Material mixing mechanism for textile dyeing
By designing a multi-point linkage mixing system and a mixing mechanism with various mixing blade shapes, the problems of large size, heavy weight and uneven mixing in traditional textile dyeing equipment have been solved, achieving efficient and uniform dyeing of textile materials.
Patent Information
- Application Number
- CN202520285705.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-21
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2035-02-21
AI Technical Summary
Traditional textile dyeing equipment is large and heavy, complicated to operate, and has uneven mixing, resulting in poor dyeing effect on textile fabrics.
Design a mixing mechanism that includes a mixing tank, a mixing drive, a linkage component, and multiple sets of mixing components. A transmission system is used to achieve multi-point linkage mixing within the mixing tank, and various mixing blade shapes are employed to improve mixing efficiency and uniformity.
It improves mixing efficiency and uniformity, allowing for more thorough dyeing of textile materials and enhancing the dyeing effect.
Smart Images

Figure CN223766571U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of textile equipment technology, and in particular relates to a mixing mechanism for textile dyeing. Background Technology
[0002] Textile fibers are divided into two types: natural fibers and chemical fibers. Linen, cotton yarn, and hemp rope are obtained from plants and are natural fibers; wool and silk come from animals and are also natural fibers. Chemical fibers come in many varieties, such as nylon, synthetic fibers, and glass fibers. The textile fiber production process generally requires dyeing to meet the different color requirements of the clothing industry.
[0003] Dyeing solutions for textiles must be stirred and mixed thoroughly before use. However, traditional stirring equipment is large, heavy, and complex to operate, and the fixed position of the stirring rods leads to uneven mixing. Summary of the Invention
[0004] This utility model provides a mixing mechanism for textile dyeing to solve the problems in the prior art.
[0005] The present invention adopts the following technical solution: a mixing mechanism for textile dyeing, including a mixing tank, a mixing drive component on the mixing tank, a linkage component inside the mixing tank, the linkage component being connected to the mixing drive component in a transmission manner, and a number of sets of mixing components in the mixing tank that are in transmission cooperation with the linkage component in a transmission manner, each set of mixing components being able to stir along the circumferential direction inside the mixing tank.
[0006] In a further technical solution, the stirring drive component includes a transmission wheel, which is located at the top center of the stirring tank. A drive wheel is located beside the transmission wheel. The transmission wheel and the drive wheel are connected by a belt. A drive motor is mounted on the drive wheel, and the main shaft of the drive motor is connected to the drive wheel. The transmission wheel is connected to the linkage component in a transmission connection.
[0007] A further technical solution is that the linkage includes a main gear, a positioning plate, a transmission shaft, and several sets of auxiliary transmission parts. The main gear is set on the inner top wall of the mixing tank and is connected to the transmission wheel through the transmission shaft. The positioning plate is installed at the bottom of the main gear. All auxiliary transmission parts are evenly distributed on the main gear around the axis of the main gear and are in transmission cooperation with it. Each set of auxiliary transmission parts is connected to the positioning plate.
[0008] In a further technical solution, each auxiliary transmission unit includes a first gear, a second gear, and a connecting shaft. The first gear is mounted on the top of the positioning plate and meshes with the main gear, the second gear is mounted on the bottom of the positioning plate, and the first gear and the second gear are connected by the connecting shaft.
[0009] A further technical solution is that the plurality of stirring components include a first stirring component, a second stirring component, and a third stirring component, the three sets of stirring components being respectively disposed on the positioning plate and engaging with the second gear at the corresponding position.
[0010] In a further technical solution, the transmission structures of the first, second, and third stirring components are all the same, and the stirring blades of the three sets of stirring components are arranged in several ways. Each of the three sets of stirring components includes a transmission gear, a linkage plate, and a stirring shaft. The transmission gear meshes with the second gear. One end of the linkage plate is located at the bottom of the second gear and connected to it. The stirring shaft is located at the bottom of the other end of the linkage plate.
[0011] In a further technical solution, the stirring blade of the first stirring component includes three inclined plate surfaces, which are evenly distributed around the axis of the stirring shaft. The stirring blade of the second stirring component includes several spirally extended around the axis of the stirring shaft. The stirring blade of the third stirring component is divided into multiple groups and distributed in a triangular shape. All groups are evenly distributed along the vertical direction on the stirring shaft.
[0012] In a further technical solution, the drive motor is also covered with a protective cover.
[0013] The above-mentioned technical solutions adopted in the embodiments of this utility model can achieve the following beneficial effects:
[0014] When mixing in the mixing tank, the mixing drive unit drives the linkage unit to rotate. Because the linkage unit is connected to multiple sets of mixing elements, each set of mixing elements can continuously receive power from the linkage unit. Since each set of mixing elements can rotate around its own circumference, multiple sets of linked mixing can be performed at multiple different positions in the mixing tank. This results in diverse mixing methods and constantly changing mixing states, greatly improving mixing efficiency and making the mixed materials more uniform. Ultimately, this leads to better mixing results and more complete dyeing of textile materials. Attached Figure Description
[0015] The accompanying drawings, which are included to provide a further understanding of the present invention and constitute a part of this invention, illustrate exemplary embodiments of the present invention and, together with the description thereof, serve to explain the present invention and do not constitute an undue limitation thereof. In the drawings:
[0016] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0017] Figure 2 This is a top view of the present invention;
[0018] Figure 3 This is a partial structural diagram of the present invention. Figure 1 ;
[0019] Figure 4 This is a partial structural diagram of the present invention. Figure 2 ;
[0020] Figure 5 This is a partial structural diagram of the present invention. Figure 3 ;
[0021] Figure Labels
[0022] Mixing tank 1, mixing drive component 2, transmission wheel 21, drive wheel 22, belt 23, drive motor 24, protective cover 25, linkage component 3, main gear 31, positioning plate 32, transmission shaft 33, auxiliary transmission part 34, first gear 341, second gear 342, connecting shaft 343, mixing component 4, first mixing component 41, second mixing component 42, third mixing component 43, transmission gear 44, linkage plate 45, mixing shaft 46. Detailed Implementation
[0023] To make the objectives, technical solutions, and advantages of this utility model clearer, the technical solutions of this utility model will be clearly and completely described below in conjunction with specific embodiments and corresponding drawings. Obviously, the described embodiments are only a part of the embodiments of this utility model, and not all of them. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.
[0024] The technical solutions provided by the various embodiments of this utility model are described in detail below with reference to the accompanying drawings.
[0025] Reference Figures 1 to 5 As shown, this utility model embodiment provides a mixing mechanism for textile dyeing, including a mixing tank 1, a stirring drive 2 on the mixing tank 1, a linkage 3 inside the mixing tank 1, the linkage 3 being connected to the stirring drive 2 in a transmission manner, and a plurality of sets of stirring elements 4 inside the mixing tank 1 that are in transmission cooperation with the linkage 3, each set of stirring elements 4 being able to stir along the circumferential direction inside the mixing tank 1.
[0026] In this invention, when stirring is performed in the mixing tank 1, the stirring drive 2 drives the linkage 3 to rotate. Because the linkage 3 is connected to multiple sets of stirring elements 4, each set of stirring elements 4 can continuously receive power from the linkage 3. Since each set of stirring elements 4 can rotate around its circumference, multiple sets of linked stirring can be performed at multiple different positions in the mixing tank 1. This results in diverse stirring methods and constantly changing stirring states, greatly improving stirring efficiency and making the stirred materials more uniform. Ultimately, this leads to better mixing and more complete dyeing of textile materials.
[0027] Specifically, the stirring drive component 2 includes a transmission wheel 21, which is located at the top center of the stirring tank 1. A drive wheel 22 is provided on the side of the transmission wheel 21. The transmission wheel 21 and the drive wheel 22 are connected by a belt 23. A drive motor 24 is provided on the drive wheel 22, and the main shaft of the drive motor 24 is connected to the drive wheel 22. The transmission wheel 21 is connected to the linkage component 3.
[0028] In this embodiment, the drive motor 24 drives the drive wheel 22 to rotate. Since the drive wheel 22 is connected to the transmission wheel 21 via the belt 23, the drive motor 24 continuously transmits power to the transmission wheel 21 via the drive wheel 22 and the belt 23. Since the transmission wheel 21 is connected to the linkage 3 in the mixing tank 1, it can drive the linkage 3 to rotate. Finally, the linkage 3 continuously transmits power to all the auxiliary transmission parts 34, which can drive all the auxiliary transmission parts 34 to rotate. Each set of auxiliary transmission parts 34 performs circumferential stirring, maximizing the stirring of the material in the mixing tank 1 and achieving efficient stirring operation.
[0029] Specifically, the linkage 3 includes a main gear 31, a positioning plate 32, a transmission shaft 33, and several sets of auxiliary transmission parts 34. The main gear 31 is disposed on the inner top wall of the mixing tank 1 and is connected to the transmission wheel 21 via the transmission shaft 33. The positioning plate 32 is installed at the bottom of the main gear 31. All auxiliary transmission parts 34 are evenly distributed around the axis of the main gear 31 and are in transmission cooperation with it. Each set of auxiliary transmission parts 34 is connected to the positioning plate 32.
[0030] In this embodiment, when power is transmitted to the auxiliary transmission unit 34, it will drive the stirring member 4 connected to the auxiliary transmission unit 34 to rotate. The purpose of each set of auxiliary transmission units 34 is to transmit power to the auxiliary transmission units 34 sequentially when the main gear 31 rotates. Each set of auxiliary transmission units 34 can rotate on its own. Compared with the existing stirring shaft 46, which can only rotate synchronously with the following driving power, the power transmission in this application is innovative. It enables the stirring shaft 46 to rotate on its own, which can maximize the thorough mixing of the material to be mixed and effectively improve the mixing efficiency.
[0031] Specifically, each set of auxiliary transmission parts 34 includes a first gear 341, a second gear 342, and a connecting shaft 343. The first gear 341 is mounted on the top of the positioning plate 32 and meshes with the main gear 31. The second gear 342 is mounted on the bottom of the positioning plate 32. The first gear 341 and the second gear 342 are connected by the connecting shaft 343. Because the first gear 341 meshes with the main gear 31, the power energy on the main gear 31 is continuously transmitted to the first gear 341. Since the first gear 341 and the second gear 342 are respectively located at the top and bottom of the positioning plate 32 and are connected by the connecting shaft 343, the power energy is transmitted to the second gear 342. When a stirring operation is required, each set of stirring parts 4 is connected to the second gear 342, so each set of stirring parts 4 can perform circumferential stirring operation independently to stir the material in the stirring tank 1.
[0032] Specifically, the several sets of stirring components 4 include a first stirring component 41, a second stirring component 42, and a third stirring component 43. The three sets of stirring components 4 are respectively arranged on the positioning plate 32 and are driven and engaged with the second gear 342 at the corresponding position. The arrangement of the three sets of stirring components 4 is also to better mix the material evenly. Because the stirring blades on different stirring components 4 are set differently, the material can be effectively stirred to different degrees, providing a continuous stirring power for the material to be stirred.
[0033] Specifically, the transmission structures of the first stirring element 41, the second stirring element 42, and the third stirring element 43 are all the same, and the stirring blades of the three sets of stirring elements 4 can be arranged in several ways. Each of the three sets of stirring elements 4 includes a transmission gear 44, a linkage plate 45, and a stirring shaft 46. The transmission gear 44 meshes with the second gear 342. One end of the linkage plate 45 is located at the bottom of the second gear 342 and connected to it. The stirring shaft 46 is located at the bottom of the other end of the linkage plate 45. The power on the second gear 342 is transmitted to the linkage plate 45 through the transmission gear 44. Since the linkage plate 45 is connected to the stirring shaft 46, both the linkage plate 45 and the stirring shaft 46 can rotate around the transmission gear 44. Finally, the main gear 31 rotates, and the power energy on the main gear 31 is continuously output to the three sets of stirring elements 4. Thus, the three sets of stirring elements 4 can fully stir the material in the mixing tank 1.
[0034] Specifically, the first stirring component 41 has three inclined plates, which are evenly distributed around the axis of the stirring shaft 46. The second stirring component 42 has several stirring blades that extend spirally around the axis of the stirring shaft 46. The third stirring component 43 has multiple groups of stirring blades arranged in a triangular shape. All groups are evenly distributed along the vertical direction on the stirring shaft 46. The different structures of the stirring blades are for better stirring of the material in the stirring tank 1. Because different types of stirring blades have different contact areas and different contact patterns when they come into contact with the material, they can stir the material in the stirring tank 1 to different degrees, thus effectively improving the stirring efficiency.
[0035] Specifically, the drive motor 24 is also covered by a protective cover 25. The protective cover 25 can effectively protect the drive motor 24 and other components to ensure smooth operation and also protect the personal safety of the operators.
[0036] The above description is merely an embodiment of this utility model and is not intended to limit the scope of this utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principle of this utility model should be included within the scope of the claims of this utility model.
Claims
1. A mixing mechanism for textile dyeing, characterized in that, The utility model provides a stirring device, including stirring jar (1), stirring jar (1) is equipped with stirring drive part (2) on, be equipped with linkage (3) in stirring jar (1), linkage (3) is transmission connection with stirring drive part (2), still be equipped with a plurality of groups of stirring part (4) with linkage (3) transmission cooperation in stirring jar (1), every group stirring part (4) can be stirred along the circumferential direction in stirring jar (1).
2. A mixing mechanism for textile dyeing according to claim 1, characterized in that: The stirring drive part (2) includes a transmission wheel (21), which is arranged in the middle of the top of the stirring tank (1). A drive wheel (22) is arranged beside the transmission wheel (21). The transmission wheel (21) is connected with the drive wheel (22) through a belt (23). A drive motor (24) is further arranged on the transmission wheel (21), and the main shaft of the drive motor (24) is connected with the transmission wheel (21). The transmission wheel (21) is transmission connected with the linkage (3).
3. A mixing mechanism for textile dyeing according to claim 2, characterized in that: The linkage (3) includes a main gear (31), a positioning plate (32), a transmission shaft (33) and a plurality of groups of auxiliary transmission parts (34). The main gear (31) is arranged on the inner top wall of the stirring tank (1) and is connected with the transmission wheel (21) through the transmission shaft (33). The positioning plate (32) is installed at the bottom of the main gear (31). All the auxiliary transmission parts (34) are uniformly distributed on the main gear (31) around the axis of the main gear (31) and are transmission matched with the main gear (31). Each group of the auxiliary transmission parts (34) is connected with the positioning plate (32).
4. A mixing mechanism for textile dyeing according to claim 3, characterized in that: Each group of the auxiliary transmission parts (34) includes a first gear (341), a second gear (342) and a connecting shaft (343). The first gear (341) is installed at the top of the positioning plate (32) and is engaged with the main gear (31). The second gear (342) is installed at the bottom of the positioning plate (32). The first gear (341) and the second gear (342) are connected through the connecting shaft (343).
5. A mixing mechanism for textile dyeing as claimed in claim 1, wherein: The plurality of groups of stirring parts (4) include a first stirring part (41), a second stirring part (42) and a third stirring part (43). The three groups of stirring parts (4) are respectively arranged on the positioning plate (32) and are transmission matched with the corresponding second gear (342).
6. A mixing mechanism for textile dyeing according to claim 5, characterized in that: The transmission structures of the first stirring part (41), the second stirring part (42) and the third stirring part (43) are the same, and the arrangement modes of the stirring blades of the three groups of stirring parts (4) are provided in a plurality of modes. The three groups of stirring parts (4) include a transmission gear (44), a linkage plate (45) and a stirring shaft (46). The transmission gear (44) is engaged with the second gear (342). The linkage plate (45) is arranged at the bottom of the second gear (342) and is connected with the second gear (342). The stirring shaft (46) is arranged at the bottom of the other end of the linkage plate (45).
7. A mixing mechanism for textile dyeing as claimed in claim 5 wherein: The stirring blades of the first stirring member (41) comprise three inclined plate surfaces which are uniformly distributed around the axis of the stirring shaft (46), the stirring blades of the second stirring member (42) comprise a plurality of helical extensions which are arranged around the axis of the stirring shaft (46), and the stirring blades of the third stirring member (43) are divided into a plurality of groups which are distributed in a triangular prism shape and are equidistantly distributed along the vertical direction on the stirring shaft (46).
8. A mixing mechanism for textile dyeing as claimed in claim 2, wherein: The driving motor (24) is further covered by a protective cover (25).