Flattening mechanism for composite antibacterial fabric production
By designing a flattening mechanism for the production of composite antibacterial fabrics, using a motor-driven heating roller and a bonding plate of a micro push rod, combined with a damping spring and heating block, the problem of poor effect in the prior art caused by the lack of resistance to fabric smoothing is solved, and uniform smoothing and unfolding of the fabric is achieved.
Patent Information
- Application Number
- CN202421466424.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-25
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2034-06-25
AI Technical Summary
The existing flattening mechanism for the production of composite antibacterial fabrics lacks corresponding resistance in the fabric smoothing process, resulting in poor smoothing and unfolding effects.
A flattening mechanism for the production of composite antibacterial fabrics is designed, and a motor is used to drive the worm and worm gear to drive the heating roller to rotate, and the bonding plate is pushed through the micro push rod to clamp and heat smooth the fabric. At the same time, through the combination of damping springs and heating blocks, uniform ironing and smoothing of the fabric is achieved.
By clamping the heating roller and the bonding plate, combined with the function of the damping spring and heating block, the uniform smoothing and unfolding of the fabric is achieved, improving the smoothing effect, and avoiding the poor smoothing problem caused by the fabric being too soft.
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Figure CN223032589U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of fabric production, in particular to a flattening mechanism for the production of composite antibacterial fabrics. Background Art
[0002] Antibacterial fabric is a special functional fabric, which has certain antibacterial ability. It can efficiently kill or inhibit bacteria, fungi and molds on the fabric surface, keep the fabric surface clean, and avoid the risk of re-infection caused by the reproduction of bacteria on the fabric surface. During the production process of the fabric, a flattening mechanism is required to unfold and smooth it.
[0003] The patent specification with the publication number of CN217324568U discloses a flattening mechanism for the production of composite antibacterial fabrics, including a fixed base. A flattening mechanism and a drying box are respectively arranged on the top of the fixed base. The flattening mechanism includes a support frame fixed above the fixed base and an atomizing box fixed on one side of the fixed base. The utility model relates to the technical field of fabric production. For this flattening mechanism for the production of composite antibacterial fabrics, while flattening the fabric, at this time, the atomized heating steam is conveyed into the air guide holes of the outer cover ring through the arc-shaped air guide grooves in the fog supply sleeve ring, and then fills the inner cavities of the outer cover ring and the flattening roller, and is output through the atomizing holes on the surface of the outer cover ring for ironing when the fabric is being flattened. When flattening, the ironing contact surface is larger, the ironing is more uniform, the flattening effect is better, and they do not interfere with each other, integrating the two functions together.
[0004] However, it is found in the implementation of the related technology that the above-mentioned designed flattening mechanism for the production of composite antibacterial fabrics has the following problems: In the prior art, the fabric is flattened and unfolded by components such as flattening rollers. However, when flattening the fabric, only the flattening rollers are used for fitting, and there is no corresponding resistance to the fabric, so the flattening and unfolding effects are not good. In view of this, a flattening mechanism for the production of composite antibacterial fabrics is provided to overcome the above defects. Summary of the Utility Model
[0005] The purpose of the utility model is to solve the defects existing in the prior art, and a flattening mechanism for the production of composite antibacterial fabrics is proposed.
[0006] To achieve the above purpose, the utility model adopts the following technical scheme: A flattening mechanism for the production of composite antibacterial fabrics, including a processing box. Rewinding devices are installed at both ends of the processing box, and a flattening mechanism is arranged on one side inside the processing box;
[0007] The flattening mechanism includes a motor, which is embedded on one side of the outer wall of the processing box. The power output end of the motor is connected to a worm, and a worm gear is connected to the outer wall of the worm. A heating roller passes through the inside of the worm gear. An installation block is fixed at the bottom end inside the processing box, and a micro-push rod is embedded on the outer wall of the installation block. The power output end of the micro-push rod is connected to a fitting plate. When the fabric is wound by the winding device and thus conveyed inside the processing box, the heating roller fits the fabric, and the micro-push rod is used to push the fitting plate to press, so as to be able to fit and flatten the fabric from both sides.
[0008] As a further description of the above technical solution: A rotating structure is formed between the heating roller and the processing box, and the heating roller is in close contact with the fitting plate. Two groups of heating rollers are provided, which can fit and heat-flatten the fabric from both sides of the fabric.
[0009] As a further description of the above technical solution: A glass plate is movably connected to the front end of the processing box, and a fixing plate is fixed on one side of the glass plate at the front end of the processing box. The glass plate is convenient for opening and closing to place and adjust the internal fabric, or to maintain and adjust the internal components.
[0010] As a further description of the above technical solution: A pressing mechanism is arranged on the other side inside the processing box. The pressing mechanism includes a bearing plate, which is fixed on the inner wall of the processing box. A damping spring is fixed above the inside of the processing box. One end of the damping spring is connected to a lower pressing plate. Heating blocks are embedded on the opposite surfaces of the lower pressing plate and the bearing plate. The damping spring elastically pushes the lower pressing plate to press the fabric against the bearing plate, and the fabric is heated and flattened again by the heating blocks.
[0011] As a further description of the above technical solution: The pressing mechanism further includes an electromagnet, which is embedded above the inside of the processing box. A permanent magnet is embedded at the position corresponding to the electromagnet at the top end of the lower pressing plate. After the fabric is conveyed, the electromagnet is started to magnetically adsorb the permanent magnet, so as to compress the damping spring and lift the lower pressing plate, which is convenient for placing the fabric.
[0012] As a further description of the above technical solution: An elastic structure is formed between the lower pressing plate and the processing box through the damping spring, and the lower pressing plate is detachably connected to the permanent magnet through bolts. Due to the elasticity of the damping spring, excessive clamping of the fabric is avoided, and the fabric is prevented from being damaged.
[0013] As a further description of the above technical solution: A roller is rotatably connected to one side of the lower pressing plate inside the processing box, and limiting blocks are fixed on both sides of the heating block at the bottom end of the lower pressing plate. The roller is used to guide and support the fabric conveyance, and avoid contact with the corners of the processing box to cause abrasion.
[0014] The present utility model has the following beneficial effects:
[0015] A flattening mechanism for producing a composite antibacterial fabric designed by the utility model drives a worm 302 through the operation of a motor 301, thereby pushing a worm wheel 303, causing two heating rollers 304 to rotate, so as to iron and smooth both sides of the fabric. In cooperation with a micro-pusher 306 to push a fitting plate 307, the heating rollers 304 and the fitting plate 307 clamp the fabric, avoiding poor flattening effect caused by the fabric being too soft.
[0016] A flattening mechanism for producing a composite antibacterial fabric designed by the utility model pushes a lower pressing plate 602 through a damping spring 603, thereby pressing the fabric tightly on a bearing plate 601. The heating blocks 604 embedded in the lower pressing plate 602 and the bearing plate 601 iron and smooth the fabric. When a roll of fabric is conveyed and it is necessary to add fabric, an electromagnet 606 is activated to magnetically adsorb a permanent magnet 605, thereby causing the damping spring 603 to contract and the lower pressing plate 602 to separate from the bearing plate 601, thus facilitating the placement of the fabric. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 is a three-dimensional structural schematic diagram of the utility model;
[0018] Figure 2 is an internal structural schematic diagram of the processing box of the utility model;
[0019] Figure 3 is an installation structural schematic diagram of the fitting plate of the utility model;
[0020] Figure 4 is an installation structural schematic diagram of the lower pressing plate of the utility model.
[0021] LEGEND DESCRIPTION:
[0022] 1. Processing box; 2. Rewinding device; 3. Flattening mechanism; 301. Motor; 302. Worm; 303. Worm wheel; 304. Heating roller; 305. Installation block; 306. Micro-pusher; 307. Fitting plate; 4. Glass plate; 5. Fixed plate; 6. Pressing mechanism; 601. Bearing plate; 602. Lower pressing plate; 603. Damping spring; 604. Heating block; 605. Permanent magnet; 606. Electromagnet; 7. Limiting block; 8. Roller. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0023] Refer to Figures 1-4, A flattening mechanism for the production of a composite antibacterial fabric provided by the utility model: It includes a processing box 1, winding devices 2 are installed at both ends of the processing box 1, and a flattening mechanism 3 is arranged on one side inside the processing box 1; the flattening mechanism 3 includes a motor 301, the motor 301 is embedded on one side of the outer wall of the processing box 1, the power output end of the motor 301 is connected to a worm 302, the outer wall of the worm 302 is connected to a worm gear 303, a heating roller 304 passes through the inside of the worm gear 303, a mounting block 305 is fixed at the bottom end inside the processing box 1, a micro-push rod 306 is embedded on the outer wall of the mounting block 305, and the power output end of the micro-push rod 306 is connected to a fitting plate 307. When the fabric is wound by the winding device 2 and thus conveyed inside the processing box 1, the heating roller 304 is attached to the fabric, and the micro-push rod 306 is used to push the fitting plate 307 to press, so as to be able to attach and flatten the fabric from both sides.
[0024] As a further implementation of the above technical solution: A rotating structure is formed between the heating roller 304 and the processing box 1, and the heating roller 304 is in close contact with the fitting plate 307. Two heating rollers 304 are provided, which can attach to and heat and flatten the fabric from both sides.
[0025] As a further implementation of the above technical solution: A glass plate 4 is movably connected to the front end of the processing box 1, and a fixing plate 5 is fixed on one side of the glass plate 4 at the front end of the processing box 1. Through the glass plate 4, it is convenient to open and close to place and adjust the internal fabric, or to maintain and adjust the internal components.
[0026] During specific implementation, when the fabric is conveyed inside the processing box 1 under the winding of the winding device 2, the motor 301 drives the worm 302 to push the worm gear 303, driving the two heating rollers 304 to convey the fabric. Supported by the mounting block 305, the micro-push rod 306 pushes the fitting plate 307 to press the fabric against the heating roller 304, keeping it flattened and smoothed during the conveying process to prevent the fabric from being too flexible to be smoothed.
[0027] As a further implementation of the above technical solution: A pressing mechanism 6 is arranged on the other side inside the processing box 1. The pressing mechanism 6 includes a bearing plate 601 fixed on the inner wall of the processing box 1, a damping spring 603 is fixed above the inside of the processing box 1, one end of the damping spring 603 is connected to a lower pressing plate 602, and heating blocks 604 are embedded on the opposite surfaces of the lower pressing plate 602 and the bearing plate 601. The damping spring 603 elastically pushes the lower pressing plate 602 to press the fabric against the bearing plate 601, and the fabric is heated and smoothed again by the heating blocks 604.
[0028] As a further implementation of the above technical solution: The pressing mechanism 6 further includes an electromagnet 606, which is embedded in the upper part inside the processing box 1. A permanent magnet 605 is embedded at the position corresponding to the electromagnet 606 at the top end of the lower pressing plate 602. After the fabric is conveyed, the electromagnet 606 is activated to magnetically adsorb the permanent magnet 605, thereby compressing the damping spring 603 to lift the lower pressing plate 602, facilitating the placement of the fabric.
[0029] As a further implementation of the above technical solution: An elastic structure is formed between the lower pressing plate 602 and the processing box 1 through the damping spring 603. The lower pressing plate 602 is detachably connected to the permanent magnet 605 by bolts. Through the elasticity of the damping spring 603, excessive clamping of the fabric is avoided, preventing damage to the fabric.
[0030] As a further implementation of the above technical solution: A roller 8 is rotatably connected to one side of the lower pressing plate 602 inside the processing box 1. Limiting blocks 7 are fixed on both sides of the heating block 604 at the bottom end of the lower pressing plate 602. The fabric is guided and supported for conveyance by the roller 8, avoiding abrasion caused by contact with the corners of the processing box 1.
[0031] During specific implementation, the lower pressing plate 602 is elastically pushed by the damping spring 603, enabling the heating blocks 604 of the lower pressing plate 602 and the bearing plate 601 to clamp the fabric, thereby achieving the effect of ironing and smoothing. The limiting blocks 7 prevent the lower pressing plate 602 and the bearing plate 601 from being misaligned. When the conveyance is completed and fabric needs to be placed, the electromagnet 606 is activated to magnetically adsorb the permanent magnet 605, thereby compressing the damping spring 603 to raise the lower pressing plate 602 to reserve space for placing the fabric.
[0032] Finally, it should be noted that the above are only the preferred embodiments of the present invention and are not used to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
Claims
1. A flattening mechanism for producing composite antibacterial fabrics, characterized in that: It comprises a processing box (1), with winding devices (2) installed at both ends of the processing box (1), and a smoothing mechanism (3) arranged on one side of the interior of the processing box (1); The smoothing mechanism (3) comprises a motor (301), the motor (301) being embedded in one side of the outer wall of the processing box (1), and the power output end of the motor (301) being connected to a worm (302), the outer wall of the worm (302) being connected to a worm wheel (303), and a heating roller (304) extending from the inside of the worm wheel (303), a mounting block (305) being fixed to the bottom end of the interior of the processing box (1), and a micro push rod (306) being embedded in the outer wall of the mounting block (305), and the power output end of the micro push rod (306) being connected to a bonding plate (307).
2. The flattening mechanism for producing composite antibacterial fabric according to claim 1, characterized in that: A rotating structure is formed between the heating roller (304) and the processing box (1), and the heating roller (304) is tightly fitted to the laminating plate (307).
3. The flattening mechanism for producing composite antibacterial fabric according to claim 1, characterized in that: The front end of the processing box (1) is movably connected to a glass plate (4), and a fixing plate (5) is fixed to one side of the front end glass plate (4) of the processing box (1).
4. The flattening mechanism for producing composite antibacterial fabric according to claim 1, characterized in that: A clamping mechanism (6) is provided on the other side of the interior of the processing box (1), and the clamping mechanism (6) includes a supporting plate (601), the supporting plate (601) is fixed to the inner wall of the processing box (1), and a damping spring (603) is fixed on the upper part of the interior of the processing box (1), one end of the damping spring (603) is connected to a lower pressing plate (602), and heating blocks (604) are embedded on the opposite surfaces of the lower pressing plate (602) and the supporting plate (601).
5. The flattening mechanism for producing composite antibacterial fabric according to claim 4, characterized in that: The clamping mechanism (6) further comprises an electromagnet (606), wherein the electromagnet (606) is embedded in the upper part of the processing box (1), and a permanent magnet (605) is embedded in the top of the lower pressing plate (602) at a position corresponding to the electromagnet (606).
6. The flattening mechanism for producing composite antibacterial fabric according to claim 4, characterized in that: The lower pressing plate (602) forms an elastic structure with the processing box (1) via a damping spring (603), and the lower pressing plate (602) is detachably connected to the permanent magnet (605) via bolts.
7. The flattening mechanism for producing composite antibacterial fabric according to claim 1, characterized in that: A roller (8) is rotatably connected to one side of the lower pressing plate (602) inside the processing box (1), and limiting blocks (7) are fixed on both sides of the heating block (604) at the bottom end of the lower pressing plate (602).
Citation Information
Patent Citations
Flattening mechanism for composite antibacterial fabric production
CN217324568U