Plasma treatment device for fabric production
By introducing a sliding block and telescopic cylinder structure into the plasma treatment device, the problem of poor fabric treatment effect at the gap of the spray gun head was solved, achieving uniform treatment of the fabric surface and saving raw materials.
Patent Information
- Application Number
- CN202422570616.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-23
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2034-10-23
AI Technical Summary
The fixed connection of the spray gun heads in existing plasma treatment devices results in poor surface treatment of the fabric at the gaps between the spray gun heads, affecting the overall effect of the fabric surface.
It adopts a sliding block and telescopic cylinder structure. The sliding block is driven by a drive screw to move the nozzle along the conveyor belt. The opening and closing of the nozzle is controlled by a switching mechanism to avoid material waste.
It improves the surface treatment of the fabric, avoids material waste in the nozzle gaps, and enhances the overall quality of the fabric.
Smart Images

Figure CN223496907U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of plasma processing equipment technology, and in particular to a plasma processing equipment for fabric production. Background Technology
[0002] Oxford cloth, also known as Oxford textile, is a versatile fabric with a wide range of uses. The main varieties available on the market include: checkered, full stretch, nylon, and jacquard.
[0003] Oxford cloth is lightweight, soft to the touch, easy to wash and quick-drying, highly absorbent, comfortable to wear, and possesses excellent waterproof, flexural, anti-static, tensile, and fire-resistant properties. Therefore, it is suitable for making outerwear, various bags, tents, and other outdoor products. Plasma treatment equipment, also commonly known as plasma surface treatment machines, plasma surface processors, plasma polishers, and plasma cleaners, consists of three main parts: a plasma generator, a gas delivery system, and a plasma spray gun.
[0004] Currently, when using plasma treatment devices to treat the surface of Oxford fabric, the spray guns of most of these devices are fixedly connected, and the use of multiple spray guns occupies a large space. Furthermore, gaps between the spray guns result in poor surface treatment at these gaps, affecting the overall quality of the fabric surface. Therefore, we have made improvements and proposed a plasma treatment device for fabric production. Utility Model Content
[0005] In order to improve the quality of fabrics, this application provides a plasma treatment apparatus for fabric production.
[0006] The plasma treatment device for fabric production provided in this application adopts the following technical solution:
[0007] A plasma treatment device for fabric production includes a support frame with a conveyor belt for transporting fabric. A plasma generator is mounted on one side of the support frame, and a flexible tube is connected to the plasma generator. A nozzle for treating the fabric is connected to the flexible tube. A top plate extending to the support frame is connected to the plasma generator. A sliding block is slidably connected to the top plate and moves in a direction perpendicular to the movement of the conveyor belt. A drive mechanism for driving the sliding block is provided on the top plate. A telescopic cylinder is also provided on the top plate, which is sleeved over the flexible tube and restricts the flexible tube from bending above the conveyor belt.
[0008] Preferably, the driving mechanism includes a drive screw rotatably connected to the top plate, the drive screw passing through the sliding block and threadedly connected to the sliding block, and a drive motor that drives the drive screw to rotate is fixed on the top plate.
[0009] Preferably, a mounting box is fixed above the plasma machine, the hose enters the mounting box and exits through the side wall of the mounting box, the top plate is fixed on the mounting box, a coil spring is fixed inside the mounting box, the side wall of the hose is fixed on the coil spring and the hose located in the telescopic cylinder is always in a straight state.
[0010] Preferably, a telescopic cylinder is fixed on the sliding block, a connecting block is fixed to the end of the telescopic cylinder connecting rod, the nozzle is set on the connecting block, a track groove is opened on the side wall of the mounting box in the vertical direction, a vertical track is installed on the track groove, and the end of the telescopic cylinder is slidably connected to the vertical track and slides in the vertical direction.
[0011] Preferably, a connecting tube is fixed to the end of the hose, the connecting tube is fixed to the connecting block, the nozzle is fixed to the connecting tube, the nozzle, the connecting tube and the hose are connected, and a switching mechanism is provided on the connecting tube. When the nozzle moves to both sides, the switching mechanism is used to close the nozzle.
[0012] Preferably, a protective cover extending downwards and covering the nozzle is fixed to the top plate.
[0013] Preferably, the switching mechanism includes a switch plate slidably connected to the connecting cylinder. The switch plate has a through hole that passes through the switch plate and is aligned with the opening of the connecting cylinder. Abutment rods are fixed on the opposite side walls of the switch plate along the direction of movement of the sliding block. When the sliding block moves to both ends, the abutment rods abut against the inner wall of the protective cover or the side wall of the mounting box, causing the switch plate to slide and close the connecting cylinder. A switch spring for pulling the switch plate to reset is fixed inside the connecting cylinder.
[0014] Preferably, the abutment rod is an abutment bolt threaded onto the switch plate.
[0015] The beneficial technical effects of this utility model are as follows: During the rotation of the drive screw, the sliding block is driven to reciprocate. During the movement of the sliding block, the telescopic cylinder protects the hose. At the same time, the nozzle sprays the fabric surface. When the nozzle finishes spraying the fabric and needs to move in the opposite direction, the switch plate closes the connecting cylinder to avoid material waste. According to actual needs, it can act on the telescopic cylinder to adjust the positional relationship between the nozzle and the fabric. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall structure of an embodiment of this application.
[0017] Figure 2 This is a schematic diagram of the connection structure of the sliding block on the top plate.
[0018] Figure 3 This is a schematic diagram of the switching mechanism.
[0019] Explanation of reference numerals in the attached drawings: 1. Bracket; 2. Conveyor belt; 3. Top plate; 4. Telescopic cylinder; 5. Sliding block; 6. Drive screw; 7. Drive motor; 8. Mounting box; 9. Coil spring; 10. Telescopic cylinder; 11. Connecting block; 12. Connecting cylinder; 13. Nozzle; 14. Vertical track; 15. Switch plate; 16. Through hole; 17. Abutment rod; 18. Switch spring; 19. Plasma machine; 20. Hoses; 21. Protective cover. Detailed Implementation
[0020] The following is in conjunction with the appendix Figure 1-3 This application will be described in further detail.
[0021] This application discloses a plasma treatment apparatus for fabric production.
[0022] Reference Figure 1 A plasma treatment device for fabric production includes a support 1 fixed on the ground, a conveyor belt 2 for transporting fabric on the support 1, the conveyor belt 2 being driven by a motor, a plasma machine 19 fixed on the ground on one side of the support 1, a flexible hose 20 connected to the discharge end of the plasma machine 19, a nozzle 13 for processing fabric connected to the flexible hose 20, a top plate 3 extending to the support 1 connected to the plasma machine 19, a protective cover 21 fixed on the top plate 3, the protective cover 21 extending downward to cover the nozzle 13, and a gap reserved between the protective cover 21 and the support 1 for the fabric to enter the protective cover 21.
[0023] Reference Figure 1 and Figure 2 A sliding block 5 is slidably connected to the top plate 3. The sliding block 5 moves in a direction perpendicular to the movement of the conveyor belt 2. A drive mechanism for driving the sliding block 5 is provided on the top plate 3. The drive mechanism includes a drive screw 6 rotatably connected to the top plate 3. The drive screw 6 is perpendicular to the movement direction of the conveyor belt 2. The drive screw 6 passes through the sliding block 5 and is threadedly connected to the sliding block 5. A drive motor 7 is fixed on the top plate 3. The output shaft of the drive motor 7 is coaxially connected to the drive screw 6 and drives the drive screw 6 to rotate, thereby causing the sliding block 5 to slide.
[0024] Reference Figure 1 and Figure 2A telescopic cylinder 4 is also provided on the top plate 3, which covers the hose 20 to prevent the hose 20 above the conveyor belt 2 from bending and to prevent interference with the movement of the sliding block 5. A mounting box 8 is fixed above the plasma machine 19. The hose 20 extends from the plasma machine 19 and enters the mounting box 8 and passes through the side wall of the mounting box 8. The top plate 3 is fixed on the mounting box 8, and a coil spring 9 is fixed inside the mounting box 8. The side wall of the hose 20 is fixed to the coil spring 9. When the sliding block 5 moves away from the mounting box 8, the coil spring 9 coils up and accumulates elastic potential energy. When the sliding block 5 moves closer to the mounting box 8, the coil spring 9 unwinds, so that the hose 20 between the sliding block 5 and the coil spring 9 is always in a taut state to prevent interference with the movement of the sliding block 5.
[0025] Reference Figure 1 and Figure 2 A telescopic cylinder 10 is fixed on the sliding block 5. A connecting block 11 is fixed to the end of the connecting rod of the telescopic cylinder 10. A connecting tube 12 is fixed to the end of the hose 20. The connecting tube 12 is fixed on the connecting block 11. The nozzle 13 is fixed on the connecting tube 12. The nozzle 13, the connecting tube 12 and the hose 20 are connected. A track groove is opened on the side wall of the mounting box 8 in the vertical direction. A vertical track 14 is installed on the track groove. The end of the telescopic tube 4 is slidably connected to the vertical track 14. The telescopic cylinder 10 drives the nozzle 13 to move up and down. During this process, the telescopic tube 4 drives the hose 20 to move up and down.
[0026] Reference Figure 2 and Figure 3 The connecting cylinder 12 is equipped with a switching mechanism. When the nozzle 13 moves to both sides, the switching mechanism is used to close the nozzle 13, which avoids waste of raw materials and prevents the edges of the fabric from being over-processed.
[0027] Reference Figure 2 and Figure 3 The switching mechanism includes a switch plate 15 slidably connected to the connecting cylinder 12. The switch plate 15 has a through hole 16 that passes through the switch plate 15 and is aligned with the opening of the connecting cylinder 12. A switch spring 18 is fixed inside the connecting cylinder 12. The switch spring 18 pulls the switch plate 15 and keeps the through hole 16 connected to the connecting cylinder 12. Abutment rods 17 are fixed on the opposite side walls of the switch plate 15 along the direction of movement of the sliding block 5. The abutment rods 17 are abutment bolts threaded onto the switch plate 15. When the sliding block 5 moves to both ends, the abutment rods 17 abut against the inner wall of the protective cover 21 or the side wall of the mounting box 8, causing the switch plate 15 to slide. The through hole 16 is misaligned with the discharge hole on the connecting cylinder 12, closing the connecting cylinder 12.
[0028] The implementation principle of this application embodiment is as follows: the drive motor 7 drives the drive screw 6 to rotate, the drive screw 6 drives the sliding block 5 to move, and during the movement of the sliding block 5, the telescopic cylinder 4 protects the hose 20, while the nozzle 13 sprays the fabric surface. When the nozzle 13 finishes spraying the fabric and needs to move in the opposite direction, the switch plate 15 closes the connecting cylinder 12 to avoid material waste.
[0029] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A plasma treatment apparatus for fabric production, comprising a support (1), a conveyor belt (2) for transporting fabric is provided on the support (1), a plasma generator (19) is provided on one side of the support (1), a flexible tube (20) is connected to the plasma generator (19), and a nozzle (13) for treating fabric is connected to the flexible tube (20), characterized in that: The plasma machine (19) is connected to a top plate (3) extending to the support (1). A sliding block (5) is slidably connected to the top plate (3). The sliding block (5) moves in a direction perpendicular to the movement of the conveyor belt (2). The top plate (3) is provided with a driving mechanism to drive the sliding block (5) to move. The top plate (3) is also provided with a telescopic cylinder (4) that is sleeved on the hose (20) and restricts the hose (20) from bending above the conveyor belt (2). The driving mechanism includes a drive screw (6) rotatably connected to the top plate (3), the drive screw (6) passes through the sliding block (5) and is threadedly connected to the sliding block (5), and a drive motor (7) that drives the drive screw (6) to rotate is fixed on the top plate (3). The plasma generator (19) is fixed with a mounting box (8) above it. The hose (20) enters the mounting box (8) and passes through the side wall of the mounting box (8). The top plate (3) is fixed on the mounting box (8). A coil spring (9) is fixed inside the mounting box (8). The side wall of the hose (20) is fixed on the coil spring (9) so that the hose (20) located in the telescopic cylinder (4) is always in a straight state. A telescopic cylinder (10) is fixed on the sliding block (5), and a connecting block (11) is fixed at the end of the connecting rod of the telescopic cylinder (10). The nozzle (13) is set on the connecting block (11). A track groove is opened on the side wall of the mounting box (8) in the vertical direction. A vertical track (14) is installed on the track groove. The end of the telescopic cylinder (4) is slidably connected to the vertical track (14) and slides in the vertical direction. The end of the hose (20) is fixed with a connecting tube (12), the connecting tube (12) is fixed on the connecting block (11), the nozzle (13) is fixed on the connecting tube (12), the nozzle (13), the connecting tube (12) and the hose (20) are connected, and the connecting tube (12) is provided with a switch mechanism. When the nozzle (13) moves to both sides, the switch mechanism is used to close the nozzle (13); A protective cover (21) extending downwards and covering the nozzle (13) is fixed on the top plate (3); The switching mechanism includes a switch plate (15) slidably connected to the connecting cylinder (12). The switch plate (15) has a through hole (16) that passes through the switch plate (15) and is aligned with the opening of the connecting cylinder (12). The switch plate (15) has abutment rods (17) fixed on the opposite side walls along the direction of movement of the sliding block (5). When the sliding block (5) moves to both ends, the abutment rods (17) abut against the inner wall of the protective cover (21) or the side wall of the mounting box (8), causing the switch plate (15) to slide and close the connecting cylinder (12). The connecting cylinder (12) has a switch spring (18) fixed inside to pull the switch plate (15) back to its original position. The abutment rod (17) is an abutment bolt threaded onto the switch plate (15).