A dyeing cylinder adjustable high-temperature gas-liquid dyeing machine
By using a rotating inner ring and split nozzle design, combined with a fan assembly and internal propulsion components, the problem of dyes being unable to penetrate deep into the fabric in high-temperature gas-liquid dyeing machines has been solved, achieving uniform dye distribution and efficient dyeing.
Patent Information
- Application Number
- CN202610786747.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2026-06-03
- Publication Date
- 2026-08-25
- Estimated Expiration
- 2046-06-03
AI Technical Summary
Existing adjustable high-temperature gas-liquid dyeing machines have the problem that dyes have difficulty penetrating deep into the fabric, resulting in shallow dyeing of the inner layers.
The design employs a rotating inner ring and a split nozzle, combined with a liquid pump and a fan assembly. The rotating inner ring drives the split nozzle to spray dye evenly, and the fan guides the diffusion of gaseous dye. Combined with the internal flow propulsion component to oscillate the dye, the dye is ensured to be evenly distributed.
It achieves uniform dyeing of the fabric surface and deep layers, avoiding fabric wear and dye contamination, and improving dyeing efficiency and quality.
Smart Images

Figure CN122304118B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the technical field of high-temperature gas-liquid dyeing machines, specifically a high-temperature gas-liquid dyeing machine with an adjustable dyeing cylinder. Background Technology
[0002] High-temperature gas-liquid dyeing machines are advanced textile dyeing equipment that combine airflow and overflow technologies to improve dyeing efficiency and quality. With their unique technological advantages and innovative design, they play a vital role in the textile industry. They not only improve dyeing efficiency and quality but also achieve energy conservation and emission reduction goals.
[0003] An existing high-temperature gas-liquid dyeing machine with adjustable dyeing tank (publication number CN223852980U) can adjust the internal space of the tank according to the size and length of the fabric to be dyed, reducing production costs while ensuring dyeing effect. However, when immersing the fabric, the dye often has difficulty penetrating to the deep layers of the fabric, resulting in the problem of shallow dyeing in the inner layers of the fabric. Therefore, improvements are needed. Summary of the Invention
[0004] To address the problem of light dyeing of the inner layer of fabrics in existing technologies, the technical solution adopted in this invention is: a high-temperature gas-liquid dyeing machine with an adjustable dyeing cylinder, comprising an outer casing, an inner guiding component, and a reflux component. The inner guiding component is respectively disposed on both sides of the inner wall of the outer casing, and the reflux component is disposed in the middle of the outer casing. The inner guiding component includes a rotating inner ring, a sleeve outer shell, a liquid pump, an upper adapter shell, a lower adapter shell, a transmission roller, and a snap-fit outer ring. The rotating inner ring can rotate relative to the upper and lower adapter shells, which are in a relatively fixed state. The top of the rotating inner ring is rotatably connected to the bottom of the upper adapter shell. The top of the upper adapter shell is inserted into the inner cavity of the outer container shell through a through-hole. The top of the upper adapter shell is sleeved on the outer surface of the snap-fit outer ring. The snap-fit outer ring is inserted into the outer surface of the outer container shell through a through-hole. The top of the lower adapter shell is rotatably connected to the bottom of the rotating inner ring, and the bottom end of the lower adapter shell extends to the storage area of the outer container shell. The inner wall of the sleeve shell is rotatably connected to the outer surface of the rotating inner ring. The top of the liquid pump is inserted into the inner cavity of the sleeve shell through a connecting pipe. Since the sleeve shell is fixed by the connecting pipe, the rotating inner ring will also rotate relative to the sleeve shell when it rotates. Leakage prevention measures are taken at the joint between the sleeve shell and the rotating inner ring to ensure that the dye entering the rotating inner ring will flow back to the bottom along the lower adapter shell. The inner cavity of the rotating inner ring is uniformly equipped with diverting nozzles, which are composed of... Figure 3It is known that the rotating inner ring is thinner than the two side adapter shells, so the diversion nozzle inserted into the inner cavity of the rotating inner ring will not scratch the fabric surface passing through the inner guide component. The two sides of the outer surface of the rotating inner ring are respectively connected to the upper and lower transmission rollers. The inner wall of the transmission roller is rotatably connected to the control motor through the rotating shaft. The upper control motor is inserted into the outer surface of the upper adapter shell through the clamping plate, and the lower control motor is inserted into the outer surface of the lower adapter shell through the clamping plate. After the liquid pump pressurizes and pumps the dye into the area between the sleeve shell and the rotating inner ring, it is sprayed out through the diversion nozzle of the rotating inner ring. The two side control motors drive the rotating inner ring to rotate independently by rotating the transmission rollers, so that the dye sprayed by the diversion nozzle sweeps around the outer surface of the fabric.
[0005] Furthermore, it also includes: A dye separator, the outer surface of which is inserted into the lower part of the inner wall of the outer container, and the area formed by the dye separator and the bottom of the inner wall of the outer container is used to fill dye. The enclosure opening is located at the front end of the outer container; A rear-mounted feed pump is provided, the front end of which is connected to the inner cavity of the outer container through a connecting pipe. The rear-mounted feed pump replenishes dye to the bottom part of the outer container. A fixed base, the top of which is inserted into the lower surface of the outer container shell; A fan mounting cylinder, the bottom of which is inserted into the upper part of the inner cavity of the outer casing; An observation slot is provided at the center of the top of the inner cavity of the outer container.
[0006] Furthermore, it also includes: A fan assembly, wherein the fan assembly is mounted on the upper part of the outer casing via a fan fixing cylinder; An external transmission component, wherein the external transmission component is disposed outside the fan fixed cylinder; The internal flow propulsion component, located inside the outer container, is used to agitate the dye in the lower layer of the dye separator.
[0007] Furthermore, the internal guide component also includes: The bottom of the liquid extraction tube has uniformly opened adsorption mesh holes at the bottom of its inner cavity, and the bottom end of the liquid extraction tube extends to the lower part of the dye partition through the insertion port. The upper part of the inner cavity of the liquid extraction tube is connected to the inner cavity of the liquid extraction pump through the connecting pipe. The liquid extraction pump extracts dye from the bottom area of the inner wall of the outer container shell through the liquid extraction tube and pressurizes it to the partition area between the outer shell and the rotating inner ring. A buffer base, the top of which is inserted into the shaft at the bottom of the pump, and the bottom of which is inserted into the upper surface of the dye separator.
[0008] Furthermore, the wind turbine assembly includes: A ducting fan, wherein a fastening outer disc is sleeved on the top of the ducting fan, the outer surface of the ducting fan is inserted into the inner wall of the fan fixing cylinder, and the lower surface of the fastening outer disc is sleeved on the top of the fan fixing cylinder. The two ends of the diversion pipe are respectively inserted into the inner cavity of the two side exhaust fans, and a filter port is opened in the middle of the outer surface of the diversion pipe. An air supply duct, the top end of which is inserted into the bottom of the inner cavity of the duct fan, and the bottom end of which is inserted into the middle of the inner cavity of the upper adapter shell.
[0009] Furthermore, the recirculation component includes: The built-in pump has its lower surface inserted into the middle of the upper surface of the dye separator, and a liquid supply pipe is inserted into the shaft at the bottom of the built-in pump, with the bottom end of the liquid supply pipe inserted into the inner cavity of the dye separator. The return branch pipe is symmetrically inserted on the left and right sides of the built-in pump, and the end of the return branch pipe away from the built-in pump is inserted into the inner cavity of the lower adapter shell. The bent tubes are symmetrically inserted into both sides of the top of the built-in pump cavity; The atomizing nozzle has two ends that are respectively inserted into the two sides of the inner cavity of the upper adapter shell. The end of the bent rotating tube away from the built-in pump is inserted into the inner cavity of the atomizing nozzle. The exhaust fan blows air from top to bottom into the interior of the upper adapter shell through the bottom air supply pipe. At this time, the atomized dye is sprayed into the axial part of the upper adapter shell through the openings on both sides. Under the action of the wind, the dye diffuses to the outer surface of the fabric to achieve the dyeing work.
[0010] Furthermore, the external transmission component includes: An external rotating machine, wherein the outer surface of the external rotating machine is inserted into the outer surface of the fan fixed cylinder, and a transmission connecting plate is sleeved on the outer surface of the rotating shaft of the external rotating machine; A push rod connecting plate, the two ends of which are respectively inserted into the bottom ends of the two side transmission connecting plates; The deflecting wheel has its outer surface connected to the end of the bottom rod of the push rod connecting plate away from the transmission connecting plate via an insert rod. The long rod at the axis of the deflecting wheel extends into the interior of the outer container housing, and an elliptical rotating rod is inserted at the axis of the deflecting wheel via the long rod.
[0011] Furthermore, the internal propulsion component includes: The side slide plate has its bottom end slidably connected to the inner cavity of the dye partition plate via a slide groove, and the outer surface of the side slide plate is pressed against the outer surface of the elliptical rotating rod. The inner sliding push block has its upper outer surface slidably connected to the lower surface of the dye partition, and its lower outer surface slidably connected to the inner wall of the outer container shell. The bottom end of the lateral sliding plate is inserted into the upper part of the inner sliding push block. A compression spring belt is symmetrically inserted on both sides of the outer surface of the inner sliding push block, and the other end of the compression spring belt is inserted into the inner wall of the outer container. The continuously rotating elliptical rod will periodically push the lateral slide plate towards the side closer to the container opening. The lateral slide plate is then pulled back to a position away from the container opening by the compression spring belt at the bottom. During this process, the dye partition and the dye solution filled in the inner wall of the outer container are continuously pushed by the inner sliding push block, causing the dye to oscillate.
[0012] The beneficial effects of this invention are as follows: 1. This device can pressurize the dye at the bottom of the outer container shell into the inside of the sleeve shell through a liquid pump, and then evenly spray it onto the outer surface of the fabric through a split nozzle. During this process, the rotating inner ring is continuously driven to rotate, thereby driving the split nozzle to evenly sweep across the outer surface of the fabric, ensuring uniform dyeing. At the same time, by increasing the hydraulic pressure, the dye sprayed by the split nozzle can have a stronger impact and penetration force, allowing the dye to quickly penetrate the deep areas of the fabric and avoid color difference problems in thick fabrics.
[0013] 2. When the rotating inner ring of the device drives the flow-dividing nozzle to rotate at high speed, the rotating inner ring is relatively thinner than the upper and lower adapter shells. Therefore, even if the fabric slides against the inner wall of the upper and lower adapter shells, it will not come into contact with the rotating inner ring and the flow-dividing nozzle. This avoids the problem of the fabric coming into contact with and wearing down the rotating inner ring and the flow-dividing nozzle at high speed, thus preventing pilling.
[0014] 3. The air supply fan pressurizes the filtered air from top to bottom into the interior of the upper transfer housing through the air supply pipe. Since the bottom opening of the upper transfer housing is tilted downwards, the gas sprayed from the air supply pipe can guide the fabric to slide faster along the inner guide component into the device, improving the dyeing efficiency of the fabric. On the other hand, it guides the gaseous dye sprayed from both sides of the atomizing nozzle to adhere to the outer surface of the fabric, while preventing the gaseous dye from seeping into the external environment from the outer ring of the clamp, thus avoiding pollution problems.
[0015] 4. After the dye is added to the bottom of the outer container, the internal particles easily settle at the bottom, which can cause the dye to separate into layers and result in different dyeing effects on the fabric. When dyeing the fabric inside the device, the lateral slide, under the combined action of the push of the elliptical rotating rod and the pull of the compression spring belt, drives the inner sliding push block to continuously vibrate the liquid dye at the bottom of the outer container, so that the dye particles that have settled at the bottom can be mixed with the dye on the upper layer. This avoids the problem of dye particles settling at the bottom, thus ensuring a uniform dye layer and improving the actual dyeing quality. Attached Figure Description
[0016] Figure 1 This is the front view of the present invention; Figure 2 This is a cross-sectional view of the outer casing of the present invention; Figure 3 This is a cross-sectional view of the upper-level adapter shell of the present invention; Figure 4 This is a cross-sectional view of the rotating inner ring of the present invention; Figure 5 This is a schematic diagram of the structure of the fan assembly of the present invention; Figure 6 This is a schematic diagram of the structure of the reflux component of the present invention; Figure 7 This is a schematic diagram of the structure of the external transmission component of the present invention; Figure 8 This is a schematic diagram of the internal propulsion component of the present invention.
[0017] In the diagram: 1. Outer casing; 2. Inner guide component; 3. Return component; 4. Outer transmission component; 5. Fan assembly; 6. Inner propulsion component; 11. Dye baffle; 12. Shell opening; 13. Rear feed pump; 14. Fixed base; 15. Fan mounting cylinder; 16. Observation slot; 21. Upper adapter shell; 22. Lower adapter shell; 23. Control motor; 24. Transmission roller; 25. Rotating inner ring; 26. Diverter nozzle; 27. Outer casing; 28. Connecting pipe; 29. 210. Liquid pump; 211. Buffer base; 212. Liquid pumping bottom pipe; 213. Snap-fit outer ring; 51. Diversion connecting pipe; 52. Snap-fit outer plate; 53. Drainage fan; 54. Air supply pipe; 31. Built-in pump; 32. Liquid supply pipe; 33. Return branch pipe; 34. Bending rotating pipe; 35. Atomizing nozzle; 41. External rotating mechanism; 42. Transmission connecting plate; 43. Push rod connecting plate; 44. Deflecting wheel; 45. Elliptical rotating rod; 61. Lateral sliding plate; 62. Inner sliding push block; 63. Compression spring belt. Detailed Implementation
[0018] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments. The embodiments of the present invention are given for illustrative and descriptive purposes only, and are not intended to be exhaustive or to limit the invention to the forms disclosed. Many modifications and variations will be apparent to those skilled in the art. The embodiments were chosen and described to better illustrate the principles and practical application of the invention, and to enable those skilled in the art to understand the invention and design various embodiments with various modifications suitable for a particular purpose.
[0019] Example 1, please refer to Figures 1-5This invention provides a technical solution: a high-temperature gas-liquid dyeing machine with an adjustable dyeing cylinder, comprising an outer casing 1, an inner guiding component 2, and a reflux component 3. The inner guiding component 2 is respectively disposed on both sides of the inner wall of the outer casing 1, and the reflux component 3 is disposed in the middle of the outer casing 1. The inner guide component 2 includes a rotating inner ring 25, a sleeve outer shell 27, a liquid pump 29, an upper adapter shell 21, a lower adapter shell 22, a transmission roller 24, and a snap-fit outer ring 212. The rotating inner ring 25 can rotate relative to the upper adapter shell 21 and the lower adapter shell 22, which are in a relatively fixed state. The top of the rotating inner ring 25 is rotatably connected to the bottom of the upper adapter shell 21. The top of the upper adapter shell 21 is inserted into the inner cavity of the outer container shell 1 through the through hole. The top of the upper adapter shell 21 is sleeved with the outer surface of the snap-fit outer ring 212. The snap-fit outer ring 212 is inserted into the outer surface of the outer container shell 1 through the through hole. The top of the lower adapter shell 22 is rotatably connected to the bottom of the rotating inner ring 25, and the bottom end of the lower adapter shell 22 extends to the storage area of the outer container shell 1. The inner wall of the sleeve shell 27 is rotatably connected to the outer surface of the rotating inner ring 25. The top of the liquid pump 29 is inserted into the inner cavity of the sleeve shell 27 through the insertion connecting pipe 28. Since the sleeve shell 27 is fixed by the insertion connecting pipe 28, the rotating inner ring 25 will also rotate relative to the sleeve shell 27 when it rotates. Leakage prevention measures are taken at the joint between the sleeve shell 27 and the rotating inner ring 25 to ensure that the dye entering the rotating inner ring 25 will flow back to the bottom along the lower adapter shell 22. The inner cavity of the rotating inner ring 25 is evenly provided with diverting nozzles 26, which are formed by... Figure 3 It is known that the rotating inner ring 25 is thinner than the two side adapter shells, so the diversion nozzle 26 inserted into the inner cavity of the rotating inner ring 25 will not scratch the fabric surface passing through the inner guide component 2. The two sides of the outer surface of the rotating inner ring 25 are respectively connected to the upper and lower transmission rollers 24. The inner wall of the transmission roller 24 is connected to the control motor 23 through the rotating shaft. The upper control motor 23 is inserted into the outer surface of the upper adapter shell 21 through the clamping plate, and the lower control motor 23 is inserted into the outer surface of the lower adapter shell 22 through the clamping plate. After the liquid pump 29 pressurizes and pumps the dye into the area inside the sleeve shell 27 and the rotating inner ring 25, it is sprayed out through the diversion nozzle 26 of the rotating inner ring 25. The two side control motors 23 drive the rotating inner ring 25 to rotate independently by rotating the transmission rollers 24, so that the dye sprayed by the diversion nozzle 26 sweeps around the outer surface of the fabric.
[0020] Also includes: The dye partition 11 has its outer surface inserted into the lower part of the inner wall of the outer container 1. The area formed by the dye partition 11 and the bottom of the inner wall of the outer container 1 is used to fill the dye. The shell opening 12 is located at the front end of the outer container shell 1; The rear feed pump 13 is connected to the inner cavity of the outer container 1 through a pipe. The rear feed pump 13 replenishes dye to the bottom part of the outer container 1. The top of the fixed base 14 is inserted into the lower surface of the outer container 1. The bottom of the fan fixing cylinder 15 is inserted into the upper part of the inner cavity of the outer container 1. An observation slot 16 is provided at the center of the top of the inner cavity of the outer container 1.
[0021] Also includes: Fan assembly 5, fan assembly 5 is installed on the upper part of outer casing 1 via fan fixing cylinder 15; External transmission component 4 is disposed outside the fan fixed cylinder 15; The internal flow propulsion component 6 is located inside the outer container shell 1 and is used to agitate the dye in the lower layer of the dye partition 11.
[0022] The inner guide component 2 also includes: The bottom of the bottom tube 211 is provided with uniformly opened adsorption mesh holes, and the bottom end of the bottom tube 211 extends to the lower part of the dye partition 11 through the insertion port. The upper part of the bottom tube 211 is connected to the inner cavity of the pump 29 through the connecting pipe. The pump 29 extracts dye from the bottom area of the inner wall of the outer container 1 through the bottom tube 211 and pressurizes it to the partition area between the outer shell 27 and the rotating inner ring 25. The top of the buffer base 210 is inserted into the shaft at the bottom of the liquid pump 29, and the bottom of the buffer base 210 is inserted into the upper surface of the dye partition 11.
[0023] The fabric is fed through the outer ring 212 and passes through the inner guide component 2. The fabric is dyed as it passes through the inner guide component 2. Then it slides along the lower adapter shell 22 into the storage area and is discharged by the fabric discharge wheel on the inner wall of the outer container shell 1, thus completing the dyeing process.
[0024] As the fabric passes through the inner guide component 2, the pump 29 located inside the outer container 1 draws dye from the bottom of the outer container 1 through the bottom pipe 211, and then pressurizes it into the interlayer between the inner sleeve 27 and the outer surface of the rotating inner ring 25. Subsequently, it is sprayed out onto the fabric sliding at the axis through the diversion nozzles 26 of the rotating inner ring 25. At this time, the control motor 23 located outside drives the rotating inner ring 25 to rotate at high speed by twisting the transmission roller 24, so that the surrounding diversion nozzles 26 rotate continuously around the outer surface of the fabric, thereby completely covering the outer surface of the fabric with the sprayed dye.
[0025] After the liquid dye sprayed from the split nozzle 26 is sprayed onto the outer surface of the fabric, a large amount of dye will flow downward along the lower transfer shell 22. At this time, the built-in pump 31 located in the middle will draw the dye flowing back inside the lower transfer shell 22 through the return branch pipes 33 on both sides. Then, after being pressurized, it will be transported to the atomizing nozzle 35 through the bent pipe 34. Subsequently, the atomizing nozzle 35 will spray the atomized dye into the interior of the upper transfer shell 21 in the form of gaseous particles through the ends of both ends, performing pre-dyeing processing before the fabric is dyed by the liquid sprayed from the split nozzle 26.
[0026] Example 2, please refer to Figures 1-8 The present invention provides a technical solution: based on embodiment 1, the fan assembly 5 includes: The top of the induced flow fan 53 is fitted with a fastening outer plate 52. The outer surface of the induced flow fan 53 is inserted into the inner wall of the fan fixing cylinder 15, and the lower surface of the fastening outer plate 52 is fitted into the top of the fan fixing cylinder 15. The two ends of the diversion pipe 51 are respectively inserted into the inner cavity of the two side exhaust fans 53, and a filter port is opened in the middle of the outer surface of the diversion pipe 51. The top end of the air supply pipe 54 is inserted into the bottom of the inner cavity of the duct fan 53, and the bottom end of the air supply pipe 54 is inserted into the middle of the inner cavity of the upper adapter shell 21.
[0027] The return flow component 3 includes: The built-in pump 31 has its lower surface inserted into the middle of the upper surface of the dye partition 11. A liquid supply pipe 32 is inserted into the shaft at the bottom of the built-in pump 31, and the bottom end of the liquid supply pipe 32 is inserted into the inner cavity of the dye partition 11. Return branch pipe 33 is symmetrically inserted on the left and right sides of the built-in pump 31, and the end of the return branch pipe 33 away from the built-in pump 31 is inserted into the inner cavity of the lower adapter shell 22. The bent tube 34 is symmetrically inserted into both sides of the top of the inner cavity of the built-in pump 31. The atomizing nozzle 35 has two ends that are respectively inserted into the two sides of the inner cavity of the upper adapter shell 21. The end of the bent rotating tube 34 away from the built-in pump 31 is inserted into the inner cavity of the atomizing nozzle 35. The duct fan 53 blows directly from top to bottom into the interior of the upper adapter shell 21 through the bottom air supply pipe 54. At this time, the atomized dye is sprayed into the axial part of the upper adapter shell 21 through the openings on both sides. Under the action of wind, the dye diffuses to the outer surface of the fabric to achieve the dyeing work.
[0028] External transmission component 4 includes: An external rotating machine 41 is inserted into the outer surface of the fan fixed cylinder 15, and a transmission connecting plate 42 is sleeved on the outer surface of the rotating shaft of the external rotating machine 41. The push rod connecting plate 43 has two ends that are respectively inserted into the bottom ends of the two side transmission connecting plates 42; The deflecting wheel 44 has an outer surface that is connected to the bottom end of the push rod connecting plate 43 away from the transmission connecting plate 42 via a plug rod. The long rod at the axis of the deflecting wheel 44 extends into the interior of the outer container 1, and an elliptical rotating rod 45 is inserted at the axis of the deflecting wheel 44 via a long rod.
[0029] The internal flow propulsion component 6 includes: The bottom end of the lateral slide plate 61 is slidably connected to the inner cavity of the dye partition plate 11 through a sliding groove, and the outer surface of the lateral slide plate 61 is pressed against the outer surface of the elliptical rotating rod 45. The inner sliding push block 62 has its upper outer surface slidably connected to the lower surface of the dye partition 11, and its lower outer surface slidably connected to the inner wall of the outer container shell 1. The bottom end of the lateral sliding plate 61 is inserted into the upper part of the inner sliding push block 62. A compression spring band 63 is symmetrically inserted on both sides of the outer surface of the inner sliding push block 62, and the other end of the compression spring band 63 is inserted into the inner wall of the outer container 1. The continuously rotating elliptical rotating rod 45 will periodically push the side slide plate 61 towards the side closer to the shell opening 12. The side slide plate 61 is then pulled back to a position away from the shell opening 12 by the compression spring band 63 at the bottom. During this process, the dye partition 11 and the dye solution filled in the inner wall of the outer container 1 are continuously pushed by the inner sliding push block 62, causing the dye to oscillate.
[0030] The duct fan 53 absorbs externally filtered air through the diversion pipe 51, and then pressurizes it from top to bottom into the upper adapter shell 21 through the air supply pipe 54. Since the bottom opening of the upper adapter shell 21 is biased downwards, the gas sprayed out of the air supply pipe 54 can guide the fabric to slide faster along the inner guide component 2 into the device, and guide the gaseous dye sprayed on both sides of the atomizing nozzle 35 to adhere to the outer surface of the fabric. At the same time, it prevents the gaseous dye from penetrating into the external environment from the snap ring 212, thus avoiding pollution problems.
[0031] When the fabric is thin, direct liquid immersion will result in a darker dyeing and consume more dye. In this case, the liquid pump 29 will stop working and the built-in pump 31 will be started separately. The built-in pump 31 will draw dye directly from the bottom dye area of the outer container 1 through the liquid supply pipe 32 at the bottom, and then spray the gaseous dye onto the outer surface of the fabric through the atomizing nozzle 35 to achieve the dyeing process.
[0032] When dyeing fabric inside the device, the external transmission component 4 will work periodically. Its external rotating machine 41 will drive the reciprocating push rod connecting plate 43 to twist the deflecting wheel 44 and the elliptical rotating rod 45 by rotating the transmission connecting plate 42. When the elliptical rotating rod 45 rotates, it will push the side slide plate 61 to slide. Under the combined action of the thrust of the elliptical rotating rod 45 and the tension of the compression spring belt 63, the side slide plate 61 will drive the inner sliding push block 62 to continuously oscillate the liquid dye at the bottom of the outer container shell 1, so that the dye particles at the bottom will remix with the dye on the upper layer, ensuring that the dye color layer is uniform.
[0033] Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of them. All other embodiments obtained by those skilled in the art and related fields based on the embodiments of the present invention without inventive effort should fall within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described and explained in the present invention, unless otherwise specified or limited, shall be implemented according to conventional means in the art.
Claims
1. A high-temperature gas-liquid dyeing machine with adjustable dyeing cylinder, comprising an outer casing (1), an inner guiding component (2), and a reflux component (3), wherein the inner guiding component (2) is respectively disposed on both sides of the inner wall of the outer casing (1), and the reflux component (3) is disposed in the middle of the outer casing (1): Its features are: The inner guide component (2) includes a rotating inner ring (25), a sleeve outer shell (27), a liquid pump (29), an upper adapter shell (21), a lower adapter shell (22), a transmission roller (24), and a snap-fit outer ring (212). The top of the rotating inner ring (25) is rotatably connected to the bottom of the upper adapter shell (21). The top of the upper adapter shell (21) is inserted into the inner cavity of the outer container shell (1) through a through-hole. The top of the upper adapter shell (21) is sleeved with the outer surface of the snap-fit outer ring (212). The snap-fit outer ring (212) is inserted into the outer surface of the outer container shell (1) through a through-hole. The top of the lower adapter shell (22) is rotatably connected to the bottom of the rotating inner ring (25), and the bottom end of the lower adapter shell (22) extends to the storage area of the outer container shell (1). The inner wall of the sleeve shell (27) is rotatably connected to the outer surface of the rotating inner ring (25). The top of the liquid pump (29) is inserted into the inner cavity of the sleeve shell (27) through the insertion connecting pipe (28). The inner cavity of the rotating inner ring (25) is uniformly provided with diversion nozzles (26). The two sides of the outer surface of the rotating inner ring (25) are respectively connected to the upper and lower transmission rollers (24). The inner wall of the transmission rollers (24) is connected to the control motor (23) through the rotating shaft. The upper control motor (23) is inserted into the outer surface of the upper adapter shell (21) through the clamping plate, and the lower control motor (23) is inserted into the outer surface of the lower adapter shell (22) through the clamping plate. After the liquid pump (29) pressurizes the dye into the area inside the sleeve shell (27) and the rotating inner ring (25), it is sprayed out through the diversion nozzles (26) of the rotating inner ring (25). The control motors (23) on both sides drive the rotating inner ring (25) to rotate independently by rotating the transmission rollers (24), so that the dye sprayed by the diversion nozzles (26) sweeps around the outer surface of the fabric. Dye partition (11), the outer surface of which is inserted into the lower part of the inner wall of the outer container (1); Fan assembly (5); The fan assembly (5) includes a diversion fan (53); Air supply pipe (54), the top end of the air supply pipe (54) is inserted into the bottom of the inner cavity of the duct fan (53), and the bottom end of the air supply pipe (54) is inserted into the middle of the inner cavity of the upper adapter shell (21). The recirculation component (3) includes: Built-in pump (31), the lower surface of the built-in pump (31) is inserted into the middle of the upper surface of the dye partition (11), and a liquid supply pipe (32) is inserted into the shaft at the bottom of the built-in pump (31), and the bottom end of the liquid supply pipe (32) is inserted into the inner cavity of the dye partition (11). Return branch pipe (33), the return branch pipe (33) is symmetrically inserted into the left and right sides of the built-in pump (31), and the end of the return branch pipe (33) away from the built-in pump (31) is inserted into the inner cavity of the lower adapter shell (22); The bent tube (34) is symmetrically inserted into both sides of the top of the inner cavity of the built-in pump (31); Atomizing nozzle (35) with both ends inserted into the inner sides of the upper adapter shell (21) respectively, and the end of the bent rotating tube (34) away from the built-in pump (31) inserted into the inner cavity of the atomizing nozzle (35).
2. The adjustable high-temperature gas-liquid dyeing machine according to claim 1, characterized in that: Also includes: The shell opening (12) is located at the front end of the outer container shell (1); A rear-mounted feed pump (13) is connected to the inner cavity of the outer container (1) via a connecting pipe. A fixed base (14) is attached to the bottom surface of the outer container (1). Fan fixing cylinder (15), the bottom of which is inserted into the upper part of the inner cavity of the outer container (1); An observation slot (16) is provided at the center of the top of the inner cavity of the outer container (1).
3. The adjustable high-temperature gas-liquid dyeing machine according to claim 2, characterized in that: Also includes: The fan assembly (5) is mounted on the upper part of the outer casing (1) via a fan fixing cylinder (15); An external transmission component (4) is disposed outside the fan fixed cylinder (15); An internal flow propulsion component (6) is located inside the outer container shell (1) and is used to agitate the dye in the lower layer of the dye separator (11).
4. The adjustable high-temperature gas-liquid dyeing machine according to claim 2, characterized in that: The inner guide component (2) further includes: The bottom of the liquid extraction tube (211) has uniformly opened adsorption mesh holes at the bottom of its inner cavity, and the bottom end of the liquid extraction tube (211) extends to the lower part of the dye partition (11) through the insertion port. The upper part of the inner cavity of the liquid extraction tube (211) is connected to the inner cavity of the liquid extraction pump (29) through the connecting pipe. The buffer base (210) is inserted at the top of the buffer base (210) and at the bottom of the pump (29). The bottom of the buffer base (210) is inserted at the upper surface of the dye partition (11).
5. The adjustable high-temperature gas-liquid dyeing machine according to claim 3, characterized in that: The wind turbine assembly (5) includes: The top of the induced flow fan (53) is fitted with a fastening outer plate (52), the outer surface of the induced flow fan (53) is inserted into the inner wall of the fan fixing cylinder (15), and the lower surface of the fastening outer plate (52) is fitted with the top of the fan fixing cylinder (15). The two ends of the diversion pipe (51) are respectively inserted into the inner cavity of the two side flow fans (53), and a filter port is opened in the middle of the outer surface of the diversion pipe (51).
6. The adjustable high-temperature gas-liquid dyeing machine according to claim 3, characterized in that: The external transmission component (4) includes: An external rotating machine (41) is inserted into the outer surface of the fan fixing cylinder (15), and a transmission connecting plate (42) is sleeved on the outer surface of the rotating shaft of the external rotating machine (41). Push rod connecting plate (43), the two ends of which are respectively inserted into the bottom ends of the two side transmission connecting plates (42); The deflection wheel (44) has its outer surface connected to the bottom end of the push rod connecting plate (43) away from the transmission connecting plate (42) via a plug rod. The long rod at the center of the deflection wheel (44) extends into the interior of the outer container shell (1), and an elliptical rotating rod (45) is plugged into the center of the deflection wheel (44) via a long rod.
7. The adjustable high-temperature gas-liquid dyeing machine according to claim 6, characterized in that: The internal propulsion component (6) includes: The bottom end of the side slide plate (61) is slidably connected to the inner cavity of the dye partition plate (11) through a sliding groove, and the outer surface of the side slide plate (61) is pressed against the outer surface of the elliptical rotating rod (45). The upper part of the outer surface of the inner sliding push block (62) is slidably connected to the lower surface of the dye partition (11), the lower part of the outer surface of the inner sliding push block (62) is slidably connected to the inner wall of the outer container shell (1), and the bottom end of the side slide plate (61) is inserted into the upper part of the inner sliding push block (62). A compression spring band (63) is symmetrically inserted on both sides of the outer surface of the inner sliding block (62), and the other end of the compression spring band (63) is inserted into the inner wall of the outer container (1).
Citation Information
Patent Citations
High-temperature gas-liquid dyeing machine with adjustable dyeing cylinder body
CN223852980U
Mist spraying dyeing machine
CN105420961A
Textile fabric spraying device
CN110965227A