Automatic wire drawing mechanism for stainless steel wire production process

By using components such as cylinders and baffles to ensure uniform feeding and guidance of materials, and combining high-precision fixtures to suppress cutting vibrations and promptly clean cutting debris, the problem of material accumulation and slippage caused by uneven feeding in stainless steel wire production is solved, thereby improving processing accuracy and efficiency.

CN120169856BActive Publication Date: 2026-04-07JIANGSU GAODING ELECTRIC HEAT MATERIALS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-11
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

In existing stainless steel wire production processes, uneven material feeding in automated wire drawing mechanisms leads to localized accumulation and slippage, increasing belt load, causing material loss and chaos in the work area.

Method used

The system uses components such as cylinders, baffles, L-shaped plates, support plates, friction columns, lower slide plates, guide plates, and springs to ensure that materials are fed evenly onto the conveyor belt. The guide plates prevent deviation, and high-precision clamps suppress cutting vibrations and clean cutting debris and dust in a timely manner.

Benefits of technology

This ensures that materials are evenly distributed on the conveyor belt, preventing accumulation and slippage, ensuring a smooth and clean cut surface, reducing material loss and cleaning work, and improving processing accuracy and efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention relates to the field of wire drawing mechanism technology and discloses an automatic wire drawing mechanism for stainless steel wire production. The mechanism includes a worktable, a feeding device on the top of the worktable, a cutting device on the top of the worktable, a collecting device on the inner wall of the worktable, and a belt on the inner wall of the worktable. The feeding device includes a cylinder, a baffle, an L-shaped plate, a support plate, a second support plate, a friction column, a sliding plate, a guide plate, a second guide plate, a spring, and a leveling plate. The baffle is fixedly connected to the top of the worktable, and the cylinder is fixedly installed on the top of the baffle. The L-shaped plate is fixedly connected to the telescopic end of the cylinder. This invention can restrict the lateral movement of materials, ensuring that the materials are always within the effective transport range of the belt, accurately transporting them from the starting point to the unloading point, avoiding material spillage, and reducing material loss and cleaning work.
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Description

Technical Field

[0001] This invention relates to the field of wire drawing mechanism technology, specifically to an automated wire drawing mechanism for stainless steel wire production. Background Technology

[0002] The stainless steel surface is brushed by abrasive products, such as sandpaper and abrasive belts. During the process, these abrasive materials physically rub the stainless steel surface, forming fine, thread-like textures. These textures can be straight or made into random patterns or other designs as needed.

[0003] Patent CN215844915U discloses an automatic wire drawing mechanism for stainless steel wire production, including a housing. A fixing plate is welded to one end of the housing, and the surface of the fixing plate has several fixing grooves. The fixing grooves contain a clamping mechanism to facilitate clamping stainless steel wires of different diameters. A lubrication mechanism is installed below the fixing plate to reduce friction during the wire drawing process. Below the lubrication mechanism is a guide wheel mechanism to adjust the direction of the stainless steel wire during drawing. An installation rod is installed at the other end of the housing. In this automatic wire drawing mechanism for stainless steel wire production, the interlocking teeth securely connect the telescopic sleeve and the telescopic rod, allowing for easy adjustment of the length of the telescopic rod connected to one end of the telescopic sleeve according to the diameter of the stainless steel wire. The fixing plate effectively clamps the stainless steel wire, preventing it from falling off during the drawing process and causing drawing failure.

[0004] During the use of the above-mentioned device, uneven material feeding may cause local accumulation of material on the belt. When the feeding speed fluctuates, the material will accumulate in a certain area of ​​the belt during the fast feeding stage. This will not only increase the local load on the belt, but may also cause the material to slip off the edge of the belt, resulting in material loss and chaos in the working area. Therefore, an automatic wire drawing mechanism for stainless steel wire production process is proposed to solve the above-mentioned problems. Summary of the Invention

[0005] The technical problem to be solved by the present invention is to provide an automatic wire drawing mechanism for stainless steel wire production process, which addresses the shortcomings of the prior art.

[0006] To solve the above-mentioned technical problems, the technical solution adopted by the present invention is: an automatic wire drawing mechanism for stainless steel wire production, including a worktable, a feeding device and a cutting device on the top of the worktable, a collecting device on the inner wall of the worktable, and a belt on the inner wall of the worktable. The feeding device includes a cylinder, a baffle, an L-shaped plate, a support plate, a second support plate, a friction column, a sliding plate, a guide plate, a second guide plate, a spring, and a leveling plate. The baffle is fixedly connected to the top of the worktable, the cylinder is fixedly installed on the top of the baffle, and the L-shaped plate is fixedly connected to the telescopic end of the cylinder. The movement of the L-shaped plate drives the material to be transported evenly onto the belt for subsequent processing. During the conveyor belt transport process, if the feeding is uneven, it may cause local accumulation of material on the belt. When the feeding speed fluctuates, the material will accumulate in a certain area of ​​the belt during the fast feeding phase. This not only increases the local load on the belt but may also cause the material to slip off the edge of the belt, resulting in material loss and chaos in the working area. The feeding mechanism ensures that the material is evenly distributed on the belt, allowing the belt to operate under a stable load and effectively preventing material accumulation and slippage. Support plate one is fixedly connected to the bottom of the cylinder, support plate two is fixedly connected to the front of support plate one, friction pins are installed on the inner wall of support plate one, the sliding plate is fixedly connected to the inner wall of support plate two, guide plate one is fixedly connected to the rear of the sliding plate, the leveling plate is fixedly connected to the rear of guide plate two, and a spring is fixedly connected to the front of the leveling plate. The front of the spring is fixedly connected to the inner wall of the worktable. The telescopic end of the cylinder contacts the inner wall of the baffle, L-shaped plate one is slidably connected to the inner wall of the baffle, and guide plate two contacts guide plate one. The leveling plate guides the material entering the belt. This material guiding device prevents the material from deviating from the belt during transport. When the belt is transporting, the material may move towards the edge of the belt; this device restricts the lateral movement of the material, ensuring that the material is always within the effective transport range of the belt, accurately transported from the starting point to the unloading point, avoiding material spillage, reducing material loss and cleaning work.

[0007] Preferably, the cutting device includes a horizontal plate, a concave plate, a cutting plate, and an L-shaped plate. The horizontal plate is fixedly connected to the left side of the leveling plate, the concave plate is fixedly connected to the top of the worktable, and the cutting plate is slidably connected to the inner wall of the horizontal plate. The cutting plate moves upward to cut the material, making the cut material easier to process. The material after drawing and cutting has good consistency, and in subsequent processing, such as bending, drilling, or welding, the cut material can better fit together. The L-shaped plate is fixedly connected to the left side of the cutting plate. The cutting device also includes a roller, a reciprocating screw, a moving plate, a clamping plate, and a sliding plate. The roller contacts the L-shaped plate, the reciprocating screw is fixedly connected to the front of the roller, the moving plate is movably connected to the circumferential surface of the reciprocating screw, and the clamping plate is fixedly connected to the moving plate. At the top, the first sliding plate is fixedly connected to the inner wall of the worktable, the moving plate is slidably connected to the inner wall of the first sliding plate, the first clamping plate is slidably connected to the first sliding plate, the outer wall of the second L-shaped plate is slidably connected to the inner wall of the worktable, the horizontal plate is slidably connected to the cutting plate, and the second L-shaped plate is slidably connected to the inner wall of the concave plate. The movement of the moving plate drives the first clamping plate to move and clamp the material to be cut. During the cutting process, the contact between the cutting tool and the material will cause the material to vibrate. This vibration will not only affect the cutting accuracy, but may also increase the roughness of the cut surface. When cutting slender materials, the vibration may cause wavy patterns on the cut surface. Appropriate clamping can effectively suppress this vibration. When cutting precision mechanical parts, high-precision fixtures are used to fix the parts, reduce the impact of vibration on the cutting quality, and ensure the flatness and smoothness of the cut surface.

[0008] Preferably, the collection device includes a second clamping plate, a vertical plate, a roller brush, a collection box, a second chute plate, a dust storage box, a slide rod, and a push plate. The second clamping plate is fixedly connected to the rear of the first clamping plate. The vertical plate contacts the first chute plate. The roller brush is fixedly connected to the inner wall of the vertical plate. The roller brush moves to clean the dust on the first chute plate. During the cutting process, if cutting debris remains in the cutting area, it will affect the contact between the cutting tool and the material. For mechanical cutting, if debris enters between the cutting edge and the material, it will accelerate the wear of the cutting edge, resulting in a rough and uneven cutting surface. Timely cleaning of cutting debris can ensure the normal operation of the cutting tool, thereby making the cut material have smooth edges and accurate dimensions. The collection box is fixedly connected to the inner wall of the workbench, the ash storage box is fixedly connected to the inner wall of the workbench, the second chute plate contacts the inner wall of the ash storage box, the slide rod is fixedly connected to the right side of the moving plate, the push plate is fixedly connected to the left side of the second chute plate, the slide rod is slidably connected to the inner wall of the ash storage box, and the roller brush contacts the first chute plate. The movement of the slide rod drives the push plate to move, pushing the dust falling from the belt and the dust falling from the top on the right side to the left. When the dust in the collection box is pushed to one side, the dust can be gathered in a smaller area, making the dust cleaner more efficient, and then uniformly processed, such as pouring the dust into a special industrial waste recycling container or environmental protection equipment.

[0009] The present invention, by adopting the above technical solution, can bring the following beneficial effects:

[0010] 1. The automatic wire drawing mechanism in this stainless steel wire production process utilizes a combination of components including a cylinder, baffle, L-shaped plate 1, support plate 1, support plate 2, friction column, lower slide plate, guide plate 1, guide plate 2, spring, and balancing plate. The movement of L-shaped plate 1 ensures the material is evenly fed onto the conveyor belt for subsequent processing. However, uneven feeding during belt transport can lead to localized material accumulation. When the feeding speed fluctuates, material may accumulate in certain areas of the belt during the rapid feeding phase. This not only increases the local load on the belt but may also cause the material to fall off the conveyor belt. Slippage at the belt edge causes material loss and chaos in the work area. Uniform feeding ensures that the material is evenly distributed on the belt, allowing the belt to operate under a stable load and effectively preventing material accumulation and slippage. The straightening plate guides the material entering the belt, and the material guiding device prevents the material from deviating from the belt during transportation. When the belt is transporting, the material may move towards the belt edge. This device can limit the lateral movement of the material and ensure that the material is always within the effective transportation range of the belt, accurately transporting it from the starting point to the unloading point, avoiding material spillage, and reducing material loss and cleanup work.

[0011] 2. This stainless steel wire production process uses an automated wire drawing mechanism. Through the coordinated operation of a horizontal plate, concave plate, cutting plate, L-shaped plate II, rollers, reciprocating screw, moving plate, clamping plate I, and sliding plate I, the cutting plate moves upwards to cut the material, making it easier to process. The material after drawing and cutting has good consistency, allowing for better fit in subsequent processing operations such as bending, drilling, or welding. The moving plate moves, causing the clamping plate I to move and clamp the material to be cut. During cutting, the contact between the cutting tool and the material causes vibration, which not only affects cutting accuracy but may also increase the roughness of the cut surface. When cutting slender materials, vibration may cause wavy patterns on the cut surface. Appropriate clamping can effectively suppress this vibration. When cutting precision mechanical parts, high-precision fixtures are used to fix the parts, reducing the impact of vibration on cutting quality and ensuring the flatness and smoothness of the cut surface.

[0012] 3. The automatic wire drawing mechanism in this stainless steel wire production process utilizes a reciprocating screw, a moving plate, a clamping plate (first type), a chute plate (first type), a collection device, a clamping plate (second type), a vertical plate, a roller brush, a collection box, a ash storage box, a sliding rod, and a push plate, all working in coordination. The moving roller brush cleans the dust on the chute plate (first type). During the cutting process, if cutting debris remains in the cutting area, it will affect the contact between the cutting tool and the material. For mechanical cutting, debris entering between the cutting edge and the material will accelerate the wear of the cutting edge, resulting in a rough and uneven cut surface. Timely cleaning of cutting debris ensures the normal operation of the cutting tool, resulting in smooth edges and accurate dimensions of the cut material. The sliding rod moves, driving the push plate to move and pushes the dust falling from the belt and the dust falling from above on the right side to the left. When the dust in the collection box is pushed to one side, it can be concentrated in a smaller area, making the dust cleaner and more efficient. Then, it can be disposed of uniformly, such as being poured into a special industrial waste recycling container or environmentally friendly treatment equipment. Attached Figure Description

[0013] Figure 1 This is a schematic diagram of the overall structure of the present invention;

[0014] Figure 2 This is a schematic diagram of the feeding device of the present invention;

[0015] Figure 3 For the present invention Figure 2 Schematic diagram of the structure at point A in the middle;

[0016] Figure 4 This is a diagram of the cutting device structure of the present invention;

[0017] Figure 5This is a half-sectional view of the cutting device of the present invention;

[0018] Figure 6 This is a schematic diagram of the collection device of the present invention;

[0019] Figure 7 For the present invention Figure 6 Schematic diagram of structure B in the middle.

[0020] In the diagram: 1. Workbench; 2. Feeding device; 201. Cylinder; 202. Baffle; 203. L-shaped plate one; 204. Support plate one; 205. Support plate two; 206. Friction column; 207. Lower slide plate; 208. Guide plate one; 209. Guide plate two; 210. Spring; 211. Alignment plate; 3. Cutting device; 301. Horizontal plate; 302. Concave plate; 303. Cutting plate; 304. L-shaped plate two; 305. Roller; 306. Reciprocating screw; 307. Moving plate; 308. Clamping plate one; 309. Slide plate one; 4. Collection device; 401. Clamping plate two; 402. Vertical plate; 403. Roller brush; 404. Collection box; 405. Slide plate two; 406. Ash storage box; 407. Slide rod; 408. Push plate; 5. Belt. Detailed Implementation

[0021] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0022] Please see Figures 1-7One embodiment of the present invention is: an automatic wire drawing mechanism for stainless steel wire production, including a worktable 1, a feeding device 2 and a cutting device 3 on the top of the worktable 1, a collecting device 4 and a belt 5 on the inner wall of the worktable 1, the feeding device 2 including a cylinder 201, a baffle 202, an L-shaped plate 203, a support plate 204, a support plate 205, a friction column 206, a sliding plate 207, a guide plate 208, a guide plate 209, a spring 210, and a leveling plate 211, the baffle 202 being fixedly connected to the top of the worktable 1, the cylinder 201 being fixedly installed on the top of the baffle 202, and the L-shaped plate 203 being fixedly connected to the telescopic end of the cylinder 201. When the device is activated... During operation, material is conveyed via belt 5. The downward movement of the telescopic end of cylinder 201 moves support plate 204 downward, which in turn moves friction column 206. The friction column 206 polishes the material surface, causing it to form filaments. The movement of the telescopic end of cylinder 201 also moves L-shaped plate 203, ensuring the material is evenly fed onto belt 5 for subsequent processing. However, uneven feeding during belt 5 transport can lead to localized material accumulation. When the feeding speed fluctuates, material may accumulate in certain areas of belt 5 during the rapid feeding phase, increasing the local load on belt 5. Material may slip off the edge of belt 5, causing material loss and chaos in the working area. Uniform feeding ensures that the material is evenly distributed on belt 5, allowing belt 5 to operate under a stable load and effectively preventing material accumulation and slippage. Support plate 1 204 is fixedly connected to the bottom of cylinder 201, support plate 205 is fixedly connected to the front of support plate 1 204, friction column 206 is installed on the inner wall of support plate 1 204, slide plate 207 is fixedly connected to the inner wall of support plate 205, guide plate 1 208 is fixedly connected to the rear of slide plate 207, aligning plate 211 is fixedly connected to the rear of guide plate 209, spring 210 is fixedly connected to the front of aligning plate 211, and the front of spring 210 is fixedly connected to the inner wall of worktable 1. The telescopic end of cylinder 201 contacts the inner wall of baffle 202. L-shaped plate 203 is slidably connected to the inner wall of baffle 202. Guide plate 209 contacts guide plate 208. When support plate 204 moves, it drives support plate 205 to move. The movement of support plate 205 drives the lower slide plate 207 to move downward. The inclined surface on the guard plate of workbench 1 drives the lower slide plate 207 to move backward. The movement of lower slide plate 207 drives guide plate 209 to move. The movement of guide plate 209 drives the straightening plate 211 to move. It is reset by spring 210. The straightening plate 211 guides the material entering the belt 5. The material guiding device can prevent the material from deviating from the belt 5 during transportation. When the belt 5 is transporting, the material may move towards the edge of the belt 5.It can limit the lateral movement of materials, ensuring that the materials are always within the effective transport range of belt 5, accurately transported from the starting point to the unloading point, avoiding material spillage, and reducing material loss and cleanup work.

[0023] The cutting device 3 includes a horizontal plate 301, a concave plate 302, a cutting plate 303, and an L-shaped plate 304. The horizontal plate 301 is fixedly connected to the left side of the leveling plate 211, the concave plate 302 is fixedly connected to the top of the worktable 1, and the cutting plate 303 is slidably connected to the inner wall of the horizontal plate 301. The horizontal plate 301 moves as the leveling plate 211 moves, pushing the inclined groove on the cutting plate 303, causing the cutting plate 303 to move upward. The upward movement of the cutting plate 303 cuts the material, making the cut material easier to process. The material after drawing and cutting has good properties. The consistency ensures better fit of the cut material during subsequent processing, such as bending, drilling, or welding. L-shaped plate 2 304 is fixedly connected to the left side of cutting plate 303. The cutting device 3 also includes rollers 305, reciprocating screw 306, moving plate 307, clamping plate 308, and sliding plate 309. Rollers 305 contact L-shaped plate 2 304, reciprocating screw 306 is fixedly connected to the front of rollers 305, moving plate 307 is movably connected to the circumferential surface of reciprocating screw 306, clamping plate 308 is fixedly connected to the top of moving plate 307, and sliding plate 309... 9 is fixedly connected to the inner wall of the workbench 1. The moving plate 307 is slidably connected to the inner wall of the slide plate 309. The clamping plate 308 is slidably connected to the slide plate 309. The outer wall of the L-shaped plate 304 is slidably connected to the inner wall of the workbench 1. The horizontal plate 301 is slidably connected to the cutting plate 303. The L-shaped plate 304 is slidably connected to the inner wall of the concave plate 302. The movement of the cutting plate 303 drives the movement of the L-shaped plate 304. The movement of the L-shaped plate 304 drives the roller 305 to rotate due to friction. The rotation of the roller 305 drives the reciprocating screw 306 to rotate. The cross-shaped screw on the reciprocating screw 306 rotates. The groove drives the moving plate 307 to move, and the moving plate 307 drives the clamping plate 308 to move to clamp the material to be cut. During the cutting process, the contact between the cutting tool and the material will cause the material to vibrate. This vibration will not only affect the cutting accuracy, but may also increase the roughness of the cut surface. When cutting slender materials, vibration may cause wavy patterns on the cut surface. Appropriate clamping can effectively suppress this vibration. When cutting precision mechanical parts, high-precision fixtures are used to fix the parts, reduce the impact of vibration on the cutting quality, and ensure the flatness and smoothness of the cut surface.

[0024] Working Principle: When the device starts, material is conveyed via belt 5. The downward movement of the telescopic end of cylinder 201 moves support plate 204 downward, which in turn moves friction column 206. The friction column 206 polishes the material surface, causing it to form filaments. The movement of the telescopic end of cylinder 201 also moves L-shaped plate 203, ensuring the material is evenly fed onto belt 5 for subsequent processing. Uneven feeding during belt 5 transport can lead to localized material accumulation. When the feeding speed fluctuates, material may accumulate in certain areas of belt 5 during the rapid feeding phase. This not only increases the local load on belt 5 but may also cause material to slip off the edges, resulting in material loss and clutter in the working area. Even feeding ensures uniform material flow. To ensure the material is evenly distributed on belt 5, allowing belt 5 to operate under a stable load, effectively preventing material accumulation and slippage, the movement of support plate 1 204 drives support plate 205 to move. The movement of support plate 205 drives the lower slide plate 207 to move downwards. The inclined surface on the guard plate of workbench 1 drives the lower slide plate 207 to move backwards. The movement of the lower slide plate 207 drives guide plate 209 to move. The movement of guide plate 209 drives the straightening plate 211 to move, which is reset by spring 210. The straightening plate 211 guides the material entering belt 5. The material guiding device can prevent the material from deviating from belt 5 during transportation. When belt 5 is transporting, the material may move towards the edge of belt 5. This device can limit the lateral movement of the material, ensuring that the material is always within the effective transportation range of belt 5, accurately transported from the starting point to the unloading point, avoiding material spillage, reducing material loss and cleaning work.

[0025] The movement of the leveling plate 211 drives the horizontal plate 301 to move. The horizontal plate 301 pushes the inclined groove on the cutting plate 303, causing the cutting plate 303 to move upward. This upward movement of the cutting plate 303 cuts the material, making it easier to process. The material after drawing and cutting exhibits good consistency, allowing for better fit in subsequent processing operations such as bending, drilling, or welding. The movement of the cutting plate 303 also drives the movement of the L-shaped plate 304, which in turn drives the roller 305 to rotate due to friction. The rotation of the roller 305 then drives the reciprocating screw 306 to rotate. The cross-shaped spiral groove on the reciprocating lead screw 306 drives the moving plate 307 to move. The movement of the moving plate 307 drives the clamping plate 308 to move and clamp the material to be cut. During the cutting process, the contact between the cutting tool and the material will cause the material to vibrate. This vibration will not only affect the cutting accuracy, but may also increase the roughness of the cut surface. When cutting slender materials, the vibration may cause wavy patterns on the cut surface. Appropriate clamping can effectively suppress this vibration. When cutting precision mechanical parts, high-precision fixtures are used to fix the parts, reduce the impact of vibration on the cutting quality, and ensure the flatness and smoothness of the cut surface.

[0026] Please see Figures 1-7Based on the above embodiments, in another embodiment of the present invention, the collecting device 4 includes a second clamping plate 401, a vertical plate 402, a roller brush 403, a collecting box 404, a second sliding plate 405, a dust storage box 406, a sliding rod 407, and a push plate 408. The second clamping plate 401 is fixedly connected to the rear of the first clamping plate 308. The vertical plate 402 is in contact with the first sliding plate 309. The roller brush 403 is fixedly connected to the inner wall of the vertical plate 402. The movement of the first clamping plate 308 drives the second clamping plate 401 to move, which in turn drives the vertical plate 402 to move. The movement of the vertical plate 402 drives the roller brush 403 to move, and the roller brush 403 cleans the dust on the first sliding plate 309. During the cutting process, if cutting debris remains in the cutting area, it will affect the contact between the cutting tool and the material. For mechanical cutting, if debris enters between the cutting edge and the material, it will accelerate the wear of the cutting edge, resulting in a rough and uneven cutting surface. Timely cleaning of the cutting debris is crucial. The cutting debris ensures the normal operation of the cutting tool. The collection box 404 is fixedly connected to the inner wall of the workbench 1, and the ash storage box 406 is fixedly connected to the inner wall of the workbench 1. The second slide plate 405 contacts the inner wall of the ash storage box 406. The slide rod 407 is fixedly connected to the right side of the moving plate 307, and the push plate 408 is fixedly connected to the left side of the second slide plate 405. The slide rod 407 is slidably connected to the inner wall of the ash storage box 406. The roller brush 403 contacts the first slide plate 309. The movement of the moving plate 307 drives the slide rod 407 to move, which in turn drives the push plate 408 to move. The movement of the slide rod 407 drives the push plate 408 to move, pushing the dust falling from the belt 5 and the dust falling from the top on the right side to the left. When the dust in the collection box 404 is pushed to one side, the dust can be gathered in a smaller area, making the dust cleaner more efficient. Then, it can be processed uniformly, such as being poured into a special industrial waste recycling container or an environmentally friendly treatment device.

[0027] Working principle: The movement of clamping plate 308 moves clamping plate 401, which in turn moves vertical plate 402, which in turn moves roller brush 403. The roller brush 403 cleans the dust on sliding plate 309. During the cutting process, if cutting debris remains in the cutting area, it will affect the contact between the cutting tool and the material. For mechanical cutting, debris entering between the cutting edge and the material will accelerate the wear of the cutting edge, resulting in a rough and uneven cut surface. Timely cleaning of cutting debris ensures the normal operation of the cutting tool. The process ensures that the cut material has smooth edges and precise dimensions. The moving plate 307 moves, which in turn moves the slide bar 407, which in turn moves the push plate 408. The slide bar 407 moves, which in turn moves the push plate 408, pushing the dust falling from the belt 5 and the dust falling from the top on the right side to the left. When the dust in the collection box 404 is pushed to one side, the dust can be gathered in a smaller area, making the dust cleaner and more efficient. Then, the dust can be processed in a unified manner, such as being poured into a special industrial waste recycling container or an environmentally friendly treatment device.

[0028] This invention provides an automated wire drawing mechanism for stainless steel wire production. Many methods and approaches exist for implementing this technical solution; the above description is merely a preferred embodiment. It should be noted that those skilled in the art can make various improvements and modifications without departing from the principles of this invention, and these improvements and modifications should also be considered within the scope of protection of this invention. All components not explicitly stated in this embodiment can be implemented using existing technologies.

Claims

1. An automatic wire drawing mechanism for stainless steel wire production, comprising a worktable (1), characterized in that: The top of the workbench (1) is provided with a feeding device (2), the top of the workbench (1) is provided with a cutting device (3), the inner wall of the workbench (1) is provided with a collecting device (4), and the inner wall of the workbench (1) is provided with a belt (5). The feeding device (2) includes a cylinder (201), a baffle (202), an L-shaped plate (203), a support plate (204), a support plate (205), a friction column (206), a sliding plate (207), a guide plate (208), a guide plate (209), a spring (210), and a leveling plate (211). The baffle (202) is fixedly connected to the top of the workbench (1), the cylinder (201) is fixedly installed on the top of the baffle (202), and the L-shaped plate (203) is fixedly connected to the extension end of the cylinder (201). The first support plate (204) is fixedly connected to the bottom of the cylinder (201), the second support plate (205) is fixedly connected to the front of the first support plate (204), the friction column (206) is installed on the inner wall of the first support plate (204), the lower slide plate (207) is fixedly connected to the inner wall of the second support plate (205), the first guide plate (208) is fixedly connected to the rear of the lower slide plate (207), the straightening plate (211) is fixedly connected to the rear of the second guide plate (209), and the spring (210) is fixedly connected to the front of the straightening plate (211). The second guide plate (209) contacts the first guide plate (208). When the first support plate (204) moves, it drives the second support plate (205) to move. The movement of the second support plate (205) drives the lower slide plate (207) to move downward. The lower slide plate (207) moves backward through the inclined surface on the guard plate of the workbench (1). The movement of the lower slide plate (207) drives the second guide plate (209) to move. The movement of the second guide plate (209) drives the straightening plate (211) to move. The cutting device (3) includes a horizontal plate (301), a concave plate (302), a cutting plate (303), and an L-shaped plate (304). The horizontal plate (301) is fixedly connected to the left side of the leveling plate (211), the concave plate (302) is fixedly connected to the top of the workbench (1), the cutting plate (303) is slidably connected to the inner wall of the horizontal plate (301), and the L-shaped plate (304) is fixedly connected to the left side of the cutting plate (303). The horizontal plate (301) moves by the leveling plate (211), and the horizontal plate (301) moves by pushing the inclined groove on the cutting plate (303), so that the cutting plate (303) moves upward. The cutting device (3) also includes a roller (305), a reciprocating screw (306), a moving plate (307), a clamping plate (308), and a sliding plate (309). The roller (305) is in contact with the L-shaped plate (304). The reciprocating screw (306) is fixedly connected to the front of the roller (305). The moving plate (307) is movably connected to the circumferential surface of the reciprocating screw (306). The clamping plate (308) is fixedly connected to the top of the moving plate (307). The sliding plate (309) is fixedly connected to the inner wall of the worktable (1). The L-shaped plate (304) moves by the movement of the cutting plate (303). The movement of the L-shaped plate (304) causes the roller (305) to rotate by friction. The rotation of the roller (305) causes the reciprocating screw (306) to rotate.

2. The automatic wire drawing mechanism for stainless steel wire production process according to claim 1, characterized in that: The front part of the spring (210) is fixedly connected to the inner wall of the workbench (1), and the telescopic end of the cylinder (201) is in contact with the inner wall of the baffle (202).

3. The automatic wire drawing mechanism for stainless steel wire production process according to claim 2, characterized in that: The L-shaped plate (203) is slidably connected to the inner wall of the baffle (202).

4. The automatic wire drawing mechanism for stainless steel wire production process according to claim 3, characterized in that: The movable plate (307) is slidably connected to the inner wall of the slide plate (309), and the clamping plate (308) is slidably connected to the slide plate (309).

5. The automatic wire drawing mechanism for stainless steel wire production process according to claim 4, characterized in that: The outer wall of the L-shaped plate (304) is slidably connected to the inner wall of the workbench (1), the horizontal plate (301) is slidably connected to the cutting plate (303), and the L-shaped plate (304) is slidably connected to the inner wall of the concave plate (302).

6. The automatic wire drawing mechanism for stainless steel wire production process according to claim 5, characterized in that: The collecting device (4) includes a clamping plate two (401), a vertical plate (402), a roller brush (403), a collecting box (404), a chute plate two (405), a dust collection box (406), a sliding rod (407), and a push plate (408). The clamping plate two (401) is fixedly connected to the rear of the clamping plate one (308). The vertical plate (402) is in contact with the chute plate one (309). The roller brush (403) is fixedly connected to the inner wall of the vertical plate (402). The movement of the clamping plate one (308) drives the movement of the clamping plate two (401), which in turn drives the movement of the vertical plate (402). The movement of the vertical plate (402) drives the movement of the roller brush (404). 03) Movement: The collection box (404) is fixedly connected to the inner wall of the workbench (1), the ash storage box (406) is fixedly connected to the inner wall of the workbench (1), the second slide plate (405) is in contact with the inner wall of the ash storage box (406), the slide rod (407) is fixedly connected to the right side of the moving plate (307), the push plate (408) is fixedly connected to the left side of the second slide plate (405), the slide rod (407) is slidably connected to the inner wall of the ash storage box (406), the roller brush (403) is in contact with the first slide plate (309), the movement of the moving plate (307) drives the slide rod (407) to move, and the movement of the slide rod (407) drives the push plate (408) to move.

Citation Information

Patent Citations

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