Antibacterial fabric and processing technology thereof
Through the combination of antibacterial fabric processing technology and flattening device, the problem of uneven fabric during the drying process is solved, and the fabric is quickly smoothed and clamped, improving drying efficiency and fabric quality.
Patent Information
- Application Number
- CN202510107224.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-23
- Publication Date
- 2025-05-06
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
During the drying process, the fabric may be uneven due to changes in high temperature and humidity, which may affect its appearance quality and subsequent processing performance.
An antibacterial fabric processing technology is adopted, through cleaning, antibacterial solution soaking and heat treatment, combined with the leveling device of the driving component and the clamping component, the fabric is quickly smoothed and clamped.
It effectively improves the drying efficiency and overall preparation efficiency of the fabric, solves the problem of uneven fabrics, and improves the quality and performance of the fabric.
Smart Images

Figure CN119932835A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the field of fabric processing, and in particular to an antibacterial fabric and a processing technology thereof. Background Art
[0002] In the production and processing of textiles, drying is a crucial link. The drying box is the main equipment to achieve this link, and its internal environment has a direct impact on the quality of the fabric. However, in actual operation, it is often found that the fabric in the drying box is uneven. This defect not only affects the appearance quality of the fabric, but also may have an adverse effect on its subsequent processing and use performance.
[0003] There are many reasons why fabrics become uneven during the drying process. One of them is that the fabric may already have slight wrinkles or twists before entering the drying box. These defects are amplified during the drying process due to the changes in high temperature and humidity, causing the fabric to become even more uneven. The problem of uneven fabrics not only affects the appearance quality of the product, but may also have a negative impact on its subsequent processing and performance. For example, in subsequent cutting, sewing and other processes, uneven fabrics will increase the difficulty and complexity of operations, and may even cause the product to be scrapped. In terms of performance, uneven fabrics may affect their physical properties such as breathability and hygroscopicity, thereby reducing the comfort and durability of the product.
[0004] Therefore, how to solve the problem of uneven fabrics in the drying box and improve the drying quality of fabrics is a technical problem that needs to be solved urgently in the textile industry. Summary of the invention
[0005] The purpose of the present invention is to provide an antibacterial fabric and its processing technology to solve the technical problem that the fabric may have slight wrinkles or twists before entering the drying box, and these defects are amplified due to changes in high temperature and humidity during the drying process, resulting in the fabric becoming more uneven.
[0006] The purpose of the present invention can be achieved through the following technical solutions:
[0007] A process for processing antibacterial fabrics, the process comprising the following steps:
[0008] S1. Clean the fabric to remove oil stains and impurities;
[0009] S2, dissolving silver ion chitosan quaternary ammonium salt powder in water, then adding nisin and sodium benzoate, and finally adding sodium alginate, stirring thoroughly to obtain an antibacterial solution, and completely immersing the fabric in the prepared antibacterial solution to allow the silver ions to be evenly adsorbed on the fabric surface and inside the fiber;
[0010] S3. Preheat the drying oven to 150°C ± 20°C, spread the impregnated fabric evenly in the drying oven through a flattening device for heat treatment, so that the silver ions are closely combined with the fabric fibers to form a stable antibacterial layer;
[0011] After the heat treatment is completed, the fabric is taken out after the temperature in the oven cools down to room temperature naturally, and finally the fabric is softened and waterproofed;
[0012] The flattening device in S3 includes at least two groups of conveying rollers, and a flattening mechanism is arranged between the two groups of conveying rollers for flattening the fabric between the two groups of conveying rollers, and the flattening mechanism includes:
[0013] A clamping assembly, wherein two clamping assemblies are provided and symmetrically arranged on both sides of the drying box, and are used to clamp both sides of the fabric;
[0014] A driving assembly is installed in the drying box, and is used to drive two symmetrically distributed flattening rods to move synchronously to achieve a fabric flattening action.
[0015] Furthermore, the clamping assembly comprises: an upper clamping plate, the upper clamping plate is slidably sleeved on the column, the column is arranged in a T-shaped structure, the bottom end of the column is fixed to the lower clamping plate, a compression spring is arranged between the column of the T-shaped structure and the upper clamping plate, an inclined block is slidably connected between the upper clamping plate and the lower clamping plate, a limiting protrusion is arranged at the bottom of the inclined block, a limiting sliding groove is arranged on the upper surface of the upper clamping plate, the limiting protrusion is limitedly slidably connected in the limiting sliding groove, and a return spring is arranged between the limiting sliding groove and the side wall of the limiting sliding groove;
[0016] The ends of the two inclined blocks with a larger thickness are commonly connected with a connecting rod, and the connecting rod is driven by a linkage assembly to drive the two inclined blocks to move forward or backward.
[0017] Furthermore, the driving assembly includes:
[0018] The motor is installed on the outside of the drying box, and the output shaft of the motor passes through the side wall of the drying box and is connected to the screw rod. The screw rod is provided with two sections of spiral grooves with opposite rotation directions. The screw rod is spirally connected to two corresponding slides, and each slide is connected to a flattening rod; when the motor rotates forward, the two flattening rods are driven to move away from each other through the screw rod and the slide spiral transmission, and when the motor rotates reversely, the two flattening rods move towards each other.
[0019] Furthermore, the linkage component includes:
[0020] A lever, a rotating shaft is fixed in the middle of the lever, the rotating shaft is rotatably installed on the bracket through a torsion spring, the bracket is fixedly set on the inner wall of the drying box, one end of the lever is in contact with the connecting rod, and the other end is fitted on the side panel, the bottom of the side panel is fixedly set on the bottom wall of the drying box, a pushing block is fixed on the side of the slide seat facing the side panel, the side of the pushing block facing the end of the lever is set to an inclined surface, and the thickness of the pushing block is thicker as it is farther away from the lever.
[0021] Furthermore, a lifting groove is provided on the slide seat, and a lifting assembly is provided in the lifting groove. The lifting assembly is used to drive the flattening rod to rise when the clamping assembly is working so as to separate from the fabric.
[0022] The lifting assembly comprises:
[0023] A lifting column, which passes downward through the bottom wall of the lifting groove and is fixedly connected to the flattening rod. The lifting column is arranged as a T-shaped mechanism. A pressing spring is arranged between the lifting column and the top wall of the lifting groove. A section of the pushing block close to the sliding seat is connected with a penetration strip, which is arranged obliquely. The penetration strip is slidably installed on a penetration slot provided on the sliding seat, and the penetration slot is connected to the lifting groove. The top end of the side panel is arranged as an L-shaped structure, and the penetration strip is located between the T-shaped end of the lifting column and the bottom wall of the penetration slot.
[0024] Furthermore, the lower clamping plate and the upper clamping plate are both provided with replacement components, and the replacement components are used to replace the contact portion between the lower clamping plate or the upper clamping plate and the fabric.
[0025] The replacement assembly comprises:
[0026] A group of floating grooves are equidistantly provided on the relative surfaces of the upper splint and the lower splint, and a floating block is connected to each floating groove in a limiting sliding manner, wherein the floating groove on the upper splint is an upper floating groove, and the floating groove on the lower splint is a lower floating groove, and the upper floating grooves and the lower floating grooves are staggered, and a telescopic cylinder is connected between each floating block and the bottom wall of the floating groove, and the multiple telescopic cylinders on the upper splint are connected through an upper air pipe, and the multiple telescopic cylinders on the lower splint are connected through a lower air pipe.
[0027] Beneficial effects of the present invention:
[0028] (1) Through the cooperation of the driving component and the clamping component, on the one hand, the fabric is quickly flattened. At the same time, with the cooperation of the linkage component, the driving section that is just flattening the fabric triggers the operation of the clamping component to achieve seamless connection between the flattened fabric and the edge of the clamped fabric. Compared with the action of flattening all the time or flattening first and then clamping, the present invention obviously spends less time between flattening and clamping. Therefore, on the other hand, it can effectively improve the drying efficiency of the fabric, thereby improving the overall fabric preparation efficiency, and overcome the fabric quality problem caused by drying the initial fabric wrinkles;
[0029] (2) The present invention utilizes the action of the pushing block to push the lever to move, thereby achieving timely clamping of the fabric after the fabric is flattened by the clamping assembly. On the other hand, the present invention can passively push the lifting column upward, thereby achieving synchronous separation of the flattening rod from the fabric, thereby reducing obstruction to local fabric, thus achieving multiple goals at one stroke. BRIEF DESCRIPTION OF THE DRAWINGS
[0030] The present invention will be further described below in conjunction with the accompanying drawings.
[0031] Figure 1 It is the overall framework diagram of the present invention;
[0032] Figure 2 for Figure 1 Schematic diagram of the internal structure;
[0033] Figure 3 It is a schematic diagram of the three-dimensional structure of the clamping assembly in the present invention;
[0034] Figure 4 It is a schematic diagram of the structure of the lifting assembly in the present invention;
[0035] Figure 5 A schematic diagram of the structure of the replacement component;
[0036] Figure 6 for Figure 5 Status diagram of .
[0037] Description of the drawings: 1. Drying box; 2. Conveying roller; 3. Clamping assembly; 31. Upper clamping plate; 32. Vertical column; 33. Lower clamping plate; 34. Compression spring; 35. Inclined block; 36. Limiting protrusion; 37. Limiting slide groove; 38. Connecting rod; 39. Linkage assembly; 391. Lever; 392. Rotating shaft; 393. Bracket; 394. Side plate; 395. Pushing block; 396. Inclined surface; 4. Driving assembly; 41. Motor; 42. Screw rod; 43. Slide seat; 5. Flattening rod; 6. Lifting groove; 61. Lifting assembly; 611. Lifting column; 612. Compression spring; 613. Wearing strip; 614. Through groove; 7. Replacement assembly; 71. Floating groove; 72. Floating block; 73. Telescopic cylinder. DETAILED DESCRIPTION
[0038] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0039] See also Figure 1-Figure 6 As shown, the present invention is a process for processing antibacterial fabrics, which comprises the following steps:
[0040] S1. Clean the fabric to remove oil stains and impurities;
[0041] S2, dissolving silver ion chitosan quaternary ammonium salt powder in water, then adding nisin and sodium benzoate, and finally adding sodium alginate, stirring thoroughly to obtain an antibacterial solution, and completely immersing the fabric in the prepared antibacterial solution to allow the silver ions to be evenly adsorbed on the fabric surface and inside the fiber;
[0042] S3, preheating the drying box 1 to 150°C ± 20°C, spreading the impregnated fabric evenly in the drying box 1 through a flattening device for heat treatment, so that the silver ions are closely combined with the fabric fibers to form a stable antibacterial layer;
[0043] After the heat treatment is completed, the fabric is taken out after the temperature in the oven cools down to room temperature naturally, and finally the fabric is softened and waterproofed;
[0044] The flattening device in S3 includes at least two groups of conveying rollers 2, and a flattening mechanism is arranged between the two groups of conveying rollers 2 for flattening the fabric between the two groups of conveying rollers 2. The flattening mechanism includes:
[0045] A clamping assembly 3, wherein two clamping assemblies 3 are provided and symmetrically arranged on both sides of the drying box 1, and are used to clamp both sides of the fabric;
[0046] A driving assembly 4 is installed in the drying box 1, and is used to drive two symmetrically distributed flattening rods 5 to move synchronously to achieve a fabric flattening action.
[0047] The clamping assembly 3 comprises: an upper clamping plate 31, the upper clamping plate 31 is slidably mounted on a column 32, the column 32 is arranged in a T-shaped structure, the bottom end of the column 32 is fixed on a lower clamping plate 33, a compression spring 34 is arranged between the column 32 of the T-shaped structure and the upper clamping plate 31, an inclined block 35 is slidably connected between the upper clamping plate 31 and the lower clamping plate 33, a limiting protrusion 36 is arranged at the bottom of the inclined block 35, a limiting slide groove 37 is arranged on the upper surface of the upper clamping plate 31, the limiting protrusion 36 is limitedly slidably connected in the limiting slide groove 37, and a return spring is arranged between the limiting slide groove 37 and the side wall of the limiting slide groove 37;
[0048] The ends of the two inclined blocks 35 with a larger thickness are commonly connected with a connecting rod 38 , and the connecting rod 38 is driven by a linkage assembly 39 to drive the two inclined blocks 35 to move forward or backward.
[0049] The driving assembly 4 comprises:
[0050] The motor 41 is installed on the outside of the drying box 1, and the output shaft of the motor 41 passes through the side wall of the drying box 1 and is connected to the screw rod 42. The screw rod 42 is provided with two sections of spiral grooves with opposite rotation directions. The screw rod 42 is spirally connected to two corresponding slides 43, and each slide 43 is connected to a flattening rod 5. When the motor 41 rotates forward, the screw rod 42 and the slide 43 are spirally driven to drive the two flattening rods 5 to move away from each other, and when the motor 41 rotates reversely, the two flattening rods 5 move towards each other.
[0051] The linkage component 39 includes:
[0052] A lever 391, a rotating shaft 392 is fixed in the middle of the lever 391, the rotating shaft 392 is rotatably mounted on a bracket 393 through a torsion spring, the bracket 393 is fixedly arranged on the inner wall of the drying box 1, one end of the lever 391 is in contact with the connecting rod 38, and the other end is fitted on a side plate 394, the bottom of the side plate 394 is fixedly arranged on the bottom wall of the drying box 1, a push block 395 is fixed on the side of the slide 43 facing the side plate 394, the side of the push block 395 facing the end of the lever 391 is arranged as an inclined surface 396, and the thickness of the push block 395 is thicker as it is farther away from the lever 391.
[0053] In the present invention, a flattening device is provided, which improves the flatness of the fabric when the fabric is in the drying step, thereby improving the quality of the fabric after drying. Specifically, the fabric is uniformly conveyed to the drying box 1 by two sets of conveying rollers 2, and channels for entering the fabric are left on the front and rear sides of the drying box 1. Then, the motor 41 drives the screw rod 42 to rotate, and the screw rod 42 drives the two slides 43 to move through the spiral transmission. The movement process is: from the initial closed state to the two sides, the two flattening rods 5 completely flatten the fabric from the center to the two edges. At this time, the pushing block 395 set on the slide 43 gradually enters the top of the side plate 394. Since the pushing block 395 is toward the lever 3 One side of 91 is set as an inclined surface 396, so the more the pointed pushing block 395 moves toward the edges of both sides, the more it generates a pushing force on the lever 391, causing the lever 391 to be passively deflected, thereby pressing the bottom connecting rod 38 to deflect; because the connecting rod 38 is set as a Z-shaped structure, interference between the slide 43 and the connecting rod 38 can be avoided, and at the same time, the connecting rod 38 moves to push the inclined block 35 to move, so that the inclined block 35 overcomes the action of the return spring and forcibly moves outward, so that the inclined block 35 gradually changes from the initial state of being inserted between the upper clamping plate 31 and the lower clamping plate 33, so that the upper clamping plate 31 automatically fits with the lower clamping plate 33 under the action of the compression spring 34, thereby achieving the clamping of the edge of the fabric;
[0054] Through the cooperation of the above-mentioned driving component 4 and clamping component 3, on the one hand, the fabric is quickly flattened, and at the same time, with the cooperation of the linkage component 39, the driving section that is just flattening the fabric triggers the operation of the clamping component 3 to achieve seamless connection between the flattened fabric and the clamped fabric edge. Compared with the action of flattening all the time or flattening first and then clamping, the present invention obviously spends less time between flattening and clamping. Therefore, on the other hand, it can effectively improve the drying efficiency of the fabric, and then improve the overall fabric preparation efficiency, and overcome the fabric quality problem caused by drying the initial fabric wrinkles; when flattening, the two sets of conveying rollers 2 can first keep the fabric at the rear or front in a slightly relaxed state, and then tighten the fabric after flattening and clamping the fabric to achieve relative flatness of the fabric.
[0055] The slide seat 43 is also provided with a lifting groove 6 , in which a lifting assembly 61 is provided. The lifting assembly 61 is used to drive the flattening rod 5 to rise when the clamping assembly 3 is working, so as to separate from the fabric.
[0056] The lifting assembly 61 comprises:
[0057] The lifting column 611, the lifting column 611 downwardly penetrates the bottom wall of the lifting groove 6 and is fixedly connected to the flattening rod 5, the lifting column 611 is arranged as a T-shaped mechanism, a pressing spring 612 is arranged between the lifting column 611 and the top wall of the lifting groove 6, a section of the pushing block 395 close to the slide 43 is connected with a through strip 613, the through strip 613 is inclined, the through strip 613 is slidably installed on a through slot 614 provided on the slide 43, and the through slot 614 is connected to the lifting groove 6, the top end of the side plate 394 is arranged as an L-shaped structure, and the through strip 613 is located between the T-shaped end of the lifting column 611 and the bottom wall of the through slot 614.
[0058] In order to reduce the probability that the flattening rod 5 always contacts the fabric during the drying process, thereby hindering the partial drying of the fabric, the present invention provides a lifting assembly 61. During operation, once the flattening rod 5 moves to the left and right edges of the fabric, the pushing block 395 moves to the top of the side plate 394 and stops passively in an L shape. At this time, the pushing block 395 can continue to move a certain distance. The pushing block 395 will drive the connected penetration strip 613 to passively slide in the penetration groove 614, so that the thicker side of the penetration strip 613 gradually moves into the lifting groove 6, thereby forming a state in which the lifting column 611 is passively pushed to rise. The lifting column 611 can drive the flattening rod 5 at the bottom to move upward, so that the flattening rod 5 automatically moves upward to separate from the fabric after the fabric flattening action is completed, so as to facilitate the fabric to be fully and evenly contacted with the internal heat source in the subsequent drying process, so as to improve the final drying effect and molding quality of the fabric; the present invention utilizes the action of the pushing block 395 to push the lever 391 to move on the one hand, and finally realize the timely clamping of the clamping assembly 3 after the fabric is flattened, and on the other hand, it can passively push the lifting column 611 to move upward, so that the flattening rod 5 can be separated from the fabric synchronously, so as to reduce the obstruction to the local fabric, achieving multiple goals at one stroke.
[0059] The lower clamping plate 33 and the upper clamping plate 31 are both provided with a replacement component 7, and the replacement component 7 is used to replace the contact portion between the lower clamping plate 33 or the upper clamping plate 31 and the fabric.
[0060] The replacement assembly 7 comprises:
[0061] A group of floating grooves 71 are equidistantly provided on the opposite surfaces of the upper splint 31 and the lower splint 33, and a floating block 72 is connected to each floating groove 71 in a limiting sliding manner, wherein the floating groove 71 located on the upper splint 31 is an upper floating groove 71, and the floating groove 71 located on the lower splint 33 is a lower floating groove 71, and the upper floating groove 71 and the lower floating groove 71 are staggered, and a telescopic cylinder 73 is connected between each floating block 72 and the bottom wall of the floating groove 71, and the multiple telescopic cylinders 73 located on the upper splint 31 are connected through an upper air pipe, and the multiple telescopic cylinders 73 located on the lower splint 33 are connected through a lower air pipe.
[0062] In order to reduce the probability that the part covering the fabric between the upper clamping plate 31 and the lower clamping plate 33 in the clamping assembly 3 hinders the drying of the fabric, the present invention provides a replacement assembly 7, which utilizes the upper and lower groups of telescopic cylinders 73 to alternately realize the synchronous action of extending the upper telescopic cylinder 73 and shortening the lower telescopic cylinder 73 under the control of an external air source; when the upper telescopic cylinder 73 shortens, the upper floating block 72 is completely located in the upper floating groove 71, and the lower telescopic cylinder 73 extends, and the lower floating block 72 completely extends out of the lower floating groove 71, so that The upper and lower surfaces of the fabric first contact with the lower surface of the upper clamping plate 31 and the surface of the lower floating block 72 to achieve initial clamping; then the upper telescopic cylinder 73 is extended and the lower telescopic cylinder 73 is shortened alternately. At this time, the upper and lower surfaces of the fabric contact with the upper floating block 72 and the surface of the lower clamping plate 33 to achieve alternating clamping. Since the upper and lower groups of floating blocks 72 are staggered, the fabric can alternately change the clamping contact part during the drying process, so that the two sides can fully contact the heat source in the drying box 1 to achieve effective and uniform drying. An antibacterial fabric, the antibacterial fabric is made according to the antibacterial fabric processing technology;
[0063] The antibacterial fabric comprises: 70-80 parts by weight of polyester fiber, 15-25 parts by weight of nylon fiber and 2-7 parts by weight of silver ion antibacterial agent.
[0064] The above is a detailed description of an embodiment of the present invention, but the content is only a preferred embodiment of the present invention and cannot be considered to limit the scope of implementation of the present invention. All equivalent changes and improvements made within the scope of the present invention should still fall within the scope of the patent coverage of the present invention.
Claims
1. A process for processing antibacterial fabrics, characterized in that: The process includes the following steps: S1. Clean the fabric to remove oil stains and impurities; S2, dissolving silver ion chitosan quaternary ammonium salt powder in water, then adding nisin and sodium benzoate, and finally adding sodium alginate, stirring thoroughly to obtain an antibacterial solution, and completely immersing the fabric in the prepared antibacterial solution to allow the silver ions to be evenly adsorbed on the fabric surface and inside the fiber; S3, preheating the drying box (1) to 150°C ± 20°C, spreading the impregnated fabric evenly in the drying box (1) through a flattening device for heat treatment, so that the silver ions are closely combined with the fabric fibers to form a stable antibacterial layer; After the heat treatment is completed, the fabric is taken out after the temperature in the oven cools down to room temperature naturally, and finally the fabric is softened and waterproofed; The flattening device in S3 comprises at least two groups of conveying rollers (2), and a flattening mechanism is arranged between the two groups of conveying rollers (2) for flattening the fabric between the two groups of conveying rollers (2), wherein the flattening mechanism comprises: A clamping assembly (3), wherein two clamping assemblies (3) are provided and symmetrically arranged on two sides of the drying box (1), and are used to clamp two sides of the fabric; A driving assembly (4), wherein the driving assembly (4) is installed in the drying box (1), and the driving assembly (4) is used to drive two symmetrically distributed flattening rods (5) to move synchronously to achieve a fabric flattening action.
2. The antibacterial fabric processing technology according to claim 1 is characterized in that: The clamping assembly (3) comprises: an upper clamping plate (31), wherein the upper clamping plate (31) is slidably mounted on a column (32), wherein the column (32) is arranged in a T-shaped structure, wherein the bottom end of the column (32) is fixed on a lower clamping plate (33), wherein a compression spring (34) is arranged between the column (32) of the T-shaped structure and the upper clamping plate (31), wherein an inclined block (35) is slidably connected between the upper clamping plate (31) and the lower clamping plate (33), wherein a limiting protrusion (36) is arranged at the bottom of the inclined block (35), wherein a limiting sliding groove (37) is provided on the upper surface of the upper clamping plate (31), wherein the limiting protrusion (36) is slidably connected in the limiting sliding groove (37), and a return spring is arranged between the limiting sliding groove (37) and the side wall of the limiting sliding groove (37); The ends of the two inclined blocks (35) with a larger thickness are commonly connected with a connecting rod (38), and the connecting rod (38) is driven by a linkage assembly (39) to drive the two inclined blocks (35) to move forward or backward.
3. The antibacterial fabric processing technology according to claim 2 is characterized in that: The driving assembly (4) comprises: A motor (41) is installed on the outside of the drying box (1). The output shaft of the motor (41) passes through the side wall of the drying box (1) and is connected to a screw rod (42). The screw rod (42) is provided with two sections of spiral grooves with opposite rotation directions. The screw rod (42) is spirally connected to two corresponding slides (43), and each slide (43) is connected to a flattening rod (5). When the motor (41) rotates in the forward direction, the screw rod (42) and the slide (43) are spirally driven to drive the two flattening rods (5) to move away from each other. When the motor (41) rotates in the reverse direction, the two flattening rods (5) move towards each other.
4. The antibacterial fabric processing technology according to claim 3 is characterized in that: The linkage assembly (39) comprises: A lever (391), a rotating shaft (392) is fixed in the middle of the lever (391), the rotating shaft (392) is rotatably mounted on a bracket (393) through a torsion spring, the bracket (393) is fixedly arranged on the inner wall of the drying box (1), one end of the lever (391) is in contact with the connecting rod (38), and the other end is affixed to the side plate (394), the bottom of the side plate (394) is fixedly arranged on the bottom wall of the drying box (1), a pushing block (395) is fixed on the side of the slide seat (43) facing the side plate (394), the side of the pushing block (395) facing the end of the lever (391) is arranged as an inclined surface (396), and the thickness of the pushing block (395) is thicker as it is farther away from the lever (391).
5. The antibacterial fabric processing technology according to claim 2 or 4, characterized in that: The slide seat (43) is also provided with a lifting groove (6), and a lifting component (61) is provided in the lifting groove (6). The lifting component (61) is used to drive the flattening rod (5) to rise when the clamping component (3) is working, so as to separate from the fabric.
6. The antibacterial fabric processing technology according to claim 5 is characterized in that: The lifting assembly (61) comprises: A lifting column (611), wherein the lifting column (611) penetrates downward through the bottom wall of the lifting groove (6) and is fixedly connected to the flattening rod (5); the lifting column (611) is arranged as a T-shaped mechanism; a pressing spring (612) is arranged between the lifting column (611) and the top wall of the lifting groove (6); a section of the pushing block (395) close to the sliding seat (43) is connected with a through strip (613); the through strip (613) is arranged at an angle; the through strip (613) is slidably mounted on a through groove (614) provided on the sliding seat (43); and the through groove (614) is connected to the lifting groove (6); the top end of the side plate (394) is arranged as an L-shaped structure; and the through strip (613) is located between the T-shaped end of the lifting column (611) and the bottom wall of the through groove (614).
7. The antibacterial fabric processing technology according to claim 2 is characterized in that: The lower clamping plate (33) and the upper clamping plate (31) are both provided with a replacement component (7), and the replacement component (7) is used to replace the contact portion between the lower clamping plate (33) or the upper clamping plate (31) and the fabric.
8. The antibacterial fabric processing technology according to claim 7 is characterized in that: The replacement component (7) comprises: A group of floating grooves (71) are equidistantly provided on the surfaces opposite to each other of the upper clamping plate (31) and the lower clamping plate (33), and a floating block (72) is connected in a limited sliding manner in each of the floating grooves (71), wherein the floating groove (71) on the upper clamping plate (31) is an upper floating groove (71), and the floating groove (71) on the lower clamping plate (33) is a lower floating groove (71), and the upper floating groove (71) and the lower floating groove (71) are arranged in an alternating manner, and a telescopic cylinder (73) is connected between each floating block (72) and the bottom wall of the floating groove (71), and the multiple telescopic cylinders (73) on the upper clamping plate (31) are connected through an upper air pipe, and the multiple telescopic cylinders (73) on the lower clamping plate (33) are connected through a lower air pipe.
9. An antibacterial fabric, characterized in that: The antibacterial fabric is made according to the antibacterial fabric processing process according to any one of claims 1-8.