A method for weaving cashmere and fox hair blended fabric
Through mechanical mixing and the scraper, arc-shaped cutting plate rack and silicone plate rack treatment of the washing mechanism, the problem of impurity residue on the fabric surface in the cashmere and fox hair blended production was solved, achieving efficient impurity removal and fabric quality improvement.
Patent Information
- Application Number
- CN202311743872.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-12-19
- Publication Date
- 2025-10-24
- Estimated Expiration
- 2043-12-19
AI Technical Summary
During the production process of cashmere and fox hair blends, impurities such as residual fluff and ash often remain on the surface of the fabric, resulting in unclean cleaning, affecting the gloss and appearance of the fabric, and making subsequent processing cumbersome.
The fox hair and cashmere fibers are mixed mechanically. The scrapers and curved cutting plates in the scouring mechanism are combined with blades to remove the strongly adhesive impurities. The silicone plates and magnetic panels are then used for further processing to ensure that the impurities are completely removed.
It effectively removes impurities on the surface of the fabric, improves the cleaning effect and quality of the fabric, simplifies the subsequent processing process, and enhances the gloss and beauty of the fabric.
Smart Images

Figure CN117822299B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of cashmere fabric weaving, in particular to a method for weaving a cashmere and fox hair blended fabric. Background Art
[0002] When cashmere and fox hair are blended, the plush needs to be effectively treated. Since fox hair has color, fox hair plush is generally not dyed (the specific details are subject to actual production conditions). In the process of blending the two types of plush, the treated plush fibers need to be mixed. There are generally two methods of fiber mixing: mechanical mixing and chemical mixing. After mixing, the fibers are spun in a variety of spinning methods, the most common of which are wet spinning and dry spinning. The mixed fibers are then woven accordingly.
[0003] After weaving, dense fluff often remains on the surface of the wool. If it is not removed, it will affect the gloss and appearance of the fabric. Therefore, the fabric needs to be singed, which can effectively reduce the pilling phenomenon. In order to eliminate the ash generated by singeing on the fabric surface, the fabric is often subjected to a corresponding scouring process. This process can effectively remove grease, sweat, weaving slurry, dust and ash from the wool itself. However, in actual operation, the surface of the fabric often retains impurities such as fluff and ash after scouring. The main reason is that when the cleaning liquid is used to wash the fabric, there is a certain adhesion between the fluff, ash and other impurities and the fabric surface. When the cleaning liquid acts on the fabric surface, some of the impurities are difficult to fall off from the fabric due to the strong adhesion. As a result, some fabrics after scouring may still have certain impurities on their surface, which requires subsequent workers to reprocess them, which is inefficient and the process is relatively cumbersome. To this end, a weaving method for cashmere and fox hair blended fabrics is proposed. Summary of the Invention
[0004] The object of the present invention is to provide a method for weaving a cashmere and fox hair blended fabric to solve the problems raised in the above background technology.
[0005] To achieve the above object, the present invention provides the following technical solution: a method for weaving a cashmere and fox hair blended fabric, comprising the following steps:
[0006] a. Fiber blending: using mechanical mixing to blend fox hair fiber and cashmere fiber;
[0007] b. Spinning, making fox hair fiber and cashmere fiber into yarn, stretching, twisting and thinning the blended fiber to form uniform yarn;
[0008] c. Weaving, interweaving the yarns to form blended fabrics;
[0009] d. Finishing: After the blended fabric is woven, it is treated to improve the feel and appearance of the blended fabric, specifically in the following steps: brushing, singeing, boiling, washing, drying, repairing, singeing, washing and shrinking, drying and steaming; in the washing process, it includes a washing mechanism, a protective shell fixedly installed on both sides of the washing mechanism, one of the outer walls of the protective shell is fixedly installed with a servo motor, the washing mechanism is internally installed with two rotating shafts A rotatably connected to the inner walls on both sides thereof, and a rotating shaft B is provided directly below the rotating shaft A, the rotating Both shaft A and rotating shaft B are equipped with rollers, and multiple rollers are located inside the washing mechanism. Both ends of the rotating shaft A and rotating shaft B penetrate the inner walls of the washing mechanism and extend into the protective shell. One of the rotating shafts A is fixedly connected to the output end of the servo motor. Each rotating shaft A is equipped with a driving gear, and the driving gear is located inside the protective shell. The driving gears are in a meshing state. Both the rotating shaft A and rotating shaft B are equipped with sprockets, and the sprockets are connected to each other through a chain.
[0010] A plurality of scrapers are fixedly mounted on each of the rollers, and the scrapers are used to clean impurities on the surface of the textile fabric a. An arc-shaped cutting plate frame is mounted on the scraper, and a blade is mounted on the arc-shaped cutting plate frame for cutting off impurities with strong adhesion on the textile fabric a.
[0011] Preferably, a collecting frame is fixedly mounted on the scraper and the arc-shaped cutting plate frame, and closing door panels are mounted on the inner walls on both sides of the collecting frame.
[0012] Preferably, a meshing gear is fixedly installed at the end of each closed door panel, and a plurality of annular grooves are provided on the inner walls on both sides of the washing mechanism. The meshing gears and the annular grooves are in a corresponding state with each other, and a plurality of teeth are fixedly installed inside each annular groove, and the teeth in each annular groove are located on the motion trajectory of the corresponding meshing gear.
[0013] Preferably, the end of the arc-shaped cutting plate frame is in contact with the side of the textile fabric a, and the blade is close to the end of the arc-shaped cutting plate frame and does not contact the side of the textile fabric a. The end of the arc-shaped cutting plate frame and the end of the scraper are both arranged in an arc shape and are made of silicone material.
[0014] Preferably, a transmission shaft is symmetrically installed on the inner wall of each side of the protective shell, and the transmission shaft is rotatably connected to the side wall of the protective shell. A driven gear is fixedly installed on the transmission shaft, and the driven gears are in a meshing state with the driving gear. An annular electromagnet is fixedly installed on the end of the transmission shaft.
[0015] Preferably, the two side walls of the washing mechanism are symmetrically fixed with support frames, and the support frames are internally provided with limiting sleeves rotationally connected with the inner walls thereof, the limiting sleeves are internally provided with sliding columns slidingly connected with the inner walls thereof, the sliding columns are internally provided with magnetic panels, the annular electromagnet generates an attractive force on the magnetic panels, one end of the limiting sleeve is internally provided with a circular panel, and the circular panel is provided with a plurality of telescopic columns, wherein the telescopic columns are fixedly connected with the magnetic panels.
[0016] Preferably, one end of the limiting sleeve is fixedly provided with a drive gear, and the support frame is internally provided with a rack body slidingly connected with the bottom inner wall thereof, and the rack body is in meshing state with the drive gear, and the rack body is connected with the inner wall of the support frame through a return spring.
[0017] Preferably, the rack body is provided with a connecting rod body on one side, and the connecting rod body is externally provided with a support frame body, and the support frame body is fixedly provided with a silica gel plate frame.
[0018] Preferably, the support frame is fixedly provided with a connecting frame body on one side, and the connecting frame body is fixedly provided with an action plate frame, and the action plate frame is located on the movement track of the silica gel plate frame.
[0019] Preferably, the end of the silica gel plate frame is in contact with the side of the textile fabric a, and is arranged in an arc-shaped and upwardly inclined manner.
[0020] Compared with the prior art, the present application has the following advantages:
[0021] 1. The present application uses the scraper to treat the impurities on the surface of the textile fabric, and the arc-shaped cutting plate frame and the knife blades thereon effectively treat the impurities with strong adhesion, improve the washing effect of the textile fabric, and effectively collect the treated impurities under the action of the collecting frame and the internal closed door plate, so that the roller drives the plurality of scrapers and arc-shaped cutting plate frames to treat the impurities on the surface of the textile fabric, avoids the condition that the impurities are too much on the surface of the textile fabric, and improves the weaving quality of the textile fabric.
[0022] 2、The present application utilizes the silica gel plate frame to reprocess the textile fabric, effectively reduces the content of impurities on the surface of the textile fabric, under the action of the plate frame, the impurities on the end of the silica gel plate frame and its surface can be effectively treated, and under the periodic energization of the annular electromagnet, the magnetic panel synchronously moves with the driven gear, thereby achieving the purpose of periodically cleaning the silica gel plate frame, improving the scouring effect of the textile fabric, and ensuring that the impurities on the surface of the textile fabric can be completely treated. BRIEF DESCRIPTION OF DRAWINGS
[0023] Figure 1 It is a schematic diagram of the overall structure of the present application;
[0024] Figure 2 It is a schematic diagram of the structure of the present application;
[0025] Figure 3 It is a schematic diagram of the internal structure of the scouring mechanism of the present application;
[0026] Figure 4 It is a schematic diagram of the rear partial structure of the scouring mechanism shell of the present application;
[0027] Figure 5 It is a schematic diagram of the structure of the roller and its mechanical components of the present application;
[0028] Figure 6 It is a schematic diagram of the front structure of the roller of the present application;
[0029] Figure 7 It is a schematic diagram of the structure of the scraper and the arc-shaped cutting plate frame of the present application;
[0030] Figure 8 It is a schematic diagram of the structure of the arc-shaped cutting plate frame of the present application;
[0031] Figure 9 It is a schematic diagram of the front structure of the scraper and the arc-shaped cutting plate frame and the textile fabric of the present application;
[0032] Figure 10 It is a schematic diagram of the internal structure of the protective shell of the present application;
[0033] Figure 11 It is a schematic diagram of the internal structure of the protective shell of the present application;
[0034] Figure 12 It is a schematic diagram of the structure separation of the limiting sleeve and the sliding column of the present application;
[0035] Figure 13 It is a schematic diagram of the external structure of the supporting outer frame of the present application;
[0036] Figure 14 It is a schematic diagram of the internal structure of the supporting outer frame of the present application;
[0037] Figure 15This is a schematic diagram of the closed door panel end structure of the present invention;
[0038] Figure 16 It is a schematic diagram of the annular tank structure of the present invention.
[0039] In the figure: 1-washing mechanism; 101-annular groove body; 102-tooth body; 2-protective shell; 3-servo motor; 4-rotating shaft A; 5-rotating shaft B; 6-drum; 7-driving gear; 8-sprocket; 9-scraper; 10a-textile fabric; 11-arc-shaped cutting plate frame; 12-blade; 13-collecting frame; 131-closing door panel; 132-meshing gear; 14-transmission shaft; 141-driven gear; 142-annular electromagnet; 15-support outer frame; 151-limiting sleeve; 152-sliding column; 153-magnetic panel; 154-circular panel; 155-telescopic column; 156-driving gear; 157-rack body; 158-reset spring; 159-connecting rod body; 16-support frame; 161-silica gel plate frame; 162-connecting frame; 163-action plate frame. DETAILED DESCRIPTION
[0040] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. 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 making creative efforts are within the scope of protection of the present invention.
[0041] See also Figures 1-16 The present invention provides a technical solution: a method for weaving a cashmere and fox hair blended fabric. In the prior art, after the cashmere and fox hair blended fabric is woven, it needs to be subjected to post-finishing operations, including scouring. The scouring process can effectively remove grease, sweat, weaving slurry, dust, and ash from the wool itself. However, some impurities have strong adhesion to the fabric, and thus, the scouring process often results in incomplete cleaning. The present invention addresses this technical problem and makes corresponding improvements, including the following steps:
[0042] a. Fiber blending: using mechanical mixing to blend fox hair fiber and cashmere fiber;
[0043] b. Spinning, making fox hair fiber and cashmere fiber into yarn, stretching, twisting and thinning the blended fiber to form uniform yarn;
[0044] c. Weaving, interweaving the yarns to form blended fabrics;
[0045] d. Finishing: After the blended fabric is woven, the blended fabric is treated to improve the feel and appearance of the blended fabric, including the following steps: brushing, singeing, boiling, washing, drying, repairing, singeing, washing and shrinking, drying and steaming;
[0046] In the washing process of step d, a washing mechanism 1 is included, and protective shells 2 are fixedly installed on both sides of the washing mechanism 1. A servo motor 3 is fixedly installed on the outer wall of one of the protective shells 2, and the output end of the servo motor 3 passes through the side wall of the protective shell 2 and extends into the interior thereof. Two rotating shafts A4 are installed inside the washing mechanism 1 and are rotatably connected to the inner walls on both sides thereof. A rotating shaft B5 is provided directly below the rotating shaft A4, that is, the rotating shaft B5 is also rotatably connected to the inner walls on both sides of the washing mechanism 1. Both ends of the rotating shaft A4 and the rotating shaft B5 pass through the inner walls on both sides of the washing mechanism 1 and extend into the interior of the protective shell 2 (the protective shell 2 is installed with two rotating shafts in the present invention). , respectively located on both sides of the washing mechanism 1), the rotating shaft A4 and the rotating shaft B5 are fixedly mounted with rollers 6, and multiple rollers 6 are located inside the washing mechanism 1. Further explanation: the two rotating shafts A4 (and the rotating shaft B5 located directly below them) are respectively located on both sides of the textile fabric 10a, that is, the textile fabric 10a is located between the two rotating shafts A4 (and the rotating shaft B5 located directly below them), one of the rotating shafts A4 is fixedly connected to the output end of the servo motor 3; each rotating shaft A4 is fixedly mounted with a driving gear 7, and the driving gear 7 is located inside the protective shell 2, and the driving gears 7 are in meshing state. State, sprockets 8 are installed on the rotating shaft A4 and the rotating shaft B5, and the sprockets 8 are connected by chains; and a plurality of scrapers 9 are fixedly mounted on the drum 6, and the scraper 9 is used to clean impurities on the surface of the textile fabric 10a. It is further explained that the end of each scraper 9 is in contact with the textile fabric 10a, and the end is arranged in an arc shape and is made of silicone material, and an arc-shaped cutting plate frame 11 is installed on the scraper 9. The arc-shaped cutting plate frame 11 is located below the scraper 9, and a blade 12 is fixedly mounted on the arc-shaped cutting plate frame 11 to cut off impurities with strong adhesion on the textile fabric 10a; wherein the scraper 9 and the arc A collection frame 13 is fixedly installed on the shaped cutting plate frame 11, and a closing door plate 131 is installed on the inner walls of both sides of the collection frame 13. Further description is made, the shaft on the closing door plate 131 is rotatably connected to the side wall of the collection frame 13, and the (shaft) end of each closing door plate 131 is fixedly installed with a meshing gear 132. A plurality of annular grooves 101 are provided on the inner walls of both sides of the washing mechanism 1. The meshing gears 132 and the annular grooves 101 are in a corresponding state with each other. A plurality of teeth 102 are fixedly installed inside each annular groove 101, and the teeth 102 in each annular groove 101 are located on the motion trajectory of the corresponding meshing gear 132.
[0047] Further, as attachedFigures 4-9 and attached Figures 15-16 shown: for convenience of description, the collection frame 13 on the scraper 9 is represented as A collection frame 13, and the collection frame 13 on the arc-shaped cutting frame 11 is represented as B collection frame 13, combined with attached Figure 6 , the rotation direction of the roller 6 is clockwise, the two closed door plates 131 in the A collection frame 13 have their shafts in one of the annular groove bodies 101 (i.e. the shafts of the two closed door plates 131 are on the same motion track), and the two closed door plates 131 in the B collection frame 13 have their shafts in different annular groove bodies 101, combined with attached Figure 6 and 9 shown: when the scraper 9 rotates with the roller 6 to contact the side of the textile fabric 10a, the end of the scraper 9 scrapes the impurities on the side of the textile fabric 10a, and the impurities fall into the interior of the scraper 9. At this time, the impurities scraped are impurities with poor adhesion, and some impurities with strong adhesion (such as fluff) are still attached to the side of the textile fabric 10a. When the end of the arc-shaped cutting frame 11 contacts the side of the textile fabric 10a, the blade 12 on the end of the arc-shaped cutting frame 11 is close to the textile fabric 10a but does not contact the side of the textile fabric 10a. The blade 12 cuts the impurities with strong adhesion, causing them to fall into the interior of the arc-shaped cutting frame 11. Each scraper 9 and arc-shaped cutting frame 11 performs the above operation on the textile fabric 10a. During the operation, the two closed door plates 131 in the (corresponding) B collection frame 13 are in the open state, and the impurities then flow into the B collection frame 13 with the water flow. Further, both collection frames 13 are provided with flow guide holes; combined with attached Figure 6 shown: after contacting the textile fabric 10a, the scraper 9 rotates with the roller 6, and the opening angle of the A collection frame 13 gradually changes to an upward shape. For convenience of description, the point where the scraper 9 contacts the textile fabric 10a is called point M. With the rotation direction of the roller 6 as the reference, multiple points are set, namely points M, N, G, and H, and the angle difference between the four points is 90°. During the movement of the A collection frame 13 from point M to point N, the two closed door plates 131 in the A collection frame 13 change from the closed state to the open state, i.e. the engagement gears 132 on the shafts of the closed door plates 131 engage with the tooth bodies 102 to change the angle. At this time, the impurities in the scraper 9 fall into the A collection frame 13 under the action of gravity. During the change from point N to point G, the closed door plates 131 change from the open state to the closed state. During the change from point G to point H and from point H to point M, the two closed door plates 131 in the A collection frame 13 are in the closed state;
[0048] combined with attached Figure 6During the movement of the arc-shaped cutting frame 11 from the point M to the point N, the two closed door plates 131 in the B collection frame 13 are switched from the open state to the closed state. When the B collection frame 13 moves from the point H to the point M, the two closed door plates 131 in the B collection frame 13 are in the open state only after the point M is reached, and the other areas are in the closed state. The switching from the closed (open) state to the open (closed) state is realized by the meshing of the gear teeth 132 and the gear body 102.
[0049] Further, the transmission shaft body 14 is symmetrically installed on each side inner wall of the protective shell 2, and the transmission shaft body 14 is rotationally connected with the side wall of the protective shell 2. The driven gear 141 is fixedly installed on the transmission shaft body 14, and the driven gear 141 is in meshing state with the driving gear 7. The annular electromagnet 142 is fixedly installed on the end of the transmission shaft body 14. The support outer frame 15 is symmetrically fixedly installed on the inner walls of both sides of the washing mechanism 1, and the support outer frame 15 is internally installed with the limiting sleeve 151 rotationally connected with the inner wall thereof. The limiting sleeve 151 is internally installed with the sliding column body 152 slidingly connected with the inner wall thereof. The end of the sliding column body 152 is located inside the protective shell 2, and the magnetic panel 153 is installed on the end of the sliding column body 152. The annular electromagnet 142 generates an attractive force on the magnetic panel 153 when energized. One end of the limiting sleeve 151 is located inside the protective shell 2, and the circular panel 154 is fixedly installed on the end. A plurality of telescopic column bodies 155 are installed on the circular panel 154, wherein the end of the telescopic column body 155 is fixedly connected with the magnetic panel 153. The drive gear 156 is fixedly installed on the end of the limiting sleeve 151 away from the circular panel 154. The rack body 157 is slidingly connected with the bottom inner wall of the support outer frame 15, and is in meshing state with the drive gear 156. The one end of the rack body 157 is connected with the inner wall of the support outer frame 15 through the return spring 158. The connecting rod body 159 is fixedly installed on one side of the rack body 157, and is located outside the support outer frame 15 on one side. The support frame body 16 is fixedly installed on one side of the connecting rod body 159. The silica gel plate frame 161 is fixedly installed on the support frame body 16. The end of the silica gel plate frame 161 is in contact with the side of the textile fabric 10a, and is arranged in an arc-shaped and upwardly inclined manner. The connecting frame body 162 is fixedly installed on one side of the support outer frame 15. The acting plate frame 163 is fixedly installed on the connecting frame body 162, and is located on the movement track of the silica gel plate frame 161. It should be noted that in the initial state, the end of the silica gel plate frame 161 is in contact with the side of the textile fabric 10a.
[0050] Specifically, during the process of the washing mechanism 1 processing the textile fabric 10a, the servo motor 3 is started, and its output end drives one of the rotating shafts A4 to rotate. During the rotation of the rotating shaft A4, the driving gear 7 and the sprocket 8 on it rotate, and the driving gear 7 is engaged with the driving gear 7 on the other rotating shaft A4, and then the two rotating shafts A4 rotate synchronously. Figure 4 As shown: one of the rollers 6 rotates clockwise, and the other roller 6 rotates counterclockwise, and the scraper 9 and the arc-shaped cutting plate frame 11 on the roller 6 can process impurities on the surface of the textile fabric 10a. When the rotating shaft A4 is rotating, the sprocket 8 on it will drive the rotating shaft B5 to rotate through the chain transmission. The rotating shaft A4 and the rotating shaft B5 respectively drive the corresponding roller 6 to rotate. When the scraper 9 on the roller 6 contacts the textile fabric 10a, its end The impurities (with weak adhesion) on the surface of the textile panel are scraped off, and the impurities enter the scraper 9. When the scraper 9 rotates with the roller 6, the two closed door panels 131 in the A collection frame 13 are opened, and the impurities fall into the A collection frame 13. The two closed door panels 131 inside the A collection frame 13 are closed after rotating to a certain position. When the arc-shaped cutting plate frame 11 rotates to contact the surface of the textile fabric 10a, the blade 12 scrapes off the impurities (with strong adhesion), and finally falls into the B collection frame 13.
[0051] In the normal state, the end of the silica gel plate frame 161 is in contact with the surface of the textile fabric 10a, and the impurities on the surface of the textile fabric 10a are scraped off under the action of the silica gel plate frame 161 to play a role of re-cleaning. Since the end of the silica gel plate frame 161 is in contact with the textile fabric 10a, a certain amount of impurities (commonly liquid impurities such as slurry) will accumulate on the end of the silica gel plate frame 161. Then, the annular electromagnet 142 is controlled to be energized at a regular time. When the annular electromagnet 142 is energized, it generates an attractive force on the magnetic panel 153. The magnetic panel 153 is in close contact with the annular electromagnet 142 under the action of the sliding column body 152, and the telescopic column body 155 is in a stretched state at this time. Since the driving gear 7 meshes with the driven gear 141 during rotation, and the annular electromagnet 142 generates an attractive force on the magnetic panel 153 when it is energized, the driven gear 141 drives the magnetic panel 153 to rotate through the annular electromagnet 142 under the action of the transmission shaft body 14, so that the sliding column body 152 drives the limiting sleeve 151 to rotate (the sliding column body 152 is fixedly connected with the magnetic panel 153, and the sliding column body 152 is slidingly connected with the limiting sleeve 151). The limiting sleeve 151 rotates to make the driving gear 156 mesh with the rack body 157. The rack body 157 is subjected to meshing force and is limited to move inside the support outer frame 15. During the movement, the rack body 157 compresses the return spring 158. During the movement of the rack body 157, the support frame body 16 drives the silica gel plate frame 161 to move away from the textile fabric 10a through the connecting rod body 159. During the movement, the action plate frame 163 on the connecting frame body 162 acts on the surface of the silica gel plate frame 161 to scrape off the impurities on the silica gel plate frame 161. After scraping, the annular electromagnet 142 is de-energized, the magnetic panel 153 returns to the initial state under the action of the telescopic column body 155, and the rack body 157 returns to the initial state under the action of the return spring 158, i.e., the silica gel plate frame 161 re-contacts with the textile fabric 10a to remove the impurities on the surface of the textile fabric 10a.
[0052] It should be noted that the relational terms herein such as first and second and the like are used solely to distinguish one entity or action from another entity or action without necessarily requiring or implying any such actual relationship or order between such entities or actions. Moreover, the terms "comprises", "comprising", or any other variations thereof, are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements does not include only those elements but can include other elements not expressly listed or inherent to such process, method, article, or apparatus.
[0053] While embodiments of the application have been shown and described, it is to be understood that the embodiments described are merely exemplary of the principles and application of the present application. Numerous modifications and adaptions can be effected without departing from the spirit and scope of the present application, which is not limited to the exact construction and arrangement described. It is intended, therefore, to cover all modifications and adaptions that fall within the scope of the claims and their equivalents.
Claims
1. A method of weaving a cashmere and fox blend fabric, characterized in that, The method comprises the following steps: a. mixing fibers, mixing fox hair fibers and cashmere fibers by mechanical mixing; b. spinning, spinning the fox hair fibers and cashmere fibers into yarn, stretching, twisting and thinning the blended fibers to form uniform yarn; c. weaving, interweaving the yarn to form a blended fabric; d. Finishing: After the blended fabric is woven, the blended fabric is treated to improve the feel and appearance of the blended fabric, specifically including the following steps: brushing, singeing, boiling, washing, drying, repairing, singeing, washing and shrinking, drying and steaming; in the washing process, it includes a washing mechanism (1), a protective shell (2) fixedly installed on both sides of the washing mechanism (1), one of the outer walls of the protective shell (2) is fixedly installed with a servo motor (3), the washing mechanism (1) is internally installed with two rotating shafts A (4) rotatably connected to the inner walls on both sides thereof, and a rotating shaft B (5) is provided directly below the rotating shaft A (4), and both the rotating shaft A (4) and the rotating shaft B (5) are A roller (6) is installed, and a plurality of the rollers (6) are located inside the washing mechanism (1), both ends of the rotating shaft A (4) and the rotating shaft B (5) pass through the inner walls of both sides of the washing mechanism (1) and extend into the inside of the protective shell (2), one of the rotating shafts A (4) is fixedly connected to the output end of the servo motor (3); a driving gear (7) is installed on each of the rotating shafts A (4), and the driving gear (7) is located inside the protective shell (2), and the driving gears (7) are in a meshing state, and a sprocket (8) is installed on each of the rotating shafts A (4) and the rotating shaft B (5), and the sprockets (8) are connected to each other through a chain; and each A plurality of scrapers (9) are fixedly mounted on each of the rollers (6), and the scrapers (9) are used to clean impurities on the surface of the textile fabric (10a), and an arc-shaped cutting plate frame (11) is mounted on the scraper (9), and a blade (12) is mounted on the arc-shaped cutting plate frame (11) for cutting impurities with strong adhesion on the textile fabric (10a); a collecting frame (13) is fixedly mounted on the scraper (9) and the arc-shaped cutting plate frame (11), and a closing door panel (131) is mounted on both sides of the inner wall of the collecting frame (13); a meshing gear (132) is fixedly mounted on the end of each closing door panel (131), and both sides of the inner wall of the washing mechanism (1) are provided with a There are a plurality of annular groove bodies (101), the meshing gears (132) and the annular groove bodies (101) are in a state of mutual correspondence, a plurality of teeth (102) are fixedly installed inside each annular groove body (101), and the teeth (102) in each annular groove body (101) are located on the motion trajectory of the corresponding meshing gear (132); the end of the arc-shaped cutting plate frame (11) is in a contact state with the side of the textile fabric (10a), and the blade (12) is close to the end of the arc-shaped cutting plate frame (11) and does not contact the side of the textile fabric (10a), and the end of the arc-shaped cutting plate frame (11) and the end of the scraper (9) are both arranged in an arc shape and are made of silicone material.
2. A method of weaving a cashmere fox blend fabric as claimed in claim 1, wherein: Each of the protective shell (2) one side wall is symmetrically mounted with transmission shaft body (14), and the transmission shaft body (14) is rotatably connected with the side wall of protective shell (2), the transmission shaft body (14) is fixedly installed with driven gear (141), and the driven gear (141) is in meshing state with driving gear (7), the transmission shaft body (14) end fixedly installed with annular electromagnet (142).
3. A method of weaving a cashmere fox blend fabric as claimed in claim 2, wherein: The both sides of the washing mechanism (1) are symmetrically fixedly installed with support frame (15), and the support frame (15) is internally installed with a limiting sleeve (151) rotatably connected with its inner wall, the limiting sleeve (151) is internally installed with a sliding column body (152) slidably connected with its inner wall, and the sliding column body (152) end is located in the protective shell (2) inside, and the magnetic panel (153) is installed on the end of the sliding column body (152), and the annular electromagnet (142) is electrified to generate attractive force on the magnetic panel (153), one end of the limiting sleeve (151) is located in the protective shell (2) inside, and the circular panel (154) is fixedly installed on the end, and a plurality of telescopic columns (155) are installed on the circular panel (154), wherein the telescopic columns (155) are fixedly connected with the magnetic panel (153) at the end.
4. A method of weaving a cashmere fox blend fabric as claimed in claim 3, wherein: The end of the limiting sleeve (151) away from the circular panel (154) is fixedly installed with a drive gear (156), and a rack body (157) is installed in the support frame (15) and slidably connected with the bottom inner wall, and the rack body (157) is in meshing state with the drive gear (156), one end of the rack body (157) is connected with the inner wall of the support frame (15) through a return spring (158).
5. A method of weaving a cashmere fox blend fabric as claimed in claim 4, wherein: The one side of the rack body (157) is installed with a connecting rod body (159), and the one side of the connecting rod body (159) is located outside the support frame (15), the one side of the connecting rod body (159) is fixedly installed with a support frame body (16), and the support frame body (16) is fixedly installed with a silica gel plate frame (161).
6. A method of weaving a cashmere fox blend fabric as claimed in claim 5, wherein: The one side of the support frame (15) is fixedly installed with a connecting frame body (162), and the connecting frame body (162) is fixedly installed with an action plate frame (163), and the action plate frame (163) is located on the movement track of the silica gel plate frame (161).
7. A method of weaving a cashmere fox blend fabric as claimed in claim 6, wherein: The end of the silica gel plate frame (161) is in contact with the side of the textile fabric (10a), and is arranged in arc shape and inclined upward.
Citation Information
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