Oxygen-free copper wire processing and drawing device
By designing a sleeve and positioning wheel structure, the problem of inaccurate tension adjustment in the copper wire winding device for oxygen-free copper wire processing was solved, thereby improving the copper wire winding effect and increasing production efficiency.
Patent Information
- Application Number
- CN202520489272.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-19
- Publication Date
- 2026-02-13
- Estimated Expiration
- 2035-03-19
AI Technical Summary
Existing oxygen-free copper wire drawing equipment lacks an effective tension adjustment mechanism, which makes it impossible to accurately adjust the winding tension during the copper wire winding process, thus affecting the winding effect.
It adopts a sleeve and positioning wheel structure, and the position adjustment of the support plate enables precise adjustment of the copper wire winding tension. The connecting parts and bolt structure make it easy to replace the die head to adapt to the winding requirements of different copper wire specifications.
It enables precise tension adjustment during copper wire winding, improves production efficiency, reduces equipment downtime, and adapts to different production needs.
Smart Images

Figure CN223902643U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to oxygen -free copper wire processing technical field especially relates to a oxygen -free copper wire processing drawing device. BACKGROUND
[0002] In modern industrial production, oxygen-free copper wire is widely used in many fields due to its excellent performance. Oxygen-free copper wire has the characteristics of no hydrogen brittleness, which can maintain stable structure and performance in the processing process. At the same time, it has high conductivity and can efficiently transmit current, meeting the needs of various scenes with strict requirements on electrical properties. In the processing flow of oxygen-free copper wire, drawing treatment is a crucial link. Through the drawing device, tension is applied to the copper wire, so that its diameter is reduced, thereby obtaining small-diameter copper wire meeting the needs of different application scenarios.
[0003] However, the existing oxygen-free copper wire processing drawing device lacks effective tension adjustment mechanism during the winding process after copper wire drawing is completed, so that the winding tension of the copper wire cannot be accurately adjusted according to different production requirements during the winding process of the copper wire. This structure lacking adjustment function makes it difficult to accurately control the tension during the winding process, which may cause the copper wire to be too tight or too loose, thereby affecting the winding effect of the copper wire and affecting the subsequent processing and use. UTILITY MODEL CONTENT
[0004] The utility model aims at solving the problem that in the prior art, there is a lack of effective tension adjustment mechanism, which leads to the inability to accurately adjust the winding tension of the copper wire according to different production requirements during the winding process of the copper wire, thereby affecting the winding effect of the copper wire.
[0005] In order to achieve the above-mentioned purpose, the utility model adopts the following technical scheme: an oxygen-free copper wire processing drawing device, comprising a device body, a main shaft movably embedded on the right side of the inside of the device body, a screw rod threadedly connected to the inside top side of the main shaft, a crank handle fixedly installed on the top of the screw rod, a sleeve movably sleeved on the outer surface of the crank handle, the sleeve being movably sleeved on the outer surface of the main shaft, first sliding grooves being formed on the outer surfaces of the main shaft on both sides, the inner walls of the sleeve on both sides being slidably connected to the inner surfaces of the first sliding grooves, a plurality of support rods being movably connected to the inside of the sleeve on both sides, the plurality of support rods being divided into two groups, one end of the support rods in each group being movably connected to a support plate, and a plurality of connecting columns being fixedly installed on the outer surface of the main shaft.
[0006] As a preferred embodiment, second sliding grooves are formed in the interiors of the connecting columns, and sliding blocks are fixedly installed on the bottoms of the support plates.
[0007] The technical effect of the above-mentioned further scheme is that the sliding blocks can slide on the inner surfaces of the second sliding grooves.
[0008] As a preferred implementation form, the outer surfaces of the plurality of sliding blocks are slidingly connected to the inner surface of the second sliding groove, and the bottom of the main shaft is fixedly installed with a motor.
[0009] The technical effect of the further scheme is that the sliding blocks can be moved by the supporting plate.
[0010] As a preferred implementation form, the motor is fixedly installed inside the device body, and the inside of the device body is fixedly installed with an electric telescopic rod.
[0011] The technical effect of the further scheme is that the main shaft can be rotated by the motor.
[0012] As a preferred implementation form, the top of the electric telescopic rod is fixedly installed with a connecting plate, and the inside left side of the connecting plate is movably embedded with a first positioning wheel.
[0013] The technical effect of the further scheme is that the connecting plate can be lifted and lowered by the electric telescopic rod.
[0014] As a preferred implementation form, the top of the connecting plate is movably embedded with a second positioning wheel on both sides, and the top left side of the device body is fixedly installed with two connecting pieces.
[0015] The technical effect of the further scheme is that the copper wire can be limited by the first positioning wheel and the second positioning wheel.
[0016] As a preferred implementation form, the opposite sides of the two connecting pieces are provided with positioning grooves, and the inside of the two positioning grooves is movably embedded with a die.
[0017] The technical effect of the further scheme is that the die can be embedded in the inside of the positioning groove.
[0018] As a preferred implementation form, the inside of the two connecting pieces is screw-connected with a bolt on both sides, and the right side of the four bolts is movably connected to the left side of the die.
[0019] The technical effect of the further scheme is that the bolt can be rotated to abut one end of the die to the left side of the die to fix the die inside the connecting piece.
[0020] Compared with the prior art, the utility model has the advantages and positive effects that,
[0021] 1. The utility model discloses, when using, through the sleeve and the second location wheel structure's setting, not only make personnel can pass through the position of support plate's adjustment, realize the accurate adjustment of copper wire winding process's tension to adapt to the winding demand of different copper wire specification, solved the lack of effective tension adjustment mechanism in prior art, lead to in the process of copper wire winding, can not accurately adjust the winding tension of copper wire according to different production demand, and then influence the winding effect of copper wire problem.
[0022] 2. The utility model discloses, when using, through the setting of connecting piece and bolt structure, make the replacement of die head become more intuitive and convenient, reduced the demand of complex operation, shortened the equipment downtime, improved production efficiency. ACCURACY
[0023] Fig. 1 The utility model provides a kind of rear view solid structure schematic diagram of oxygen-free copper wire processing drawing device;
[0024] Fig. 2 The utility model provides a kind of device body cross section solid structure schematic diagram of oxygen-free copper wire processing drawing device;
[0025] Fig. 3 The utility model provides a kind of main shaft cross section solid structure schematic diagram of oxygen-free copper wire processing drawing device;
[0026] Fig. 4 The utility model provides a kind of partial solid structure schematic diagram of oxygen-free copper wire processing drawing device.
[0027] Legend:
[0028] 1, device body;101, main shaft;102, screw;103, ratchet wrench;104, sleeve;105, first sliding slot;106, support rod;107, support plate;108, connecting column;109, second sliding slot;110, sliding block;111, motor;112, electric telescopic rod;113, connecting plate;114, first location wheel;115, second location wheel;2, connecting piece;201, location slot;202, die head;203, bolt. DETAILED DESCRIPTION
[0029] The technical scheme in the embodiments of the utility model will be described clearly and completely below in conjunction with the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor belong to the scope of protection of the utility model.
[0030] Embodiment 1, please refer toFigs. 1 to 4 The utility model provides a technical scheme: a kind of oxygen-free copper wire processing drawing device, the inside right side of device body 1 is movably embedded with main shaft 101, the inside top side of main shaft 101 is threadedly connected with screw rod 102, the top of screw rod 102 is fixedly installed with handle 103, the outer surface of handle 103 is movably sleeved with sleeve 104, sleeve 104 is movably sleeved in the outer surface of main shaft 101, the outer surface of main shaft 101 is equipped with first sliding slot 105 on both sides, the inner wall of sleeve 104 is slidably connected in the inner surface of first sliding slot 105 on both sides, the inside both sides of sleeve 104 are movably connected with multiple support rods 106, multiple support rods 106 are divided into two groups in two groups, the other end of two groups of support rods 106 is movably connected with support plate 107, the outer surface of main shaft 101 is fixedly installed with multiple connecting columns 108, the inside of multiple connecting columns 108 is equipped with second sliding slot 109, the bottom of multiple support plates 107 is fixedly installed with sliding block 110, the outer surface of multiple sliding blocks 110 is slidably connected in the inner surface of second sliding slot 109, the bottom of main shaft 101 is fixedly installed with motor 111, motor 111 is fixedly installed in the inside of device body 1, the inside of device body 1 is fixedly installed with electric telescopic rod 112, the top of electric telescopic rod 112 is fixedly installed with connecting plate 113, the inside left side of connecting plate 113 is movably embedded with first positioning wheel 114.
[0031] In this embodiment, the operator can first pass one end of the copper wire through the die head 202 and place it against the top of the first positioning wheel 114, then pass it through the center of the two second positioning wheels 115, and fix it to the support plate 107. Then, the operator can start the motor 111 via the power supply system of the motor 111 on the device body 1. During operation, the motor 111 will drive the main shaft 101 through the output shaft, and the main shaft 101 will drive the support plate 107 to rotate via the sleeve 104 and the support rod 106 to wind the copper wire. Simultaneously, the operator can start the electric telescopic rod 112 via the power supply system of the electric telescopic rod 112. When extending, the electric telescopic rod 112 will drive the copper wire upwards via the connecting plate 113, the first positioning wheel 114, and the second positioning wheels 115 to adjust the winding position of the copper wire on the support plate 107. The operator can also turn the crank handle 103 to rotate the screw 102, causing the screw 102 to... When rotating, it can slide downward inside the main shaft 101. While the screw 102 moves downward, the handle 103 can pull the sleeve 104 to slide on the inner surface of the first groove 105, so that the sleeve 104 can slide downward on the outer surface of the main shaft 101. When the sleeve 104 slides, it can push the support rod 106 to flip it. At the same time, the support rod 106 pushes the support plate 107 outward. When the support plate 107 moves, it can pull the slider 110 to slide on the inner wall surface of the second groove 109 on the connecting column 108, so that the support plate 107 can expand outward, adjust the tension when the copper wire is wound, and through the structure of the sleeve 104 and the second positioning wheel 115, the operator can adjust the position of the support plate 107 to achieve precise adjustment of the tension during the winding of the copper wire, so as to adapt to the winding requirements of different copper wire specifications.
[0032] Example 2, as Figs. 1 to 4 As shown, the top two sides of the connecting plate 113 are movably fitted with second positioning wheels 115. Two connecting parts 2 are fixedly installed on the top left side of the device body 1. Positioning grooves 201 are opened on the opposite side of the two connecting parts 2. The mold head 202 is movably fitted inside the two positioning grooves 201. Bolts 203 are threadedly connected to the inside two sides of the two connecting parts 2. The right side of the four bolts 203 is movably connected to the left side of the mold head 202.
[0033] In this embodiment, the operator can first reverse the bolt 203 so that one end of it is detached from the left side of the mold head 202, and then pull the mold head 202 upward so that it can slide upward inside the positioning groove 201. This allows the mold head 202 to detach from the connector 2, enabling the mold head 202 to be replaced. Furthermore, the design of the connector 2 and bolt 203 structure makes the replacement of the mold head 202 more intuitive and convenient, reducing the need for complex operations, shortening equipment downtime, and improving production efficiency.
[0034] Principle: In use, personnel can first pass one end of the copper wire through the die 202 and fit the top of the first positioning wheel 114, then pass it through the center of the two second positioning wheels 115, and fix it on the support plate 107, and then power the motor 111 on the device body 1 to start the motor 111, so that it can drive the main shaft 101 through the output shaft when running, and drive the support plate 107 to rotate through the sleeve 104 and the support rod 106, so as to wind the copper wire, and personnel can start the electric telescopic rod 112 through the power supply system of the electric telescopic rod 112, so that it can drive the copper wire to rise when extending through the connecting plate 113 and the first positioning wheel 114 and the second positioning wheel 115, to adjust the winding position of the copper wire on the support plate 107, and personnel can rotate the handle 103 to drive the screw rod 102 to rotate, so that the screw rod 102 can slide downward in the main shaft 101 when rotating, and the sleeve 104 can slide on the inner surface of the first sliding groove 105 by pulling the sleeve 104 when the screw rod 102 moves downward, so that the sleeve 104 can slide downward on the outer surface of the main shaft 101, When the sleeve 104 slides, it can push the support rod 106 to flip and simultaneously push the support plate 107 outward through the support rod 106, so that the support plate 107 can be expanded outward when the support plate 107 moves, to adjust the tension of the copper wire during winding, and the structure of the sleeve 104 and the second positioning wheel 115 can not only enable personnel to adjust the position of the support plate 107 to accurately adjust the tension during the winding of the copper wire, to meet the winding requirements of different copper wire specifications. In use, personnel can first reverse the bolt 203 to detach one end of the bolt 203 from the left side of the die 202, and pull the die 202 upward so that it can slide upward in the positioning groove 201, so that the die 202 can be detached from the connecting piece 2, and the die 202 can be replaced, and the structure of the connecting piece 2 and the bolt 203 makes the replacement of the die 202 more intuitive and convenient, reduces the need for complex operations, shortens the equipment downtime, and improves the production efficiency.
[0035] The above is only a preferred embodiment of the present application, and is not intended to limit the present application in other forms. Any skilled person in the art can modify or change the above disclosed technical content to equivalent embodiments applied to other fields, but any simple modification, equivalent change and modification of the above embodiments made in accordance with the technical essence of the present application still falls within the protection scope of the present application.
Claims
1. A non-oxygen copper wire processing drawing device comprising a device body (1), characterized in that: The inside right side of the device body (1) is movably embedded with a main shaft (101), the inside top side of the main shaft (101) is threadedly connected with a screw rod (102), the top of the screw rod (102) is fixedly installed with a crank handle (103), the outer surface of the crank handle (103) is movably sleeved with a sleeve (104), the sleeve (104) is movably sleeved on the outer surface of the main shaft (101), the outer surface of the main shaft (101) is provided with a first sliding groove (105) on both sides, the inner wall of the sleeve (104) is slidably connected with the inner surface of the first sliding groove (105) on both sides, the inside of the sleeve (104) is movably connected with a plurality of supporting rods (106) on both sides, a plurality of supporting rods (106) are divided into two groups, two groups of supporting rods (106) are movably connected with a supporting plate (107) at the other end, and a plurality of connecting columns (108) are fixedly installed on the outer surface of the main shaft (101).
2. The oxygen-free copper wire processing and drawing device according to claim 1, characterized in that: The inside of a plurality of connecting columns (108) is provided with a second sliding groove (109), and the bottom of a plurality of supporting plates (107) is fixedly installed with a sliding block (110).
3. The oxygen-free copper wire processing and drawing device according to claim 2, characterized in that: The outer surface of a plurality of sliding blocks (110) is slidably connected with the inner surface of the second sliding groove (109), and the bottom of the main shaft (101) is fixedly installed with a motor (111).
4. The oxygen-free copper wire processing and drawing device according to claim 3, characterized in that: The motor (111) is fixedly installed in the inside of the device body (1), and the inside of the device body (1) is fixedly installed with an electric telescopic rod (112).
5. The oxygen-free copper wire processing and drawing device according to claim 4, characterized in that: The top of the electric telescopic rod (112) is fixedly installed with a connecting plate (113), and the inside left side of the connecting plate (113) is movably embedded with a first positioning wheel (114).
6. The oxygen-free copper wire processing and drawing device according to claim 5, characterized in that: The top of the connecting plate (113) is movably embedded with a second positioning wheel (115) on both sides, and the top left side of the device body (1) is fixedly installed with two connecting pieces (2).
7. The oxygen-free copper wire processing and drawing device according to claim 6, characterized in that: The opposite side of the two connecting pieces (2) is provided with a positioning groove (201), and the inside of the two positioning grooves (201) is movably embedded with a die (202).
8. The oxygen-free copper wire processing and drawing device according to claim 7, characterized in that: The inside of the two connecting pieces (2) is threadedly connected with a bolt (203) on both sides, and the right side of the four bolts (203) is movably connected with the left side of the die (202).