Mechanical equipment for softening finishing of cashmere fabric
By designing a cashmere fabric soft finishing equipment including an extrusion cylinder, an extrusion seat and a driving mechanism, combined with the use of hot air and softener, the problems of low automation and insignificant softness of existing equipment are solved, and efficient fabric soft finishing and fluffy effect are achieved.
Patent Information
- Application Number
- CN202510230541.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-28
- Publication Date
- 2025-05-23
AI Technical Summary
The existing cashmere fabric soft finishing equipment fails to fully consider the demand for continuous feeding, resulting in low level of equipment automation, low operating efficiency, and insufficient soft effect.
A mechanical device including a frame, an extrusion cylinder and an extrusion seat is designed. The extrusion cylinder is driven to alternately extrude the fabric through a driving mechanism, combining the use of hot air and softener, and further improving the softness and fluffyness of the fabric through the slap mechanism.
The continuous uninterrupted feeding of cashmere fabrics is achieved, the degree of automation and operation efficiency of the equipment is improved, and the softness and fluffy of the fabric is significantly improved.
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Figure CN120026456A_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of clothing fabric preparation, in particular to mechanical equipment for softening and finishing cashmere fabrics. Background Art
[0002] Cashmere fabric softening is a finishing process that aims to improve the feel of cashmere fabric, making it softer and smoother. This process mainly uses physical or chemical methods to reduce the friction between cashmere fibers and adjust the arrangement of fibers, thereby improving the touch and wearing comfort of the fabric. Cashmere itself is a high-grade fiber, and softening can further highlight its quality advantages. The cashmere fabric softening device is a device specially designed for post-finishing processing of high-grade textile fabrics such as cashmere, aiming to improve the feel, softness, fluffiness and dimensional stability of cashmere fabrics. There are many ways to improve the softness of cashmere fabrics, such as mechanical rubbing and friction, using special mechanical equipment to rub the cashmere fabric to simulate manual rubbing; such as beating and vibration, using beating equipment to rhythmically beat the fabric, etc.
[0003] However, the existing fabric softening and finishing equipment has not fully considered the demand for continuous feeding, resulting in difficulty in achieving continuous and uninterrupted feeding in practical applications, low equipment automation and low operating efficiency; and the existing fabric softening and finishing equipment often only relies on a certain technical means for processing, which makes it difficult to achieve comprehensive optimization of cashmere fabrics, and the softening effect is not significant enough.
[0004] To this end, we provide a cashmere fabric softening finishing mechanical equipment to solve the above problems. Summary of the invention
[0005] The purpose of the present invention is to provide a mechanical device for softening and finishing cashmere fabrics in view of the problems of the background technology.
[0006] The present invention achieves the above-mentioned purpose through the following technical solutions:
[0007] A mechanical device for softening cashmere fabrics comprises a frame for the fabrics to pass through and a plurality of extrusion cylinders which are evenly spaced and staggeredly distributed on the upper and lower sides of the fabrics, and a plurality of extrusion seats which are fixed on the frame and matched with the extrusion cylinders. The end of the extrusion cylinders which contacts the fabrics is set to be cylindrical, and the extrusion seat is provided with a semicircular groove which matches the cylindrical end. A driving mechanism for driving the movement of the plurality of extrusion cylinders on both sides of the fabrics is provided at the lower end of the interior of the frame, and the extrusion cylinders on the same side of the fabrics move synchronously, and the extrusion cylinders on both sides of the fabrics move alternately.
[0008] A Y-shaped hot air groove is provided in the extrusion cylinder, and a hot air pipe for conveying hot air into the hot air groove is provided at one end of the extrusion cylinder away from the fabric. A plurality of equally spaced auxiliary agent adding components for conveying solid softener into the hot air groove are provided on the side of the extrusion cylinder, and the solid softener is acted on the fabric by the hot air.
[0009] As a further optimization scheme of the present invention, a first movable rod is fixedly provided at the center of one end of the extrusion cylinder away from the fabric, a fixed seat fixed on the frame is movably sleeved on the first movable rod, and a first spring is sleeved on the first movable rod between the fixed seat and the extrusion cylinder; guide rods are provided at the four corners of the end of the extrusion cylinder away from the fabric, and the guide rods are movably inserted into the frame.
[0010] As a further optimization scheme of the present invention, a transmission assembly is provided between the driving mechanism and the extrusion cylinder, and the transmission assembly includes a guide rail fixed on the frame and a slider sliding on the guide rail; a plurality of pull ropes are fixed on the slider, and the other end of the pull rope is fixedly connected to the ring body at the end of the first movable rod, and the end of the slider away from the pull rope is hinged with a rod body, and the end of the rod body is provided with a second hook.
[0011] As a further optimization scheme of the present invention, the driving mechanism includes an optical axis and a motor for driving the optical axis to rotate; the two ends of the optical axis are fixedly sleeved with cams distributed symmetrically around the center, and the cams are fixedly provided with a first hook for pulling the second hook.
[0012] As a further optimization scheme of the present invention, two filters are provided at the Y-shaped tip of the hot air slot, a space for placing solid softener is formed between the two filters, and a diverter and an arc-shaped mesh cover are provided at the other end of the hot air slot.
[0013] As a further optimization scheme of the present invention, the additive adding component includes a silo fixed in the extrusion barrel and a feed pipe located at the bottom of the silo, the outlet of the feed pipe is located between two filters, a feed auger is provided inside the feed pipe, and a first gear is provided at the end of the feed auger; the additive adding component also includes a fixed plate fixed on the frame and two second movable rods movably passing through the fixed plate, the ends of the two second movable rods are jointly fixed with a first rack meshing with the first gear, and a second spring is sleeved on the second movable rod between the first rack and the fixed plate; a first wedge block is fixedly provided on the side of the first rack, and a second wedge block matching the first wedge block is fixedly provided on the side of the silo.
[0014] As a further optimization scheme of the present invention, a plurality of beating mechanisms for hammering the fabrics which are evenly distributed in a dot matrix are provided in the semicircular groove of the extrusion seat, and the beating mechanisms move automatically with the movement of the extrusion cylinder.
[0015] As a further optimization scheme of the present invention, the beating mechanism includes a sliding seat fixed in the extrusion seat and a sliding rod sliding on the sliding seat; a second magnet is fixedly provided on the end of the sliding rod, a third spring is sleeved on the sliding rod between the second magnet and the sliding seat, a second rack is fixedly provided on the side of the sliding rod, a second gear meshing with the second rack is provided on the side of the second rack, a third gear meshing with the second gear is provided on the side of the second gear, and a beating head is fixedly provided at the edge of the third gear.
[0016] As a further optimization solution of the present invention, a plurality of first magnets evenly distributed in a lattice are fixedly provided on the outer surface of the arc-shaped mesh cover, and the first magnets and the second magnets repel each other.
[0017] The beneficial effects of the present invention are:
[0018] 1. The present invention provides an extrusion cylinder and an extrusion seat, and continuously pulls the extrusion cylinders located on both sides of the fabric through a driving mechanism, thereby continuously squeezing both sides of the fabric to achieve softening of the cashmere fabric. The entire equipment has a high degree of automation, can achieve continuous and uninterrupted feeding, has high operating efficiency, and has a significant softening effect.
[0019] 2. The present invention further improves the softness of the fabric by arranging hot air pipes and additive adding components, solves the problem of poor finishing efficiency due to relying solely on the extrusion and twisting of the extrusion cylinder, utilizes hot air to blow the fibers in the fabric to expand due to heat, and utilizes chemical additives to reduce the friction between the fabric fibers and yarns, thereby improving the softness of the fabric. The chemical additives can be automatically added and sprayed onto the fabric surface using hot air, so that the addition is more uniform and the softener penetrates into the fabric fibers.
[0020] 3. The present invention provides a beating mechanism, and the beating head continuously beats the bulging fabric, which loosens the fabric fibers and effectively improves the softness and fluffiness of the cashmere fabric. The setting of the first magnet forms a convex point structure on the outer surface of the arc-shaped mesh cover, which effectively improves the extrusion effect of the extrusion cylinder. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 It is a three-dimensional schematic diagram of the overall structure of the present invention;
[0022] Figure 2 It is a front cross-sectional view of the overall structure of the present invention;
[0023] Figure 3 It is a schematic diagram of the structure of the extrusion assembly of the present invention;
[0024] Figure 4 It is a schematic diagram of the structure of the driving mechanism and transmission assembly of the present invention;
[0025] Figure 5 For the present invention Figure 4 A magnified schematic diagram of the local structure;
[0026] Figure 6 It is a front cross-sectional view of the extrusion cylinder structure of the present invention;
[0027] Figure 7 This is a schematic diagram of the structure of the auxiliary agent adding component of the present invention;
[0028] Figure 8 It is a schematic diagram of the structure of the extrusion seat of the present invention;
[0029] Fig. 9 It is a schematic diagram of the structure of the beating mechanism of the present invention.
[0030] In the figure:
[0031] 1. Frame; 2. Extrusion cylinder; 201. First movable rod; 202. Fixed seat; 203. First spring; 204. Ring body; 205. Guide rod; 206. Hot air slot; 207. Filter; 208. Diverter; 209. Curved mesh cover; 210. First magnet; 3. Extrusion seat; 4. Driving mechanism; 401. Optical axis; 402. Motor; 403. Cam; 404. First hook; 5. Transmission assembly; 501. Slider; 502. Pull rope; 503. Guide rail; 504. Rod body; 505. The second hook; 6. hot air pipe; 7. additive adding assembly; 701. silo; 702. feed pipe; 703. first gear; 704. fixing plate; 705. second movable rod; 706. first rack; 707. second spring; 708. first wedge block; 709. second wedge block; 8. beating mechanism; 801. second magnet; 802. slide bar; 803. slide seat; 804. third spring; 805. second rack; 806. second gear; 807. third gear; 808. beating head. DETAILED DESCRIPTION
[0032] The present application is further described in detail below in conjunction with the accompanying drawings. It is necessary to point out here that the following specific implementation methods are only used to further illustrate the present application and cannot be understood as limiting the scope of protection of the present application. Technical personnel in this field can make some non-essential improvements and adjustments to the present application based on the above application content.
[0033] Embodiment 1
[0034] In order to solve the problem that the existing fabric softening equipment does not fully consider the demand for continuous feeding, which makes it difficult to achieve continuous and uninterrupted feeding in practical applications, the equipment has a low degree of automation, resulting in low operating efficiency and insufficient softening effect, please refer to Figure 1-Figure 2The present invention provides a mechanical device for softening cashmere fabrics, including a frame 1 for fabrics to pass through and a plurality of extrusion cylinders 2 that are evenly spaced and staggered on the upper and lower sides of the fabrics, and a plurality of extrusion seats 3 that are fixed on the frame 1 and matched with the extrusion cylinders 2. The end of the extrusion cylinder 2 that contacts the fabric is set to be cylindrical, and the extrusion seat 3 is provided with a semicircular groove that matches the cylindrical end; a driving mechanism 4 for driving the movement of the plurality of extrusion cylinders 2 on both sides of the fabric is provided at the lower end of the inner part of the frame 1, and the extrusion cylinders 2 on the same side of the fabric move synchronously, and the extrusion cylinders 2 on both sides of the fabric move alternately. Through the cooperation of the extrusion cylinder 2 and the extrusion seat 3, the two sides of the fabric can be continuously and alternately extruded and bent to achieve softening of the fabric. The entire equipment has a high degree of automation, can achieve continuous and uninterrupted feeding, has high operating efficiency, and has a significant softening effect.
[0035] like Figure 3 As shown, a first movable rod 201 is fixedly provided at the center of the end of the extrusion cylinder 2 away from the fabric, and a fixed seat 202 fixed on the frame 1 is movably sleeved on the first movable rod 201, and a first spring 203 is sleeved on the first movable rod 201 between the fixed seat 202 and the extrusion cylinder 2; guide rods 205 are provided at the four corners of the end of the extrusion cylinder 2 away from the fabric, and the guide rods 205 are movably penetrated on the frame 1. The first movable rod 201 is subjected to the pulling force of the transmission component 5, driving the extrusion cylinder 2 to move. When the extrusion cylinder 2 moves, the guide rod 205 plays a guiding role, and the first spring 203 is stretched. When the transmission component 5 is separated from the driving mechanism 4, under the reset force of the first spring 203, the extrusion cylinder 2 continuously reciprocates, and the fabric is continuously pushed into the semicircular groove of the extrusion seat 3.
[0036] like Figure 4-Figure 5 As shown, a transmission assembly 5 is provided between the driving mechanism 4 and the extrusion cylinder 2, and the transmission assembly 5 includes a guide rail 503 fixed on the frame 1 and a slider 501 sliding on the guide rail 503; a plurality of pull ropes 502 are fixedly provided on the slider 501, and the other end of the pull rope 502 is fixedly connected to the ring body 204 at the end of the first movable rod 201, and the end of the slider 501 away from the pull rope 502 is hinged with a rod body 504, and the end of the rod body 504 is provided with a second hook 505. In order to enable the extrusion cylinder 2 located above the fabric to move upward under the pull of the driving mechanism 4, a component capable of changing the direction of the force, such as a pulley, can be provided at the pull rope 502 of the upper transmission assembly 5.
[0037] The driving mechanism 4 includes an optical axis 401 and a motor 402 for driving the optical axis 401 to rotate. Cams 403 symmetrically distributed at the center are fixedly sleeved at both ends of the optical axis 401 . A first hook 404 for pulling the second hook 505 is fixedly disposed on the cam 403 .
[0038] When in use, the motor 402 drives the optical axis 401 to rotate, and the optical axis 401 drives the cam 403 to rotate, and the cam 403 drives the first hook 404 to rotate. When the first hook 404 pulls the second hook 505, the second hook 505 drives the slider 501 to move along the guide rail 503, and the slider 501 drives multiple pull ropes 502 to move, and the extrusion cylinder 2 is pulled away from the fabric through the pull rope 502. At this time, the first spring 203 is stretched, and when the first hook 404 rotates 180 degrees, it is automatically separated from the second hook 505. Under the reset force of the first spring 203, the extrusion cylinder 2 moves toward the fabric direction, and the fabric is continuously pushed into the semicircular groove of the extrusion seat 3, and the extrusion cylinders 2 located on both sides of the fabric move alternately, thereby continuously squeezing the two sides of the fabric to achieve soft finishing of the cashmere fabric, and when the first hook 404 rotates to the second hook 505, it continues to pull the second hook 505, so that the extrusion cylinder 2 can continue to be pulled.
[0039] Embodiment 2
[0040] On the basis of the first embodiment, in order to further improve the softness of the fabric and avoid the problem of poor finishing efficiency by relying solely on the extrusion and twisting of the extrusion cylinder 2, as shown in FIG. Figure 3 , Figure 6 As shown, a Y-shaped hot air groove 206 is provided in the extrusion cylinder 2, and a hot air pipe 6 for conveying hot air to the hot air groove 206 is provided at the end of the extrusion cylinder 2 away from the fabric. A plurality of equally spaced auxiliary agent adding components 7 for conveying solid softener to the hot air groove 206 are provided on the side of the extrusion cylinder 2, and the solid softener is acted on the fabric by the hot air.
[0041] Two filters 207 are provided at the Y-shaped tip of the hot air slot 206, a space for placing a solid softener is formed between the two filters 207, and a diverter 208 and an arc-shaped mesh cover 209 are provided at the other end of the hot air slot 206. The hot air is blown to expand the fibers in the fabric, the activity of the fiber molecular chains is enhanced, the force between the molecular chains will change, and then shrink during the cooling process. The expansion and contraction process helps to make the fabric softer.
[0042] like Figure 7As shown, the additive adding component 7 includes a silo 701 fixed in the extrusion cylinder 2 and a feed pipe 702 located at the bottom of the silo 701, the outlet of the feed pipe 702 is located between the two filter screens 207, a feed auger is provided inside the feed pipe 702, and a first gear 703 is provided at the end of the feed auger; the additive adding component 7 also includes a fixed plate 704 fixed on the frame 1 and two second movable rods 705 movably passing through the fixed plate 704, the ends of the two second movable rods 705 are jointly fixed with a first rack 706 meshing with the first gear 703, the first rack 706 is set as an incomplete rack, and a sawtooth meshing with the first gear 703 is provided at its end, and a second spring 707 is sleeved on the second movable rod 705 between the first rack 706 and the fixed plate 704.
[0043] During use, when the extrusion cylinder 2 moves away from the extrusion seat 3, the extrusion cylinder 2 drives the silo 701 thereon to move. When the first gear 703 contacts the serrated portion of the first rack 706, the first gear 703 rotates, thereby driving the feed auger to rotate, thereby transporting the solid softener in the silo 701 to the hot air groove 206. The solid softener gradually melts into a liquid state as the hot air circulates, and the liquid softener molecules are sprayed onto the surface of the fabric through the hot air.
[0044] In order to prevent the first gear 703 from contacting the first rack 706 during the rebound process of the extrusion cylinder 2, causing the feed auger to reverse, a first wedge block 708 is fixedly provided on the side of the first rack 706, and a second wedge block 709 matched with the first wedge block 708 is fixedly provided on the side of the silo 701. When the second wedge block 709 contacts the first wedge block 708, it pushes the first wedge block 708 to move, and the first wedge block 708 drives the first rack 706 and the second movable rod 705 to move, and the second spring 707 is compressed. At this time, the first rack 706 is separated from the first gear 703. During the rebound process of the extrusion cylinder 2, the first gear 703 is prevented from contacting the first rack 706. When the first gear 703 leaves the serrated part of the first rack 706, the first rack 706 is reset to the initial state under the reset force of the second spring 707, so as to facilitate the next addition of solid softener.
[0045] Embodiment 3
[0046] On the basis of the first and second embodiments, in order to improve the soft finishing effect and further improve the softness and fluffiness of the cashmere fabric, Figure 6 , Figure 8-Figure 9 As shown, a plurality of beating mechanisms 8 for hammering the fabrics are arranged in the semicircular groove of the extrusion seat 3 and are evenly distributed in a lattice shape. The beating mechanisms 8 automatically move with the movement of the extrusion cylinder 2 .
[0047] The beating mechanism 8 includes a slide seat 803 fixed in the extrusion seat 3 and a slide rod 802 sliding on the slide seat 803; a second magnet 801 is fixedly provided at the end of the slide rod 802, a third spring 804 is sleeved on the slide rod 802 between the second magnet 801 and the slide seat 803, a second rack 805 is fixedly provided on the side of the slide rod 802, a second gear 806 meshing with the second rack 805 is provided on the side thereof, a third gear 807 meshing with the second gear 806 is provided on the side thereof, a beating head 808 is fixedly provided at the edge of the third gear 807, and the beating head 808 can be set as a soft rod-shaped object made of rubber or plastic; a plurality of first magnets 210 uniformly distributed in a lattice shape are fixedly provided on the outer surface of the arc-shaped mesh cover 209, and the first magnets 210 and the second magnets 801 repel each other.
[0048] When the extrusion cylinder 2 moves toward the extrusion seat 3, it drives the first magnet 210 to move. When the first magnet 210 approaches the second magnet 801, due to the mutual repulsion between the two, the second magnet 801 moves away from the fabric. The second magnet 801 drives the slide bar 802 to move along the slide seat 803. The third spring 804 is squeezed, and the slide bar 802 drives the second rack 805 to move. The second rack 805 drives the second gear 806 to rotate. The second gear 806 drives the third gear 807 to rotate. The third gear 807 drives the beating head 808 to rotate toward the inside of the extrusion seat 3. When the extrusion cylinder 2 is away from the extrusion seat 3, under the reset force of the third spring 804, the beating head 808 is driven to continuously beat the bulging fabric. This beating makes the fabric fibers loosen, effectively improving the softness and fluffiness of the cashmere fabric. The setting of the first magnet 210 makes the outer surface of the arc-shaped mesh cover 209 form a convex point structure, effectively improving the extrusion effect of the extrusion cylinder 2. In order to control the knocking intensity of the beating head 808, the magnetism of the first magnet 210 and the second magnet 801 can be controlled to achieve strict control of the beating force based on the fabric.
[0049] The above-mentioned embodiment only expresses one implementation mode of the present invention, and its description is relatively specific and detailed, but it cannot be understood as limiting the scope of the present invention. It should be pointed out that for ordinary technicians in this field, several modifications and improvements can be made without departing from the concept of the present invention, which all belong to the protection scope of the present invention.
Claims
1. A mechanical device for softening cashmere fabrics, comprising a frame (1) for fabrics to pass through and a plurality of extrusion cylinders (2) equidistantly and staggeredly distributed on the upper and lower sides of the fabrics, characterized in that: It also includes a plurality of extrusion seats (3) fixed on the frame (1) and matched with the extrusion cylinder (2), wherein the end of the extrusion cylinder (2) in contact with the fabric is configured as a cylinder, and the extrusion seat (3) is provided with a semicircular groove matched with the cylindrical end; A driving mechanism (4) is provided at the lower end of the frame (1) for driving a plurality of extrusion cylinders (2) on both sides of the fabric to move, and the extrusion cylinders (2) on the same side of the fabric move synchronously, and the extrusion cylinders (2) on both sides of the fabric move alternately; A Y-shaped hot air groove (206) is provided in the extrusion cylinder (2); a hot air pipe (6) for conveying hot air into the hot air groove (206) is provided at one end of the extrusion cylinder (2) away from the fabric; a plurality of equally spaced auxiliary agent adding components (7) for conveying solid softener into the hot air groove (206) are provided on the side surface of the extrusion cylinder (2); the solid softener is acted on the fabric by the hot air.
2. The mechanical equipment for softening cashmere fabric according to claim 1, characterized in that: A first movable rod (201) is fixedly provided at the center of one end of the extrusion cylinder (2) away from the fabric, a fixed seat (202) fixed on the frame (1) is movably sleeved on the first movable rod (201), and a first spring (203) is sleeved on the first movable rod (201) between the fixed seat (202) and the extrusion cylinder (2); Guide rods (205) are provided at four corners of the end of the extrusion cylinder (2) away from the fabric, and the guide rods (205) are movably connected to the frame (1).
3. The mechanical equipment for softening cashmere fabric according to claim 2, characterized in that: A transmission assembly (5) is provided between the driving mechanism (4) and the extrusion cylinder (2), and the transmission assembly (5) comprises a guide rail (503) fixed on the frame (1) and a slider (501) sliding on the guide rail (503); A plurality of pull ropes (502) are fixedly provided on the slider (501), the other ends of the pull ropes (502) are fixedly connected to the ring body (204) at the end of the first movable rod (201), and a rod body (504) is hingedly provided at the end of the slider (501) away from the pull ropes (502), and a second hook (505) is provided at the end of the rod body (504).
4. The mechanical equipment for softening cashmere fabric according to claim 3, characterized in that: The driving mechanism (4) comprises an optical axis (401) and a motor (402) for driving the optical axis (401) to rotate; Cams (403) distributed symmetrically around the center are fixedly sleeved at both ends of the optical axis (401), and a first hook (404) for pulling the second hook (505) is fixedly disposed on the cam (403).
5. The mechanical equipment for softening cashmere fabric according to claim 1, characterized in that: Two filter screens (207) are provided at the Y-shaped tip of the hot air slot (206), a space for placing solid softener is formed between the two filter screens (207), and a flow divider (208) and an arc-shaped mesh cover (209) are respectively provided at the other end of the hot air slot (206).
6. The mechanical equipment for softening cashmere fabric according to claim 5, characterized in that: The auxiliary agent adding component (7) comprises a silo (701) fixed in the extrusion cylinder (2) and a feed pipe (702) located at the bottom of the silo (701), the outlet of the feed pipe (702) is located between two filter screens (207), a feed auger is provided inside the feed pipe (702), and a first gear (703) is provided at the end of the feed auger; The auxiliary agent adding component (7) further comprises a fixed plate (704) fixed on the frame (1) and two second movable rods (705) movably passing through the fixed plate (704), the ends of the two second movable rods (705) being commonly fixed with a first rack (706) meshing with the first gear (703), and a second spring (707) being sleeved on the second movable rod (705) between the first rack (706) and the fixed plate (704); A first wedge block (708) is fixedly provided on the side surface of the first rack (706), and a second wedge block (709) matching with the first wedge block (708) is fixedly provided on the side surface of the silo (701).
7. The mechanical equipment for softening cashmere fabric according to claim 5, characterized in that: A plurality of patting mechanisms (8) for hammering the fabric and evenly distributed in a dot matrix are arranged in the semicircular groove of the extrusion seat (3); the patting mechanisms (8) automatically move with the movement of the extrusion cylinder (2).
8. The mechanical equipment for softening cashmere fabric according to claim 7, characterized in that: The flapping mechanism (8) comprises a sliding seat (803) fixed in the extrusion seat (3) and a sliding rod (802) sliding on the sliding seat (803); A second magnet (801) is fixedly provided at the end of the slide bar (802); a third spring (804) is sleeved on the slide bar (802) between the second magnet (801) and the slide seat (803); a second rack (805) is fixedly provided on the side of the slide bar (802); a second gear (806) meshing with the second rack (805) is provided on the side of the second rack (805); a third gear (807) meshing with the second gear (806) is provided on the side of the second gear (806); a beating head (808) is fixedly provided at the edge of the third gear (807).
9. The mechanical equipment for softening cashmere fabric according to claim 8, characterized in that: A plurality of first magnets (210) evenly distributed in a lattice are fixedly disposed on the outer surface of the arc-shaped mesh cover (209), and the first magnets (210) and the second magnets (801) are repelled from each other.
Citation Information
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