, which are respectively fixed on both sides of the first baffle 104d and the second baffle 104e. When the first baffle 104d closes with the bottom of the feeding box 104a, the threaded vacuum tubes cannot move downward. When the first baffle 104d separates from the bottom of the feeding box 104a, the threaded vacuum tubes at the top of the first baffle 104d will fall downward. At the same time, the second baffle 104e will insert into the feeding box 104a to intercept the threaded vacuum tubes above, so that only one threaded vacuum tube will fall downward during feeding, avoiding the situation of accumulation caused by excessive feeding. A slot corresponding to the second baffle 104e is provided on the feeding box 104a, and the distance between the first baffle 104d and the second baffle 104e is greater than the diameter of the threaded vacuum tube. The first cylinder 104c is fixed to the baffle 101 through a support, and the first cylinder 104c is used to drive the first baffle 104d to move.
[0045] Specifically, the winding member 203 includes a positioning plate 203a, a first motor 203b, a first positioning block 203c, a second cylinder 203d, and a second positioning block 203e. The positioning plate 203a is located above the conveyor belt 102. The first motor 203b is fixed to one side of the positioning plate 203a. The first positioning block 203c is fixed to the output shaft of the first motor 203b. The second cylinder 203d is fixed to one side of the positioning plate 203a. The second positioning block 203e is rotatably connected to the second cylinder 203d.
[0046] The positioning plate 203a is U-shaped. The first motor 203b and the second cylinder 203d are respectively fixed on both sides of the positioning plate 203a. The first positioning block 203c and the second positioning block 203e are both conical. The second positioning block 203e is rotationally connected to the output end of the second cylinder 203d through a bearing. When the threaded vacuum tube is located between the first positioning block 203c and the second positioning block 203e, the second cylinder 203d drives the second positioning block 203e to move, so that the second positioning block 203e pushes the threaded vacuum tube, and the threaded vacuum tube is clamped through the cooperation of the first positioning block 203c. At this time, starting the first motor 203b can drive the first positioning block 203c to rotate, so that the threaded vacuum tube can be rotated, thereby completing the winding of the copper wire. The diameters of the first positioning block 203c and the second positioning block 203e are larger than the inner diameter of the threaded vacuum tube, so that the threaded vacuum tube can be clamped and fixed.
[0047] Specifically, the winding member 203 further includes a third cylinder 203f, a pressing plate 203g, a positioning column 203h, and a fourth cylinder 203i. The third cylinder 203f is fixed on the top of the positioning plate 203a. The pressing plate 203g is fixed to the output end of the third cylinder 203f. One end of the positioning column 203h is fixed to the pressing plate 203g. The fourth cylinder 203i is fixed on the top of the positioning plate 203a.
[0048] When the copper wire contacts the surface of the threaded vacuum tube, the copper wire is pressed by the pressing plate 203g to make it in close contact with the threaded vacuum tube, so that the threaded vacuum tube can wind the copper wire when rotating. The third cylinder 203f is used to drive the pressing plate 203g to move up and down. The positioning column 203h is movably connected inside the positioning plate 203a. The pressing plate 203g is positioned by the positioning column 203h. Through the setting of the fourth cylinder 203i, it is used to drive the positioning plate 203a to move up and down, so that the threaded vacuum tube can be clamped and driven to move upward.
[0049] Specifically, the wire releasing member 204 includes a support plate 204a, a roller 204b, a positioning rod 204c, and a retaining ring 204d. The support plate 204a is fixed to one side of the baffle 101. The roller 204b is located on one side of the support plate 204a. The positioning rod 204c is fixed inside the roller 204b. One side of the retaining ring 204d is fixed to the positioning rod 204c.
[0050] There are two support plates 204a, which are respectively located on both sides of the drum 204b. Grooves are provided on the support plates 204a, and the positioning rods 204c are movably connected to the grooves. There are two retaining rings 204d, which are respectively fixed at both ends of the positioning rods 204c. The positioning rods 204c are limited by the retaining rings 204d to prevent them from separating from the grooves during rotation. A copper wire is wound around the drum 204b, and the copper wire can be unreeled by rotating the drum 204b.
[0051] Specifically, the wire unreeling member 204 further includes a connecting column 204e, a fixing frame 204f, a guide wheel 204g, and a second motor 204h. One end of the connecting column 204e is fixed to the fixing frame 202, the fixing frame 204f is fixed to the other end of the connecting column 204e, the guide wheel 204g is rotatably connected to the inner side of the fixing frame 204f, and the second motor 204h is fixed to one side of the fixing frame 204f.
[0052] The connecting column 204e is used to fix the fixing frame 204f. The fixing frame 204f is U-shaped. There are two guide wheels 204g, which are respectively located at the upper and lower ends inside the fixing frame 204f. Both guide wheels 204g are rotatably connected to the inside of the fixing frame 204f through rotating shafts. The copper wire is located between the two guide wheels 204g. The copper wire is positioned by the guide wheels 204g to prevent it from shifting. At the same time, when the guide wheels 204g rotate, the copper wire can also be conveyed, so that the copper wire can extend along the surface of the threaded vacuum tube. The output shaft of the second motor 204h is fixed to one of the guide wheels 204g. The second motor 204h is provided to drive the guide wheel 204g to rotate.
[0053] Specifically, the wire unreeling member 204 further includes a guide tube 204i, a fixing block 204j, a connecting plate 204k, a fifth cylinder 204l, and a cutter 204m. The guide tube 204i is located on one side of the fixing frame 204f. The fixing block 204j is fixed to the outside of the guide tube 204i. The connecting plate 204k is fixed to the outside of the connecting column 204e. The fifth cylinder 204l is fixed to the top of the connecting plate 204k. The cutter 204m is fixed to the output end of the fifth cylinder 204l.
[0054] The number of the fixing blocks 204j is two, which are respectively fixed on both sides of the surface of the guiding tube 204i. The bottom of the connecting plate 204k is fixed to the two fixing blocks 204j. Through the arrangement of the connecting plate 204k and the fixing blocks 204j, it is used to fix the guiding tube 204i. Through the arrangement of the guiding tube 204i, it is used to apply a guiding force to the copper wire to prevent the copper wire from shifting when moving. At the same time, one end of the guiding tube 204i extends to one side of the threaded vacuum tube, so that the copper wire can be accurately conveyed to the surface of the threaded vacuum tube. A cutting groove is provided on the guiding tube 204i. Through the arrangement of the cutting knife 204m, it is used to cut the copper wire. The fifth cylinder 204l is used to drive the cutting knife 204m to move up and down.
[0055] Specifically, the moving member 205 includes a sliding rod 205a and a movable block 205b. The sliding rod 205a is fixed to the inner side of the fixed frame 202. The movable block 205b is located outside the sliding rod 205a. The fourth cylinder 203i is fixed to the bottom of the movable block 205b.
[0056] The number of the sliding rods 205a is two, which are respectively fixed on both sides inside the fixed frame 202. The movable block 205b is movably connected to the outside of the sliding rod 205a. The movable block 205b is used to drive the fourth cylinder 203i to move, so that the threaded vacuum tube can move when rotating, so that the copper wire can be evenly wound on its surface. The sliding rod 205a is used to position the movable block 205b to prevent it from shifting when moving.
[0057] Specifically, the moving member 205 further includes a connecting block 205c, a movable column 205d, a support block 205e, a positioning shaft 205f and a third motor 205g. The connecting block 205c is fixed to the top of the movable block 205b. The movable column 205d is located inside the connecting block 205c. The support block 205e is fixed to the top of the fixed frame 202. The positioning shaft 205f is fixed to the inside of the connecting block 205c. The third motor 205g is located on one side of the fixed frame 202. A spiral groove S is provided on the movable column 205d. The positioning shaft 205f slides in the spiral groove S.
[0058] One end of the movable column 205d is rotatably connected to the support block 205e through a bearing. When the movable column 205d rotates, the positioning shaft 205f will slide along the inner wall of the spiral groove S. Through the cooperation of the two, the connecting block 205c can be driven to move, so that the connecting block 205c can drive the movable block 205b to move. Through the arrangement of the third motor 205g, it is used to drive the movable column 205d to rotate. The third motor 205g is fixed to one side of the fixed frame 202 through a mounting seat.
[0059] Embodiment 3
[0060] Refer to Figures 1 to 8 , which is the third embodiment of the present invention. This embodiment is based on the first two embodiments.
[0061] Specifically, a plurality of threaded vacuum tubes are placed in the feeding member 104, and the feeding member 104 quantitatively feeds the threaded vacuum tubes, and conveys them through the conveyor belt 102;
[0062] When the threaded vacuum tube moves below the winding member 203, the winding member 203 clamps the threaded vacuum tube;
[0063] The copper wire is unwound through the wire releasing member 204 so that the copper wire contacts the threaded vacuum tube, and at this time, the copper wire is wound by the rotation of the winding member 203;
[0064] While winding, the moving member 205 drives the winding member 203 to move, so as to evenly wind the copper wire on the outer side of the threaded vacuum tube;
[0065] The threaded vacuum tube completed with winding is collected by the collection box 108.
[0066] The specific operation method is as follows:
[0067] In use, first start the first cylinder 104c to drive the first baffle 104d to separate from the bottom of the feeding box 104a. After separation, close it again. At this time, a threaded vacuum tube will fall to the top of the conveyor belt 102 and be conveyed by the conveyor belt 102. When the threaded vacuum tube moves below the positioning plate 203a, stop the conveyor belt 102 and start the fourth cylinder 203i to drive the positioning plate 203a to move downward so that the first positioning block 203c and the second positioning block 203e are located on both sides of the threaded vacuum tube. At this time, start the second cylinder 203d to drive the second positioning block 203e to move, so that the second positioning block 203e pushes the threaded vacuum tube and clamps the threaded vacuum tube through the cooperation of the first positioning block 203c. Then, drive the positioning plate 203a to move upward again through the fourth cylinder 203i. At the same time, start the second motor 204h to drive the guide wheel 204g to rotate and convey the copper wire through the two guide wheels 204g. The copper wire is conveyed to the surface of the threaded vacuum tube through the guide tube 204i. At this time, start the third cylinder 203f to drive the pressing plate 203g to move downward so that the pressing plate 203g presses the copper wire to make the copper wire closely fit the surface of the threaded vacuum tube. At the same time, start the first motor 203b and the third motor 205g. Drive the first positioning block 203c to rotate through the first motor 203b, so that the threaded vacuum tube can rotate, thereby completing the winding of the copper wire. Drive the movable column 205d to rotate through the third motor 205g. When the movable column 205d rotates, the positioning shaft 205f will slide along the inner wall of the spiral groove S. Through the cooperation of the two, the connecting block 205c can be driven to move, so that the connecting block 205c drives the movable block 205b to move, and the movable block 205b drives the fourth cylinder 203i to move, so that the threaded vacuum tube can move when rotating, so that the copper wire can be evenly wound on its surface. When the copper wire is almost fully wound on the surface of the threaded vacuum tube, start the fifth cylinder 204l to drive the cutter 204m to move downward so that the cutter 204m cuts the copper wire in advance. After cutting, the threaded vacuum tube continues to rotate to completely wind the copper wire on its surface. When the winding is completed, turn off the first motor 203b and start the second cylinder 203d again to separate the second positioning block 203e from the threaded vacuum tube. After the clamping is released, the threaded vacuum tube falls to the top of the conveyor belt 102. At the same time, start the third motor 205g again to drive the movable column 205d to rotate in the reverse direction to move the fourth cylinder 203i to its initial position. Finally, start the conveyor belt 102 and the first cylinder 104c again to continue feeding and conveying the threaded vacuum tube.
[0068] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and not to limit them. Although the present invention has been described in detail with reference to the preferred embodiments, those of ordinary skill in the art should understand that the technical solutions of the present invention can be modified or equivalently replaced without departing from the spirit and scope of the technical solutions of the present invention, and they should all be covered within the scope of the claims of the present invention.
Claims
1. A threaded wire-winding vacuum tube wire-winding device, characterized in that: Comprising A conveying assembly (100), including a baffle (101), a conveyor belt (102), support legs (103), a material discharging member (104), guide columns (105), guide plates (106), slideways (107) and a collection box (108). The conveyor belt (102) is arranged on one side of the baffle (101), the support legs (103) are fixed to the bottom of the baffle (101), the material discharging member (104) is located on top of the conveyor belt (102), the guide columns (105) are fixed to the top of the baffle (101), one side of the guide plate (106) is fixed to the baffle (101), one side of the slideway (107) is fixed to the baffle (101), and the collection box (108) is located below the slideway (107); A winding assembly (200), arranged on the conveying assembly (100), including a support rod (201), a fixed frame (202), a winding member (203), a wire discharging member (204) and a moving member (205). One end of the support rod (201) is fixed to the baffle (101), the fixed frame (202) is fixed to the other end of the support rod (201), the winding member (203) is located below the fixed frame (202), the wire discharging member (204) is located on one side of the winding member (203), and the moving member (205) is arranged inside the fixed frame (202); The material discharging member (104) includes a material discharging box (104a), a fixed bracket (104b), a first cylinder (104c), a first baffle (104d), a second baffle (104e) and a connecting rod (104f). The material discharging box (104a) is located above the conveyor belt (102), the fixed bracket (104b) is fixed to the outside of the material discharging box (104a), the first cylinder (104c) is arranged on one side of the material discharging box (104a), the first baffle (104d) is fixed to the output end of the first cylinder (104c), the second baffle (104e) is located on one side of the material discharging box (104a), and both ends of the connecting rod (104f) are fixed to the first baffle (104d) and the second baffle (104e) respectively; The winding member (203) includes a positioning plate (203a), a first motor (203b), a first positioning block (203c), a second cylinder (203d) and a second positioning block (203e). The positioning plate (203a) is located above the conveyor belt (102), the first motor (203b) is fixed to one side of the positioning plate (203a), the first positioning block (203c) is fixed to the output shaft of the first motor (203b), the second cylinder (203d) is fixed to one side of the positioning plate (203a), and the second positioning block (203e) is rotatably connected to the second cylinder (203d); The wire releasing member (204) includes a support plate (204a), a roller (204b), a positioning rod (204c), and a retaining ring (204d). The support plate (204a) is fixed to one side of the baffle (101). The roller (204b) is located on one side of the support plate (204a). The positioning rod (204c) is fixed inside the roller (204b). One side of the retaining ring (204d) is fixed to the positioning rod (204c).
2. The threaded wire-winding vacuum tube wire-winding device according to claim 1, wherein: The wire winding member (203) further includes a third air cylinder (203f), a pressing plate (203g), a positioning post (203h), and a fourth air cylinder (203i). The third air cylinder (203f) is fixed to the top of the positioning plate (203a). The pressing plate (203g) is fixed to the output end of the third air cylinder (203f). One end of the positioning post (203h) is fixed to the pressing plate (203g). The fourth air cylinder (203i) is fixed to the top of the positioning plate (203a).
3. The threaded wire-winding vacuum tube wire-winding device according to claim 2, characterized in that: The wire releasing member (204) further includes a connecting column (204e), a fixing frame (204f), a guide wheel (204g), and a second motor (204h). One end of the connecting column (204e) is fixed to the fixing frame (202). The fixing frame (204f) is fixed to the other end of the connecting column (204e). The guide wheel (204g) is rotatably connected to the inside of the fixing frame (204f). The second motor (204h) is fixed to one side of the fixing frame (204f).
4. The thread - type winding vacuum tube winding device according to claim 3, characterized in that: The wire releasing member (204) further includes a guiding tube (204i), a fixing block (204j), a connecting plate (204k), a fifth air cylinder (204l), and a cutter (204m). The guiding tube (204i) is located on one side of the fixing frame (204f). The fixing block (204j) is fixed to the outside of the guiding tube (204i). The connecting plate (204k) is fixed to the outside of the connecting column (204e). The fifth air cylinder (204l) is fixed to the top of the connecting plate (204k). The cutter (204m) is fixed to the output end of the fifth air cylinder (204l).
5. The threaded wire winding vacuum tube wire winding device according to claim 4, characterized in that: The moving member (205) includes a sliding rod (205a) and a movable block (205b). The sliding rod (205a) is fixed to the inside of the fixing frame (202). The movable block (205b) is located on the outside of the sliding rod (205a). The fourth air cylinder (203i) is fixed to the bottom of the movable block (205b).
6. The threaded wire-winding vacuum tube wire-winding device according to claim 5, characterized in that: The moving member (205) further includes a connecting block (205c), a movable column (205d), a support block (205e), a positioning shaft (205f), and a third motor (205g). The connecting block (205c) is fixed to the top of the movable block (205b). The movable column (205d) is located within the connecting block (205c). The support block (205e) is fixed to the top of the fixed frame (202). The positioning shaft (205f) is fixed within the connecting block (205c). The third motor (205g) is located on one side of the fixed frame (202). A spiral groove (S) is formed in the movable column (205d), and the positioning shaft (205f) slides within the spiral groove (S).
7. A winding process for a threaded winding vacuum tube, characterized in that: Comprising the winding device according to any one of claims 1-6, the winding process comprising the following steps: Placing a plurality of threaded vacuum tubes in the feeding member (104), enabling the feeding member (104) to quantitatively feed the threaded vacuum tubes, and conveying them through the conveyor belt (102); When the threaded vacuum tube moves below the winding member (203), clamping the threaded vacuum tube by the winding member (203); Unwinding the copper wire through the wire feeding member (204) so that the copper wire contacts the threaded vacuum tube, and at this time, winding the copper wire by the rotation of the winding member (203); While winding, the moving member (205) drives the winding member (203) to move, thereby evenly winding the copper wire on the outer side of the threaded vacuum tube; The threaded vacuum tubes completed with winding are collected through the collection frame (108).
Citation Information
Patent Citations
Vacuum tube heat insulation sleeve and processing technology
CN115922088A