An electrostatic wiping device for the surface of textile gauze

By designing a surface electrostatic erasing device for textile gauze, using metal fluff brush movement and controlling the amount of water to remove static electricity, the problem of difficult static electricity in textile fabric processing is solved, and efficient removal of static electricity and maintaining fabric quality is achieved.

CN115243434BActive Publication Date: 2025-07-22ANHUI QIDING NEW MATERIALS CO LTD
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Patent Information

Application Number
CN202211037240.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-08-26
Publication Date
2025-07-22
Estimated Expiration
2042-08-26

AI Technical Summary

Technical Problem

During the processing of textile fabrics, it is difficult to completely remove static electricity generated by mechanical friction, resulting in dust adsorption, affecting the quality of the fabric, and it is difficult for the prior art to effectively remove internal static electricity.

Method used

An electrostatic erasing device on the surface of textile gauze is designed, using metal fluff to brush back and forth, combining the elastic recovery of the support spring and end ball, conducting static electricity through contact with the fabric fluff through metal fluff, and removing static electricity by controlling the amount of water and dilated metal fluff wet.

Benefits of technology

Effectively remove static electricity from the surface and interior of the fabric, prevent dust from adsorbing, maintain the quality of the fabric, and prevent the fabric from being damp, achieving efficient removal of static electricity.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of textiles, and discloses an electrostatic erasing device for the surface of textile gauze, including a fixing frame. A water storage frame is placed at the upper end of the fixing frame. A connecting pipe communicated with the inside is fixedly connected to the front end of the water storage frame. A groove for pulling the textile fabric is formed at the upper end of the fixing frame. Two driven rollers are rotatably arranged in the groove to enable the fabric to be smoothly pulled. Two symmetrically arranged rotating cylinders are rotatably arranged inside the fixing frame so that both sides of the fabric can be squeezed. A rotating shaft is sleeved inside the rotating cylinder, and the rotating shaft can drive the rotating cylinder to rotate. In the present invention, by setting the metal fluff to brush back and forth, after passing through the fixing rod, the metal bundle generates restored elasticity, and under the action of the support spring and the end ball, it generates bouncing. The metal fluff produces a brushing effect, enabling the metal fluff to brush back and forth on the fabric fluff, transmitting the static electricity on the fabric fluff, so that the fabric does not carry static electricity.
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Description

Technical Field

[0001] The present invention relates to the technical field of textiles, and specifically relates to an electrostatic erasing device for the surface of textile gauze. Background Technique

[0002] In the processing of textile fabrics, direct friction occurs between the machinery and the fabrics, and friction also occurs during the process of winding the fabrics after processing. The surface of the fabrics is provided with fluff, so static electricity is bound to be generated during the friction process. During the static electricity process, dust in the environment is extremely likely to adhere to the textile fabrics, and the adhered dust is adsorbed under the action of static electricity. During the patting process, the static electricity still does not disappear. Therefore, the dust is relatively adsorbed all the time, which affects the quality of the fabrics.

[0003] During the process of removing static electricity, metal is used to transfer the static electricity. However, during the conduction process of the metal, only the static electricity on the surface of the fluff can be processed, and there is still a relatively large amount of static electricity inside that is difficult to remove. Therefore, an electrostatic erasing device for the surface of textile gauze is proposed. Summary of the Invention

[0004] The purpose of the present invention is to provide an electrostatic erasing device for the surface of textile gauze to solve the problems raised in the above background technique.

[0005] To achieve the above purpose, the present invention provides the following technical solution: An electrostatic erasing device for the surface of textile gauze, including a fixed frame. A water storage frame is placed on the upper end of the fixed frame. A connecting pipe that is communicated with the inside is fixedly connected to the front end of the water storage frame. A groove for pulling the textile fabric is opened on the upper end of the fixed frame. Two driven rollers are rotatably arranged in the groove to enable the fabric to be pulled smoothly.

[0006] Two relatively symmetrical rotating cylinders are rotatably arranged inside the fixed frame so that both sides of the fabric can be squeezed. A rotating shaft is sleeved inside the rotating cylinder. The rotating shaft can drive the rotating cylinder to rotate. The rear end of the rotating shaft penetrates the fixed frame. A fixed rod is arranged between the two relatively symmetrical rotating cylinders.

[0007] An installation sleeve is inserted into the rotating cylinder from the inside to the outside. A cleaning component for removing static electricity from the textile fabric is arranged inside the installation sleeve.

[0008] Preferably, a driving motor is arranged at the end of the rotating shaft penetrating the fixed frame. The output end of the driving motor is fixedly connected to the rotating shaft as the output power for driving the rotating shaft to rotate.

[0009] The front end of the rotating shaft is rotatably connected to the connecting pipe. A communication hole is opened on the outer wall of the rotating shaft. The communication hole is communicated with the inside of the connecting pipe so that water can flow along the connecting pipe.

[0010] Preferably, the cleaning component includes a metal bundle, a sleeve, a support spring, a foam circle, an end ball, a branch pipe and metal fluff;

[0011] The metal bundle is located inside the installation sleeve, and one end of the metal bundle extends outward from the inside of the installation sleeve. The sleeve is fixedly welded to the outer wall of the metal bundle. The support spring is fixedly connected to the upper end of the sleeve and is arranged vertically, acting as a fulcrum. The end of the support spring is welded to the inner wall of the installation sleeve. The end ball is welded to one end of the metal bundle. The foam circle wraps the end ball. The foam circle can absorb water, enabling water to flow along the metal bundle. The branch pipe is welded to the side of the end ball away from the metal bundle. The metal fluff is connected to the other end of the metal bundle. The end ball plays a role of counterweight to ensure that the metal bundle can swing.

[0012] Preferably, one end of the installation sleeve is provided with a rubber membrane. The branch pipe penetrates through the rubber membrane and is fixedly connected to it, blocking water while enabling the branch pipe to swing. Water outlet holes are formed on the outer wall of the branch pipe located inside the foam circle to wet the foam circle through the water outlet holes;

[0013] A rotating rod is rotatably connected to the inside of the branch pipe at the end away from the end ball. A side rod is welded to the rotating rod. The side rod and the rotating rod are arranged at a right angle. Both ends of the side rod are fixedly connected with a blocking block. The mass of one blocking block is greater than that of the other. An inlet is provided on the outer wall of the branch pipe. The inlet is blocked by the blocking block, enabling both blocking blocks to be stressed during the swinging process. However, the mass of one blocking block is large, so the blocking block can rotate;

[0014] A return spring is welded to the side of one of the blocking blocks. A support plate is welded to the inner wall of the branch pipe. The end of the return spring is welded to the support plate. The return spring has a supporting effect on the blocking block and can be compressed when the blocking block moves.

[0015] Preferably, the blocking block is made of metal, and the outer wall of the blocking block is smooth. The blocking block fits the inner wall of the branch pipe, enabling the blocking block to rotate.

[0016] Preferably, the metal bundle is composed of multiple metal strips. The metal bundle is fixed by the sleeve. The metal bundle is cylindrical and elastic. There are gaps between the multiple metal strips, enabling the metal bundle to guide the flow of water.

[0017] Preferably, an inner plate is fixedly arranged inside the metal bundle. The inner plate is welded to the metal bundle. A rolling ball is provided on one side of the inner plate. The rolling ball is close to the other end of the metal bundle. The metal bundle adheres to a film layer with extensibility. The metal fluff adheres to one side of the film layer. The rolling ball can impact the film layer;

[0018] The fixed rod is welded to the inner wall of the fixed frame. The fixed rod can be arranged to cross and press the other end of the metal bundle, so that the metal bundle can be pressed against the fixed rod during rotation.

[0019] Preferably, the side where the metal fluff adheres is denser than the other side, and the metal fluff is flexible. The metal fluff can fully contact the fabric fluff and conduct the static electricity on the fabric fluff.

[0020] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0021] (1) By arranging the metal fluff to brush back and forth, the metal bundle generates restored elasticity after passing through the fixed rod, and bounces under the action of the support spring and the end ball, resulting in the effect of the metal fluff brushing. The metal fluff can brush back and forth on the fabric fluff, transmit the static electricity on the fabric fluff, and make the fabric free of static electricity.

[0022] (2) By arranging the film layer to bulge outwards, during the swinging process of the metal bundle, the rolling balls inside the metal bundle impact the film layer back and forth. The film layer bulges outwards under the force, and the dense metal fluff can relatively expand and become sparse. The water guided from the metal bundle can well wet the metal fluff and avoid wetting the fabric fluff, and can well remove the static electricity.

[0023] (3) By arranging the branch pipe to inlet and outlet water, during the swinging of the branch pipe, the masses of the two abutting blocks are different. Under the action of inertia, one abutting block can squeeze the return spring to open the water inlet so that water can enter the branch pipe at intervals, avoiding excessive water entry and achieving control of the water variable.

[0024] (4) By arranging the foam circle to be wetted and the metal bundle, the water in the branch pipe flows out from the water outlet holes, wets the foam circle, and then flows along the gaps of the metal bundle to wet the metal fluff, controlling the degree of dampness and effectively preventing the fabric from getting wet. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] Figure 1 is a schematic diagram of the overall structure of the present invention;

[0026] Figure 2 is a schematic diagram of the cross-sectional structure of the rotating cylinder of the present invention;

[0027] Figure 3 is a schematic diagram of the semi-sectional structure of the mounting sleeve of the present invention;

[0028] Figure 4 is a schematic diagram of the cross-sectional structure of the metal bundle of the present invention;

[0029] Figure 5 is a schematic diagram of the cross-sectional structure of the branch pipe of the present invention;

[0030] Figure 6 This is a schematic diagram of the internal structure of the branch pipe of the present invention.

[0031] In the figure: 1, fixing frame; 11, groove; 12, driven roller; 2, water storage frame; 21, connecting pipe; 3, rotating cylinder; 31, mounting sleeve; 311, rubber film; 32, cleaning component; 321, metal bundle; 3211, built-in plate; 3212, rolling ball; 3213, film layer; 322, sleeve; 323, support spring; 324, foam circle; 325, end ball; 326, branch pipe; 3261, water outlet hole; 3262, rotating rod; 3263, side rod; 3264, abutting block; 3265, return spring; 3266, support plate; 327, metal fluff; 4, rotating shaft; 41, communication hole; 5, fixing rod. Detailed implementation manners

[0032] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0033] Please refer to Figures 1-6 , the present invention provides a technical solution: an electrostatic wiping device for the surface of textile gauze, including a fixing frame 1. A water storage frame 2 is placed on the upper end of the fixing frame 1. The front end of the water storage frame 2 is fixedly connected with a connecting pipe 21 that is communicated with the inside. A groove 11 for pulling the textile cloth is opened at the upper end of the fixing frame 1. Two driven rollers 12 are rotatably arranged in the groove 11 so that the cloth can be smoothly pulled;

[0034] Two symmetrically arranged rotating cylinders 3 are rotatably arranged inside the fixing frame 1 so that both sides of the cloth can be squeezed. A rotating shaft 4 is sleeved inside the rotating cylinder 3, and the rotating shaft 4 can drive the rotating cylinder 3 to rotate. The rear end of the rotating shaft 4 penetrates through the fixing frame 1, and a fixing rod 5 is arranged between the two symmetrically arranged rotating cylinders 3;

[0035] An installation sleeve 31 is inserted into the rotating cylinder 3 from the inside to the outside, and a cleaning component 32 for removing static electricity from the textile cloth is arranged inside the installation sleeve 31.

[0036] A driving motor is arranged at the end of the rotating shaft 4 penetrating through the fixing frame 1, and the output end of the driving motor is fixedly connected with the rotating shaft 4 as the output power for driving the rotating shaft 4 to rotate;

[0037] The front end of the rotating shaft 4 is rotatably connected with the connecting pipe 21. A communication hole 41 is opened on the outer wall of the rotating shaft 4, and the communication hole 41 is communicated with the inside of the connecting pipe 21 so that water can flow along the connecting pipe 21.

[0038] The cleaning component 32 includes a metal bundle 321, a sleeve 322, a support spring 323, a foam circle 324, an end ball 325, a branch pipe 326, and metal fluff 327;

[0039] The metal bundle 321 is located inside the installation sleeve 31, and one end of the metal bundle 321 extends outward from the inside of the installation sleeve 31. The sleeve 322 is fixedly welded to the outer wall of the metal bundle 321. The support spring 323 is fixedly connected to the upper end of the sleeve 322 and is vertically arranged, acting as a fulcrum. The end of the support spring 323 is welded to the inner wall of the installation sleeve 31. The end ball 325 is welded to one end of the metal bundle 321. The foam circle 324 wraps the end ball 325. The foam circle 324 can absorb water, enabling the water to flow along the metal bundle 321. The branch pipe 326 is welded to the side of the end ball 325 away from the metal bundle 321. The metal fluff 327 is connected to the other end of the metal bundle 321. The end ball 325 plays a role of a counterweight to ensure that the metal bundle 321 can swing.

[0040] One end of the installation sleeve 31 is provided with a rubber membrane 311. The branch pipe 326 penetrates through the rubber membrane 311 and is fixedly connected thereto, blocking water while enabling the branch pipe 326 to swing. Water outlet holes 3261 are formed on the outer wall of the branch pipe 326 located inside the foam circle 324, and the foam circle 324 is wetted through the water outlet holes 3261;

[0041] A rotating rod 3262 is rotatably connected to the inside of the branch pipe 326 at the end away from the end ball 325. A side rod 3263 is welded to the rotating rod 3262. The side rod 3263 and the rotating rod 3262 are arranged at a right angle. Blocks 3264 are fixedly connected to both ends of the side rod 3263. The mass of one of the blocks 3264 is greater than that of the other. An inlet is provided on the outer wall of the branch pipe 326, and the inlet is blocked by the blocks 3264. During the swinging process, both blocks 3264 can be stressed, but the mass of one of the blocks 3264 is large, so the blocks 3264 can rotate;

[0042] A return spring 3265 is welded to the side of one of the blocks 3264. A support plate 3266 is welded to the inner wall of the branch pipe 326. The end of the return spring 3265 is welded to the support plate 3266. The return spring 3265 has a supporting effect on the block 3264, and at the same time, the return spring 3265 can be compressed when the block 3264 moves.

[0043] The abutting block 3264 is made of metal, and the outer wall of the abutting block 3264 is smooth. The abutting block 3264 fits against the inner wall of the branch pipe 326, enabling the abutting block 3264 to rotate. During the swinging of the branch pipe 326, the masses of the two abutting blocks 3264 are different. Under the action of inertia, one abutting block 3264 can squeeze the return spring 3265, opening the water inlet so that water can enter the branch pipe 326 at intervals, preventing excessive water entry and achieving control of the water variable.

[0044] The metal bundle 321 is composed of multiple metal strips. The metal bundle 321 is fixed by the sleeve 322. The metal bundle 321 is cylindrical and elastic, and there are gaps between the multiple metal strips, enabling the metal bundle 321 to guide the flow of water.

[0045] An inner plate 3211 is fixedly provided inside the metal bundle 321. The inner plate 3211 is welded to the metal bundle 321. A rolling ball 3212 is provided on one side of the inner plate 3211. The rolling ball 3212 is close to the other end of the metal bundle 321. The metal bundle 321 adheres to a film layer 3213 with extensibility. Metal fluff 327 adheres to one side of the film layer 3213. The rolling ball 3212 can impact the film layer 3213.

[0046] During the swinging of the metal bundle 321, the rolling ball 3212 inside the metal bundle 321 impacts the film layer 3213 back and forth. The film layer 3213 bulges outwards under the force. The dense metal fluff 327 can relatively expand and become sparse. The water guided by the metal bundle 321 can well wet the metal fluff 327, and at the same time can avoid wetting the fluff of the fabric, effectively removing static electricity.

[0047] The fixing rod 5 is welded to the inner wall of the fixing frame 1. The fixing rod 5 can cross and squeeze the other end of the metal bundle 321, enabling the metal bundle 321 to be squeezed by the fixing rod 5 during rotation.

[0048] After passing through the fixing rod 5, the metal bundle 321 generates restored elasticity and bounces under the action of the support spring 323 and the end ball 325. The metal fluff 327 produces a brushing effect, enabling the metal fluff 327 to brush back and forth on the fluff of the fabric, transmitting the static electricity on the fluff of the fabric and making the fabric free of static electricity.

[0049] The side where the metal fluff 327 adheres is denser than the other side, and the metal fluff 327 is flexible. The metal fluff 327 can fully contact the fluff of the fabric and conduct the static electricity on the fluff of the fabric.

[0050] In use, the driving motor at the rear end works to drive the rotating shaft 4 to rotate. During the rotation of the rotating shaft 4, the rotating cylinder 3 is driven to rotate. At the same time, the water inside the upper water storage frame 2 flows into the inside of the rotating cylinder 3 through the connecting pipe 21, and the fabric is pulled upward from the inside of the driven roller 12 and extends upward;

[0051] During the rotation of the rotating cylinder 3, the mounting sleeve 31 and the cleaning assembly 32 are driven to rotate. At the same time, during the rotation, the metal fluff 327 contacts the fluff of the fabric. When the rotating cylinder 3 rotates, the metal bundle 321 is squeezed against the fixed rod 5, causing the metal bundle 321 to deform. At the same time, after passing the fixed rod 5, the metal bundle 321 generates elastic recovery. Under the action of the support spring 323 and the end ball 325, it bounces, causing the metal fluff 327 at the end to produce a brushing effect. That is, the metal fluff 327 can brush back and forth on the fabric fluff, transmitting the static electricity on the fabric fluff and making the fabric free of static electricity;

[0052] After that, during the swinging of the metal bundle 321, the rolling ball 3212 inside the metal bundle 321 can effectively impact the membrane layer 3213, that is, the membrane layer 3213 is forced to bulge outwards, so that the dense metal fluff 327 can relatively expand and present a sparse change. Then the water guided from the metal bundle 321 can well wet the metal fluff 327, and can avoid wetting the fluff of the fabric, and can well remove the static electricity;

[0053] During the swinging of the metal bundle 321, the branch pipe 326 also swings. At the same time, during the swinging of the branch pipe 326, the internal abutting block 3264 is stressed. The masses of the two abutting blocks 3264 are different. Therefore, under the action of inertia, one abutting block 3264 can squeeze the return spring 3265, that is, the water inlet is opened so that water can enter the branch pipe 326 at intervals, avoiding excessive water entry and achieving control of the water variable;

[0054] The water entering the branch pipe 326 flows out from the water outlet hole 3261, wets the foam circle 324, and then the foam circle 324 will flow along the gap of the metal bundle 321 to wet the metal fluff 327, so that the metal fluff 327 reaches the wetting degree, and can control the humidity level, effectively preventing the fabric from getting wet.

[0055] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An electrostatic erasing device for the surface of textile gauze, comprising a fixing frame (1), characterized in that: A water storage frame (2) is placed at the upper end of the fixing frame (1). A connecting pipe (21) that is connected to the inside is fixedly connected to the front end of the water storage frame (2). A groove (11) for pulling the textile fabric is formed at the upper end of the fixing frame (1). Two driven rollers (12) are rotatably arranged in the groove (11). Two symmetrically arranged rotating cylinders (3) are rotatably arranged inside the fixing frame (1). A rotating shaft (4) is sleeved inside the rotating cylinder (3). The rotating shaft (4) can drive the rotating cylinder (3) to rotate. The rear end of the rotating shaft (4) penetrates through the fixing frame (1). A fixing rod (5) is arranged between the two symmetrically arranged rotating cylinders (3). An installation sleeve (31) is inserted into the rotating cylinder (3) from the inside to the outside. A cleaning component (32) for removing static electricity from the textile fabric is arranged inside the installation sleeve (31). The cleaning component (32) includes a metal bundle (321), a sleeve (322), a support spring (323), a foam circle (324), an end ball (325), a branch pipe (326), and metal fluff (327). The metal bundle (321) is located inside the installation sleeve (31), and one end of the metal bundle (321) extends outward from the inside of the installation sleeve (31). The sleeve (322) is fixedly welded to the outer wall of the metal bundle (321). The support spring (323) is fixedly connected to the upper end of the sleeve (322) and is arranged vertically. The end of the support spring (323) is welded to the inner wall of the installation sleeve (31). The end ball (325) is welded to one end of the metal bundle (321). The foam circle (324) wraps the end ball (325). The branch pipe (326) is welded to the side of the end ball (325) away from the metal bundle (321). The metal fluff (327) is connected to the other end of the metal bundle (321).

2. The surface static electricity erasing device for textile gauze according to claim 1, wherein: A driving motor is arranged at the end of the rotating shaft (4) that penetrates through the fixing frame (1). The output end of the driving motor is fixedly connected to the rotating shaft (4). The front end of the rotating shaft (4) is rotatably connected to the connecting pipe (21). A communication hole (41) is formed on the outer wall of the rotating shaft (4). The communication hole (41) is communicated with the inside of the connecting pipe (21).

3. A textile gauze surface static electricity erasing device according to claim 1, characterized in that: One end of the installation sleeve (31) is arranged as a rubber film (311). The branch pipe (326) penetrates through the rubber film (311) and is fixedly connected to it. Water outlet holes (3261) are formed on the outer wall of the branch pipe (326) located inside the foam circle (324). A rotating rod (3262) is rotatably connected to the inside of the branch pipe (326) at the end away from the end ball (325). A side rod (3263) is welded to the rotating rod (3262). The side rod (3263) and the rotating rod (3262) are arranged at a right angle. Blocks (3264) are fixedly connected to both ends of the side rod (3263). The mass of one of the blocks (3264) is greater than that of the other. An inlet is arranged on the outer wall of the branch pipe (326), and the inlet is blocked by the block (3264). A return spring (3265) is welded to the side of one of the abutting blocks (3264). A support plate (3266) is welded to the inner wall of the branch pipe (326), and the end of the return spring (3265) is welded to the support plate (3266).

4. The surface static electricity removal device for textile gauze according to claim 3, characterized in that: The abutting block (3264) is made of metal, and the outer wall of the abutting block (3264) is smooth. The abutting block (3264) fits against the inner wall of the branch pipe (326).

5. The surface static electricity removal device for textile gauze according to claim 1, wherein: The metal bundle (321) is composed of multiple metal strips. The metal bundle (321) is fixed by a sleeve (322). The metal bundle (321) is cylindrical and elastic.

6. The surface static electricity removal device for textile gauze according to claim 5, characterized in that: An inner plate (3211) is fixedly arranged inside the metal bundle (321). The inner plate (3211) is welded to the metal bundle (321). A rolling ball (3212) is arranged on one side of the inner plate (3211). The rolling ball (3212) is close to the other end of the metal bundle (321). A film layer (3213) with extensibility is adhered to the metal bundle (321). The metal fluff (327) is adhered to one side of the film layer (3213). The fixing rod (5) is welded to the inner wall of the fixing frame (1), and the fixing rod (5) can cross-extrude the other end of the metal bundle (321).

7. The surface static electricity removal device for textile gauze according to claim 6, characterized in that: The side where the metal fluff (327) is adhered is denser than the other side, and the metal fluff (327) is flexible.

Citation Information

Patent Citations

  • Anti-static textile fabric cleaning and flattening device

    CN114197139A

  • Anti-static equipment for non-woven fabric production

    CN216626139U