Dyeing treatment equipment with ultrasonic-assisted cleaning function
Through ultrasonic-assisted cleaning dyeing and treatment equipment, the ultrasonic cleaning tank and the immersion tank are combined with hydraulic cylinders and stirring components, the problems of dust pollution and water absorption in dyed fabric transportation are solved, efficient and low-pollution dyeing treatment are achieved, and dyeing quality and production efficiency are improved.
Patent Information
- Application Number
- CN202510582556.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-07
- Publication Date
- 2025-07-29
AI Technical Summary
The existing dyeing treatment equipment is prone to dust adhesion of dyed fabrics during transportation, affecting the dyeing quality, and the cleaned dyed fabrics have strong water absorption, resulting in dye dilution, reducing dyeing effect and increasing production costs.
The dyeing and processing equipment with ultrasonic assisted cleaning is adopted, including an ultrasonic cleaning tank and an ultrasonic immersion tank. It combines hydraulic cylinder, mobile components, rotating mechanism and stirring components. Through ultrasonic cleaning and dehydration design, it reduces dust pollution and improves dyeing efficiency and quality.
Effectively reduce dust pollution, improve dyeing efficiency, reduce energy consumption, ensure dyeing uniformity and color fastness, and reduce production costs.
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Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of dyeing treatment, and specifically to a dyeing treatment device with ultrasonic-assisted cleaning. Background Art
[0002] In industries such as textile and printing and dyeing, dyeing treatment is a key link. When traditional dyeing equipment processes fabrics, it often faces problems such as uneven dye penetration, poor color fastness, and stain residues. On the one hand, if dye molecules cannot be evenly dispersed and penetrated, it will cause uneven fabric color and color spots, greatly affecting product quality. On the other hand, impurities, oil stains, etc. carried by fabrics in the pretreatment process are difficult to completely remove simply by conventional water washing, thus interfering with the dyeing effect. With increasingly stringent environmental requirements, it is urgent to reduce the use of chemical auxiliaries and reduce wastewater pollution. The emergence of ultrasonic technology brings a turning point to these problems. It can generate high-frequency vibrations, causing the liquid to form tiny cavitation bubbles. The impact force generated by the instantaneous rupture can effectively peel off dirt and promote the uniform dispersion of dyes, and does not require a large amount of chemical auxiliaries. Incorporating ultrasonic-assisted cleaning into the dyeing treatment device is expected to revolutionize the traditional dyeing process and achieve efficient and low-pollution dyeing processing. For example, a device for dyeing cotton-containing yarns disclosed in the publication number CN101994219B includes an ultrasonic padding device. The ultrasonic padding device includes a padding trough for containing a cationic modification solution, a yarn guiding roller, and a traction padding roller. An ultrasonic vibration box for cavitation treatment of the cationic modification solution is arranged in the padding trough, and the ultrasonic vibration box is connected to an ultrasonic generator. In the continuous padding dyeing of cotton-containing yarns, by adding an ultrasonic padding device adopting the technical solution of the present invention, the problems of color fastness, core penetration, and dyeing depth in the continuous padding dyeing technology of cotton-containing yarns are solved, and the scouring process or the pretreatment process with scouring effect before or during the dyeing process can be omitted; Although the existing dyeing treatment devices can meet the usage requirements, during use, since the dyed products are mostly transported by conveying devices such as vehicles during impregnation, it is inevitable to attach dust, etc. When dust adheres to the dyed products during impregnation, it not only affects the dyeing quality of the dyed products, but also the color of the dye in the impregnation tank cannot maintain its original quality, thereby increasing production costs. Moreover, the existing devices directly put the dyed products into the impregnation tank for impregnation after cleaning, but the cleaned dyed products have water absorption, and a large amount of water enters the impregnation tank, resulting in the dilution of the dye with water, thus having color differences and reducing the quality of the dyed products. Summary of the Invention
[0003] The object of the present invention is to provide a dyeing treatment device with ultrasonic-assisted cleaning, so as to solve the problems in the above-mentioned background technology. When the existing dyed textiles are transported by transportation devices such as vehicles during dipping, it is inevitable that dust and the like will adhere. When the dust adheres to the dyed textiles and then during dipping, it not only affects the dyeing quality of the dyed textiles, but also the color of the dye in the dipping tank cannot maintain its original quality, thereby increasing the production cost. And the existing device directly puts the dyed textiles into the dipping tank for dipping after cleaning, but the cleaned dyed textiles are water-absorbent, and a large amount of water enters the dipping tank, resulting in the dilution of the dye with water, thus having color difference and reducing the quality of the dyed textiles.
[0004] To achieve the above object, the present invention provides the following technical solution: A dyeing treatment device with ultrasonic-assisted cleaning, including an operating table, an ultrasonic cleaning tank and an ultrasonic dipping tank. The ultrasonic cleaning tank is arranged on the left side of the tabletop of the operating table, and the ultrasonic dipping tank is arranged on the right side of the tabletop of the operating table. A rack plate is installed at the top of the operating table, and a driving mechanism is installed at the top of the operating table. The driving mechanism includes a moving component and a hydraulic cylinder. The hydraulic cylinder is installed at the bottom center of the moving component. The hydraulic cylinder can drive the fixed frame fixed at the bottom to lift. A rotating disk is installed at the left end inside the fixed frame, and a rotating mechanism is installed inside the fixed frame. The rotating mechanism includes a stirring barrel and a first rotating shaft. The top of the stirring barrel is connected to the first rotating shaft. The top of the first rotating shaft penetrates and is inserted into the left side of the top of the fixed frame. A main gear is fixedly arranged at the center of the first rotating shaft. The front end of the main gear meshes with the rack plate and rotates. A linkage mechanism is installed at the rear side of the top of the fixed frame. The front end of the linkage mechanism is connected to the top of the first rotating shaft. The linkage mechanism can drive the first rotating shaft to rotate. A stirring mechanism is installed at the rear end of the ultrasonic dipping tank. The stirring mechanism includes a fixed block and a second servo motor. The second servo motor is installed at the bottom of the fixed block. A driving shaft is inserted into the center of the fixed block. The top of the driving shaft is connected to the right end of the stirring component. The second servo motor drives the driving shaft connected to the top to rotate. The driving shaft drives the stirring component to rotate. The top of the stirring component can drive the linkage mechanism that has moved to the ultrasonic dipping tank to rotate.
[0005] Preferably, guide rails are fixedly arranged on both walls at the top of the operating table. The front and rear ends of the moving component are connected inside the guide rails. The two groups of guide rails are parallel to each other. The left end of the rack plate is aligned with the left side of the top of the operating table, and the right end of the rack plate extends to the center of the right side of the top of the operating table.
[0006] Preferably, ultrasonic instruments are arranged on both inner walls of the ultrasonic cleaning tank and the ultrasonic dipping tank. Connectors are arranged between the four groups of ultrasonic instruments to connect and start.
[0007] Preferably, the moving component includes a first servo motor and a threaded rod. Both ends of the threaded rod are inserted with limit sleeves. The first servo motor is installed on the right side of the top of the operating table. The first servo motor drives the threaded rod connected to its left end to rotate. The left end of the threaded rod is threadedly inserted with a long barrel nut. The bottom end of the long barrel nut is fixedly provided with a hydraulic cylinder. Sliders are fixedly provided at the front and rear ends of the hydraulic cylinder and move within the guide rails.
[0008] Preferably, the mixing barrel includes a lower circular plate and an upper circular plate. A main semi-circular filter plate is fixedly provided on the right side of the centers of the lower circular plate and the upper circular plate. The left side of the rear end of the main semi-circular filter plate is connected to the right side of the rear end of the sub-semi-circular filter plate by a hinge. A lock is provided on the right side of the front end of the sub-semi-circular filter plate and can be clamped on the left side of the front end of the main semi-circular filter plate.
[0009] Preferably, the interiors of the main semi-circular filter plate and the sub-semi-circular filter plate are both hollow. The sub-semi-circular filter plate can be opened outward through the hinge. The center of the upper circular plate is fixedly provided at the bottom end of the first rotating shaft. The lower circular plate is fixedly provided on the top of the rotating disk.
[0010] Preferably, the linkage mechanism includes a second rotating shaft and a fixing plate. The second rotating shaft is inserted into the rear side of the top of the fixing frame. The fixing plate is fixedly provided at the bottom end of the second rotating shaft. A first sprocket set is provided at the top of the second rotating shaft to drive the drive shaft to rotate.
[0011] Preferably, the mixing component includes a limiting plate and a third rotating shaft. The limiting plate is installed on the rear wall of the operating table at the rear end of the ultrasonic immersion tank. The third rotating shaft is inserted into the center of the limiting plate. A cross plate is fixedly provided at the top end of the third rotating shaft. Two rotating rods are fixedly provided at the top of the cross plate. A second sprocket set is provided at the bottom end of the third rotating shaft and is connected to the top end of the drive shaft.
[0012] Preferably, the rotation of the cross plate can drive the two stirring rotating rods at the top to rotate. The centers of the two rotating rods can drive the fixing plate after it descends to rotate.
[0013] Compared with the prior art, the beneficial effects of the present invention are as follows: 1. By providing an ultrasonic cleaning tank and an ultrasonic immersion tank, the dyed fabrics can be quickly cleaned and dyed to improve efficiency. By providing a moving component, the rotating mechanism installed on the fixing frame can be driven to move. Through this design, the time for the cleaned dyed fabrics to enter the immersion tank is reduced, dust attachment to the dyed fabrics is avoided, and further, dust pollution of the dyeing solution is reduced, and production efficiency is improved. By providing a hydraulic cylinder, the fixing frame can be driven to lift and lower. Through this design, the dyed fabrics can be effectively cleaned and immersed, and at the same time, better linkage is achieved to reduce energy consumption and improve efficiency; 2. The stirring barrel with a rotatable secondary semi-circular filter plate can quickly place the fabric to be dyed. The main semi-circular filter plate and the secondary semi-circular filter plate with a hollow design can rotate and dehydrate the fabric without affecting cleaning and dyeing, thereby reducing the dilution of the dye in the dye bath by the clear water of the fabric, improving the dyeing quality of the fabric, enhancing efficiency and saving time. When the main gear at the top of the first rotating shaft moves and meshes with the rack plate to rotate, it can drive the stirring barrel at the bottom to rotate and dehydrate the fabric. This design can be carried out on the way to the ultrasonic dyeing bath, which is beneficial to quick dehydration and time saving; 3. By setting the linkage mechanism, it can rotate under the drive of the stirring assembly, and then drive the stirring barrel to rotate in the ultrasonic dyeing bath through the first sprocket group, better dye the fabric with the dye, and improve the dyeing efficiency, which is convenient and fast. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.
[0015] Figure 1 It is a schematic side view of the structure of the present invention; Figure 2 It is a schematic rear view of the main structure of the present invention; Figure 3 It is a schematic side view of the driving mechanism of the present invention; Figure 4 It is a schematic installation view of the rotating mechanism of the present invention; Figure 5 It is a schematic enlarged side view of the rotating mechanism and the linkage mechanism of the present invention; Figure 6 It is a schematic unfolded view of the stirring barrel of the present invention; Figure 7 It is a schematic enlarged view of the structure of the stirring mechanism of the present invention; Figure 8 It is a schematic top view of the ultrasonic cleaning tank of the present invention.
[0016] In the figure: 1, operating table; 11, guide rail; 12, rack plate; 2, ultrasonic cleaning tank; 21, ultrasonic instrument; 22, connector; 3, ultrasonic immersion tank; 4, drive mechanism; 41, moving component; 411, first servo motor; 412, threaded rod; 413, limit sleeve; 414, long barrel nut; 42, hydraulic cylinder; 421, slider; 5, fixing frame; 51, rotating disk; 6, rotating mechanism; 61, stirring barrel; 611, lower circular plate; 612, upper circular plate; 613, main semi-circular filter plate; 614, sub-semi-circular filter plate; 615, lock; 62, first rotating shaft; 63, main gear; 7, linkage mechanism; 71, second rotating shaft; 72, fixing plate; 73, first sprocket set; 8, stirring mechanism; 81, fixing block; 82, second servo motor; 83, drive shaft; 84, stirring component; 841, second sprocket set; 842, third rotating shaft; 843, limit plate; 844, cross plate; 845, rotating rod. Detailed implementation manners
[0017] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0018] Please refer to Figures 1 - 8, an embodiment provided by the present invention: a dyeing treatment device for ultrasonic-assisted cleaning. The ultrasonic instrument 21, the first servo motor 411, the second servo motor 82, and the hydraulic cylinder 42 used in this application are products that can be directly purchased on the market. Their principles and connection methods are all prior arts well-known to those skilled in the art. It includes an operating table (1), an ultrasonic cleaning tank (2), and an ultrasonic immersion tank (3). The ultrasonic cleaning tank (2) is provided on the left side of the tabletop of the operating table (1), and the ultrasonic immersion tank (3) is provided on the right side of the tabletop of the operating table (1). A rack plate (12) is installed at the top of the operating table (1), and a driving mechanism (4) is installed at the top of the operating table (1). The driving mechanism (4) includes a moving component (41) and a hydraulic cylinder (42). The hydraulic cylinder (42) is installed at the bottom center of the moving component (41). The hydraulic cylinder (42) can drive the fixed frame (5) fixedly arranged at the bottom to lift. A rotating disk (51) is installed at the left end inside the fixed frame (5), and a rotating mechanism (6) is installed inside the fixed frame (5). The rotating mechanism (6) includes a stirring barrel (61) and a first rotating shaft (62). The top of the stirring barrel (61) is connected to the first rotating shaft (62). The top of the first rotating shaft (62) penetrates and is inserted into the left side of the top of the fixed frame (5). A main gear (63) is fixedly arranged at the center of the first rotating shaft (62). The front end of the main gear (63) meshes with the rack plate (12) and rotates. A linkage mechanism (7) is installed at the rear side of the top of the fixed frame (5). The front end of the linkage mechanism (7) is connected to the top of the first rotating shaft (62). The linkage mechanism (7) can drive the first rotating shaft (62) to rotate. A stirring mechanism (8) is installed at the rear end of the ultrasonic immersion tank (3). The stirring mechanism (8) includes a fixed block (81) and a second servo motor (82). The second servo motor (82) is installed at the bottom of the fixed block (81). A driving shaft (83) is inserted into the center of the fixed block (81). The top of the driving shaft (83) is connected to the right end of the stirring component (84). The second servo motor (82) drives the driving shaft (83) connected to the top to rotate. The driving shaft (83) drives the stirring component (84) to rotate. The top of the stirring component (84) can drive the linkage mechanism (7) moved to the ultrasonic immersion tank (3) to rotate.
[0019] Further, on both walls at the top of the operating table 1, guide rails 11 are fixedly provided. The front and rear ends of the moving component 41 are connected inside the guide rails 11. The two groups of guide rails 11 are parallel to each other. The left end of the rack plate 12 is aligned with the left side at the top of the operating table 1, and the right end of the rack plate 12 extends to the center on the right side at the top of the operating table 1. The moving component 41 includes a first servo motor 411 and a threaded rod 412. Limit sleeves 413 are inserted at both ends of the threaded rod 412. The first servo motor 411 is installed on the right side at the top of the operating table 1. The first servo motor 411 drives the threaded rod 412 connected to its left end to rotate. A long barrel nut 414 is threadedly inserted at the left end of the threaded rod 412. A hydraulic cylinder 42 is fixedly provided at the bottom of the long barrel nut 414. Sliders 421 are fixedly provided at the front and rear ends of the hydraulic cylinder 42 and move within the guide rails 11. Through this design, it is beneficial to drive the stirring barrel with the dyed fabric placed therein to move in the fixing frame, thereby reducing the dyeing time of the dyed fabric.
[0020] Further, ultrasonic instruments 21 are provided on both inner walls of the ultrasonic cleaning pool 2 and the ultrasonic immersion pool 3. Connectors 22 are provided between the four groups of ultrasonic instruments 21 for connection and startup. By installing the ultrasonic instruments, the dyed fabric can be cleaned and dyed, and further improve the quality of the dyed fabric.
[0021] Even further, the stirring barrel 61 includes a lower circular plate 611 and an upper circular plate 612. A main semi-circular filter plate 613 is fixedly provided on the right side of the centers of the lower circular plate 611 and the upper circular plate 612. The rear left side of the main semi-circular filter plate 613 is connected to the rear right side of the sub-semi-circular filter plate 614 by a hinge. A lock 615 is provided on the front right side of the sub-semi-circular filter plate 614 and can be clamped on the front left side of the main semi-circular filter plate 613. The interiors of the main semi-circular filter plate 613 and the sub-semi-circular filter plate 614 are both hollow. The sub-semi-circular filter plate 614 can be opened outward by the hinge. The center of the upper circular plate 612 is fixedly provided at the bottom end of the first rotating shaft 62. The lower circular plate 611 is fixedly provided on the top of the rotating disk 51. Through this design, it is beneficial to rotate and dehydrate the dyed fabric through the hollow main semi-circular filter plate and sub-semi-circular filter plate without affecting cleaning and immersion, thereby reducing the dilution of the dye by the clear water of the dyed fabric when sent into the dye pool.
[0022] Even further, the linkage mechanism 7 includes a second rotating shaft 71 and a fixing plate 72. The second rotating shaft 71 is inserted at the rear side of the top of the fixing frame 5. A fixing plate 72 is fixedly provided at the bottom end of the second rotating shaft 71. A first sprocket group 73 is provided at the top end of the second rotating shaft 71 to drive the drive shaft 83 to rotate. Through this design, it is beneficial to rotate under the drive of the stirring component, and thereby drive the stirring barrel to rotate in the ultrasonic immersion pool through the first sprocket group.
[0023] Furthermore, the stirring assembly 84 includes a limit plate 843 and a third rotating shaft 842. The limit plate 843 is installed on the rear wall of the operating table 1 at the rear end of the ultrasonic immersion tank 3. The third rotating shaft 842 is inserted through the center of the limit plate 843. A cross plate 844 is fixedly provided at the top end of the third rotating shaft 842. Two rotating rods 845 are fixedly provided at the top end of the cross plate 844. A second sprocket set 841 is provided at the bottom end of the third rotating shaft 842 to connect to the top end of the driving shaft 83. When the cross plate 844 rotates, it can drive the two rotating rods 845 at the top end to rotate. The center of the two rotating rods 845 can drive the lowered fixing plate 72 to rotate. Through this design, the rotation of the cross plate drives the rotation of the rotating rods, thereby driving the linkage mechanism to drive the stirring barrel to rotate, which is beneficial to better dye the dyed fabric with the dye, improving the dyeing efficiency, being convenient and fast.
[0024] Working principle: During operation, when dyeing treatment is required for the dyed fabric, first, by opening the lock 615 at the front end of the sub-semicircular filter plate 614, the sub-semicircular filter plate 614 is opened. Then, the dyed fabric to be immersed is placed inside the lower circular plate 611. Then, the sub-semicircular filter plate 614 is clamped on the main-semicircular filter plate 613 using the lock 615. Then, the hydraulic cylinder 42 is started to push the fixing frame 5 downward. When the fixing frame 5 descends, it can drive the stirring barrel 61 to descend, so that the stirring barrel 61 is lowered into the ultrasonic cleaning tank 2, and the dust and the like attached to the dyed fabric are cleaned off under the operation of the ultrasonic instrument 21. After cleaning, the hydraulic cylinder 42 can be started to rise and reset. When the fixing plate 5 drives the stirring barrel 61 to reset, the first servo motor 411 can be powered on to drive the threaded rod 412 to rotate. When the threaded rod 412 rotates, it can drive the long barrel nut 414 with a central thread insertion and the hydraulic cylinder 42 fixedly provided at the bottom end to move to the right. The hydraulic cylinder 42 can move smoothly in the top guide rail 11 of the operating table 1 through the sliders 421 installed at the front and rear ends. While moving, the first rotating shaft 62 provided at the top end of the stirring barrel 61 rotates when the main gear 63 moves and meshes with the rack plate 12. When the first rotating shaft 62 rotates, it can drive the stirring barrel 61 at the bottom end to rotate. Through the main-semicircular filter plate 613 and the sub-semicircular filter plate 614 with a hollow design in the stirring barrel 61, the rotating dyed fabric is dehydrated, and the rotation of the linkage mechanism 7 connected to the top end of the main gear 63 does not affect the normal operation. When the fixing frame 5 and the stirring barrel 61 move to the center of the operating table 1, the main gear 63 stops meshing and rotating with the rack plate 12. The first servo motor 411 stops rotating until they move to the top of the ultrasonic immersion tank 3. Then, the hydraulic cylinder 42 drives the fixing frame 5 to descend into the ultrasonic immersion tank 3 for dyeing. While the fixing frame 5 is descending, the fixing plate 72 at the bottom end of the second rotating shaft 71 descends to the center of the two rotating rods 845 at the top end of the cross plate 844. Subsequently, the second servo motor 82 is started to drive the driving shaft 83 at the top to rotate. When the driving shaft 83 rotates, it can drive the third rotating shaft 842 at the left end to rotate in the center of the limiting plate 843 through the connected second sprocket group 841. When the third rotating shaft 842 rotates, it can drive the cross plate 844 and the rotating rods 845 at the top to rotate. When the two rotating rods 845 rotate, they can drive the fixing plate 72 to rotate. When the fixing plate 72 rotates, it can drive the fixedly installed second rotating shaft 71 to rotate. When the second rotating shaft 71 rotates, it can drive the first rotating shaft 62 at the top through the first sprocket group 73 at the top. When the first rotating shaft 62 rotates, it can drive the stirring barrel 61 at the bottom end to rotate in the ultrasonic immersion tank 3, so as to better immerse the dyed fabrics and improve the dyeing quality.
[0025] The above is only the preferred embodiment of the present invention, and it is not intended to limit the present invention in any form. Any ordinary technician in the industry can smoothly implement the present invention according to the illustrations in the specification and the above description. However, any equivalent changes such as slight modifications, decorations, and evolutions made by those skilled in the art within the scope of the technical solution of the present invention using the technical content disclosed above are equivalent embodiments of the present invention. At the same time, any equivalent changes, modifications, and evolutions made to the above embodiments based on the essence of the present invention still fall within the protection scope of the technical solution of the present invention.
Claims
1. A dyeing treatment device with ultrasonic assistance for cleaning, comprising an operating table (1), an ultrasonic cleaning tank (2) and an ultrasonic immersion tank (3). The ultrasonic cleaning tank (2) is provided on the left side of the tabletop of the operating table (1), and the ultrasonic immersion tank (3) is provided on the right side of the tabletop of the operating table (1). A rack plate (12) is installed at the top of the operating table (1), and it is characterized in that: A driving mechanism (4) is installed at the top end of the operating table (1). The driving mechanism (4) includes a moving component (41) and a hydraulic cylinder (42). The hydraulic cylinder (42) is installed at the center bottom side of the moving component (41). The hydraulic cylinder (42) can drive the fixed frame (5) fixedly arranged at the bottom end to lift. A rotating disk (51) is installed at the left end inside the fixed frame (5). A rotating mechanism (6) is installed inside the fixed frame (5). The rotating mechanism (6) includes a stirring barrel (61) and a first rotating shaft (62). The top end of the stirring barrel (61) is connected to the first rotating shaft (62). The top end of the first rotating shaft (62) penetrates and is inserted into the left side of the top end of the fixed frame (5). A main gear (63) is fixedly arranged at the center of the first rotating shaft (62). The front end of the main gear (63) meshes with a rack plate (12) and rotates. A linkage mechanism (7) is installed at the rear side of the top end of the fixed frame (5). The front end of the linkage mechanism (7) is connected to the top end of the first rotating shaft (62). The linkage mechanism (7) can drive the first rotating shaft (62) to rotate. A stirring mechanism (8) is installed at the rear end of the ultrasonic impregnation pool (3). The stirring mechanism (8) includes a fixed block (81) and a second servo motor (82). The second servo motor (82) is installed at the bottom end of the fixed block (81). A driving shaft (83) is inserted into the center of the fixed block (81). The top end of the driving shaft (83) is connected to the right end of a stirring component (84). The second servo motor (82) drives the driving shaft (83) connected to the top end to rotate. The driving shaft (83) drives the stirring component (84) to rotate. The top end of the stirring component (84) can drive the linkage mechanism (7) that has moved to the ultrasonic impregnation pool (3) to rotate.
2. The dyeing treatment device with ultrasonic-assisted cleaning according to claim 1, wherein: Guide rails (11) are fixedly arranged on both side walls at the top end of the operating table (1). The front and rear ends of the moving component (41) are connected inside the guide rails (11). The two groups of guide rails (11) are parallel to each other. The left end of the rack plate (12) is aligned with the left side of the top end of the operating table (1). The right end of the rack plate (12) extends to the center of the right side of the top end of the operating table (1).
3. The dyeing treatment device with ultrasonic-assisted cleaning according to claim 1, characterized in that: Ultrasonic instruments (21) are arranged on both inner walls of the ultrasonic cleaning pool (2) and the ultrasonic impregnation pool (3). Connectors (22) are arranged between the four groups of ultrasonic instruments (21) to connect and start.
4. The dyeing treatment device with ultrasonic-assisted cleaning according to claim 1, characterized in that: The moving component (41) includes a first servo motor (411) and a threaded rod (412). Limit sleeves (413) are inserted at both ends of the threaded rod (412). The first servo motor (411) is installed on the right side of the top end of the operating table (1). The first servo motor (411) drives the threaded rod (412) connected to the left end to rotate. A long barrel nut (414) is threadedly inserted at the left end of the threaded rod (412). The bottom end of the long barrel nut (414) is fixedly provided with a hydraulic cylinder (42). Sliders (421) are fixedly arranged at the front and rear ends of the hydraulic cylinder (42) to move inside the guide rails (11).
5. An ultrasonic-assisted cleaning and dyeing treatment device according to claim 1, characterized in that: The mixing barrel (61) includes a lower circular plate (611) and an upper circular plate (612). A main semi-circular filter plate (613) is fixedly provided on the right side of the centers of the lower circular plate (611) and the upper circular plate (612). The left side of the rear end of the main semi-circular filter plate (613) is connected to the right side of the rear end of the secondary semi-circular filter plate (614) by a hinge. A latch (615) is provided on the right side of the front end of the secondary semi-circular filter plate (614) and can be latched on the left side of the front end of the main semi-circular filter plate (613).
6. The dyeing treatment device with ultrasonic-assisted cleaning according to claim 5, characterized in that: The interiors of the main semi-circular filter plate (613) and the secondary semi-circular filter plate (614) are both hollow. The secondary semi-circular filter plate (614) can be opened outward through the hinge. The center of the upper circular plate (612) is fixedly provided at the bottom end of the first rotating shaft (62). The lower circular plate (611) is fixedly provided at the top end of the rotating disk (51).
7. An ultrasonic-assisted cleaning dyeing treatment device according to claim 1, characterized in that: The linkage mechanism (7) includes a second rotating shaft (71) and a fixing plate (72). The second rotating shaft (71) is inserted into the rear side of the top end of the fixing frame (5). A fixing plate (72) is fixedly provided at the bottom end of the second rotating shaft (71). A first sprocket set (73) is provided at the top end of the second rotating shaft (71) to drive the driving shaft (83) to rotate.
8. An ultrasonic-assisted cleaning and dyeing treatment device according to claim 1, characterized in that: The mixing assembly (84) includes a limiting plate (843) and a third rotating shaft (842). The limiting plate (843) is installed on the rear wall of the operating table (1) at the rear end of the ultrasonic immersion tank (3). The third rotating shaft (842) is inserted into the center of the limiting plate (843). A cross plate (844) is fixedly provided at the top end of the third rotating shaft (842). Two rotating rods (845) are fixedly provided at the top end of the cross plate (844). A second sprocket set (841) is provided at the bottom end of the third rotating shaft (842) and is connected to the top end of the driving shaft (83).
9. An ultrasonic-assisted cleaning dyeing treatment device according to claim 8, characterized in that: The rotation of the cross plate (844) can drive the two rotating rods (845) at the top end to rotate. The centers of the two rotating rods (845) can drive the lowered fixing plate (72) to rotate.
Citation Information
Patent Citations
Equipment for dying cotton-containing yarn
CN101994219B