Dye blending device for printing and dyeing high-grade fabric

By introducing a crushing mechanism and a stirring assembly into the dye mixing device for high-end fabric printing and dyeing, the problem of easy agglomeration of solid dye raw materials is solved, and the binding efficiency of raw materials and the uniformity and consistency of dyes are improved.

CN119971818AInactive Publication Date: 2025-05-13XIAMEN YINGJIA TEXTILE TECH CO LTD
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Patent Information

Application Number
CN202510255115.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-05
Publication Date
2025-05-13
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

During the printing and dyeing process of high-end fabrics, solid dye raw materials are prone to agglomeration, resulting in low mixing efficiency, affecting the uniformity and consistency of the dye, and reducing the dye quality.

Method used

A dye mixing device for printing and dyeing of high-end fabrics is designed, including a crushing mechanism and a stirring assembly. The crushing mechanism can effectively crush the agglomerated solid raw materials through the design of the worm gear and the crushing roller; the stirring component ensures that the raw materials are fully integrated through the design of the stirring slurry and scraper.

Benefits of technology

Through the crushing action of the crushing mechanism and the stirring action of the stirring assembly, the bonding efficiency and quality of the raw materials can be effectively improved, and agglomeration can be avoided affecting the uniformity and consistency of the dye.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention belongs to the technical field of fabric printing and dyeing, and discloses a dye blending device for printing and dyeing high-grade fabric. The motor I is arranged at the top end of the batching tank; the rotating rod is mounted at the output end of the motor I; the crushing mechanism is arranged at the top end of the inner cavity of the batching tank; the feeding assembly is arranged at the top end of the batching tank, and liquid printing and dyeing raw materials can be poured into the feeding assembly; a first driving motor drives a rotating rod to rotate, the rotating rod can drive a transmission assembly and a worm to rotate, the worm can drive a worm wheel to rotate, the worm wheel can drive a smashing roller to rotate, and due to the fact that blades on the surface of the smashing roller and the smashing roller are designed in a staggered mode, the smashing roller can smash caked solid raw materials; and finally, the driving assembly drives the crushing roller to rotate through the rotating rod, so that the caked solid raw materials can be crushed, and the raw material combination efficiency and quality can be improved.
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Description

Technical Field

[0001] The invention belongs to the technical field of fabric printing and dyeing, and in particular relates to a dye mixing device for printing and dyeing high-grade fabrics. Background Art

[0002] The dye mixing device for high-grade fabric printing and dyeing is a device specially used for mixing dyes in the process of high-grade fabric printing and dyeing; At present, the traditional dye mixing device for high-end fabric printing and dyeing is to put solid and liquid raw materials into the feed tank respectively, and then the raw materials will enter the mixing tank, and then be stirred by the stirring mechanism to combine the raw materials together; However, in actual use, solid dye raw materials, such as certain pigment powders or dye particles, often have a certain degree of stickiness due to their own physical properties; during long-term static storage, sticky solid raw materials tend to adhere to each other and gradually accumulate to form lumps of varying sizes. These lumps not only increase the difficulty of raw material processing, but more importantly, they become a key factor affecting the uniformity and consistency of dyes in subsequent stirring and mixing steps. When the stirring mechanism starts working, the agglomerated solid dyes are not easy to disperse quickly in the liquid, resulting in low mixing efficiency. In addition, even after a long period of stirring, some of the lumps may still remain in an incompletely dissolved or dispersed state, which will reduce the efficiency of the combination and the dyeing quality. Summary of the invention

[0003] In order to solve the problem in the above background technology that dye raw materials are easy to agglomerate, thereby reducing the efficiency of combination and dyeing quality, the present invention provides a dye mixing device for printing and dyeing high-grade fabrics.

[0004] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: A dye mixing device for printing and dyeing high-grade fabrics, comprising: a mixing tank; Motor 1, which is arranged at the top of the batching tank; A rotating rod, which is mounted on the output end of the motor 1; A crushing mechanism, which is arranged at the top of the inner cavity of the batching tank; A feed assembly is disposed at the top of the batching tank and is capable of pouring liquid printing and dyeing raw materials into the interior of the feed assembly; A stirring assembly is arranged on the surface of the motor 1, and the stirring assembly can stir the raw materials and clean the inner wall of the batching tank; The crushing mechanism includes a crushing tank, which is fixedly connected to the top of the inner cavity of the batching tank, a worm gear is arranged on the side of the crushing tank close to the surface of the rotating rod, and the worm gear can rotate on one side of the crushing tank, a crushing roller located inside the crushing tank is fixedly installed on one side of the worm gear, a cutting plate is fixedly installed inside the crushing tank, a discharge hole is opened at the bottom end of the surface of the crushing tank, and a feed trough 1 is fixedly installed on the top of the batching tank, and the feed trough 1 is connected to the crushing tank; The driving assembly is arranged on the surface of the rotating rod and can drive the worm gear to rotate.

[0005] Preferably, it also includes: a quantity control mechanism, which is arranged at the top end of the worm, the quantity control mechanism includes a cam, the cam is fixedly connected to the top end of the worm, the feed trough is internally slidably connected with a sliding plate, one side of the sliding plate is fixedly installed with a connecting plate located on one side of the cam surface, and the connecting plate and the sliding plate are elastically connected by a spring.

[0006] Preferably, the feed assembly includes a second feed trough, the second feed trough is fixedly connected to the top of the mixing tank, a filter screen is inserted into the interior of the second feed trough, a plug plate is inserted into the interior of one side of the second feed trough, and one side of the plug plate contacts one side of the filter screen.

[0007] Preferably, the stirring assembly includes a stirring paddle, which is fixedly connected to the surface of a rotating rod. There are multiple stirring paddles, and a scraper is fixedly installed on the surface of the rotating rod, and one side of the scraper is in contact with the inner wall of the mixing tank.

[0008] Preferably, the driving assembly includes a transmission assembly, the transmission assembly is fixedly connected to the surface of the rotating rod, and a worm meshing with the worm wheel is fixedly installed inside the transmission assembly.

[0009] Preferably, it also includes: a sealing mechanism, which is arranged at the bottom end of the inner cavity of the batching tank, the sealing mechanism includes a fixed shell, the fixed shell is fixedly connected to the bottom end of the inner cavity of the batching tank, a sealing plate is slidably connected inside the fixed shell, the fixed shell and the sealing plate are elastically connected by spring 2, a belt is fixedly installed on one side of the sealing plate, a mounting shell is fixedly installed on one side of the outer surface of the batching tank, a motor 2 is fixedly installed inside the mounting shell, a push rod is fixedly installed on the output end of the motor 2, a slider is arranged inside the mounting shell, and the slider can slide inside the mounting shell, one end of the belt extends to the inside of the mounting shell and is connected to one side of the slider, and an insertion rod located inside the push rod is fixedly installed inside the slider.

[0010] Preferably, a guide block located at the top of the sliding plate is fixedly installed inside the first feed trough, and one side of the guide block is designed as a slope.

[0011] Preferably, a limiting rod located inside the slider is fixedly installed inside the mounting shell, and the slider can slide on the surface of the limiting rod. The number of the limiting rods is two and they are designed to be laterally symmetrical with respect to the mounting shell.

[0012] Preferably, two guide wheels are fixedly installed inside the fixed shell, the belt is wound around the surface of the guide wheels, and the guide wheels are of staggered design.

[0013] Preferably, a limiting ring located outside the crushing jar is fixedly mounted on one side of the crushing roller, and one side of the limiting ring is in contact with the surface of the crushing jar.

[0014] Compared with the prior art, the present invention has the following beneficial effects: The present invention drives a motor to rotate a rotating rod, which causes a transmission assembly and a worm to rotate, and the worm drives a worm wheel to rotate, and the worm wheel drives a crushing roller to rotate. Since the blades on the surface of the crushing roller are staggered with the crushing roller, the crushing roller crushes the agglomerated solid raw materials, and finally the driving assembly drives the crushing roller to rotate through the rotating rod, thereby crushing the agglomerated solid raw materials, thereby improving the efficiency and quality of raw material combination. The present invention can rotate the cam in linkage with the worm, and the cam can contact one side of the connecting plate and push the connecting plate to move. In the process of the connecting plate moving, the spring 1 is squeezed, and the connecting plate can move back and forth through the resilience of the spring 1, and the connecting plate can drive the sliding plate to slide back and forth inside the feed trough 1. In the process of the sliding plate sliding, the blocking of the feed trough 1 is cancelled, and the raw materials entering the feed trough 1 will enter the inside of the crushing tank in batches, and finally the sliding plate can be reciprocated by the worm linkage cam, so that the raw materials can enter the inside of the crushing tank in batches, so as to avoid the raw materials from entering the inside of the crushing tank at one time, reduce the load of the crushing roller, and improve the crushing effect of the crushing mechanism; The present invention drives the push rod to rotate in the opposite direction by driving motor 2, and the push rod will push the insertion rod and the sliding block to reset. During the resetting, the compressed spring 2 will push the blocking plate to slide inside the fixed shell, and then the blocking plate can continue to block the discharge pipe. Finally, the push rod is driven by motor 2 to rotate in the opposite direction, so that the blocking plate can seal the discharge pipe, thereby preventing uncombined raw materials from entering the discharge pipe during the mixing process, thereby reducing the cost of mixing. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 It is a schematic diagram of the structure of the present invention; Figure 2 It is a schematic diagram of a cross-sectional mixing tank of the present invention; Figure 3 A schematic diagram of a cross-sectional view of a feed trough according to the present invention; Figure 4 This is a schematic diagram of a sectional view of a crushing tank according to the present invention; Figure 5 This is a schematic diagram showing the limiting ring of the present invention; Figure 6 It is a schematic diagram of a cross-sectional fixed shell of the present invention; Figure 7 This is a schematic diagram showing the interior of the installation shell of the present invention; Figure 8 It is a schematic diagram of a cross-sectional feed assembly of the present invention.

[0016] In the figure: 1, batching tank; 2, motor 1; 3, rotating rod; 4, crushing mechanism; 401, crushing tank; 402, worm gear; 403, crushing roller; 404, cutting plate; 405, discharge hole; 406, feed trough 1; 5, driving assembly; 501, transmission assembly; 502, worm; 6, quantity control mechanism; 601, cam; 602, spring 1; 603, connecting plate; 604, sliding plate; 7, blocking mechanism; 701 , fixed shell; 702, spring two; 703, blocking plate; 704, belt; 705, mounting shell; 706, motor two; 707, push rod; 708, slider; 709, plug rod; 8, stirring assembly; 801, stirring paddle; 802, scraper; 9, feeding assembly; 901, feeding trough two; 902, filter screen; 903, plug plate; 10, guide block; 11, limit rod; 12, guide wheel; 13, limit ring. DETAILED DESCRIPTION

[0017] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0018] like Figures 1 to 8 As shown, the present invention provides a dye mixing device for printing and dyeing high-grade fabrics, comprising: a mixing tank 1; A motor 2 is arranged at the top of the batching tank 1; A rotating rod 3 is mounted on the output end of the motor 2; A crushing mechanism 4 is arranged at the top of the inner cavity of the batching tank 1; A feed assembly 9 is disposed at the top of the batching tank 1 and is capable of pouring liquid printing and dyeing raw materials into the feed assembly 9; A stirring assembly 8, which is arranged on the surface of the motor 1 2, and the stirring assembly 8 can stir the raw materials and clean the inner wall of the batching tank 1; Among them, the crushing mechanism 4 includes a crushing tank 401, which is fixedly connected to the top of the inner cavity of the batching tank 1, and a worm gear 402 is provided on the side of the crushing tank 401 close to the surface of the rotating rod 3, and the worm gear 402 can rotate on one side of the crushing tank 401, and a crushing roller 403 located inside the crushing tank 401 is fixedly installed on one side of the worm gear 402, and a cutting plate 404 is fixedly installed inside the crushing tank 401, and a discharge hole 405 is opened at the bottom end of the surface of the crushing tank 401, and a feed trough 406 is fixedly installed on the top of the batching tank 1, and the feed trough 406 is connected to the crushing tank 401; The driving assembly 5 is disposed on the surface of the rotating rod 3 and can drive the worm gear 402 to rotate.

[0019] The above scheme is adopted: the operator pours the solid printing and dyeing raw materials into the feed trough 406. Since the feed trough 406 is connected to the crushing tank 401, the raw materials entering the feed trough 406 will flow into the crushing tank 401. When the raw materials enter the crushing tank 401, the motor 2 can be driven to rotate the rotating rod 3. The rotating rod 3 can make the driving component 5 drive the worm gear 402 to rotate. The worm gear 402 will drive the crushing roller 403 to rotate inside the crushing tank 401. Since the blades on the surface of the crushing roller 403 are staggered with the crushing roller 403, during the rotation of the crushing roller 403, , the agglomerated solid raw materials will be crushed, and then the crushed raw materials will pass through the discharge hole 405 and fall into the interior of the batching tank 1. At this time, the liquid raw materials can also be poured into the interior of the feeding component 9, and then the feeding component 9 will filter the liquid raw materials, and the filtered raw materials will also flow into the interior of the batching tank 1. Then the rotating rod 3 will drive the stirring component 8 to rotate, and the stirring component 8 can stir its raw materials to make them fully combined. Finally, the driving component 5 drives the crushing roller 403 to rotate through the rotating rod 3, so that the solid raw materials can be crushed, thereby improving the efficiency and quality of the raw material combination.

[0020] like Figure 3 and Figure 4 As shown, it also includes: a quantity control mechanism 6, which is arranged at the top of the worm 502, and the quantity control mechanism 6 includes a cam 601, the cam 601 is fixedly connected to the top of the worm 502, and the inside of the feed trough 406 is slidably connected to a sliding plate 604, and one side of the sliding plate 604 is fixedly installed with a connecting plate 603 located on one side of the surface of the cam 601, and the connecting plate 603 and the sliding plate 604 are elastically connected by a spring 602.

[0021] The above scheme is adopted: through the design of the control mechanism 6, during the rotation of the worm 502, the cam 601 will be linked to rotate. Since the connecting plate 603 is arranged on one side of the cam 601, during the rotation of the cam 601, it will contact one side of the connecting plate 603 and push the connecting plate 603 to move. During the movement of the connecting plate 603, the spring 602 will be squeezed. Through the resilience of the spring 602, the connecting plate 603 can move back and forth, and the connecting plate 603 will drive the sliding plate 604 to slide back and forth inside the feed trough 406. During the sliding process of the sliding plate 604, the blocking of the feed trough 406 will be cancelled, and the raw materials entering the feed trough 406 will enter the inside of the crushing tank 401 in batches. Finally, the worm 502 is linked to the cam 601 to make the sliding plate 604 reciprocate, so that the raw materials can enter the inside of the crushing tank 401 in batches, avoiding the raw materials from entering the inside of the crushing tank 401 at one time, reducing the load of the crushing roller 403, and improving the crushing effect of the crushing mechanism 4.

[0022] like Figure 2 and Figure 8 As shown, the feed assembly 9 includes a second feed trough 901, which is fixedly connected to the top of the mixing tank 1, a filter screen 902 is inserted into the interior of the second feed trough 901, and an insert plate 903 is inserted into the interior of one side of the feed trough 901, and one side of the insert plate 903 is in contact with one side of the filter screen 902.

[0023] The above scheme is adopted: through the design of the feeding component 9, after the liquid raw material is poured into the inside of the second feeding trough 901, the filter screen 902 can filter out impurities inside the raw material, thereby improving the processing quality. When the filter screen 902 needs to be cleaned, the plug plate 903 can be pulled out from the inside of one side of the second feeding trough 901, and then the limit on the plug plate 903 will be cancelled, and the filter screen 902 can be taken out for cleaning.

[0024] like Figure 2 As shown, the stirring assembly 8 includes a stirring paddle 801, which is fixedly connected to the surface of the rotating rod 3. There are multiple stirring paddles 801. A scraper 802 is fixedly installed on the surface of the rotating rod 3, and one side of the scraper 802 is in contact with the inner wall of the mixing tank 1.

[0025] The above scheme is adopted: through the design of the stirring component 8, when the rotating rod 3 rotates, the stirring paddle 801 and the scraper 802 will rotate accordingly, and then the stirring paddle 801 can stir the raw materials to speed up the efficiency of raw material combination, and one side of the scraper 802 is in contact with the inner wall of the batching tank 1, and then when it rotates, it can clean the inner wall of the batching tank 1 to avoid raw materials remaining on the inner wall of the batching tank 1.

[0026] like Figure 2As shown, the driving assembly 5 includes a transmission assembly 501 , which is fixedly connected to the surface of the rotating rod 3 , and a worm 502 meshing with the worm wheel 402 is fixedly installed inside the transmission assembly 501 .

[0027] The above scheme is adopted: through the design of the driving component 5, during the rotation of the rotating rod 3, the rotating rod 3 will drive the transmission component 501 to rotate, and the transmission component 501 will drive the worm 502 to rotate. Since the worm 502 is engaged with the worm wheel 402, the rotating worm 502 will drive the worm wheel 402 and the crushing roller 403 to rotate, thereby crushing the solid raw material.

[0028] like Figure 6 and Figure 7 As shown, it also includes: a blocking mechanism 7, which is arranged at the bottom end of the inner cavity of the batching tank 1, and the blocking mechanism 7 includes a fixed shell 701, the fixed shell 701 is fixedly connected to the bottom end of the inner cavity of the batching tank 1, and a blocking plate 703 is slidably connected inside the fixed shell 701, and the fixed shell 701 and the blocking plate 703 are elastically connected by a spring 2 702, and a belt 704 is fixedly installed on one side of the blocking plate 703, and a mounting shell 705 is fixedly installed on one side of the outer surface of the batching tank 1, and a motor 2 706 is fixedly installed inside the mounting shell 705, and a push rod 707 is fixedly installed on the output end of the motor 2 706, and a slider 708 is arranged inside the mounting shell 705, and the slider 708 can slide inside the mounting shell 705, one end of the belt 704 extends to the inside of the mounting shell 705, and is connected to one side of the slider 708, and an insertion rod 709 located inside the push rod 707 is fixedly installed inside the slider 708.

[0029] The above scheme is adopted: through the design of the blocking mechanism 7, after all the raw materials are combined, the motor 2 706 can be driven to rotate the push rod 707, and when the push rod 707 rotates, the plug rod 709 will slide inside the push rod 707, and then the rotating push rod 707 will push the plug rod 709 and the slider 708 to move, and the slider 708 will pull the belt 704, and the belt 704 will pull the blocking plate 703 to slide inside the fixed shell 701, and when the blocking plate 703 slides, it will squeeze the spring 2 702, and then the blocking plate 703 will cancel the blockage of the discharge pipe, and then the valve of the discharge pipe can be opened, and then it can The dye can be discharged from the interior of the pulverizing mechanism 4. When it is necessary to continue the preparation, the motor 2 706 can be driven again to make the push rod 707 rotate in the opposite direction. The push rod 707 will push the insertion rod 709 and the slider 708 to reset. At the same time, the compressed spring 2 702 will push the blocking plate 703 to slide inside the fixed shell 701, and then the blocking plate 703 can continue to block the discharge pipe. Finally, the motor 2 706 is driven to make the push rod 707 rotate in the opposite direction, so that the blocking plate 703 can close the discharge pipe to prevent uncombined raw materials from entering the discharge pipe during the mixing process, thereby reducing the cost of preparation.

[0030] like Figure 3 , Figure 4 , Figure 6 and Figure 7 As shown, a guide block 10 located at the top of the sliding plate 604 is fixedly installed inside the feed trough 406, and one side of the guide block 10 is designed as a slope, and a limit rod 11 located inside the slider 708 is fixedly installed inside the mounting shell 705, and the slider 708 can slide on the surface of the limit rod 11. There are two limit rods 11, and they are designed to be laterally symmetrical with respect to the mounting shell 705.

[0031] The above scheme is adopted: through the design of the sliding plate 604, when the solid raw material is poured into the feed trough 406, it will fall on the top of the guide block 10. Since one side of the guide block 10 is designed as a slope, the guide block 10 will guide the raw material to the top of the sliding plate 604, and the top of the sliding plate 604 contacts the bottom of the guide block 10, and when the sliding plate 604 moves, the guide block 10 can clean the raw material on the top of the sliding plate 604 to avoid the accumulation of raw materials on the top of the sliding plate 604. Through the design of the limiting rod 11, when the slider 708 moves, it will slide on the surface of the limiting rod 11, and the limiting rod 11 can limit the slider 708, and there are two limiting rods 11, and they are symmetrically designed, which can improve its limiting effect.

[0032] like Figure 5 and Figure 7As shown, two guide wheels 12 are fixedly installed inside the fixed shell 701, the belt 704 is wrapped around the surface of the guide wheel 12, and the guide wheel 12 is of staggered design, and a limiting ring 13 located outside the crushing tank 401 is fixedly installed on one side of the crushing roller 403, and one side of the limiting ring 13 is in contact with the surface of the crushing tank 401.

[0033] The above scheme is adopted: through the design of the guide wheel 12, since the guide wheel 12 is a staggered design, when the belt 704 moves, the friction between the guide wheel 12 and the belt 704 will drive the guide wheel 12 to rotate, and the rotating guide wheel 12 can make the belt 704 move more smoothly, and the guide wheel 12 can limit the belt 704. Through the design of the limiting ring 13, since one side of the limiting ring 13 is in contact with the surface of the crushing tank 401, the limiting ring 13 cooperates with the crushing roller 403, so that the crushing roller 403 can be limited to avoid the position of the crushing roller 403 from shifting when the crushing roller 403 rotates.

[0034] The working principle and use process of the present invention: The solid printing and dyeing raw materials and the liquid printing and dyeing raw materials are poured into the feed trough 1 406 and the feed trough 2 901 respectively, and the guide block 10 guides the fixed raw materials to the top of the sliding plate 604, and the filter screen 902 filters the liquid raw materials. The filtered liquid raw materials will flow into the inside of the batching tank 1, and then the motor 1 2 can be driven to rotate the rotating rod 3, and the rotating rod 3 will drive the transmission component 501 and the worm 502 to rotate, and the worm 502 will link the cam 601 to rotate, and the cam 601 will rotate with the connecting plate The connecting plate 603 contacts one side of the feed trough 406 and pushes the connecting plate 603 to move. During the movement of the connecting plate 603, the spring 1 602 is squeezed. The connecting plate 603 can move back and forth through the resilience of the spring 1 602. The connecting plate 603 drives the sliding plate 604 to slide back and forth inside the feed trough 406. During the sliding of the sliding plate 604, the blocking of the feed trough 406 is cancelled, and the raw materials entering the feed trough 406 enter the crushing tank 401 in batches. At the same time, the worm 502 drives the worm wheel 402 and the crushing roller 403 to rotate. Since the blades on the surface of the crushing roller 403 are staggered with the crushing roller 403, the crushing roller 403 will crush the agglomerated solid raw materials, and then the crushed raw materials will pass through the discharge hole 405 and fall into the inside of the batching tank 1. After the raw materials are added, the rotating rod 3 drives the stirring paddle 801 and the scraper 802 to rotate, and then the stirring paddle 801 and the scraper 802 can stir and clean the raw materials. After all the raw materials are combined, the motor 2 706 can be driven to rotate the push rod 707, and the push rod 707 will push the insertion rod 709 and the slider 708 to move, and the slider 708 will pull the belt 704 and the sealing plate 703 to slide inside the fixed shell 701. When the sealing plate 703 slides, it will squeeze the spring 2 702, and then the sealing plate 703 will cancel the blockage of the discharge pipe, and then the valve of the discharge pipe can be opened, and then the dye can be discharged from the inside of the pulverizing mechanism 4. When it is necessary to continue the preparation, the motor 2 706 can be driven again to make the push rod 707 rotate in the opposite direction, and the compressed spring 2 702 will push the sealing plate 703 to slide inside the fixed shell 701, and then the sealing plate 703 can continue to block the discharge pipe to prevent uncombined raw materials from entering the inside of the discharge pipe, thereby reducing the cost of preparation and finally completing the operation process.

[0035] It should be noted that, in this article, relational terms such as first and second, etc. are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device.

Claims

1. A dye mixing device for high-grade fabric printing and dyeing, characterized in that: It comprises: a batching tank (1); Motor 1 (2), which is arranged at the top of the batching tank (1); A rotating rod (3) mounted on the output end of the motor 1 (2); A crushing mechanism (4) is arranged at the top of the inner cavity of the batching tank (1); A feed component (9) is arranged at the top of the material mixing tank (1) and is capable of pouring liquid printing and dyeing raw materials into the interior of the feed component (9); A stirring component (8) is arranged on the surface of the motor 1 (2), and the stirring component (8) can stir the raw materials and clean the inner wall of the batching tank (1); The pulverizing mechanism (4) comprises a pulverizing tank (401), the pulverizing tank (401) being fixedly connected to the top end of the inner cavity of the batching tank (1), a worm gear (402) being arranged on the side of the pulverizing tank (401) close to the surface of the rotating rod (3), and the worm gear (402) being capable of rotating on the side of the pulverizing tank (401), a pulverizing roller (403) located inside the pulverizing tank (401) being fixedly mounted on one side of the worm gear (402), a cutting plate (404) being fixedly mounted inside the pulverizing tank (401), a discharge hole (405) being provided at the bottom end of the surface of the pulverizing tank (401), and a feed trough (406) being fixedly mounted on the top end of the batching tank (1), and the feed trough (406) being connected to the pulverizing tank (401); A driving assembly (5) is arranged on the surface of the rotating rod (3) and is capable of driving the worm gear (402) to rotate.

2. The dye mixing device for printing and dyeing high-grade fabrics according to claim 1 is characterized in that: The invention also includes: a quantity control mechanism (6) which is arranged at the top end of the worm (502), the quantity control mechanism (6) including a cam (601), the cam (601) being fixedly connected to the top end of the worm (502), a sliding plate (604) being slidably connected inside the feed trough (406), a connecting plate (603) located on one side of the surface of the cam (601) being fixedly installed on one side of the sliding plate (604), and the connecting plate (603) and the sliding plate (604) being elastically connected via a spring (602).

3. The dye mixing device for printing and dyeing high-grade fabrics according to claim 1 is characterized in that: The feed assembly (9) comprises a second feed trough (901), the second feed trough (901) being fixedly connected to the top of the batching tank (1), a filter screen (902) being inserted into the interior of the second feed trough (901), a plug plate (903) being inserted into the interior of one side of the second feed trough (901), and one side of the plug plate (903) being in contact with one side of the filter screen (902).

4. The dye mixing device for printing and dyeing high-grade fabrics according to claim 1 is characterized in that: The stirring assembly (8) comprises a stirring paddle (801), the stirring paddle (801) being fixedly connected to the surface of the rotating rod (3), the stirring paddle (801) being provided in a plurality, a scraper (802) being fixedly mounted on the surface of the rotating rod (3), and one side of the scraper (802) being in contact with the inner wall of the batching tank (1).

5. The dye mixing device for printing and dyeing high-grade fabrics according to claim 1 is characterized in that: The driving assembly (5) comprises a transmission assembly (501), wherein the transmission assembly (501) is fixedly connected to the surface of the rotating rod (3), and a worm (502) meshing with the worm wheel (402) is fixedly installed inside the transmission assembly (501).

6. The dye mixing device for printing and dyeing high-grade fabrics according to claim 1 is characterized in that: The invention also comprises: a blocking mechanism (7) which is arranged at the bottom end of the inner cavity of the batching tank (1), the blocking mechanism (7) comprising a fixed shell (701), the fixed shell (701) being fixedly connected to the bottom end of the inner cavity of the batching tank (1), a blocking plate (703) being slidably connected inside the fixed shell (701), the fixed shell (701) and the blocking plate (703) being elastically connected via a second spring (702), a belt (704) being fixedly mounted on one side of the blocking plate (703), and a mounting plate (706) being fixedly mounted on one side of the outer surface of the batching tank (1). The mounting shell (705) is provided with a second motor (706) fixedly mounted inside the mounting shell (705), a push rod (707) fixedly mounted on the output end of the second motor (706), a slider (708) is arranged inside the mounting shell (705), and the slider (708) can slide inside the mounting shell (705), one end of the belt (704) extends into the mounting shell (705) and is connected to one side of the slider (708), and an insertion rod (709) located inside the push rod (707) is fixedly mounted inside the slider (708).

7. The dye mixing device for printing and dyeing high-grade fabrics according to claim 1 is characterized in that: A guide block (10) located at the top of the sliding plate (604) is fixedly installed inside the first feed trough (406), and one side of the guide block (10) is designed as an inclined surface.

8. The dye mixing device for printing and dyeing high-grade fabrics according to claim 6 is characterized in that: A limiting rod (11) located inside the slider (708) is fixedly installed inside the mounting shell (705), and the slider (708) can slide on the surface of the limiting rod (11). There are two limiting rods (11) and they are designed to be laterally symmetrical with respect to the mounting shell (705).

9. The dye mixing device for printing and dyeing high-grade fabrics according to claim 6 is characterized in that: Two guide wheels (12) are fixedly mounted inside the fixed shell (701), the belt (704) is wound around the surface of the guide wheels (12), and the guide wheels (12) are of staggered design.

10. The dye mixing device for printing and dyeing high-grade fabrics according to claim 1 is characterized in that: A limiting ring (13) located outside the pulverizing pot (401) is fixedly mounted on one side of the pulverizing roller (403), and one side of the limiting ring (13) is in contact with the surface of the pulverizing pot (401).