Immersion dyeing device for fabric processing

By designing an immersion dyeing device including ultrasonic vibration unit, dyeing box and multiple components, the problem of uneven coloring and short service life of textile fabrics during the dyeing process is solved, and uniform dyeing and improving service life is achieved.

CN119956576AInactive Publication Date: 2025-05-09YANGZHOU XIANGBEI MACHINERY
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Patent Information

Application Number
CN202510379713.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-28
Publication Date
2025-05-09
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In the prior art, the coloring of textile fabrics is uneven and the fabric fades, resulting in dyeing failure and short service life due to hand-pulling and washing.

Method used

An immersion dyeing device including an ultrasonic vibration unit, a dyeing box, a bidirectional moving assembly, a corner assembly, a penetration assembly and a diffusion assembly is designed. Through the driving of the bidirectional moving assembly, the telescopic brush plate performs double-side uniform operation on the fabric; the corner assembly realizes the liquid discharge pipe to the corner of the fabric from the corner of the fabric; the penetration assembly and the diffusion assembly are drained and sprayed by sodium acetate liquid and calcium propionate to enhance the permeability and uniformity of the dye.

Benefits of technology

The uniform dyeing of textile fabrics is achieved, the problems of uneven dyeing and fading of fabrics are avoided, and the aesthetics and service life after dyeing are improved.

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Abstract

The invention discloses a soaking and dyeing device for fabric processing, and belongs to the technical field of textile fabric dyeing, the soaking and dyeing device comprises an ultrasonic vibration unit, the top of the ultrasonic vibration unit is fixedly connected with a dyeing box, the dyeing box is internally provided with a bidirectional moving assembly, and the bidirectional moving assembly comprises a concave sliding plate; the top of the concave sliding plate is fixedly connected with a hollow sliding plate, the front side of the hollow sliding plate penetrates through and is fixedly connected with an L-shaped hollow plate, and the bottom of the L-shaped hollow plate penetrates through and is rotationally connected with a first telescopic brush plate and a second telescopic brush plate. By means of the scheme, double-face moving type uniform smearing operation can be conducted on the two faces of the cloth, the problem that the cloth is colored unevenly through a coloring agent is solved, the overall attractiveness of cloth coloring is enhanced, the service life of the textile cloth is prolonged, the high efficiency of non-dead-corner dyeing of the textile cloth is improved, and normal dyeing of the textile cloth is guaranteed.
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Description

Technical Field

[0001] The invention relates to the technical field of textile fabric dyeing, and more particularly to an immersion dyeing device for fabric processing. Background Art

[0002] The fabric immersion dyeing machine is a dyeing tool used to immerse textile fabrics in various colors, thereby helping technicians to dye different types of textile fabrics, while also testing and evaluating the quality of the dyed fabrics, and packaging the finished dyed fabrics into boxes before shipping them out for customers to buy and sell.

[0003] In the existing small-scale fabric workshop, when the fabric is immersed and dyed, the fabric to be dyed is usually washed with water first, and then the fabric is transferred to the soaking machine by hand-pulling and guiding, so that the fabric and the dye are in contact and start to be colored. However, in the actual use scenario of small-scale workshops, after the fabric comes into contact with the dye in the fabric dyeing machine, it is colored by hand-pulling, rinsing, guiding and adhering, resulting in uneven coloring of the fabric after immersion dyeing, and fading of the fabric, resulting in failure of textile fabric dyeing and short service life of the fabric after dyeing, which seriously affects the normal use of textile fabric dyeing. Summary of the invention

[0004] In view of the problems existing in the prior art, the object of the present invention is to provide an immersion dyeing device for fabric processing.

[0005] To solve the above problems, the present invention adopts the following technical solutions.

[0006] A soaking dyeing device for fabric processing, comprising an ultrasonic vibration unit, the top of the ultrasonic vibration unit is fixedly connected to a dye box, the top of the dye box is symmetrically provided with a conveying guide roller 1, the top of the ultrasonic vibration unit is symmetrically provided with a conveying guide roller 2, the inner bottom wall of the dye box is symmetrically provided with a conveying guide roller 3, the outer surfaces of the conveying guide roller 1, the conveying guide roller 2 and the conveying guide roller 3 are jointly sleeved with a conveyor belt, a fabric box is arranged on the right side of the ultrasonic vibration unit, the top front side of the ultrasonic vibration unit is penetrated and fixedly connected with a liquid inlet valve, the bottom rear side of the ultrasonic vibration unit is penetrated and fixedly connected with a liquid outlet valve, the interior of the dye box is provided with a bidirectional moving component, the bidirectional moving component comprises a hollow box 1, the hollow box One is fixedly connected to the front side of the dyeing box, the inner wall of the hollow box one is fixedly connected to a driving motor one, the output end of the driving motor one is fixedly connected to a column rod, the outer surface of the column rod passes through the dyeing box and is rotatably connected, the rear end of the column rod is fixedly connected to a fixing plate one, the top rear side of the fixing plate one is fixedly connected to a column block, the outer surface of the column block is rotatably connected to a slider one, the outer surface of the slider one is slidably connected to an annular swing rod, the top of the annular swing rod is rotatably connected to a slider two, the rear side of the slider two is slidably connected to a concave slide plate, the top of the concave slide plate is fixedly connected to a hollow slide plate, the front side of the hollow slide plate passes through and is fixedly connected to an L-shaped hollow plate, the bottom of the L-shaped hollow plate passes through and is rotatably connected to telescopic brush plates one and two.

[0007] Furthermore, a polygonal fixing plate is fixedly connected to the inner bottom wall of the front side of the dye box, the outer surface of the column rod is penetrated and rotatably connected to the polygonal fixing plate, the top rear side of the polygonal fixing plate is penetrated and slidably connected to the hollow slide, the bottom rear side of the polygonal fixing plate is fixedly connected to a cylinder, and the outer surface of the cylinder is penetrated and rotatably connected to the bottom of the annular swing rod.

[0008] Furthermore, the telescopic brush plate one and the telescopic brush plate two are symmetrically distributed, and liquid leakage holes are provided between the brush fibers at the bottom of the telescopic brush plate one and the bottom of the telescopic brush plate two.

[0009] Furthermore, a support plate is fixedly connected between the inner walls of the conveying guide roller 1, and two support plates are provided. The two support plates are symmetrically distributed, and a telescopic limit block is fixedly connected to the top of the support plate. A baffle is fixedly connected between the inner walls of the dyeing box, and the front side of the baffle penetrates and is slidably connected to the top of the L-shaped hollow plate.

[0010] Furthermore, the conveyor belts are provided with two, the two conveyor belts are symmetrically distributed, a clamping plate assembly is provided between the two sides of the two conveyor belts, the clamping plate assembly includes a second clamping plate, the second clamping plate is fixedly connected between the two conveyor belts, the top of the second clamping plate is movably connected with a first clamping plate, the two sides of the first clamping plate are slidably connected with the conveyor belt, the left sides of the first clamping plate and the second clamping plate are penetrated and connected with a liquid inlet pipe, the bottom of the first clamping plate and the top of the second clamping plate are penetrated and fixedly connected with a liquid leakage mesh plate, and the inner walls of the two sides of the first clamping plate and the second clamping plate are provided with sliding grooves, The left side of the second splint is fixedly connected to the second hollow box, the inner wall of the second hollow box is fixedly connected to the second driving motor, the output end of the second driving motor is fixedly connected to a spiral rod, the bottom of the second driving motor is fixedly connected to a start button, the outer surface of the start button passes through and is fixedly connected to the bottom of the second hollow box, the left end outer surface of the spiral rod passes through and is rotatably connected to the second splint, the threaded surface of the spiral rod is threadedly connected to a slider three, the left side of the slider three is fixedly connected to a slide bar one, two slide bars one are provided, and the two slide bars one are symmetrically distributed.

[0011] Furthermore, the front end of the sliding rod one is slidably connected in the sliding groove, the front end outer wall of the sliding rod one is rotatably connected with the support rod one, the outer surface of the support rod one passes through the top of the second splint and the bottom of the first splint, and is rotatably connected to the front inner wall of the first splint, the rear side of the support rod one is rotatably connected with the support rod two, the bottom of the support rod two is rotatably connected to the front inner wall of the second splint, the outer surface of the support rod two passes through the front top of the second splint and the front bottom of the first splint, and the top front side of the support rod two is slidably connected in the sliding groove.

[0012] Furthermore, a corner assembly is provided inside the L-shaped hollow plate, and the corner assembly includes a cylinder, which is fixedly connected to the inner wall of the L-shaped hollow plate, and the output end of the cylinder is fixedly connected to a rack, the right side of the rack is meshedly connected to gear 1, and the bottom of the gear 1 is meshedly connected to gear 2, and the inner annular walls of the gear 1 and the gear 2 are penetrated and fixedly connected with hard tubes, and the rear ends of the two hard tubes are respectively penetrated and fixedly connected to the front side of the telescopic brush plate 1 and the front side of the telescopic brush plate 2.

[0013] Furthermore, a liquid outlet pipe is fixedly connected to the left top of the telescopic brush plate 2, an elastic extrusion plate is hinged on the top of the telescopic brush plate 1, a signal button is penetrated and slidably connected to the right bottom surface of the telescopic brush plate 1, and the elastic extrusion plate is located directly to the right of the signal button.

[0014] Furthermore, a penetration component is provided on the top front side of the dye box, and the penetration component includes a sodium acetate liquid tank, and the sodium acetate liquid tank is fixedly connected to the top front side of the dye box. A hose 1 passes through and is fixedly connected to the top of the sodium acetate liquid tank, and the outer surface of the hose 1 passes through and is fixedly connected to the dye box, and the output end of the hose 1 passes through and is fixedly connected to the top of the hollow slide.

[0015] Furthermore, a diffusion component is provided on the top front side of the dye box, and the diffusion component includes a calcium propionate agent box, which is fixedly connected to the top front side of the dye box and is arranged on the right side of the sodium acetate liquid tank. A hose 2 is passed through and fixedly connected to the top of the calcium propionate agent box, and the outer surface of the hose 2 passes through and is fixedly connected to the dye box. The output end of the hose 2 passes through and is fixedly connected to the top of the hollow slide, and the hose 2 is arranged on the right side of the hose 1.

[0016] Compared with the prior art, the present invention has the following beneficial effects: (1) This solution sets a bidirectional moving component. During the continuous movement of the L-shaped hollow plate, the telescopic brush plate 1 and the telescopic brush plate 2 are indirectly driven to move to the left, and gradually come into contact with the outer surface of the clamping plate component 218 and the textile fabric not clamped by the clamping plate component. Through the movement of fine fibers, the dye in the dye box can be effectively penetrated into the textile fabric according to the guidance of the fine fibers, so that the telescopic brush plate 1 and the telescopic brush plate 2 can perform a double-sided mobile smoothing operation on the textile fabric not clamped by the clamping plate component immersed in the dye box, thereby avoiding the textile fabric from being stained. When the material is dyed, the fiber cloth is put into the dye box 11 in a semi-floating state, and the dyeing method is to dye the textile cloth by rinsing and coloring, which causes the wrinkled parts of the cloth to be unable to be completely penetrated and colored when in contact with the dye, resulting in uneven dyeing of the textile cloth after dyeing, and pits and spots on the dyed surface, resulting in failure of dyeing of the textile cloth and waste of resources, thereby improving the overall aesthetics of the textile cloth after dyeing, enhancing the effect of unobstructed dyeing of the textile cloth, and ensuring the normal use of immersion dyeing of the textile cloth.

[0017] (2) This scheme provides a corner assembly. Under the action of the continuous rotation and movement force of the telescopic brush plate 1 and the telescopic brush plate 2, the liquid outlet pipe is indirectly moved in a direction parallel to the liquid inlet pipe of the splint assembly, and the liquid outlet pipe can introduce the dye into the liquid inlet pipe of the splint assembly, so that the liquid outlet pipe can perform a corner liquid delivery operation on the liquid inlet pipe of the splint assembly, thereby avoiding the corners of the fabric being undyed, resulting in obvious color difference in the dyeing of the textile fabric, affecting the aesthetics of the dyed fabric, and causing the corners of the fabric to be pulled, deformed, and damaged during the pulling of the fabric. The efficiency of fabric dyeing is improved, the service life of the textile fabric is enhanced, and the normal production of the textile fabric is ensured.

[0018] (3) By setting a penetration component, the present scheme can, under the action of the diversion pump built into the sodium acetate liquid tank, allow the sodium acetate liquid in the sodium acetate liquid tank to flow down into the hollow slide plate under the guidance of the hose 1, and then be drained into the L-shaped hollow plate by the hollow slide plate, and then be drained into the hard pipe by the L-shaped hollow plate, and then be drained into the telescopic brush plate 1 and the telescopic brush plate 2 by the hard pipe, and then be drained to the leakage port by the telescopic brush plate 1 and the telescopic brush plate 2, so that the leakage port can spray the sodium acetate liquid along both sides of the textile fabric, thereby avoiding that some oil stains are still attached to the textile fabric after cleaning, so that the dye cannot penetrate and dye with the part of the textile fabric, resulting in unclear dyeing of the part of the textile fabric, resulting in poor dyeing effect of the textile fabric, improving the efficiency of removing oil pollution from the textile fabric, enhancing the strength of the dye to soften and penetrate the fabric, and ensuring normal coloring of the textile fabric.

[0019] (4) By setting a diffusion component, the present scheme can, under the action of the diversion pump built into the calcium propionate agent box, allow the calcium propionate agent in the calcium propionate agent box to flow downward into the hollow slide under the guidance of the hose 2, and allow the calcium propionate agent after drainage to merge with the sodium acetate solution, thereby enhancing the stability of the softening and penetration of the sodium acetate solution, avoiding the problem of blockage of the textile fabric after dyeing due to interference from the hard block dye remaining on the surface of the fabric, which makes the telescopic brush plate 1 and the telescopic brush plate 2 unable to brush the block dye evenly, causing the problem of blockage of the fabric, thereby improving the efficiency of dyeing, strengthening the strength of the softening and penetration of the sodium acetate solution, and enhancing the effect of the telescopic brush plate 1 and the telescopic brush plate 2 in softening the dye without blocking, thereby ensuring the normal penetration and coloring of the textile fabric. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 It is a structural schematic diagram of the present invention; Figure 2 It is a schematic cross-sectional structural diagram of the ultrasonic vibration unit and the dyeing box in the present invention; Figure 3 For the present invention Figure 2 A schematic diagram of the enlarged structure at A in the middle; Figure 4 It is a structural schematic diagram of the bidirectional moving component in the present invention; Figure 5 For the present invention Figure 4 A schematic diagram of the enlarged structure at B in the middle; Figure 6 For the present invention Figure 4 Schematic diagram of the enlarged structure at C in the middle; Figure 7 It is a schematic diagram of the structure of the L-shaped hollow plate and the baffle in the present invention; Figure 8It is a schematic diagram of the top view of the structure of the dye box and the bidirectional moving component in the present invention; Fig. 9 It is a structural schematic diagram of the dye box and the baffle in the present invention; Fig.10 It is a structural schematic diagram of the splint assembly in the present invention; Fig.11 It is a structural schematic diagram of the spiral rod and the slider three in the present invention; Fig.12 It is a cross-sectional structural schematic diagram of the clamping plate assembly in the present invention; Fig.13 It is a structural schematic diagram of the second clamping plate and the liquid leakage screen plate in the present invention; Fig.14 For the present invention Figure 8 Schematic diagram of the enlarged structure at D in the middle; Fig.15 It is a schematic structural diagram of the corner assembly in the present invention; Fig.16 For the present invention Fig.15 Another perspective structural diagram of; Fig.17 For the present invention Fig. 9 Schematic diagram of the enlarged structure at E in the middle; Fig.18 It is a schematic diagram of the structure of the permeation component in the present invention; Fig.19 For the present invention Fig. 9 The enlarged structural diagram at F in the middle; Fig. 20 It is a schematic diagram of the structure of the diffusion component in the present invention.

[0021] Description of the numbers in the figure: 1. Ultrasonic vibration unit; 11. Dye box; 12. Conveyor guide roller 1; 13. Conveyor belt; 14. Fabric box; 15. Conveyor guide roller 2; 16. Conveyor guide roller 3; 17. Liquid inlet valve; 18. Liquid outlet valve; 19. Support plate 1; 2. Bidirectional moving assembly; 21. Driving motor 1; 22. Hollow box 1; 23. Column rod; 24. Fixed plate 1; 25. Column block; 26. Slider 1; 27. Annular swing rod; 28. Slider 2; 29. ​​Concave slide plate; 210. Hollow slide plate; 211. Polygonal fixed plate; 212. Cylinder; 213. L-shaped hollow plate; 214. Telescopic brush plate 1; 215. Telescopic brush plate 2; 217. Liquid leakage port; 218, clamping plate assembly; 2181, clamping plate 1; 2182, clamping plate 2; 2183, hollow box 2; 2184, driving motor 2; 2185, spiral rod; 2186, start button; 2187, liquid inlet pipe; 2188, liquid leakage screen; 2189, slide bar 1; 21810, support bar 1; 21811, slide bar 3; 21812, slide groove; 21813, support bar 2; 219, telescopic limit block; 220, supporting plate 2; 221, baffle; 3. Corner assembly; 31. Cylinder; 32. Rack; 33. Gear 1; 34. Gear 2; 35. Liquid outlet pipe; 36. Hard pipe; 37. Elastic extrusion plate; 38. Signal button; 4. Permeation assembly; 41. Sodium acetate liquid tank; 42. Hose 1; 5. Diffusion assembly; 51. Calcium propionate agent box; 52. Hose 2. DETAILED DESCRIPTION

[0022] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention; it is obvious that the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments, and all other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making creative work are within the scope of protection of the present invention.

[0023] See also Figures 1 to 20 A soaking dyeing device for fabric processing, comprising an ultrasonic vibration unit 1, a dye box 11 is fixedly connected to the top of the ultrasonic vibration unit 1, a support plate 19 is fixedly connected to the top of the dye box 11, four support plates 19 are provided, and the four support plates 19 are symmetrically distributed in pairs, a conveying guide roller 12 is rotatably connected between the side walls of the two support plates 19, four conveying guide rollers 12 are provided, and the four conveying guide rollers 12 are symmetrically distributed about the dye box 11, and the top of the ultrasonic vibration unit 1 Conveying guide rollers 15 are symmetrically arranged on both sides, and conveying guide rollers 16 are symmetrically arranged on the inner bottom wall of the dye box 11. The outer surfaces of the conveying guide rollers 12, 15 and 16 are jointly sleeved with a conveyor belt 13. A cloth box 14 is arranged on the right side of the ultrasonic vibration unit 1. A liquid inlet valve 17 is penetrated and fixedly connected to the top front side of the ultrasonic vibration unit 1, and a liquid outlet valve 18 is penetrated and fixedly connected to the bottom rear side of the ultrasonic vibration unit 1. A two-way moving component 2 is arranged inside the dye box 11; The bidirectional moving assembly 2 includes a hollow box 22, the hollow box 22 is fixedly connected to the front side of the dye box 11, the inner wall of the hollow box 22 is fixedly connected to a driving motor 21, the output end of the driving motor 21 is fixedly connected to a column 23, the outer surface of the column 23 penetrates and is rotatably connected to the dye box 11, the rear end of the column 23 is fixedly connected to a fixing plate 24, the top rear side of the fixing plate 24 is fixedly connected to a column block 25, and the outer surface of the column block 25 is rotatably connected to Slider 1 26, the outer surface of which is slidably connected to an annular swing rod 27, the top of which is rotatably connected to slider 2 28, the rear side of which is slidably connected to a concave slide plate 29, the top of which is fixedly connected to a hollow slide plate 210, the front side of which is penetrated and fixedly connected to an L-shaped hollow plate 213, the bottom of which is penetrated and rotatably connected to a telescopic brush plate 1 214 and a telescopic brush plate 215.

[0024] A polygonal fixing plate 211 is fixedly connected to the inner bottom wall of the front side of the dye box 11, the outer surface of the column 23 penetrates and is rotatably connected to the polygonal fixing plate 211, the top rear side of the polygonal fixing plate 211 penetrates and is slidably connected to the hollow slide plate 210, and the bottom rear side of the polygonal fixing plate 211 is fixedly connected to a cylinder 212, and the outer surface of the cylinder 212 penetrates and is rotatably connected to the bottom of the annular swing rod 27.

[0025] The telescopic brush plate 1 214 and the telescopic brush plate 215 are symmetrically distributed, and a liquid leakage port 217 is provided between the brush fibers at the bottom of the telescopic brush plate 1 214 and the bottom of the telescopic brush plate 215 .

[0026] A support plate 220 is fixedly connected between the inner walls of the support plate 19, and two support plates 220 are provided. The two support plates 220 are symmetrically distributed, and a telescopic limit block 219 is fixedly connected to the top of the support plate 220. A baffle plate 221 is fixedly connected between the inner walls of the dye box 11, and the front side of the baffle plate 221 penetrates and is slidably connected to the top of the L-shaped hollow plate 213.

[0027] The conveyor belts 13 are provided with two, and the two conveyor belts 13 are symmetrically distributed. A clamping plate assembly 218 is arranged between the two sides of the two conveyor belts 13. The clamping plate assembly 218 includes a second clamping plate 2182. The second clamping plate 2182 is fixedly connected between the two conveyor belts 13. The top of the second clamping plate 2182 is movably connected with a clamping plate 1 2181. The two sides of the clamping plate 1 2181 are slidably connected with the conveyor belt 13. The left sides of the clamping plate 1 2181 and the second clamping plate 2182 are penetrated and connected with a liquid inlet pipe 2187. The bottom of the clamping plate 1 2181 and the top of the second clamping plate 2182 are penetrated and fixedly connected with a liquid leakage mesh plate 2188. The inner walls of the two sides of the clamping plate 1 2181 and the second clamping plate 2182 are provided with sliding grooves 21812. The left side of plate 2182 is fixedly connected to hollow box 2183, the inner wall of hollow box 2183 is fixedly connected to driving motor 2184, the output end of driving motor 2184 is fixedly connected to spiral rod 2185, the bottom of driving motor 2184 is fixedly connected to starting button 2186, the outer surface of starting button 2186 penetrates through and is fixedly connected to the bottom of hollow box 2183, the left end outer surface of spiral rod 2185 penetrates through and is rotatably connected to clamp plate 2182, the threaded surface of spiral rod 2185 is threadedly connected to slider 3 21811, the left side of slider 3 21811 is fixedly connected to sliding rod 1 2189, two sliding rods 1 2189 are provided, and the two sliding rods 1 2189 are symmetrically distributed.

[0028] The conveyor belt 13 is an anti-shielding composite belt composed of a thick annular belt and a thin annular belt with a graded drop, which is more convenient for the stable conveying operation of the clamping plate assembly 218.

[0029] The front end of the slide rod 2189 is slidably connected in the slide groove 21812, and the front end outer wall of the slide rod 2189 is rotatably connected with the support rod 21810. The outer surface of the support rod 21810 passes through the top of the second splint 2182 and the bottom of the first splint 2181, and is rotatably connected to the front inner wall of the first splint 2181. The rear side of the support rod 21810 is rotatably connected with the support rod 21813. The bottom of the support rod 21813 is rotatably connected to the front inner wall of the second splint 2182. The outer surface of the support rod 21813 passes through the top of the front side of the second splint 2182 and the bottom of the front side of the splint 2181, and the top front side of the support rod 21813 is slidably connected in the slide groove 21812.

[0030] In view of the fact that the prior art uses the method of hand-pulling, rinsing, and sticking for coloring, which results in uneven coloring of the fabric after soaking and dyeing, and the phenomenon of fabric fading, resulting in failure of textile fabric dyeing, resulting in the problem of short service life of the fabric after dyeing, seriously affecting the normal use of textile fabric dyeing, the present application sets a bidirectional moving component 2. When in use, firstly, power is turned on to drive the motor output shaft connected to the transmission guide roller 12 to rotate, and then drive the transmission guide roller 12 to rotate, driving the contacting conveyor belt 13 to start moving to the right, and at the same time, the conveyor belt 13 drives the sleeved conveyor guide roller 2 15 and the conveyor guide roller 3 16 roller parts to rotate, thereby forming automatic transmission power, and the clamping plate 2182 is fixed between the thin belts of the conveyor belt 13, and The initial position of the clamping plate assembly 218 is between the conveying guide roller 12 and the supporting plate 220 at the top left side of the dye box 11, and the bottom surface of the clamping plate 2182 and the bottom surface of the conveyor belt 13 are on the same horizontal plane. When the conveyor belt 13 moves to the right, the pre-dyed fabric can be placed on the top surface of the clamping plate 2182 synchronously. Then, under the action of the rightward moving force of the conveyor belt 13, the conveyor belt 13 can pull the clamping plate assembly 218 as a whole and the textile fabric to move to the right, so that the clamping plate assembly 218 moves to the right along the trajectory of the conveying guide roller 12 at the top left side of the dye box 11. Then, when the clamping plate 2182 continues to move to the right until it contacts the telescopic limit block 219, it can squeeze the top inclined block of the telescopic limit block 219 to shrink downward, and After the left side of 218 moves to the right until it is flush with the right side of the telescopic limit block 219, the telescopic limit block 219 will be separated from the clamping plate assembly 218, and the inclined block on the top of the telescopic limit block 219 will pop up, so that the inclined block on the top of the telescopic limit block 219 will squeeze the starting button 2186 to move upward, so that the starting button 2186 can be powered on to start the output shaft of the driving motor 2184 to rotate, drive the fixedly connected spiral rod 2185 to rotate, and then the spiral rod 2185 rotates to drive the slider 3 21811 to move to the left, and further the slider 3 21811 drives the two sliding rods 1 2189 to move to the left, and then the sliding rod 1 2189 pulls the support rod 1 21810 to move to the left, and synchronously when the sliding rod 1 2189 moves to the left Under the action of the left pulling force, the support rod 1 21810 rotates around the axis of the intersection of the support rod 1 21810 and the support rod 2 21813. Therefore, when the bottom of the support rod 1 21810 moves to the left, the top of the support rod 1 21810 will pull the clamp 1 2181 to move downward, and at the same time drive the top of the support rod 2 21813 to move downward, and drive the top of the support rod 2 21813 to slide to the left along the slide groove 21812 opened in the clamp 1 2181. When the bottom of the support rod 1 21810 and the top of the support rod 2 21813 slide to the left and contact the leftmost wall of the slide groove 21812, the clamp 1 2181 can be merged with the clamp 2 2182, and the clamp 1 2181 can gradually clamp the head of the cloth.At this time, the top surface of the clamping plate 1 2181 is on the same horizontal plane as the top surface of the thick belt of the conveyor belt 13. Therefore, when the clamping plate 2182 in the clamping plate assembly 218 moves to the right to the position of the conveying guide roller 3 16, the conveying guide roller 3 16 will only contact the top surface of the thick belt of the conveyor belt 13, and will not interfere with the movement of the clamping plate assembly 218. The clamping plate 1 2181 and the clamping plate 2 2182 can be opened and closed to clamp fabrics of different sizes, thereby avoiding the phenomenon of people manually pulling fabrics into the dye box 11 for dyeing, reducing unnecessary safety accidents, improving the flexibility of fabric transfer, and enhancing the strength of the clamping plate assembly 218 to clamp textile fabrics of different thicknesses, thereby ensuring the normal use of textile fabric dyeing and transmission; When the clamping plate assembly 218 pulls the textile fabric down to contact the conveying guide roller 3 16 on the inner bottom wall of the left side of the dye box 11, the output shaft of the driving motor 21 can be powered on to rotate, driving the fixedly connected column 23 to rotate, so that the column 23 drives the fixed plate 24 to rotate, and the fixed plate 24 drives the column block 25 to rotate, so that the column block 25 rotates and drives the slider 26 to slide downward along the inner ring wall of the annular swing rod 27, and at the same time, the slider 26 pushes the top of the annular swing rod 27 to move to the left, and the bottom of the annular swing rod 27 rotates around the axis of the cylinder 212, so that the annular swing rod 2 7 can swing to the left, so that the annular swing rod 27 drives the slider 28 to move to the left, so that the rear side of the slider 28 can slide downward along the inside of the concave slide plate 29, and further the slider 28 pushes the concave slide plate 29 and the hollow slide plate 210 to move to the left, and then the hollow slide plate 210 drives the L-shaped hollow plate 213 to move to the left, and then the L-shaped hollow plate 213 drives the telescopic brush plate 1 214 and the telescopic brush plate 215 to move to the left. When the textile fabric is pulled into the dye box 11 filled with dye by the clamping plate assembly 218, the textile fabric is in a floating state, so that part of the surface of the textile fabric is in a state of being The wrinkle bending shape, and then under the action of the continuous rightward movement force of the clamping plate assembly 218, the fine fibers at the bottom of the telescopic brush plate 1 214 and the fine fibers at the bottom of the telescopic brush plate 215 will gradually come into contact with the outer surface of the clamping plate assembly 218 and the textile fabric not clamped by the clamping plate assembly 218. Through the movement of the fine fibers, the dye in the dye box 11 can be effectively penetrated into the textile fabric according to the guidance of the fine fibers. At the same time, the telescopic brush plate 1 214 and the telescopic brush plate 215 can brush the wrinkled parts of the textile fabric flat, effectively reducing the interference of the wrinkled parts of the fabric on the dyeing, thereby achieving the telescopic brush plate 1 214 The telescopic brush plate 215 can perform a double-sided smoothing operation on the textile fabric not clamped by the clamping plate assembly 218 immersed in the dye box 11, so as to avoid uneven dyeing and poor coloring of some wrinkled parts of the fabric when the textile fabric is immersed in the dye box 11, because the textile fabric is dyed by immersion and rinsing, and the fabric is in a floating state at this time, resulting in failure of dyeing of the textile fabric and waste of fabric resources. The aesthetics of the textile fabric after dyeing is improved, the effect of double-sided dyeing of the telescopic brush plate 1 214 and the telescopic brush plate 2 215 is enhanced, and the normal immersion dyeing of the textile fabric is ensured.

[0031] It should be noted that when the splint assembly 218 moves to the transmission position of the conveying guide roller 12 on the right side of the dye box 11, the conveyor belt 13 can drive the splint assembly 218 to move to the right along the trajectory of the conveying guide roller 12, and when the start button 2186 contacts the telescopic limit block 219 again, the start button 2186 can start the output shaft of the drive motor 2184 to rotate again, further driving the slide bar 1 2189 to push the bottom of the support rod 1 21810 to move to the right, and at the same time making the bottom of the support rod 1 21810 rotate around the axis of the slide bar 1 2189 as the center, so that the top of the support rod 1 21810 will be pushed by the squeezing force of the slide bar 1 2189, and start to push the splint 1 2181 to move upward, and at the same time drive the top of the support rod 21813 to move upward, and drive the top of the support rod 21813 to slide along the slide groove 21812 opened in the splint 1 2181, and wait for the support rod 1 2189 to move upward. When the bottom of the first 21810 and the top of the second support rod 21813 slide to contact the rightmost wall of the slide groove 21812, the first clamp plate 2181 and the second clamp plate 2182 can be separated. At this time, the start button 2186 also slides to be flush with the right side of the telescopic limit block 219, so that the start button 2186 is gradually separated from the telescopic limit block 219, and the start button 2186 can be extended downward, thereby disconnecting the rotation of the output shaft of the drive motor 2184, and at the same time pausing the rotation of the conveying guide roller 12 roller. Then, the head of the dyed cloth in the clamp plate assembly 218 is manually taken out and suspended above the cloth box 14, and then the power is turned on again to drive the conveying guide roller 12 roller to rotate, indirectly driving the clamp plate assembly 218 and the cloth to continue to move downward. When the clamp plate assembly 218 moves down to contact the conveying guide roller 2 15, the cloth can also be completely lowered into the cloth box 14 for storage, thereby completing the collection process of the dyed cloth; If the clamping plate assembly 218 moves down to contact the right side of the conveying guide roller 15, the conveying belt 13 can drive the clamping plate assembly 218 to move to the left under the action of the continuous moving force of the conveying belt 13. After the clamping plate assembly 218 enters the interior of the ultrasonic vibration unit 1, cleaning water can be injected into the liquid inlet valve 17 and drained into the inner cavity of the ultrasonic vibration unit 1 through the inner channel of the liquid inlet valve 17. After the cleaning water in the ultrasonic vibration unit 1 is filled to the point where it can submerge the top surface of the conveying belt 13, the clamping plate assembly 218 is also immersed in the cleaning water. The conveying guide roller 12 is suspended in water, and then the ultrasonic vibration unit 1 is powered on to start working, so that the residual dye impurities in the clamping plate assembly 218 are shaken out. After the clamping plate assembly 218 vibrates for a period of time, the conveying guide roller 12 is started to rotate again, and the conveyor belt 13 drives the vibrated clamping plate assembly 218 to move to the left. When the clamping plate assembly 218 moves to the conveying guide roller 12 position at the top left side of the dye box 11 again and contacts it, the secondary clamping and dyeing operation can be carried out.

[0032] In this scheme, by setting a bidirectional moving component 2, during the continuous movement of the L-shaped hollow plate 213, the telescopic brush plate 1 214 and the telescopic brush plate 215 are indirectly driven to move to the left, and gradually contact the outer surface of the clamping plate component 218 and the textile fabric not clamped by the clamping plate component 218. Through the movement of fine fibers, the dye in the dye box 11 can be guided by the fine fibers and effectively penetrate into the textile fabric, so that the telescopic brush plate 1 214 and the telescopic brush plate 215 can double-sidedly clean the textile fabric not clamped by the clamping plate component 218 immersed in the dye box 11. The smoothing operation can avoid the problem that when the textile fabric is dyed, the fiber fabric is in a semi-floating state when put into the dye box 11, and the textile fabric is dyed by rinsing and coloring. As a result, the wrinkled parts of the fabric cannot be completely penetrated and colored when they come into contact with the dye, resulting in uneven dyeing of the textile fabric after dyeing, and pits and spots on the dyed surface, resulting in dyeing failure of the textile fabric and waste of resources. The overall aesthetics of the textile fabric after dyeing is improved, the effect of unobstructed dyeing of the textile fabric is enhanced, and the normal use of immersion dyeing of the textile fabric is guaranteed.

[0033] like Figures 14 to 16 As shown, a corner component 3 is disposed inside the L-shaped hollow plate 213; The corner assembly 3 includes a cylinder 31, which is fixedly connected to the inner wall of the L-shaped hollow plate 213. The output end of the cylinder 31 is fixedly connected to a rack 32. The right side of the rack 32 is meshedly connected to a gear 1 33. The bottom of the gear 1 33 is meshedly connected to a gear 2 34. The inner ring walls of the gear 1 33 and the gear 2 34 are penetrated and fixedly connected with a hard tube 36. The rear ends of the two hard tubes 36 are respectively penetrated and fixedly connected to the front side of the telescopic brush plate 1 214 and the front side of the telescopic brush plate 2 215.

[0034] The left top of the telescopic brush plate 215 is fixedly connected with a liquid outlet pipe 35, the top of the telescopic brush plate 1 214 is hinged with an elastic extrusion plate 37, the right bottom surface of the telescopic brush plate 1 214 is penetrated and slidably connected with a signal button 38, and the elastic extrusion plate 37 is located directly to the right of the signal button 38.

[0035] The signal output line on the top of the signal button 38 is connected to the signal receiving head of the air source box on the top of the cylinder 31.

[0036] The tooth width of gear one 33 is thicker than that of gear two 34, and the front side of the rack 32 is flush with the front side of gear one 33, and the rear side of the rack 32 is flush with the front side of gear two 34. This ensures that the rack 32 will only be in meshing state with gear one 33 during the lifting process, and gear two 34 will only be in meshing state with the bottom of gear one 33, thereby achieving a state of non-interference with each other.

[0037] By setting the corner assembly 3, when in use, when the L-shaped hollow plate 213 moves to the left to contact the leftmost side of the inner groove of the baffle 221, the slider 1 26 has also slid to contact the bottom of the annular swing rod 27. At this time, under the action of the continuous rotation of the fixed plate 1 24, the fixed plate 1 24 drives the column block 25 to rotate, so that the rotation of the column block 25 drives the slider 1 26 to slide upward along the inner ring wall of the annular swing rod 27, and at the same time, the slider 1 26 pushes the top of the annular swing rod 27 to move right, and the bottom of the annular swing rod 27 rotates around the axis of the cylinder 212 as the center, so that the annular swing rod 27 can swing to the right, and then the annular swing rod 27 drives the slider 2 28 to move to the right, so that the rear side of the slider 2 28 can slide upward along the inside of the concave slide plate 29, and further the slider 2 28 pushes the concave slide plate 29 and the hollow slide plate 210 to move to the right, and then the hollow slide plate 210 The L-shaped hollow plate 213 is driven to move rightward, and then the L-shaped hollow plate 213 drives the telescopic brush plate 1 214 and the telescopic brush plate 2 215 to move rightward, and at the same time drives the cylinder 31 and the rack 32, the gear 1 33, the gear 2 34, the liquid outlet pipe 35, the hard pipe 36, the elastic extrusion plate 37 and the signal button 38 to move rightward. When the clamping plate assembly 218 moves rightward to contact the conveying guide roller 3 16 on the inner wall of the right end of the dye box 11, the right side of the telescopic brush plate 1 214 also moves to be flush with the left side of the clamping plate 1 2181. At this time, the right side of the elastic extrusion plate 37 will contact the left side of the clamping plate 1 2181, and under the action of the continuous rightward movement force of the telescopic brush plate 1 214, the elastic extrusion plate 37 can be squeezed by the clamping plate 1 2181 to swing to the left. When the left side of the elastic extrusion plate 37 swings to the left to contact the bottom of the signal button 38, the elastic extrusion plate 37 can gradually squeeze the signal button 38 to shrink upward, and send out a start signal; At this time, the signal button 38 can transmit the signal to the air source receiving part at the top of the cylinder 31 through the signal output line, and then the air source can be ventilated to drive the output end of the cylinder 31 to extend downward, driving the fixedly connected rack 32 to move downward. When the bottom of the rack 32 moves down to contact the tooth groove of the gear 1 33, under the action of the continuous downward force output by the cylinder 31, the rack 32 can push the gear 1 33 to perform meshing rotational movement, and the gear 1 33 drives the gear 2 34 to perform meshing rotational movement. As a result, the gear 1 33 drives the hard tube 36 and the telescopic brush plate 1 214 to rotate, and the gear 2 34 drives another hard tube 36 and the telescopic brush plate 2 215 to rotate, so that the left side of the telescopic brush plate 1 214 can be rotated to form a 90° angle with the left side of the clamp 1 2181, and the left side of the telescopic brush plate 215 can be rotated to form a 90° angle with the left side of the clamp 2 2182, and then the telescopic brush plates 1 214 and 215 continue to move rightward under the action of the force , so that the output end of the liquid outlet pipe 35 driven by the telescopic brush plate 1 214 and the telescopic brush plate 215 will gradually be inserted into the liquid inlet pipe 2187, and a certain amount of dye will be scooped into the liquid inlet pipe 2187 during the insertion process, so that the liquid inlet pipe 2187 can effectively drain the dye into the inner cavity of the clamp plate 1 2181 and the clamp plate 2 2182, and the dye after further drainage can be evenly spread on the two leakage screens 2188, so that the dye can pass through the leakage screen The guide of 2188 penetrates into the corners of the textile fabric clamped by the splint assembly 218, so that the liquid outlet pipe 35 can perform a corner plug dye operation on the corners of the textile fabric clamped in the splint assembly 218, thereby avoiding the problem of incomplete coloring of the textile fabric after dyeing due to the corners of the fabric not being dyed, resulting in a poor service life of the textile fabric, improving the overall aesthetics of the textile fabric, enhancing the strength of dyeing the fabric without dead ends, and ensuring the normal use of high-quality dyeing of the textile fabric.

[0038] It should be noted that when the right side of the telescopic brush plate 214 moves to the left until it is flush with the right side of the clamp plate 2181, the elastic extrusion plate 37 will contact the right side of the clamp plate 2181, and under the action of the rightward movement force of the clamp plate assembly 218, the clamp plate 2181 pushes the elastic extrusion plate 37 to swing to the right. At this time, the elastic extrusion plate 37 will not trigger the signal button 38, so that the telescopic brush plate 1 214 and the telescopic brush plate 2 215 can perform a two-way smoothing operation, and the clamp plate assembly 218 moves to the right until it is flush with the right side. When the inner wall of the right end of the dye box 11 contacts the conveying guide roller 3 16, the telescopic brush plate 1 214 and the telescopic brush plate 2 215 have also completed the left and right movements, thereby cooperating with the clamping plate assembly 218 to squeeze the elastic squeezing plate 37 to swing to the left, and the elastic squeezing plate 37 squeezes the signal button 38 to start the signal to start the cylinder 31 to indirectly drive the telescopic brush plate 1 214 and the telescopic brush plate 2 215 to perform a flipping movement, so that the liquid discharge pipe 35 can complete the docking operation with the liquid inlet pipe 2187, and complete the corner liquid delivery operation.

[0039] The present scheme sets a corner component 3, and under the action of the continuous rotation and movement force of the telescopic brush plate 1 214 and the telescopic brush plate 215, the liquid outlet pipe 35 is indirectly moved in the parallel direction of the liquid inlet pipe 2187, and the liquid outlet pipe 35 can introduce the dye into the liquid inlet pipe 2187, so that the liquid outlet pipe 35 can perform a corner liquid delivery operation on the liquid inlet pipe 2187, thereby avoiding the corners of the fabric being undyed, resulting in obvious color difference in the dyeing of the textile fabric, affecting the aesthetics of the dyed fabric, and causing the fabric to be pulled, deformed, and damaged when the fabric is pulled. The efficiency of fabric dyeing is improved, the service life of the textile fabric is enhanced, and the normal production of the textile fabric is ensured.

[0040] like Fig.17 and Fig.18 As shown, a permeation assembly 4 is provided on the top front side of the dye box 11; The infiltration component 4 includes a sodium acetate liquid tank 41, which is fixedly connected to the top front side of the dye box 11. A hose 42 passes through and is fixedly connected to the top of the sodium acetate liquid tank 41. The outer surface of the hose 42 passes through and is fixedly connected to the dye box 11. The output end of the hose 42 passes through and is fixedly connected to the top of the hollow slide 210.

[0041] By setting the permeation assembly 4, when working, the sodium acetate liquid in the sodium acetate liquid tank 41 can be guided by the hose 1 42 to flow into the hollow slide 210 under the action of the diversion pump built in the sodium acetate liquid tank 41, and the hollow slide 210 drains the sodium acetate liquid into the L-shaped hollow plate 213, and then the L-shaped hollow plate 213 drains the sodium acetate liquid into the hard tube 36, and then the hard tube 36 drains the sodium acetate liquid into the telescopic brush plate 1 214 and the telescopic brush plate 215, and then the telescopic brush plate 1 214 and the telescopic brush plate 215 are connected to the hard tube 36. The second brush plate 215 drains the sodium acetate solution to the liquid leakage port 217, so that the liquid leakage port 217 can spray the sodium acetate solution along both sides of the textile fabric, thereby preventing the textile fabric from still having some oil stains attached after cleaning, so that the dye cannot penetrate and dye with the textile fabric in this part, resulting in unclear dyeing of the textile fabric in this part, resulting in poor dyeing effect of the textile fabric, improving the efficiency of removing oil pollution from the textile fabric, enhancing the strength of the dye to soften and penetrate the fabric, and ensuring normal coloring of the textile fabric; It should be noted that after the telescopic brush plate 1 214 and the telescopic brush plate 215 turn, the liquid outlet pipe 35 after the turn can synchronously input sodium acetate solution into the liquid inlet pipe 2187, so that while the dye is dyeing the clamped corners of the cloth, the erosion of the corners of the cloth by the oil stains can be reduced, the strength of the dye penetrating the cloth to dye can be enhanced, and the normal use of the complete dyeing production of the textile cloth can be ensured.

[0042] like Fig.19 and Fig. 20 As shown, a diffusion component 5 is provided on the top front side of the dye box 11; The diffusion component 5 includes a calcium propionate agent box 51, which is fixedly connected to the top front side of the dye box 11 and is arranged on the right side of the sodium acetate liquid tank 41. A hose 2 52 is passed through and fixedly connected to the top of the calcium propionate agent box 51. The outer surface of the hose 2 52 passes through and is fixedly connected to the dye box 11. The output end of the hose 2 52 passes through and is fixedly connected to the top of the hollow slide 210. The hose 2 52 is arranged on the right side of the hose 1 42.

[0043] By setting the diffusion component 5, when working, under the action of the diversion pump built into the calcium propionate agent box 51, the calcium propionate agent in the calcium propionate agent box 51 can be guided by the hose 2 52 to flow into the hollow slide 210, and the calcium propionate agent after drainage can be merged with the sodium acetate solution, thereby enhancing the stability of the softening and penetration of the sodium acetate solution, avoiding the problem that after the textile fabric is dyed, the retractable brush plate 1 214 and the retractable brush plate 2 215 cannot brush the block dye evenly due to the interference of the hard block dye remaining on the surface of the fabric, resulting in the problem of block dyeing of this part of the fabric, thereby improving the efficiency of dyeing, strengthening the softening and penetration of the sodium acetate solution, and enhancing the effect of the retractable brush plate 1 214 and the retractable brush plate 2 215 on softening the dye without blocking, thereby ensuring the normal penetration and coloring of the textile fabric.

[0044] Method of use: When the present invention is used, the ultrasonic vibration unit 1 is first placed in the preset cloth soaking and dyeing process position, and then sodium acetate agent and calcium propionate agent are respectively injected into the sodium acetate liquid tank 41 and the calcium propionate agent tank 51. After the inner cavities of the sodium acetate liquid tank 41 and the calcium propionate agent tank 51 are filled, the liquid injection operation is stopped, and then, the transmission guide roller 12 is powered on to drive the conveyor belt 13 and the clamping plate assembly 218 to move to the right, and then the drive motor 21 output shaft in the bidirectional moving assembly 2 is powered on to rotate. The telescopic brush plate 1 214 and the telescopic brush plate 215 can indirectly realize the double-sided contact and smoothing operation of the cloth clamped by the clamping plate assembly 218, so that the corner assembly 3 can drive the liquid outlet pipe 35 to perform the corner liquid delivery operation on the liquid inlet pipe 2187, and further enable the penetration assembly 4 to drive the telescopic brush plate 1 214 and the telescopic brush plate 215 to spray sodium acetate on the dyeing cloth, so that the diffusion assembly 5 can drive the telescopic brush plate 1 214 and the telescopic brush plate 215 to The surface of the cloth is softened by spraying calcium propionate. When the clamping plate assembly 218 moves to be flush with the conveying guide roller 12 on the top right side of the dye box 11, the clamping state of the clamping plate assembly 218 can be released and the cloth can be taken out. When the clamping plate assembly 218 moves down to contact the conveying guide roller 15 and moves to the inner cavity of the ultrasonic vibration unit 1, cleaning water can be injected into the ultrasonic vibration unit 1 through the liquid inlet valve 17, and the ultrasonic vibration unit 1 is started to work so that the residual dyeing impurities in the clamping plate assembly 218 are shaken out. Then the ultrasonic vibration unit 1 is stopped again, and the conveying guide roller 12 is started to rotate again. At the same time, the conveyor belt 13 drives the cleaned clamping plate assembly 218 to move out of the ultrasonic vibration unit 1, and the secondary cycle dyeing operation can be carried out. After all the cloth is dyed, the ultrasonic vibration unit 1 is started to vibrate and clean the clamping plate assembly 218 for the last time, and the liquid outlet valve 18 can be opened to release the cleaning water. Then the device stops and the dyeing is completed.

[0045] The above is only a preferred specific implementation of the present invention; however, the protection scope of the present invention is not limited thereto. Any technician familiar with the technical field can make equivalent replacements or changes according to the technical solution and its improved conception within the technical scope disclosed by the present invention, which should be covered by the protection scope of the present invention.

Claims

1. An immersion dyeing device for fabric processing, comprising an ultrasonic vibration unit (1), the top of the ultrasonic vibration unit (1) being fixedly connected to a dyeing box (11), characterized in that: A bidirectional moving component (2) is arranged inside the dye box (11); The bidirectional moving assembly (2) comprises a hollow box (22), wherein the hollow box (22) is fixedly connected to the front side of the dye box (11), the inner wall of the hollow box (22) is fixedly connected to a driving motor (21), the output end of the driving motor (21) is fixedly connected to a column (23), the outer surface of the column (23) penetrates the dye box (11) and is rotatably connected, the rear end of the column (23) is fixedly connected to a fixing plate (24), the top rear side of the fixing plate (24) is fixedly connected to a column block (25), and the outer surface of the column block (25) is rotatably connected to the fixing plate (24). A slider (26) is provided, the outer surface of the slider (26) being slidably connected to an annular swing rod (27), the top of the annular swing rod (27) being rotatably connected to a slider (28), the rear side of the slider (28) being slidably connected to a concave slider (29), the top of the concave slider (29) being fixedly connected to a hollow slider (210), the front side of the hollow slider (210) being penetrated by and fixedly connected to an L-shaped hollow plate (213), the bottom of the L-shaped hollow plate (213) being penetrated by and rotatably connected to a telescopic brush plate (214) and a telescopic brush plate (215).

2. The immersion dyeing device for fabric processing according to claim 1, characterized in that: The top of the dye box (11) is fixedly connected to a support plate 1 (19), and the support plate 1 (19) is provided with four, and the four support plates 1 (19) are symmetrically distributed in pairs. A conveying guide roller 1 (12) is rotatably connected between the side walls of the two support plates 1 (19), and the conveying guide roller 1 (12) is provided with four, and the four conveying guide rollers 1 (12) are symmetrically distributed about the dye box (11). Conveying guide rollers 2 (15) are symmetrically arranged on both sides of the top of the ultrasonic vibration unit (1), and conveying guide rollers 3 (16) are symmetrically arranged on the inner bottom wall of the dye box (11). The outer surfaces of the conveying guide rollers 1 (12), the conveying guide rollers 2 (15) and the conveying guide rollers 3 (16) are jointly sleeved with a conveyor belt (13). A fabric box (14) is arranged on the right side of the sonic vibration unit (1); a liquid inlet valve (17) is passed through and fixedly connected to the top front side of the ultrasonic vibration unit (1); a liquid outlet valve (18) is passed through and fixedly connected to the bottom rear side of the ultrasonic vibration unit (1); a polygonal fixing plate (211) is fixedly connected to the front inner bottom wall of the dye box (11); the outer surface of the column (23) passes through and is rotatably connected to the polygonal fixing plate (211); the top rear side of the polygonal fixing plate (211) passes through and is slidably connected to the hollow slide plate (210); the bottom rear side of the polygonal fixing plate (211) is fixedly connected to a cylinder (212); the outer surface of the cylinder (212) passes through and is rotatably connected to the bottom of the annular swing rod (27).

3. The immersion dyeing device for fabric processing according to claim 1, characterized in that: The telescopic brush plate one (214) and the telescopic brush plate two (215) are symmetrically distributed, and a liquid leakage port (217) is provided between the brush fibers at the bottom of the telescopic brush plate one (214) and the bottom of the telescopic brush plate two (215).

4. The immersion dyeing device for fabric processing according to claim 2, characterized in that: A support plate 2 (220) is fixedly connected between the inner walls of the conveying guide roller 1 (12), two support plates 2 (220) are provided, and the two support plates 2 (220) are symmetrically distributed, and a telescopic limit block (219) is fixedly connected to the top of the support plate 2 (220), and a baffle plate (221) is fixedly connected between the inner walls of the dye box (11), and the front side of the baffle plate (221) penetrates and is slidably connected to the top of the L-shaped hollow plate (213).

5. The immersion dyeing device for fabric processing according to claim 2, characterized in that: The conveyor belts (13) are provided with two, the two conveyor belts (13) are symmetrically distributed, a clamping plate assembly (218) is arranged between the two sides of the two conveyor belts (13), the clamping plate assembly (218) comprises a second clamping plate (2182), the second clamping plate (2182) is fixedly connected between the two conveyor belts (13), the top of the second clamping plate (2182) is movably connected with a first clamping plate (2181), the two sides of the first clamping plate (2181) are slidably connected with the conveyor belt (13), the left sides of the first clamping plate (2181) and the second clamping plate (2182) are penetrated and connected with a liquid inlet pipe (2187), the bottom of the first clamping plate (2181) and the top of the second clamping plate (2182) are penetrated and fixedly connected with a liquid leakage mesh plate (2188), and the inner walls of both sides of the first clamping plate (2181) and the second clamping plate (2182) are provided with a slide groove (21812), The left side of the second splint (2182) is fixedly connected to the second hollow box (2183), the inner wall of the second hollow box (2183) is fixedly connected to the second driving motor (2184), the output end of the second driving motor (2184) is fixedly connected to the screw rod (2185), the bottom of the second driving motor (2184) is fixedly connected to the start button (2186), the outer surface of the start button (2186) passes through and is fixedly connected to the bottom of the second hollow box (2183), the left end outer surface of the screw rod (2185) passes through and is rotatably connected to the second splint (2182), the threaded surface of the screw rod (2185) is threadedly connected to the third slider (21811), the left side of the third slider (21811) is fixedly connected to the first slider (2189), two first sliders (2189) are provided, and the two first sliders (2189) are symmetrically distributed.

6. The immersion dyeing device for fabric processing according to claim 5, characterized in that: The front end of the slide rod 1 (2189) is slidably connected in the slide groove (21812), and the front end outer wall of the slide rod 1 (2189) is rotatably connected to the support rod 1 (21810), the outer surface of the support rod 1 (21810) passes through the top of the second splint (2182) and the bottom of the first splint (2181), and is rotatably connected to the front inner wall of the first splint (2181), the rear side of the support rod 1 (21810) is rotatably connected to the support rod 2 (21813), the bottom of the support rod 2 (21813) is rotatably connected to the front inner wall of the second splint (2182), the outer surface of the support rod 2 (21813) passes through the front top of the second splint (2182) and the front bottom of the first splint (2181), and the top front side of the support rod 2 (21813) is slidably connected in the slide groove (21812).

7. The immersion dyeing device for fabric processing according to claim 1, characterized in that: A corner assembly (3) is arranged inside the L-shaped hollow plate (213), and the corner assembly (3) comprises a cylinder (31), the cylinder (31) is fixedly connected to the inner wall of the L-shaped hollow plate (213), the output end of the cylinder (31) is fixedly connected to a rack (32), the right side of the rack (32) is meshingly connected to a gear 1 (33), the bottom of the gear 1 (33) is meshingly connected to a gear 2 (34), the inner ring walls of the gear 1 (33) and the gear 2 (34) are penetrated and fixedly connected with a hard tube (36), and the rear ends of the two hard tubes (36) are respectively penetrated and fixedly connected to the front side of the telescopic brush plate 1 (214) and the front side of the telescopic brush plate 2 (215).

8. The immersion dyeing device for fabric processing according to claim 7, characterized in that: The left top of the telescopic brush plate 2 (215) is fixedly connected to a liquid outlet pipe (35), the top of the telescopic brush plate 1 (214) is hinged with an elastic extrusion plate (37), and the right bottom surface of the telescopic brush plate 1 (214) is penetrated and slidably engaged with a signal button (38), and the elastic extrusion plate (37) is located directly to the right of the signal button (38).

9. The immersion dyeing device for fabric processing according to claim 1, characterized in that: A permeation assembly (4) is provided on the front side of the top of the dye box (11), and the permeation assembly (4) comprises a sodium acetate liquid tank (41). The sodium acetate liquid tank (41) is fixedly connected to the front side of the top of the dye box (11). A hose 1 (42) penetrates and is fixedly connected to the top of the sodium acetate liquid tank (41). The outer surface of the hose 1 (42) penetrates and is fixedly connected to the dye box (11), and the output end of the hose 1 (42) penetrates and is fixedly connected to the top of the hollow slide plate (210).

10. The immersion dyeing device for fabric processing according to claim 9, characterized in that: A diffusion component (5) is arranged at the top front side of the dye box (11), and the diffusion component (5) comprises a calcium propionate agent box (51). The calcium propionate agent box (51) is fixedly connected to the top front side of the dye box (11), and the calcium propionate agent box (51) is arranged to the right of the sodium acetate liquid tank (41). A second hose (52) is passed through and fixedly connected to the top of the calcium propionate agent box (51), and the outer surface of the second hose (52) passes through and is fixedly connected to the dye box (11). The output end of the second hose (52) passes through and is fixedly connected to the top of the hollow slide plate (210), and the second hose (52) is arranged to the right of the first hose (42).

Citation Information

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