A batching device for fabric dyeing
By coordinating the design of components such as the metering box, rotating shaft, and partition, and using modular connectors, the problems of low metering accuracy and insufficient structural flexibility in traditional fabric dyeing and mixing devices have been solved. This has enabled precise metering, uniform mixing, and stable production, thereby improving production efficiency and reducing costs.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JIAXING SANYANG TEXTILE CO LTD
- Filing Date
- 2025-05-28
- Publication Date
- 2026-05-29
AI Technical Summary
Traditional fabric dyeing and mixing equipment struggles to achieve precise quantitative control, leading to color difference issues. Furthermore, its structural design lacks flexibility, making it unable to adapt to diverse production needs, resulting in low production efficiency and increased costs.
The device employs a collaborative design of components such as a metering tank, rotating shaft, and partitions to achieve precise metering by controlling the rotation angle and speed of the rotating shaft; the modular design of the clamping seat and clamping plate allows for flexible expansion or replacement of the metering module; the auger and stirring rod inside the mixing tank ensure uniform mixing of materials; a viewing window is used for real-time monitoring of material status; and support legs improve the stability of the device.
It achieves precise quantitative ingredient dispensing, avoids color difference in dyeing, improves the consistency and uniformity of fabric dyeing, increases production efficiency, reduces costs, and adapts to diversified production needs.
Smart Images

Figure CN224299624U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of textile production technology, and in particular to a fabric dyeing ingredient dispensing device. Background Technology
[0002] In the fabric dyeing process, the batching stage is a crucial step that determines the dyeing quality and effect. Traditional fabric dyeing batching equipment often struggles to simultaneously meet the needs for precise quantitative control and flexible mixing of different ingredients. For basic ingredients that do not require quantitative control, as well as materials such as dyes and auxiliaries that require precise measurement, existing equipment typically uses a single feeding method. This not only leads to low quantitative accuracy and a tendency for color differences in dyeing, but also makes it difficult to quickly change or expand the batching module according to the dyeing process requirements of different fabrics. Furthermore, traditional batching equipment lacks flexibility in its structural design, failing to adapt to diverse production needs, resulting in low production efficiency and increased production and time costs for enterprises.
[0003] Therefore, we propose a feed dispensing device for fabric dyeing. Utility Model Content
[0004] (1) The main purpose of this utility model is to provide a fabric dyeing feeder to prevent problems such as low quantitative accuracy, color difference in dyeing, and inability to adapt to diversified production needs, low production efficiency, increased production costs and time costs due to lack of flexibility in structural design. This will improve the quality and efficiency of fabric dyeing and reduce costs, and effectively solve the problems in the background art.
[0005] (2) To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0006] (3) A fabric dyeing ingredient dispensing device, comprising an ingredient dispensing tank, wherein multiple snap-fit seats are arranged horizontally above the ingredient dispensing tank, and each of the four corners of the bottom end of the multiple snap-fit seats is provided with a support column connected to the outer wall of the top end of the ingredient dispensing tank. A connecting pipe is connected to the middle of the bottom end of the snap-fit seat, and the bottom end of the connecting pipe is fixedly connected to the top end of the ingredient dispensing tank. A first sealing cap is installed on the top of several of the connecting pipes. Snap-fit grooves are provided on both sides of the snap-fit seats, and a snap-fit plate is snapped into several of the snap-fit grooves. Multiple equidistant limiting grooves are opened at the top and bottom edges of the snap-fit plate, and a limiting mechanism for limiting the snap-fit plate is provided in the snap-fit groove.
[0007] (4) A metering box is provided directly above the card plate. A discharge pipe is fixedly connected between the bottom end of the metering box and the top end of the connecting pipe. A storage box is provided directly above the metering box. A feed pipe is fixedly connected between the bottom end of the storage box and the top end of the metering box. A first valve is provided on both the feed pipe and the discharge pipe. A rotating shaft is rotatably connected inside the metering box. A first motor is fixedly installed on the outer wall of one end of the metering box. The output end of the first motor extends into the inside of the metering box and is fixedly connected to one end of the rotating shaft. Multiple partitions are arranged in an equidistant ring on the outer wall of the rotating shaft. The end of the partition away from the rotating shaft is in contact with the inner wall of the metering box.
[0008] (5) By adopting the above technical solution, multiple snap-fit seats are arranged horizontally above the mixing tank by a support column. Some snap-fit seats are directly connected to the mixing tank through a connecting pipe and are sealed by the first sealing cover for adding basic ingredients that do not require quantitative measurement.
[0009] (6) The storage bin stores the dye or auxiliaries to be quantified. The first valve on the feed pipe is opened, and the material in the storage bin flows into the metering bin through the feed pipe. At this time, the first valve on the discharge pipe is closed to prevent the material from directly entering the mixing tank. The first motor drives the rotating shaft to rotate, which drives the partition to rotate in the metering bin. The space formed by the adjacent partition and the inner wall of the metering bin is a fixed volume to realize the quantification of the material. When the material in the metering bin reaches the set amount, the valve on the feed pipe is closed to stop feeding. At the same time, the valve on the discharge pipe is opened, and the rotating shaft continues to rotate, discharging the quantified material into the mixing tank through the discharge pipe and the connecting pipe. Repeat the above steps. By controlling the rotation angle and speed of the rotating shaft, continuous and accurate quantitative mixing can be achieved.
[0010] (7) Multiple quantitative boxes can be installed in the slots on both sides of the card holder through the card plate. The card plate is fixed by the limiting mechanism, which makes it easy to flexibly expand or replace different quantitative modules according to the dyeing needs, and improve the versatility of the device.
[0011] (8) Further, the limiting mechanism includes a groove and a limiting ball; the grooves are respectively opened at the top and bottom of the snap-fit groove, and are equidistant and symmetrical along the length of the snap-fit groove; the limiting ball is located in the groove and can be snapped into the limiting groove, and the end of the limiting ball away from the limiting groove is connected to the snap-fit seat by a spring.
[0012] (9) By adopting the above technical solution, the spring in the groove is in a natural state in the initial state, and the limiting ball is exposed in the groove. When the card plate is aligned with the card slot and inserted, the edge of the card plate squeezes the limiting ball, the spring is compressed, and the limiting ball retracts into the groove, allowing the card plate to slide smoothly. When the limiting groove on the card plate is aligned with the groove, the spring rebounds and pushes the limiting ball into the limiting groove, thereby achieving horizontal and vertical fixation of the card plate and preventing it from loosening or shifting.
[0013] (10) When disassembling, pull the card plate out to one side. The edge of the limiting groove will push the limiting ball. After the limiting ball is subjected to force, it will compress the spring and retract into the groove, releasing the lock on the card plate. The card plate can be smoothly pulled out from the card slot to complete the disassembly.
[0014] (11) Further, a second sealing cover is installed at the end of the metering box away from the first motor, and a first viewing window is provided on the second sealing cover. A third sealing cover is installed on the top of the storage box, and a second viewing window is opened on the same side of the storage box as the first viewing window.
[0015] (12) By adopting the above technical solution, a second sealing cover is installed at the end of the metering box away from the first motor. Its main function is to seal one end of the metering box to prevent material leakage, ensure the sealing of the metering box, and maintain the stability of the internal working environment. The second sealing cover is provided with a first viewing window. Through the first viewing window, the operator can observe the material condition inside the metering box, such as the amount of material, whether the material is blocked, whether it is mixed evenly, etc. During the operation of the equipment, the operator can judge the working status inside the metering box based on the observed situation, and then adjust the equipment. For example, if it is found that the material in the metering box is low, it can be determined whether the material needs to be added; if it is found that the material is blocked, the machine can be stopped in time for cleaning.
[0016] (13) A third sealing cover is installed on the top of the storage box. Its function is to seal the top of the storage box to prevent external impurities from entering the storage box and to protect the material inside the storage box from contamination. It can also prevent the material from evaporating or leaking. A second viewing window is opened on the same side of the first viewing window. Through the second viewing window, the operator can intuitively understand the remaining amount of material in the storage box and the storage status of the material, such as whether there is sedimentation or abnormal color change. In this way, when the material in the storage box is insufficient, the operator can replenish the material in time to avoid interruption of the batching process due to insufficient material. If any abnormality is found in the material, it can be dealt with in advance to ensure the quality of batching.
[0017] (14) Further, the inside of the mixing tank is rotatably connected to an auger, and the outer wall of the auger is fixedly connected with a plurality of staggered stirring rods at equal intervals. A second motor is fixedly installed on the outer wall of one end of the mixing tank, and the output shaft of the second motor extends into the inside of the mixing tank and is fixedly connected to one end of the auger.
[0018] (15) By adopting the above technical solution, after the second motor starts, its output shaft rotates and transmits power to the auger. Since the auger is rotatably connected to the inside of the mixing tank, it starts to rotate under the drive of the second motor. Multiple stirring rods fixedly connected to the outer wall of the auger rotate together with the auger. The stirring rods are arranged in an alternating manner, which can stir the material in the mixing tank from different positions and angles during the rotation process, so that the various ingredients are fully mixed evenly, which helps to improve the accuracy and consistency of dyeing ingredients. The rotation of the auger can also generate axial conveying force, which pushes the material to move along the axial direction of the auger in the mixing tank, so that the material can form a certain flow in the tank while being stirred, avoiding the material from accumulating in a certain position, further promoting the uniform mixing of the material, and ensuring the efficient operation of the entire mixing process.
[0019] (16) Further, the bottom end of the mixing tank is fixedly connected to a discharge pipe, and a second valve is provided on the discharge pipe.
[0020] (17) By adopting the above technical solution, after the mixing and stirring of the ingredients are completed in the batching tank, the ingredients are temporarily stored in the batching tank. When it is necessary to transport the batched material to the next process or other equipment, the second valve on the discharge pipe is opened, and the material in the batching tank will flow out through the discharge pipe under the action of gravity. The second valve plays the role of controlling the material discharge. The opening degree of the valve can be adjusted according to actual needs to accurately control the discharge speed and flow rate to meet different production rhythms and process requirements. When the discharge is completed or the discharge is not required, the second valve is closed to prevent the material from continuing to flow out, ensuring the storage of the material in the batching tank and preventing material leakage.
[0021] (18) Further, the bottom of the mixing tank is fixedly connected to four support legs, and the bottom of the four support legs is fixedly connected to a base plate.
[0022] (19) By adopting the above technical solution, four support legs are evenly distributed at the bottom of the mixing tank. Their function is to support the mixing tank and raise it a certain height off the ground. Since the support legs are fixedly connected to the mixing tank, they can bear the weight of the mixing tank and the material inside the tank, ensuring that the mixing tank remains stable during operation and will not tip over or shake due to its own weight or vibration caused by stirring or other operations.
[0023] (20) The base plate fixedly connected to the bottom of the support leg increases the contact area with the ground, which can distribute the weight of the mixing tank and materials to a larger area, reduce the pressure on the ground, prevent damage to the ground due to excessive local pressure, and further improve the stability of the mixing tank.
[0024] (21) The four support legs and the base plate work together to keep the batching tank balanced under various working conditions. Whether it is in a static state or when the batching tank is being stirred, they can effectively maintain the stability of the batching tank, ensuring the normal operation of the equipment and the safety of the operators.
[0025] (22) Compared with the prior art, the present invention has the following beneficial effects:
[0026] (23) This utility model provides a fabric dyeing dispensing device that, through the coordinated action of components such as a dispensing box, a rotating shaft, and partitions, can accurately dispense dyes and auxiliaries. Adjacent partitions and the inner wall of the dispensing box form a fixed volume space. By controlling the rotation angle and speed of the rotating shaft, continuous and stable dispensing can be achieved, effectively avoiding the dyeing color difference problem caused by dispensing errors, significantly improving the consistency and uniformity of fabric dyeing, and ensuring dyeing quality.
[0027] (24) The present invention provides a material dispensing device for fabric dyeing. The card slots on both sides of the card seat are combined with the card plate and the limiting mechanism. Multiple quantitative boxes can be flexibly installed according to the dyeing process requirements of different fabrics to realize independent quantitative control of different materials. This modular design facilitates rapid expansion or replacement of quantitative modules, enabling the device to adapt to diverse production needs, greatly improving the versatility and applicability of the device, and reducing the cost investment of enterprises due to equipment modification. Attached Figure Description
[0028] Figure 1 This is a schematic diagram of the structure of a fabric dyeing mixing device according to the present invention.
[0029] Figure 2 This is a schematic diagram of the disassembled structure of the card holder and card plate of the fabric dyeing dispensing device of this utility model.
[0030] Figure 3 This is a schematic diagram of the internal structure of a fabric dyeing mixing device according to the present invention.
[0031] Figure 4 This is a schematic diagram of the internal structure of the card holder, metering box and storage box of the material dispensing device for fabric dyeing according to this utility model.
[0032] Figure 5 This utility model relates to a fabric dyeing feeder. Figure 4 Enlarged view of point A in the middle.
[0033] In the diagram: 1. Batching tank; 2. Support column; 3. Snap-fit seat; 4. Connecting pipe; 5. First sealing cover; 6. Snap-fit groove; 7. Snap-fit plate; 8. Groove; 9. Limiting groove; 10. Limiting ball; 11. Spring; 12. Metering box; 13. Storage box; 14. Discharge pipe; 15. Feed pipe; 16. Rotating shaft; 17. First motor; 18. Partition plate; 19. Second sealing cover; 20. First viewing window; 21. Second viewing window; 22. Third sealing cover; 23. Screwdriver; 24. Stirring rod; 25. Second motor; 26. Discharge pipe; 27. Support leg; 28. Base plate. Detailed Implementation
[0034] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.
[0035] To prevent issues such as low quantitative accuracy, color difference in dyeing, and inflexible structural design leading to unsuitability for diverse production needs, low production efficiency, and increased production and time costs, thereby improving the quality and efficiency of fabric dyeing and processing while reducing costs, such as... Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 As shown, a fabric dyeing mixing device includes a mixing tank 1. Multiple snap-fit seats 3 are arranged horizontally above the mixing tank 1. Each of the four corners of the bottom of the multiple snap-fit seats 3 is provided with a support column 2 connected to the outer wall of the top of the mixing tank 1. A connecting pipe 4 is connected to the middle of the bottom of each snap-fit seat 3. The bottom of the connecting pipe 4 is fixedly connected to the top of the mixing tank 1. A first sealing cap 5 is installed on the top of several of the connecting pipes 4. Snap-fit grooves 6 are provided on both sides of the snap-fit seats 3. A clamping plate 7 is snapped into several of the snap-fit grooves 6. Multiple equidistant limiting grooves 9 are opened on both the top and bottom edges of the clamping plate 7. A limiting mechanism for limiting the clamping plate 7 is provided in each snap-fit groove 6.
[0036] A metering box 12 is provided directly above the card plate 7. A discharge pipe 14 is fixedly connected between the bottom end of the metering box 12 and the top end of the connecting pipe 4. A storage box 13 is provided directly above the metering box 12. A feed pipe 15 is fixedly connected between the bottom end of the storage box 13 and the top end of the metering box 12. A first valve is provided on both the feed pipe 15 and the discharge pipe 14. A rotating shaft 16 is rotatably connected inside the metering box 12. A first motor 17 is fixedly installed on the outer wall of one end of the metering box 12. The output end of the first motor 17 extends into the interior of the metering box 12 and is fixedly connected to one end of the rotating shaft 16. Multiple partitions 18 are arranged in a circular array at equal intervals on the outer wall of the rotating shaft 16. The end of the partition 18 away from the rotating shaft 16 is in contact with the inner wall of the metering box 12.
[0037] In use, multiple snap-fit seats 3 are arranged horizontally above the mixing tank 1 via support columns 2. Some snap-fit seats 3 are directly connected to the mixing tank 1 via connecting pipes 4 and are sealed by the first sealing cap 5, for adding basic ingredients that do not require quantitative measurement.
[0038] The storage bin 13 stores dyes or auxiliaries to be metered. The first valve on the feed pipe 15 is opened, and the material in the storage bin 13 flows into the metering bin 12 through the feed pipe 15. At this time, the first valve on the discharge pipe 14 is closed to prevent the material from directly entering the mixing tank 1. The first motor 17 drives the rotating shaft 16 to rotate, which drives the partition 18 to rotate inside the metering bin 12. The space formed by the adjacent partition 18 and the inner wall of the metering bin 12 is a fixed volume to realize the metering of the material. When the material in the metering bin 12 reaches the set amount, the valve on the feed pipe 15 is closed to stop feeding. At the same time, the valve on the discharge pipe 14 is opened, and the rotating shaft 16 continues to rotate, discharging the metered material into the mixing tank 1 through the discharge pipe 14 and the connecting pipe 4. The above steps are repeated. By controlling the rotation angle and speed of the rotating shaft 16, continuous and accurate metering can be achieved.
[0039] Multiple quantitative boxes 12 can be installed through the card slots 6 on both sides of the card holder 3 via the card plate 7. The card plate 7 is fixed by the limiting mechanism, which makes it easy to flexibly expand or replace different quantitative modules according to the dyeing needs, thereby improving the versatility of the device.
[0040] For example, such as Figure 2 , Figure 5 As shown, the present invention also includes a limiting mechanism comprising a groove 8 and a limiting ball 10; the groove 8 is respectively opened at the top and bottom of the snap-fit groove 6, and is equidistantly arranged and symmetrically positioned along the length of the snap-fit groove 6; the limiting ball 10 is disposed in the groove 8 and can be snapped into the limiting groove 9, and the end of the limiting ball 10 away from the limiting groove 9 is connected to the snap-fit seat 3 by a spring 11.
[0041] In use, the spring 11 in the groove 8 is in its natural state in the initial state, and the limiting ball 10 is partially exposed in the groove 8. When the clamping plate 7 is aligned with the clamping groove 6 and inserted, the edge of the clamping plate 7 presses against the limiting ball 10, the spring 11 is compressed, and the limiting ball 10 retracts into the groove 8, allowing the clamping plate 7 to slide smoothly. When the limiting groove 9 on the clamping plate 7 is aligned with the groove 8, the spring 11 rebounds and pushes the limiting ball 10 into the limiting groove 9, thereby fixing the clamping plate 7 in the horizontal and vertical directions and preventing it from loosening or shifting.
[0042] During disassembly, pull the card plate 7 out to one side. The edge of the limiting groove 9 exerts a pushing force on the limiting ball 10. After the limiting ball 10 is subjected to force, it compresses the spring 11 and retracts into the groove 8, releasing the lock on the card plate 7. The card plate 7 can then be smoothly pulled out from the locking groove 6, completing the disassembly.
[0043] For example, such as Figure 2As shown, the present invention also includes a second sealing cover 19 installed at the end of the metering box 12 away from the first motor 17, the second sealing cover 19 having a first viewing window 20, a third sealing cover 22 installed on the top of the storage box 13, and a second viewing window 21 opened on the same side of the storage box 13 as the first viewing window 20.
[0044] During use, a second sealing cover 19 is installed at the end of the metering tank 12 furthest from the first motor 17. Its main function is to seal one end of the metering tank 12 to prevent material leakage, ensure the airtightness of the metering tank 12, and maintain the stability of the internal working environment. The second sealing cover 19 is provided with a first viewing window 20. Through the first viewing window 20, the operator can observe the material condition inside the metering tank 12, such as the amount of material, the state of the material, whether there is blockage, and whether it is mixed evenly. During equipment operation, the operator can judge the working status inside the metering tank 12 based on the observed conditions and then adjust the equipment accordingly. For example, if it is found that the material in the metering tank 12 is low, it can be determined whether material needs to be added; if it is found that there is a blockage, the machine can be stopped in time for cleaning.
[0045] A third sealing cover 22 is installed on the top of the storage bin 13. Its function is to seal the top of the storage bin 13 to prevent external impurities from entering the storage bin 13, protect the material inside the storage bin 13 from contamination, and also prevent the material from evaporating or leaking. A second viewing window 21 is opened on the same side of the storage bin 13 as the first viewing window 20. Through the second viewing window 21, the operator can intuitively understand the remaining amount of material in the storage bin 13 and the storage status of the material, such as whether there is sediment or abnormal color change. In this way, when the material in the storage bin 13 is insufficient, the operator can replenish the material in time to avoid interruption of the batching process due to insufficient material. If any abnormality is found in the material, it can be dealt with in advance to ensure the quality of batching.
[0046] For example, such as Figure 3 As shown, the present invention also includes an auger 23 rotatably connected inside the ingredient tank 1, a plurality of staggered stirring rods 24 fixedly connected at equal intervals on the outer wall of the auger 23, and a second motor 25 fixedly installed on the outer wall of one end of the ingredient tank 1. The output shaft of the second motor 25 extends into the interior of the ingredient tank 1 and is fixedly connected to one end of the auger 23.
[0047] During use, after the second motor 25 starts, its output shaft rotates, transmitting power to the auger 23. Since the auger 23 is rotatably connected to the inside of the mixing tank 1, it begins to rotate under the drive of the second motor 25. Multiple stirring rods 24 fixedly connected to the outer wall of the auger 23 rotate together with the auger 23. The stirring rods 24 are arranged in an alternating pattern, which can stir the materials in the mixing tank 1 from different positions and angles during the rotation, so that the various ingredients are fully mixed evenly, which helps to improve the accuracy and consistency of dyeing ingredients. The rotation of the auger 23 can also generate axial conveying force, pushing the materials to move along the axial direction of the auger 23 in the mixing tank 1, so that the materials can form a certain flow in the tank while being stirred, avoiding the accumulation of materials in a certain position, further promoting the uniform mixing of materials, and ensuring the efficient operation of the entire mixing process.
[0048] For example, such as Figure 3 As shown, the present invention also includes a discharge pipe 26 fixedly connected to the bottom end of the mixing tank 1, and a second valve is provided on the discharge pipe 26.
[0049] During use, after mixing and stirring the ingredients in the batching tank 1, the ingredients are temporarily stored in the tank. When it is necessary to transfer the batched material to the next process or other equipment, the second valve on the discharge pipe 26 is opened. Under the action of gravity, the material in the batching tank 1 will flow out through the discharge pipe 26. The second valve controls the material discharge and can be adjusted according to actual needs to precisely control the discharge speed and flow rate to meet different production rhythms and process requirements. When discharge is complete or no longer needed, the second valve is closed to prevent further material flow, ensuring the storage of material in the batching tank 1 and preventing material leakage.
[0050] For example, such as Figure 1 , Figure 3 As shown, the present invention also includes four support legs 27 fixedly connected to the bottom end of the mixing tank 1, and a base plate 28 fixedly connected to the bottom end of the four support legs 27.
[0051] When in use, the four support legs 27 are evenly distributed at the bottom of the mixing tank 1. Their function is to support the mixing tank 1 and raise it a certain height off the ground. Since the support legs 27 are fixedly connected to the mixing tank 1, they can bear the weight of the mixing tank 1 and the material inside the tank, ensuring that the mixing tank 1 remains stable during operation and will not tip over or shake due to its own weight or vibrations caused by stirring or other operations.
[0052] The base plate 28, which is fixedly connected to the bottom end of the support leg 27, increases the contact area with the ground. This can distribute the weight of the mixing tank 1 and the materials to a larger area, reduce the pressure on the ground, prevent damage to the ground due to excessive local pressure, and further improve the stability of the mixing tank 1.
[0053] The four support legs 27 and the base plate 28 work together to keep the mixing tank 1 balanced under various working conditions. Whether it is in a static state or when the mixing tank 1 is being stirred or operated, they can effectively maintain the stability of the mixing tank 1, ensuring the normal operation of the equipment and the safety of the operators.
[0054] It should be noted that this utility model is a material dispensing device for fabric dyeing. The material dispensing tank 1 is stably placed in a suitable position by four support legs 27 and a base plate 28 to ensure the balance of the device. According to the dyeing requirements, a quantitative box 12 is installed in the snap-fit grooves 6 on both sides of the snap-fit seat 3 by means of a snap-fit plate 7. The snap-fit plate 7 is fixed by a limiting mechanism of limiting ball 10, spring 11, groove 8, and limiting groove 9. At the same time, a first sealing cap 5 is installed on the top of the connecting pipe 4 of part of the snap-fit seat 3 for adding basic materials that do not require quantitative dispensing.
[0055] Open the third sealing cover 22 of the storage tank 13, add the dye or auxiliary agent to be measured into the storage tank 13, and then close the third sealing cover 22 to prevent the material from being contaminated or volatilized. Open the first valve on the feed pipe 15, and the material in the storage tank 13 flows into the metering tank 12 through the feed pipe 15. At this time, close the first valve on the discharge pipe 14 to prevent the material from directly entering the mixing tank 1. Start the first motor 17, and its output shaft drives the rotating shaft 16 to rotate. The partition 18 on the rotating shaft 16 rotates accordingly. The fixed volume formed by the adjacent partition 18 and the inner wall of the metering tank 12 measures the material. When the material in the metering tank 12 reaches the set amount, close the valve on the feed pipe 15 to stop feeding. At the same time, open the valve on the discharge pipe 14, and the rotating shaft 16 continues to rotate, discharging the measured material into the mixing tank 1 through the discharge pipe 14 and the connecting pipe 4. Repeat the above feeding, metering, and discharging steps to achieve continuous and accurate metering.
[0056] The second motor 25 is started, and its output shaft transmits power to the auger 23. The auger 23 rotates, and the stirring rods 24 arranged in a staggered manner on the outer wall rotate together with the auger 23, stirring the materials in the mixing tank 1 from different positions and angles, so that the various ingredients are fully mixed and uniform. At the same time, the rotation of the auger 23 generates axial conveying force, which pushes the materials to flow in the mixing tank 1 and avoids material accumulation.
[0057] After the ingredients are mixed and stirred in the mixing tank 1, the second valve on the discharge pipe 26 is opened according to production needs. Under the action of gravity, the material in the mixing tank 1 flows out through the discharge pipe 26 and is transported to the next process or other equipment. The opening of the second valve is adjusted according to the actual production rhythm and process requirements to precisely control the discharge speed and flow rate. When the discharge is completed or the discharge is not required, the second valve is closed to ensure the storage of the material in the mixing tank 1 and prevent material leakage.
[0058] During equipment operation, the material status in the quantitative tank 12 can be observed through the first viewing window 20, such as the amount of material, whether it is blocked, and the mixing state; the remaining amount and storage status of the material in the storage tank 13 can be observed through the second viewing window 21, such as whether there is sedimentation or color change.
[0059] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claims. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A fabric dyeing ingredient dispensing device, comprising an ingredient dispensing tank (1), characterized in that, The ingredient tank (1) has multiple snap-fit seats (3) arranged horizontally above it. Each of the four corners of the bottom of the snap-fit seats (3) is provided with a support column (2) connected to the outer wall of the top of the ingredient tank (1). The bottom middle of the snap-fit seat (3) is connected to a connecting pipe (4). The bottom of the connecting pipe (4) is fixedly connected to the top of the ingredient tank (1). The top of several of the connecting pipes (4) is equipped with a first sealing cap (5). The snap-fit seats (3) have snap-fit grooves (6) on both sides. The snap-fit grooves (6) are snapped into the snap-fit plates (7). The top and bottom edges of the snap-fit plates (7) are provided with multiple equidistant limiting grooves (9). The snap-fit grooves (6) are provided with limiting mechanisms for limiting the snap-fit plates (7). A metering box (12) is provided directly above the card plate (7). A discharge pipe (14) is fixedly connected between the bottom end of the metering box (12) and the top end of the connecting pipe (4). A storage box (13) is provided directly above the metering box (12). A feed pipe (15) is fixedly connected between the bottom end of the storage box (13) and the top end of the metering box (12). A first valve is provided on both the feed pipe (15) and the discharge pipe (14). A rotating shaft (16) is rotatably connected inside the metering box (12). A first motor (17) is fixedly installed on the outer wall of one end of the metering box (12). The output end of the first motor (17) extends into the interior of the metering box (12) and is fixedly connected to one end of the rotating shaft (16). Multiple partitions (18) are arranged in an equidistant ring on the outer wall of the rotating shaft (16). The end of the partition (18) away from the rotating shaft (16) is in contact with the inner wall of the metering box (12).
2. The fabric dyeing feeder according to claim 1, characterized in that: The limiting mechanism includes a groove (8) and a limiting ball (10); the groove (8) is respectively opened at the top and bottom of the snap-fit groove (6), and is equidistant and symmetrical along the length of the snap-fit groove (6); the limiting ball (10) is located in the groove (8) and can be snapped into the limiting groove (9), and the end of the limiting ball (10) away from the limiting groove (9) is connected to the snap-fit seat (3) by a spring (11).
3. The fabric dyeing feeder according to claim 1, characterized in that: The metering box (12) is equipped with a second sealing cover (19) at the end away from the first motor (17). The second sealing cover (19) is provided with a first viewing window (20). The top of the storage box (13) is equipped with a third sealing cover (22). The storage box (13) is provided with a second viewing window (21) on the same side as the first viewing window (20).
4. The fabric dyeing feeder according to claim 1, characterized in that: The mixing tank (1) is rotatably connected to an auger (23). Multiple staggered stirring rods (24) are fixedly connected at equal intervals to the outer wall of the auger (23). A second motor (25) is fixedly installed on the outer wall of one end of the mixing tank (1). The output shaft of the second motor (25) extends into the interior of the mixing tank (1) and is fixedly connected to one end of the auger (23).
5. The fabric dyeing feeder according to claim 1, characterized in that: The bottom end of the mixing tank (1) is fixedly connected to the discharge pipe (26), and the discharge pipe (26) is provided with a second valve.
6. The fabric dyeing feeder according to claim 1, characterized in that: The bottom of the mixing tank (1) is fixedly connected to four support legs (27), and the bottom of the four support legs (27) is fixedly connected to a base plate (28).