Energy-saving type wire drawing device for woven cloth production and production method of energy-saving type woven cloth

By using a combination of adaptive coating assembly and a drive belt cleaning cloth in the wire drawing device for braided fabric production, the problem of film overheating caused by heat accumulation during the slitting process is solved, and the slitting quality and equipment continuity are improved.

CN120465115AInactive Publication Date: 2025-08-12SHANDONG YUXINGYUAN PLASTICS CO LTD
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Patent Information

Application Number
CN202510609082.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-13
Publication Date
2025-08-12
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

During the slitting process, the existing wire drawing device for braided fabric production causes local overheating of the film due to heat accumulation, resulting in problems such as melting, deformation or discoloration, which affects the slitting quality and film performance.

Method used

Adaptive coating assembly is adopted to cool the water-soluble coolant on both sides of the film cutting path through a sponge block, and the residual liquid is wiped through a cleaning cloth on the drive belt to prevent heat accumulation and surface defects.

Benefits of technology

Effectively control the temperature of the slitting area, prevent the film edge from overheating, improve the slitting quality and neatness, reduce surface defects, and enhance equipment continuity.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention belongs to the technical field of woven bag processing, and particularly relates to an energy-saving type wiredrawing device for woven cloth production and a production method of the energy-saving type wiredrawing device for woven cloth production. The energy-saving type wiredrawing device comprises a slitting assembly, the slitting assembly comprises a workbench, the side face of the workbench is fixedly connected with a first supporting roller, and the surfaces of the two sides of a film cutting path are coated with water-soluble cooling liquid by smearing the water-soluble cooling liquid; the temperature of a slitting area can be controlled in a more targeted mode, the phenomena of curling, charring and the like caused by overheating of the edge of the film are effectively prevented, the quality and the uniformity of the edge of the slit film are improved, meanwhile, residual water-soluble cooling liquid smeared on the two sides of a film slitting path can be wiped through the cleaning cloth on the transmission belt, and the film slitting efficiency is improved. According to the slitting device, the defects of spots, stripes and the like of the thin film due to the fact that water stains or oil stains are formed on the surface of the slit thin film by water-soluble cooling liquid can be avoided, the quality of the slit thin film is further improved, meanwhile, the replacement frequency of cleaning cloth on the transmission belt can be reduced through transmission of the transmission belt, and then the working continuity of equipment can be improved.
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Description

Technical Field

[0001] The invention belongs to the technical field of woven bag processing, and in particular relates to an energy-saving wire drawing device for woven cloth production and a production method thereof. Background Art

[0002] The wire drawing device for woven fabric production is a key equipment for manufacturing woven fabric. It heats and melts raw materials such as plastic particles, forms them into films through an extrusion die, and then undergoes a series of stretching, cooling, and wire separation processes to refine the films into flat yarns that meet weaving requirements. These flat yarns can then be used in the production of woven fabric.

[0003] In the prior art, the slitting process of the wire drawing device for woven cloth production is usually completed by a wire slitting mechanism, which consists of a support plate, a slitting roller and an extrusion roller. The upper and lower groups of slitting rollers respectively receive the film that has passed around the guide roller. The film is cut into embryonic wires of the required width under the action of the slitting rollers. The embryonic wires are then further processed by the extrusion rollers to ensure that the slit wire strips meet the specifications, and finally the forming is completed by the winding system. This process realizes the efficient slitting of plastic film, improves the production volume of flat wire and the production efficiency of woven cloth.

[0004] There are still some problems in the actual application of the above scheme. Although the existing device can complete the work of splitting the extruded film, a heated cutter is used to split the film during the splitting process. However, due to the different thermal conductivity of the cut material, when the thermal conductivity of the cut material is low, the heat transferred to the material by the cutter will be difficult to be quickly transferred to other parts of the material or the external environment, which will cause heat accumulation. The heat accumulation will cause the temperature of the tool and the film in the cutting area to continue to rise, causing local overheating of the film, melting, deformation or discoloration, etc., which will affect the cutting quality and the performance of the film.

[0005] To this end, the present invention provides an energy-saving wire drawing device for woven cloth production and a production method thereof. Summary of the Invention

[0006] In order to make up for the deficiencies of the prior art, at least one technical problem raised in the background technology is solved.

[0007] The technical solution adopted by the present invention to solve its technical problem is as follows: the energy-saving wire drawing device for woven cloth production described in the present invention includes a slitting assembly, the slitting assembly includes a workbench, a first support roller is fixedly connected to the side of the workbench, a slitting knife is fixedly connected to the outer ring surface of the first support roller, a second support roller is fixedly connected to the upper part of the workbench, and an adaptive coating assembly is provided on the side of the slitting assembly;

[0008] The adaptive coating component includes a sponge block fixedly arranged in the slitting component, and the sponge block is used for coating the cutting path of the slitting knife.

[0009] Preferably, the adaptive coating assembly includes a water storage box, which is fixedly connected to the top of the workbench, with an inner cavity provided at the bottom of the water storage box, a fixed outer shell fixedly connected to the bottom of the water storage box, a sliding frame slidably connected to the inside of the fixed outer shell, and a sponge block fixedly connected to the inside of the sliding frame.

[0010] Preferably, a guide groove is provided on the side of the fixed shell, a moving block is slidably connected inside the guide groove, the moving block is fixedly connected to the side of the sliding frame, the top of the moving block is fixedly connected to a first spring, the top of the first spring is fixedly connected to the bottom of the water storage box, and the first spring is used to reset the sponge block.

[0011] Preferably, one end of the moving block is fixedly connected to a first oblique rod, the top of the first oblique rod is abutted against a second oblique rod, the side of the second oblique rod is fixedly connected to a blocking block, the other side of the second oblique rod is fixedly connected to a second spring, the second oblique rod slides in the bottom inner cavity of the water storage box, and the middle part of the second oblique rod is provided with an oblique structure that is compatible with the top of the first oblique rod.

[0012] Preferably, an L-shaped moving rod is fixedly connected to the side of the first oblique rod, a first contact is fixedly connected to the side of the L-shaped moving rod, the L-shaped moving rod is elastic metal, and a second contact is fixedly connected to the side of the fixed shell. The first contact will continuously collide with the second contact during the movement and vibrate the sponge block inside the fixed shell.

[0013] Preferably, a water outlet is provided through the bottom of the water storage box, and the blocking block will block the water outlet during movement, even if the liquid medium inside the water storage box flows into the sponge block. The size of the blocking block is adapted to the diameter of the water outlet.

[0014] Preferably, a reciprocating cleaning component for wiping is provided on the side of the adaptive coating component, and the reciprocating cleaning component includes an electric guide rail, a sliding block is slidably connected inside the electric guide rail, and a moving frame is fixedly connected to the side of the sliding block, and the gap left at the bottom of the moving frame is adapted to the size of the slitting knife.

[0015] Preferably, an inner cavity is opened at the bottom of the movable frame, a first rotating rod is fixedly connected to the side wall of the inner cavity of the movable frame, a transmission belt is provided on the outer ring surface of the first rotating rod, a second rotating rod is provided inside the transmission belt, and the second rotating rod is fixedly connected to the side wall of the inner cavity at the bottom of the movable frame.

[0016] Preferably, a cleaning cloth is fixedly connected to the outer ring surface of the transmission belt, and the outer ring surfaces of the first rotating rod and the second rotating rod are both provided with rotating columns, and the outer ring surfaces of the two rotating columns are in contact with the inner side of the transmission belt, so that the cleaning cloth on the transmission belt can absorb the liquid medium remaining on the film after slitting.

[0017] A production method of an energy-saving wire drawing device for woven cloth production, specifically comprising:

[0018] Raw material preparation: Select plastic raw materials and crush them to ensure that the particle fineness meets production requirements, and dry them to remove moisture;

[0019] Melt extrusion and cooling and shaping: The prepared raw materials are placed in the extruder. After the barrel is heated and the screw and barrel are sheared together, the raw materials are completely melted. The melted raw materials are extruded through the die head of the extruder to form a continuous film. The extruded film is cooled by a water tank.

[0020] Cutting the raw yarn: After the film has been cooled, it is transferred to the cutting assembly via the transmission roller. At this time, the liquid medium stored in the water storage box will flow into the sponge block through the water outlet and be smeared on both sides of the cutting path by the sponge block. When the film after smearing enters the slitting knife area, the slitting knife can cut the film.

[0021] Stretching, orientation, and traction and winding: The slit raw yarn enters the stretching system and is heated to above the glass transition temperature and below the softening point by equipment such as an oven, so that the polymer molecular chains are orderly arranged along the stretching direction. Next, the stretched yarn is evenly wound onto a reel through a traction device to form the finished yarn.

[0022] Finished product inspection: Quality inspection of the wound silk thread.

[0023] The beneficial effects of the present invention are as follows:

[0024] 1. The energy-saving wire drawing device for woven cloth production described in the present invention, when it is necessary to cut the film, since the bottom of the sponge block will contact the top of the film in the initial state, and the sponge blocks are arranged on both sides of the slitting knife, and the sponge blocks contain water-soluble coolant, so when the film moves through the transmission roller, the water-soluble coolant will be coated on the surfaces on both sides of the film cutting path, so that the two sides of the hot slitting path can be cooled in advance, and the temperature of the slitting area can be controlled more specifically, thereby effectively preventing the edge of the film from curling, burning, etc. due to overheating, thereby improving the quality and neatness of the edge of the film after slitting.

[0025] 2. The energy-saving wire drawing device for woven cloth production described in the present invention will synchronously drive the first contact to move up and down a small distance through the moving block when the weight of the sponge block changes, and will synchronously drive the first contact fixed on its side to move up and down while moving. Since multiple second contacts are also provided on the side of the fixed shell, and the L-shaped moving rod is elastic metal, the first contact will continuously collide with the second contact when moving up and down, thereby generating a vibration effect, thereby breaking the local blockage formed by the liquid in the pores of the sponge block, making the water molecules more evenly distributed in each pore, reducing the local over-wetting or drying phenomenon caused by differences in the pore structure, and thus improving the uniformity of the sponge block when water is injected.

[0026] 3. The energy-saving wire drawing device for woven cloth production described in the present invention, when the bottom of the movable frame moves to be slightly higher than the bottom of the sponge block, the cleaning cloth at the bottom of the transmission belt will be in contact with the top of the film, and when the film is affected by the rotating roller for transmission, it will synchronously drive the transmission belt that is in contact with it to be transmitted. Since the outer ring surfaces of the first rotating rod and the second rotating rod are both provided with rotating columns, when the transmission belt is transmitted, the rotating column will rotate, while the first rotating rod and the second rotating rod will not rotate. At this time, the cleaning cloth on the transmission belt can be used to wipe the water-soluble coolant remaining on both sides of the film slitting path, which can avoid the formation of water stains or oil stains on the surface of the film after the water-soluble coolant is cut, resulting in defects such as spots and stripes on the film, further improving the quality of the film after slitting, and at the same time, the transmission of the transmission belt can reduce the frequency of replacing the cleaning cloth on the transmission belt, thereby improving the continuity of equipment operation. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] The present invention will be further described below with reference to the accompanying drawings.

[0028] Figure 1 This is a schematic diagram of the overall structure of a preferred embodiment of the present invention;

[0029] Figure 2 It is a schematic diagram of the position structure of the slitting component and the adaptive coating component shown in the present invention;

[0030] Figure 3 It is a schematic diagram of the internal structure of the water storage box shown in the present invention;

[0031] Figure 4 The present invention shows Figure 3 A in the middle is an enlarged structural diagram;

[0032] Figure 5 It is a schematic diagram of the three-dimensional structure of the adaptive coating assembly shown in the present invention;

[0033] Figure 6It is a schematic diagram of the exploded structure of some components of the adaptive coating assembly shown in the present invention;

[0034] Figure 7 It is a schematic diagram of the position structure of the adaptive coating component and the reciprocating cleaning component shown in the present invention;

[0035] Figure 8 It is a schematic diagram of the three-dimensional structure of the reciprocating cleaning assembly shown in the present invention;

[0036] Figure 9 It is a schematic diagram of the internal structure of the mobile frame shown in the present invention;

[0037] In the figure: 1, slitting assembly; 101, workbench; 102, first support roller; 103, slitting knife; 104, second support roller;

[0038] 2. Adaptive coating assembly; 201. Fixed housing; 202. Sliding frame; 203. Sponge block; 204. Guide groove; 205. Moving block; 206. First spring; 207. First oblique rod; 208. Second oblique rod; 209. Stopper; 210. Second spring; 211. L-shaped moving rod; 212. First contact; 213. Second contact; 214. Water outlet; 215. Water storage box;

[0039] 3. Reciprocating cleaning assembly; 301. Electric guide rail; 302. Sliding block; 303. Moving frame; 304. First rotating rod; 305. Transmission belt; 306. Second rotating rod. DETAILED DESCRIPTION

[0040] In order to make the technical means, creative features, objectives and effects achieved by the present invention easier to understand, the present invention is further described below in conjunction with specific implementation methods.

[0041] Example 1

[0042] like Figures 1 to 8 As shown, one embodiment of the present invention is:

[0043] The slitting assembly 1 includes a workbench 101, a first support roller 102 is fixedly connected to the side of the workbench 101, a slitting knife 103 is fixedly connected to the outer ring surface of the first support roller 102, a second support roller 104 is fixedly connected to the upper part of the workbench 101, and an adaptive coating assembly 2 is provided on the side of the slitting assembly 1;

[0044] The adaptive coating assembly 2 includes a sponge block 203 fixedly disposed in the slitting assembly 1 , and the sponge block 203 is used to coat the cutting path of the slitting knife 103 .

[0045] Specifically, although the existing device can complete the work of separating the extruded film, since a heated cutter is used to separate the film during the separation process, the thermal conductivity of the cut material varies. When the thermal conductivity of the cut material is low, the heat transferred to the material by the cutter is difficult to quickly transfer to other parts of the material or the external environment, which will cause heat accumulation. The heat accumulation will cause the temperature of the cutter and the film in the slitting area to continue to rise, causing local overheating of the film, resulting in melting, deformation or discoloration, etc., which will affect the slitting quality and film performance.

[0046] Therefore, the present invention solves this problem by setting up a certain structure. When it is necessary to slit the film after cooling, the film is transported to the first support roller 102 fixed on the workbench 101 through the transmission roller in the slitting assembly 1. At this time, the film passes under the first support roller 102 and moves upward so that the bottom of the film contacts the top of the second support roller 104. Since a slitting knife 103 is provided above the second support roller 104, the slitting work can be completed by the action of the slitting knife 103 when the film passes through the second support roller 104. However, since a heated cutter is used to slit the film during the slitting process, However, due to the different thermal conductivity of the materials being cut, when the thermal conductivity of the cutting material is low, the heat transferred to the material by the cutter will be difficult to be quickly transferred to other parts of the material or the external environment, which will cause heat accumulation. Heat accumulation will cause the temperature of the tool and the film in the slitting area to continue to rise, causing local overheating of the film, melting, deformation or discoloration, etc., which will affect the slitting quality and the performance of the film. At this time, the sponge block 203 is in contact with both sides of the film slitting path, and the liquid medium inside the sponge block 203 can be applied to the upper part of the film, thereby reducing the heat accumulation and improving the slitting quality.

[0047] like Figure 3 and Figure 5 As shown, the adaptive coating assembly 2 in this embodiment includes a water storage box 215, which is fixedly connected to the top of the workbench 101. An inner cavity is provided at the bottom of the water storage box 215. A fixed shell 201 is fixedly connected to the bottom of the water storage box 215. A sliding frame 202 is slidably connected to the interior of the fixed shell 201, and a sponge block 203 is fixedly connected to the interior of the sliding frame 202.

[0048] Specifically, when the film needs to be cut, since the bottom of the sponge block 203 will contact the top of the film in the initial state, and the sponge block 203 is arranged on both sides of the slitting knife 103, and the sponge block 203 contains water-soluble coolant, when the film moves through the transmission roller, the water-soluble coolant will be coated on the surface on both sides of the film cutting path, so that the two sides of the hot slitting path can be cooled in advance, and the temperature of the slitting area can be controlled more specifically, thereby effectively preventing the edge of the film from curling, burning, etc. due to overheating, thereby improving the quality and neatness of the edge of the film after slitting.

[0049] like Figure 3 and Figure 6 As shown, a guide groove 204 is provided on the side of the fixed shell 201 in this embodiment, and a moving block 205 is slidably connected inside the guide groove 204. The moving block 205 is fixedly connected to the side of the sliding frame 202, and a first spring 206 is fixedly connected to the top of the moving block 205. The top of the first spring 206 is fixedly connected to the bottom of the water storage box 215, and the first spring 206 is used to reset the sponge block 203.

[0050] Specifically, when the sponge block 203 is used for a long time, the water-soluble coolant contained inside will gradually decrease, and the weight of the sponge block 203 will gradually decrease. Since the first spring 206 is in a stretched state in the initial state, when the weight of the sponge block 203 gradually decreases, the first spring 206 will gradually reset, and at the same time, through the moving block 205, it will move upward along the guide groove 204 with the sliding frame 202 and the sponge block 203.

[0051] like Figure 3 and Figure 6 As shown, one end of the moving block 205 in this embodiment is fixedly connected to a first oblique rod 207, the top of the first oblique rod 207 is abutted against a second oblique rod 208, the side of the second oblique rod 208 is fixedly connected to a blocking block 209, the other side of the second oblique rod 208 is fixedly connected to a second spring 210, the second oblique rod 208 slides in the bottom inner cavity of the water storage box 215, and the middle part of the second oblique rod 208 is provided with an oblique structure that is compatible with the top of the first oblique rod 207.

[0052] like Figure 4 and Figure 6 As shown, a water outlet 214 is provided through the bottom of the water storage box 215 in this embodiment, and the blocking block 209 will block the water outlet 214 during movement. Even if the liquid medium inside the water storage box 215 flows into the sponge block 203, the size of the blocking block 209 is adapted to the diameter of the water outlet 214.

[0053] Specifically, when the moving block 205 moves upward, it will drive the first oblique rod 207 fixed on its side to move upward synchronously, and at the same time push the second oblique rod 208 to move in the direction away from the water outlet 214 through its oblique structure. At this time, the second spring 210 is in a compressed state. Since the size of the blocking block 209 fixed on the other side of the second oblique rod 208 is adapted to the diameter of the water outlet 214, when the first spring 206 is reset, the blocking block 209 will gradually move away from the bottom of the water outlet 214. Since the bottom of the sponge block 203 is in contact with the film and not in contact with the bottom of the fixed shell 201 in the initial state, the sponge block 203 will move upward when the blocking block 209 is removed.

[0054] When the blocking block 209 is not directly below the water outlet 214, the water-soluble coolant stored in the water storage box 215 will fall onto the sponge block 203 through the unobstructed part of the water outlet 214, and penetrate downward through the sponge block 203, thereby completing the rehydration of the sponge block 203. As the weight of the sponge block 203 becomes lighter, the first spring 206 will reset, and at the same time, the blocking block 209 used to block the water outlet 214 will be pushed away by the first oblique rod 207. At this time, the liquid medium stored in the water storage box 215 will fall, so that the bottom can always be in contact with the top of the film.

[0055] like Figure 5 and Figure 6 As shown, in this embodiment, the first oblique rod 207 is fixedly connected to an L-shaped moving rod 211 on the side, and the L-shaped moving rod 211 is fixedly connected to a first contact 212 on the side. The L-shaped moving rod 211 is elastic metal, and the fixed shell 201 is fixedly connected to a second contact 213 on the side. The first contact 212 will continuously collide with the second contact 213 during the movement and vibrate the sponge block 203 inside the fixed shell 201.

[0056] Specifically, when the weight of the sponge block 203 changes, the first contact 212 will be synchronously driven to move up and down a small distance through the moving block 205, and while moving, the first contact 212 fixed on its side will be synchronously driven to move up and down. Since multiple second contacts 213 are also provided on the side of the fixed shell 201, and the L-shaped moving rod 211 is elastic metal, the first contact 212 will continuously collide with the second contact 213 when moving up and down, thereby generating a vibration effect, thereby breaking the local blockage formed by the liquid in the pores of the sponge block 203, making the water molecules more evenly distributed in each pore, reducing the local over-wetting or drying phenomenon caused by differences in the pore structure, and thus improving the uniformity of water injection.

[0057] like Figure 7As shown, the side of the adaptive coating component 2 in this embodiment is provided with a reciprocating cleaning component 3 for wiping, and the reciprocating cleaning component 3 includes an electric guide rail 301, and a sliding block 302 is slidably connected inside the electric guide rail 301, and a moving frame 303 is fixedly connected to the side of the sliding block 302, and the gap left at the bottom of the moving frame 303 is adapted to the size of the slitting knife 103.

[0058] like Figure 3 and Figure 9 As shown, the bottom of the movable frame 303 described in this embodiment is provided with an inner cavity, and the side wall of the inner cavity of the movable frame 303 is fixedly connected to the first rotating rod 304, and the outer ring surface of the first rotating rod 304 is provided with a transmission belt 305, and the transmission belt 305 is provided inside the second rotating rod 306, and the second rotating rod 306 is fixedly connected to the side wall of the inner cavity at the bottom of the movable frame 303.

[0059] Specifically, when the equipment is running, the electric guide rail 301 is started, and the sliding block 302 sliding in the electric guide rail 301 will move downward along the guide of the electric guide rail 301, and at the same time drive the moving frame 303 fixed on the side of the sliding block 302 to move synchronously. When the bottom of the moving frame 303 moves to be slightly higher than the bottom of the sponge block 203, the electric guide rail 301 will stop moving. At this time, the side of the transmission belt 305 will contact the top of the film. Since the gap left at the bottom of the moving frame 303 is adapted to the size of the slitting knife 103, the normal operation of the slitting knife 103 will not be affected when the moving frame 303 moves downward.

[0060] When the bottom of the movable frame 303 moves to be slightly higher than the bottom of the sponge block 203, the cleaning cloth at the bottom of the transmission belt 305 will be in contact with the top of the film. When the film is affected by the rotating roller for transmission, it will synchronously drive the transmission belt 305 that is in contact with it to be transmitted. Since the outer ring surfaces of the first rotating rod 304 and the second rotating rod 306 are both provided with rotating columns, when the transmission belt 305 is transmitted, the rotating columns will rotate, while the first rotating rod 304 and the second rotating rod 306 will not rotate. At this time, the cleaning cloth on the transmission belt 305 can wipe the water-soluble coolant remaining on both sides of the film slitting path, which can avoid the formation of water stains or oil stains on the surface of the film after the water-soluble coolant is cut, resulting in defects such as spots and stripes on the film, further improving the quality of the film after slitting. At the same time, the transmission of the transmission belt 305 can reduce the frequency of replacing the cleaning cloth on the transmission belt 305, thereby improving the continuity of the equipment operation.

[0061] Example 2

[0062] like Figures 1 to 8As shown in the comparative example 1, another embodiment of the present invention is: a production method of an energy-saving wire drawing device for woven cloth production, the specific steps comprising:

[0063] Raw material preparation: Select plastic raw materials and crush them to ensure that the particle fineness meets production requirements, and dry them to remove moisture;

[0064] Melt extrusion and cooling and shaping: The prepared raw materials are placed in the extruder. After the barrel is heated and the screw and barrel are sheared together, the raw materials are completely melted. The melted raw materials are extruded through the die head of the extruder to form a continuous film. The extruded film is cooled by a water tank.

[0065] Cutting the raw silk: After the film has been cooled, it is transferred to the cutting assembly 1 via the transmission roller. At this time, the liquid medium stored in the water storage box 215 flows into the sponge block 203 through the water outlet 214 and is coated on both sides of the cutting path by the sponge block 203. When the coated film enters the area of the slitting knife 103, the slitting knife 103 can cut the film.

[0066] Stretching, orientation, and traction and winding: The slit raw yarn enters the stretching system and is heated to above the glass transition temperature and below the softening point by equipment such as an oven, so that the polymer molecular chains are orderly arranged along the stretching direction. Next, the stretched yarn is evenly wound onto a reel through a traction device to form the finished yarn.

[0067] Finished product inspection: Quality inspection of the wound silk thread.

[0068] Working principle: when the film needs to be cut, the bottom of the sponge block 203 will contact the top of the film in the initial state, and the sponge block 203 is arranged on both sides of the slitting knife 103, and the sponge block 203 contains water-soluble coolant. Therefore, when the film moves through the transmission roller, the water-soluble coolant will be coated on the surface on both sides of the film cutting path, so that the two sides of the hot slitting path can be cooled in advance, and the temperature of the slitting area can be controlled more specifically, thereby effectively preventing the edge of the film from curling, burning, etc. due to overheating, thereby improving the quality and neatness of the edge of the film after slitting.

[0069] When the sponge block 203 is used for a long time, the water-soluble coolant contained inside will gradually decrease, and the weight of the sponge block 203 will gradually decrease. Since the first spring 206 is in a stretched state in the initial state, when the weight of the sponge block 203 gradually decreases, the first spring 206 will gradually reset, and at the same time, the sliding frame 202 and the sponge block 203 will move upward along the guide groove 204 through the moving block 205.

[0070] When the moving block 205 moves upward, it will drive the first oblique rod 207 fixed on its side to move upward synchronously, and at the same time push the second oblique rod 208 to move in the direction away from the water outlet 214 through its oblique structure. At this time, the second spring 210 is in a compressed state. Since the size of the blocking block 209 fixed on the other side of the second oblique rod 208 is adapted to the diameter of the water outlet 214, when the first spring 206 is reset, the blocking block 209 will gradually move away from the bottom of the water outlet 214. Since the bottom of the sponge block 203 is in contact with the film and not in contact with the bottom of the fixed shell 201 in the initial state, the sponge block 203 will move upward when the blocking block 209 is removed.

[0071] When the blocking block 209 is not directly below the water outlet 214, the water-soluble coolant stored in the water storage box 215 will fall onto the sponge block 203 through the unobstructed part of the water outlet 214, and penetrate downward through the sponge block 203, thereby completing the rehydration of the sponge block 203. As the weight of the sponge block 203 becomes lighter, the first spring 206 will reset, and at the same time, the blocking block 209 used to block the water outlet 214 will be pushed away by the first oblique rod 207. At this time, the liquid medium stored in the water storage box 215 will fall, so that the bottom can always be in contact with the top of the film.

[0072] When the weight of the sponge block 203 changes, the first contact 212 will be synchronously driven to move up and down a small distance through the moving block 205, and while moving, the first contact 212 fixed on its side will be synchronously driven to move up and down. Since multiple second contacts 213 are also provided on the side of the fixed shell 201, and the L-shaped moving rod 211 is elastic metal, the first contact 212 will continuously conflict with the second contact 213 when moving up and down, thereby generating a vibration effect, thereby breaking the local blockage formed by the liquid in the pores of the sponge block 203, making the water molecules more evenly distributed in each pore, reducing the local over-wetting or drying phenomenon caused by differences in the pore structure, and thus improving the uniformity of water injection.

[0073] When the equipment is running, the electric guide rail 301 is started. At this time, the sliding block 302 sliding in the electric guide rail 301 will move downward along the guide of the electric guide rail 301, and at the same time drive the moving frame 303 fixed on the side of the sliding block 302 to move synchronously. When the bottom of the moving frame 303 moves to be slightly higher than the bottom of the sponge block 203, the electric guide rail 301 will stop moving. At this time, the side of the transmission belt 305 will contact the top of the film. Since the gap left at the bottom of the moving frame 303 is adapted to the size of the slitting knife 103, the normal operation of the slitting knife 103 will not be affected when the moving frame 303 moves downward.

[0074] When the bottom of the movable frame 303 moves to be slightly higher than the bottom of the sponge block 203, the cleaning cloth at the bottom of the transmission belt 305 will be in contact with the top of the film. When the film is affected by the rotating roller for transmission, it will synchronously drive the transmission belt 305 that is in contact with it to be transmitted. Since the outer ring surfaces of the first rotating rod 304 and the second rotating rod 306 are both provided with rotating columns, when the transmission belt 305 is transmitted, the rotating columns will rotate, while the first rotating rod 304 and the second rotating rod 306 will not rotate. At this time, the cleaning cloth on the transmission belt 305 can wipe the water-soluble coolant remaining on both sides of the film slitting path, which can avoid the formation of water stains or oil stains on the surface of the film after the water-soluble coolant is cut, resulting in defects such as spots and stripes on the film, further improving the quality of the film after slitting. At the same time, the transmission of the transmission belt 305 can reduce the frequency of replacing the cleaning cloth on the transmission belt 305, thereby improving the continuity of the equipment operation.

[0075] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art should understand that the present invention is not limited to the foregoing embodiments. The foregoing embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.

Claims

1. An energy-saving wire drawing device for producing woven cloth, comprising a slitting assembly (1), wherein the slitting assembly (1) comprises a workbench (101), a first support roller (102) is fixedly connected to the side of the workbench (101), a slitting knife (103) is fixedly connected to the outer annular surface of the first support roller (102), and a second support roller (104) is fixedly connected to the upper part of the workbench (101), characterized in that: An adaptive coating component (2) is provided on the side of the slitting component (1); The adaptive coating component (2) comprises a sponge block (203) fixedly arranged in the slitting component (1), and the sponge block (203) is used for coating the cutting path of the slitting knife (103).

2. The energy-saving wire drawing device for woven cloth production according to claim 1, characterized in that: The adaptive coating assembly (2) includes a water storage box (215), the water storage box (215) is fixedly connected to the top of the workbench (101), an inner cavity is provided at the bottom of the water storage box (215), a fixed shell (201) is fixedly connected to the bottom of the water storage box (215), a sliding frame (202) is slidably connected to the interior of the fixed shell (201), and a sponge block (203) is fixedly connected to the interior of the sliding frame (202).

3. The energy-saving wire drawing device for woven cloth production according to claim 2, characterized in that: A guide groove (204) is provided on the side of the fixed housing (201), a moving block (205) is slidably connected inside the guide groove (204), the moving block (205) is fixedly connected to the side of the sliding frame (202), a first spring (206) is fixedly connected to the top of the moving block (205), the top of the first spring (206) is fixedly connected to the bottom of the water storage box (215), and the first spring (206) is used for resetting the sponge block (203).

4. The energy-saving wire drawing device for woven cloth production according to claim 3, characterized in that: One end of the moving block (205) is fixedly connected to a first oblique rod (207), the top of the first oblique rod (207) is abutted against a second oblique rod (208), a side of the second oblique rod (208) is fixedly connected to a blocking block (209), the other side of the second oblique rod (208) is fixedly connected to a second spring (210), the second oblique rod (208) slides in the bottom inner cavity of the water storage box (215), and the middle part of the second oblique rod (208) is provided with an oblique structure adapted to the top of the first oblique rod (207).

5. The energy-saving wire drawing device for woven cloth production according to claim 4, characterized in that: The side of the first oblique rod (207) is fixedly connected to an L-shaped moving rod (211), the side of the L-shaped moving rod (211) is fixedly connected to a first contact (212), the L-shaped moving rod (211) is elastic metal, and the side of the fixed shell (201) is fixedly connected to a second contact (213), and the first contact (212) will continuously conflict with the second contact (213) during the movement process and vibrate the sponge block (203) inside the fixed shell (201).

6. The energy-saving wire drawing device for woven cloth production according to claim 5, characterized in that: A water outlet (214) is provided through the bottom of the water storage box (215), and the blocking block (209) blocks the water outlet (214) during movement. Even if the liquid medium inside the water storage box (215) flows into the sponge block (203), the size of the blocking block (209) is adapted to the diameter of the water outlet (214).

7. The energy-saving wire drawing device for woven cloth production according to claim 1, characterized in that: A reciprocating cleaning assembly (3) for wiping is provided on the side of the adaptive coating assembly (2), and the reciprocating cleaning assembly (3) includes an electric guide rail (301), a sliding block (302) is slidably connected inside the electric guide rail (301), and a moving frame (303) is fixedly connected to the side of the sliding block (302), and the gap left at the bottom of the moving frame (303) is adapted to the size of the slitting knife (103).

8. The energy-saving wire drawing device for woven cloth production according to claim 7, characterized in that: An inner cavity is provided at the bottom of the movable frame (303), a first rotating rod (304) is fixedly connected to the side wall of the inner cavity of the movable frame (303), a transmission belt (305) is provided on the outer ring surface of the first rotating rod (304), a second rotating rod (306) is provided inside the transmission belt (305), and the second rotating rod (306) is fixedly connected to the side wall of the inner cavity at the bottom of the movable frame (303).

9. The energy-saving wire drawing device for woven cloth production according to claim 8, characterized in that: The outer ring surface of the transmission belt (305) is fixedly connected with a cleaning cloth, and the outer ring surfaces of the first rotating rod (304) and the second rotating rod (306) are both provided with rotating columns, and the outer ring surfaces of the two rotating columns are in contact with the inner side of the transmission belt (305), so that the cleaning cloth on the transmission belt (305) can absorb the liquid medium remaining on the film after slitting.

10. A method for producing an energy-saving wire drawing device for woven fabric production, applied to the energy-saving wire drawing device for woven fabric production according to any one of claims 1 to 9, characterized in that: Specifically: Raw material preparation: Select plastic raw materials and crush them to ensure that the particle fineness meets production requirements, and dry them to remove moisture; Melt extrusion and cooling and shaping: The prepared raw materials are placed in the extruder. After the barrel is heated and the screw and barrel are sheared together, the raw materials are completely melted. The melted raw materials are extruded through the die head of the extruder to form a continuous film. The extruded film is cooled by a water tank. Cutting the embryonic silk: the film after the cooling process is transferred to the cutting assembly (1) through the transmission roller, and the liquid medium stored in the water storage box (215) flows into the sponge block (203) through the water outlet (214), and is smeared on both sides of the cutting path by the sponge block (203). When the film after smearing enters the slitting knife (103) area, the slitting knife (103) can cut the film; Stretching, orientation, and traction and winding: The slit raw yarn enters the stretching system and is heated to above the glass transition temperature and below the softening point by equipment such as an oven, so that the polymer molecular chains are orderly arranged along the stretching direction. Next, the stretched yarn is evenly wound onto a reel through a traction device to form the finished yarn. Finished product inspection: Quality inspection of the wound silk thread.