Yarn steaming machine for textile fabric

The multi-drive structure of the worm driven by a high-temperature resistant motor and the servo motor solves the problems of fixed steam nozzles and uneven steam circulation in the fabric steaming machine, achieves uniformity and efficiency improvement of fabric steaming, and ensures uniform heating of textile fabrics and energy-saving effects.

CN120625290AInactive Publication Date: 2025-09-12NANTONG JINYINHE TEXTILES CO LTD
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Patent Information

Application Number
CN202510766566.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-10
Publication Date
2025-09-12
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In the existing fabric steaming machine, the steam nozzle is fixed during the steaming process, which makes it difficult for the fabric roll to directly contact it, resulting in uneven steaming. The circulating air duct requires an independent drive structure and the steam circulation is unidirectional, causing hot air to be concentrated in a specific area, resulting in uneven heating of the fabric.

Method used

A high-temperature resistant motor is used to drive the worm and worm gear to support the synchronous rotation of the round tube and the net cylinder. The servo motor is combined to drive the annular tube and spiral blade fan to achieve the rotation of the steam nozzle and the uniform distribution of steam. The multi-drive structure improves the uniformity and efficiency of yarn steaming.

Benefits of technology

The uniformity and efficiency of steaming the fabric are improved, dead corners of steam and hot air concentration are avoided, and the textile fabrics in all parts are evenly heated, which improves the steaming quality and energy-saving effect.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The textile fabric yarn steaming machine comprises a yarn steaming box body, the end, away from a steam generator, of a steam main pipe penetrates through the yarn steaming box body and is connected with a connecting pipe through a rotating connector, and the inner wall of the bottom of the side, close to the steam generator, of the yarn steaming box body is fixedly connected with a steam distribution chamber; the steam distribution chamber is connected with the connecting pipe through a rotating joint, the end, away from the connecting pipe, of the steam distribution chamber is movably connected with a supporting circular pipe through a rotating joint, the outer wall of the supporting circular pipe is fixedly connected with a net cylinder through a supporting rod, and first steam nozzles are arranged on the outer wall of the supporting circular pipe; according to the yarn steaming and color fixing device, the supporting round pipe and the net cylinder rotate synchronously, so that the first steam spray head can rotationally spray steam to the surface of a surrounding cloth roll through the net cylinder, meanwhile, the cloth roll can be driven to rotate synchronously through rotation, the yarn steaming and color fixing uniformity is improved, and cloth in the cloth frame can be evenly steamed as well.
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Description

Technical Field

[0001] The present application relates to the field of textile manufacturing, and more specifically, to a textile fabric steaming machine. Background Art

[0002] After dyeing, textile fabrics need to be pushed into a steamer for color fixation. The steamer uses high-temperature steam to raise the temperature of the dye attached to the fabric or yarn, thereby transferring the dye into the fabric fibers and achieving the effect of color fixation. After searching, the existing patent (publication number: CN112176580A) discloses a spray-intensive yarn steaming machine, which belongs to the field of textile manufacturing. The invention includes a yarn steaming cylinder, which includes an inner cylinder and an outer cylinder. One end of the inner cylinder and the outer cylinder is fixedly connected to a cover plate, and the other end is hinged with an end cover. An air inlet pipe is provided on the outer cylinder, and a cavity for accommodating steam is formed between the inner cylinder and the outer cylinder. The air inlet pipe is connected to a vacuum pump and a heating water tank through pipes. The dry air in the inner cylinder and the yarn is extracted by the vacuum pump, and a negative pressure is generated in the inner cylinder. The saturated steam in the heating water tank can quickly penetrate into the yarn through the air inlet hole through the air inlet pipe and quickly reach equilibrium, so that the temperature and humidity inside and outside the yarn are uniform. Several groups of air inlet holes are evenly distributed along the circumferential direction on the inner wall of the inner cylinder, thereby realizing all-round spraying of the yarn cylinder, ensuring uniform humidification of the yarn cylinder, and avoiding temperature differences inside the yarn steamer. In the process of realizing this application, the inventor found that the existing technology has the following problems: In existing cloth steaming machines, steam nozzles are often fixed around the inner wall during the steaming process, making it difficult for steam to directly contact the cloth roll inside the cloth rack. In addition, the cloth roll is often fixed during the steaming process, making it difficult to steam the yarn from multiple angles. At the same time, when steam is circulated through the circulating air duct, an independent drive structure is often required, and the steam is often circulated in one direction during the circulation process. Hot air may be concentrated in a specific area, resulting in uneven heating of the cloth roll. Therefore, a textile fabric steaming machine is proposed to address the above problems. Summary of the Invention

[0003] In order to overcome the above-mentioned defects of the prior art, the present application provides a textile fabric steaming machine to solve the problems raised in the above-mentioned background technology.

[0004] To achieve the above-mentioned purpose, the present application provides the following technical solution: a textile fabric yarn steaming machine, comprising a yarn steaming box body, an outer wall of one side of the yarn steaming box body is provided with a steam generator, an output end of the steam generator is connected to a steam main pipe, an end of the steam main pipe away from the steam generator passes through the yarn steaming box body and is connected to a connecting pipe through a rotary joint, a bottom inner wall of the yarn steaming box body close to the steam generator is fixedly connected to a steam diversion chamber, the steam diversion chamber and the connecting pipe are connected through a rotary joint, the end of the steam diversion chamber away from the connecting pipe is movably connected to a supporting circular tube through a rotary joint, the supporting circular tubes are arranged on one side of the steam diversion chamber, a driving box is fixedly connected to one side of the steam diversion chamber, one end of the supporting circular tube passes through the driving box and extends into the yarn steaming box body, and the supporting circular tube and the driving box are connected through a bearing; The outer wall of one side of the supporting circular tube located in the driving box is fixedly connected to a worm gear, the inner wall of the driving box is arranged with worms, and multiple groups of worms are respectively engaged with the worm gears at corresponding positions. The bottom outer wall of the driving box is arranged with a high-temperature resistant motor, the output end of the high-temperature resistant motor is connected to the worm gear, the outer wall of the high-temperature resistant motor is provided with a waterproof cover, the outer wall of the supporting circular tube is fixedly connected to a mesh cylinder through a support rod, and the outer wall of the supporting circular tube is arranged with a No. 1 steam nozzle.

[0005] Preferably, the top of the connecting tube is connected to a diversion pipe through a tee, the middle inner wall of the yarn steaming box is provided with an annular groove, the middle of the annular groove is embedded with a rotating ring, the rotating ring and the annular groove are slidably connected, the inner wall of the rotating ring is connected to an annular tube, the diversion pipe is connected to the annular tube at one end away from the connecting tube, the inner wall of the annular tube is connected to a movable connecting pipe through a universal joint, the end of the movable connecting pipe is connected to the No. 2 steam nozzle, the bottom inner wall of the yarn steaming box is fixedly connected to a fixing frame, the top of the fixing frame is connected to an arc groove ring, and the middle of the movable connecting pipe is embedded in the sliding groove of the arc groove ring.

[0006] Preferably, the outer wall of the rotating ring is surrounded by a tooth groove, the top outer wall of the yarn steaming box is fixedly connected to a transmission box, the bottom end of the transmission box is connected to the top of the annular groove, the middle inner wall of the transmission box is connected to a drive shaft through a bearing, the outer wall of the drive shaft is fixedly connected to a gear, and the gear is meshed with the tooth groove.

[0007] Preferably, a circulating air duct is provided on one side of the transmission box, the air inlet and air outlet ends of the circulating air duct are both connected to the yarn steaming box body, one end of the drive shaft passes through the transmission box and the circulating air duct and extends to the inner wall of the circulating air duct, and the end of the drive shaft is connected to the inner wall of the circulating air duct through a bearing.

[0008] Preferably, the outer wall of the driving shaft located inside the circulating air duct is fixedly connected to a No. 1 bevel gear, the inner wall of one side of the circulating air duct is fixedly connected to a blade frame, the middle part of the blade frame is connected to a rotating shaft through a bearing, the bottom end of the rotating shaft is connected to a No. 2 bevel gear, the No. 2 bevel gear is meshed with the No. 1 bevel gear, and the middle outer wall of the rotating shaft is fixedly connected to a spiral blade.

[0009] Preferably, a servo motor is fixedly connected to the outer wall of the transmission box on one side away from the circulating air duct, and the output end of the servo motor is fixedly connected to the drive shaft. The servo motor drives the drive shaft to rotate, and the rotation of the drive shaft drives the gear and the No. 1 bevel gear to rotate synchronously. The rotation of the gear drives the tooth groove to rotate, thereby driving the rotating ring and the annular tube to rotate.

[0010] Preferably, the opening of the yarn steaming box is connected to a sealed door by a hinge, the bottom inner wall of the yarn steaming box is connected to a support frame, limiting paths are provided on both sides of the top outer wall of the support frame, limiting grooves are provided on both side inner walls of the support frame, a cloth rack is provided on the top of the support frame, the bottom end of the cloth rack is connected to a roller, the roller matches the limiting path, the outer walls on both sides of the cloth rack are connected to limiting sliders, and the limiting sliders match the limiting grooves.

[0011] Preferably, a temperature and humidity sensor is provided on the inner wall of one side of the yarn steaming box, a control panel is provided on the outer wall of one side of the yarn steaming box, an exhaust pipe is provided on one side of the control panel, a pressure relief valve is provided in the middle of the exhaust pipe, the end of the exhaust pipe is connected to a heat exchange box, an air pipe is provided on the top side of the yarn steaming box, and an electromagnetic valve is provided in the middle of the air pipe.

[0012] The technical effects and advantages of this application are: Compared with the existing technology, this textile fabric steaming machine drives the worm to rotate through a high-temperature resistant motor when steaming yarn. The rotation of the worm drives multiple sets of worm gears to rotate. The rotation of the worm gears drives the supporting circular tube and the mesh cylinder to rotate synchronously, so that the No. 1 steam nozzle can rotate to spray steam through the mesh cylinder to the surface of the surrounding fabric roll, thereby improving the uniformity of yarn steaming and color fixing, and can make the fabric inside the fabric frame also steamed uniformly. The mesh cylinder can rotate synchronously with the supporting circular tube to drive the fabric in contact with it to rotate, and the fabric rotates following the rotation of the mesh cylinder, thereby improving the uniformity of contact with steam, thereby improving the quality and efficiency of yarn steaming.

[0013] Compared with the existing technology, this textile fabric steaming machine can rotate in the annular groove through the rotating ring, thereby driving the annular tube to rotate synchronously, and driving the No. 2 steam nozzle to rotate during the synchronous rotation. The steam enters the annular tube through the diversion pipe and is ejected through the No. 2 steam nozzle. During the rotation, the No. 2 steam nozzle can improve the uniformity of the steam and avoid dead corners. At the same time, during the rotation, the movable connecting pipe always swings left and right along the shape of the arc groove in the arc groove ring, thereby driving the No. 2 steam nozzle to swing, so that the No. 2 steam nozzle rotates and sprays air while swinging back and forth left and right, further improving the uniformity of the steaming yarn.

[0014] Compared with the existing technology, this textile fabric steaming machine can drive the rotation of the annular tube and the spiral blade fan at the same time through the servo motor, thereby achieving a multiple-drive effect and improving the energy-saving effect of the device. At the same time, the reciprocating rotation of the drive shaft can drive the spiral blade fan to switch between forward and reverse rotation. When the air is supplied in the forward direction, the hot air may be concentrated in a specific area, resulting in uneven heating of the textile fabric. The brief reversal of the spiral blade fan can disrupt the original airflow path, promote the hot air to diffuse more evenly in the yarn steaming box, ensure that the textile fabric in all parts is evenly heated, and avoid excessive or insufficient steam in some areas. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 This is a schematic diagram of the overall structure of this application; Figure 2 This is a schematic diagram of the connection structure between the supporting circular tube and the mesh cylinder for this application; Figure 3 This is a schematic diagram of the internal structure of the transmission box of this application; Figure 4 This is a schematic diagram of the connection structure between the arc-shaped groove ring and the movable connecting pipe of the present application; Figure 5 This is a schematic diagram of the connection structure between the support frame and the fabric frame of this application; The accompanying drawings are marked as follows: 1. yarn steaming box; 2. steam generator; 3. steam main pipe; 4. connecting pipe; 5. steam diversion chamber; 6. supporting circular pipe; 7. driving box; 8. worm gear; 9. worm; 10. high temperature resistant motor; 101. waterproof cover; 11. support rod; 12. net cylinder; 13. steam nozzle No. 1; 14. three-way head; 15. diversion pipe; 16. annular groove; 17. rotating ring; 18. annular pipe; 19. movable connecting pipe; 20. steam nozzle No. 2; 21. fixing frame; 22. arc groove ring; 23 , tooth groove; 24, transmission box; 25, drive shaft; 26, gear; 27, circulating air duct; 28, No. 1 bevel gear; 29, blade fan frame; 30, rotating shaft; 31, No. 2 bevel gear; 32, spiral blade fan; 33, servo motor; 34, sealing door; 35, support frame; 36, limit channel; 37, limit slot; 38, fabric rack; 39, roller; 40, limit slider; 41, temperature and humidity sensor; 42, control panel; 43, exhaust pipe; 44, heat exchange box; 45, air pipe; 46, solenoid valve. DETAILED DESCRIPTION

[0016] The following will be combined with the drawings in the embodiments of this application to clearly and completely describe the technical solutions in the embodiments of this application. Obviously, the embodiments described are only part of the embodiments of this application, not all of the embodiments. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this application. Example

[0017] As attached Figures 1 to 5 The textile fabric yarn steaming machine shown in the figure includes a yarn steaming box body 1, a steam generator 2 is provided on one outer wall of the yarn steaming box body 1, the output end of the steam generator 2 is connected to a steam main pipe 3, the end of the steam main pipe 3 away from the steam generator 2 passes through the yarn steaming box body 1 and is connected to a connecting pipe 4 through a rotary joint, a steam diversion chamber 5 is fixedly connected to the inner wall of the bottom of the yarn steaming box body 1 on the side close to the steam generator 2, the steam diversion chamber 5 and the connecting pipe 4 are connected through a rotary joint, the end of the steam diversion chamber 5 away from the connecting pipe 4 is movably connected to a supporting circular tube 6 through a rotary joint, the supporting circular tubes 6 are arranged on one side of the steam diversion chamber 5, and a driving box 7 is fixedly connected to one side of the steam diversion chamber 5, one end of the supporting circular tube 6 passes through the driving box 7 and extends into the yarn steaming box body 1, and the supporting circular tube 6 and the driving box 7 are connected through a bearing; The outer wall of one side of the supporting circular tube 6 located in the driving box 7 is fixedly connected to a worm gear 8, the inner wall of the driving box 7 is arranged with worm gears 9, and multiple groups of worm gears 9 are respectively engaged with the corresponding worm gears 8. The bottom outer wall of the driving box 7 is arranged with a high-temperature resistant motor 10, the output end of the high-temperature resistant motor 10 is connected to the worm gear 9, and the outer wall of the high-temperature resistant motor 10 is provided with a waterproof cover 101. The outer wall of the supporting circular tube 6 is fixedly connected to the mesh tube 12 through the support rod 11, and the outer wall of the supporting circular tube 6 is arranged with a No. 1 steam nozzle 13.

[0018] Among them, the yarn steaming box 1 is the main frame part of the entire device. The steam generator 2 can generate steam and transport the steam to the steam main pipe 3. During the yarn steaming process, the steam is conducted to the connecting pipe 4 through the steam main pipe 3 and then transported to the steam diversion chamber 5 and the diversion pipe 15 through the connecting pipe 4. The steam entering the steam diversion chamber 5 is evenly transported to multiple groups of supporting circular tubes 6, and then the steam is sprayed out through the No. 1 steam nozzle 13 to steam and fix the yarn. During the yarn steaming process, the positions of the cloth rack 38 and the supporting circular tube 6 are matched with each other, so that the cloth roll and the mesh cylinder 12 can be abutted. When steaming, the worm 9 is driven by the high-temperature resistant motor 10 to rotate The worm 9 rotates to drive multiple groups of worm gears 8 to rotate, and the rotation of the worm gear 8 drives the supporting circular tube 6 and the mesh cylinder 12 to rotate synchronously, so that the No. 1 steam nozzle 13 can rotate to spray steam through the mesh cylinder 12 to the surface of the surrounding cloth roll, thereby improving the uniformity of yarn steaming and color fixing, and can make the cloth inside the cloth rack 38 equally evenly steamed. The mesh cylinder 12 can rotate synchronously with the supporting circular tube 6 to drive the cloth in contact with it to rotate. At the same time, the mesh cylinder 12 can avoid direct contact between the No. 1 steam nozzle 13 and the cloth. The cloth rotates along with the rotation of the mesh cylinder 12, thereby improving the uniformity of contact with the steam, thereby improving the quality and efficiency of the steaming. Example

[0019] Based on Example 1, the solution in Example 1 is further detailed in combination with the following specific working methods. Figures 1 to 5 As shown, see the following description for details: As a preferred embodiment, the top of the connecting pipe 4 is connected to a diverter pipe 15 through a tee head 14, and the middle inner wall of the yarn steaming box 1 is provided with an annular groove 16, and a rotating ring 17 is embedded in the middle of the annular groove 16. The rotating ring 17 is slidably connected to the annular groove 16, and the inner wall of the rotating ring 17 is connected to an annular pipe 18. The end of the diverter pipe 15 away from the connecting pipe 4 is connected to the annular pipe 18, and the inner wall of the annular pipe 18 is connected to a movable connecting pipe 19 through a universal joint. The end of the movable connecting pipe 19 is connected to the No. 2 steam nozzle 20, and the bottom inner wall of the yarn steaming box 1 is fixedly connected to a fixing frame 21, and the top of the fixing frame 21 is connected to an arc groove ring 22, and the middle part of the movable connecting pipe 19 is embedded in the slide groove of the arc groove ring 22. Among them, the diverter pipe 15 plays a role of communication and can rotate synchronously with the connecting pipe 4. The movable ring 17 can rotate in the annular groove 16, thereby driving the annular tube 18 to rotate synchronously, and driving the No. 2 steam nozzle 20 to rotate during the synchronous rotation. The steam enters the annular tube 18 through the diverter tube 15 and is ejected through the No. 2 steam nozzle 20. During the rotation, the No. 2 steam nozzle 20 can improve the uniformity of the steam and avoid dead corners. At the same time, during the rotation, the movable connecting pipe 19 always swings left and right along the arc groove shape in the arc groove ring 22, thereby driving the No. 2 steam nozzle 20 to swing, so that the No. 2 steam nozzle 20 rotates and sprays the jet while swinging back and forth, further improving the uniformity of the steamed yarn. The rotating ring 17 is reciprocating in forward and reverse direction, rather than rotating in one direction, to avoid the diverter tube 15 being blocked by the support frame 35 during the rotation and being difficult to move.

[0020] As a preferred embodiment, the outer wall of the rotating ring 17 is surrounded by a tooth groove 23, and the top outer wall of the yarn steaming box 1 is fixedly connected to a transmission box 24. The bottom end of the transmission box 24 is connected to the top of the annular groove 16. The middle inner wall of the transmission box 24 is connected to a drive shaft 25 through a bearing. The outer wall of the drive shaft 25 is fixedly connected to a gear 26, and the gear 26 is meshed with the tooth groove 23. The servo motor 33 can drive the drive shaft 25 to rotate, and the drive shaft 25 can rotate in the transmission box 24. The rotation of the drive shaft 25 drives the gear 26 to rotate synchronously. The rotation of the wheel 26 drives the tooth groove 23 to rotate, thereby driving the rotating ring 17 and the annular tube 18 to rotate, thereby realizing the No. 2 steam nozzle 20 to rotate and jet.

[0021] As a preferred embodiment, a circulating air duct 27 is provided on one side of the transmission box 24, and the air inlet and outlet ends of the circulating air duct 27 are both connected to the yarn steaming box body 1. One end of the drive shaft 25 passes through the transmission box 24 and the circulating air duct 27 and extends to the inner wall of the circulating air duct 27, and the end of the drive shaft 25 is connected to the inner wall of the circulating air duct 27 through a bearing. The drive shaft 25 can rotate in the circulating air duct 27, and the steam inside the yarn steaming box body 1 can circulate through the circulating air duct 27, so that the internal steam is in a flowing state, thereby improving the uniformity of the yarn steaming.

[0022] As a preferred embodiment, the outer wall of the driving shaft 25 located inside the circulating air duct 27 is fixedly connected to the No. 1 bevel gear 28, and the inner wall of one side of the circulating air duct 27 is fixedly connected to the blade frame 29. The middle part of the blade frame 29 is connected to the rotating shaft 30 through a bearing, and the bottom end of the rotating shaft 30 is connected to the No. 2 bevel gear 31. The No. 2 bevel gear 31 is meshed with the No. 1 bevel gear 28, and the middle outer wall of the rotating shaft 30 is fixedly connected to the spiral blade 32. The driving shaft 25 can drive the No. 1 bevel gear 28 to rotate synchronously during the rotation process, and the rotation of the No. 1 bevel gear 28 drives the No. 2 bevel gear 31 to rotate, and the No. 2 bevel gear 31 is rotated. The rotation of the bevel gear 31 drives the rotating shaft 30 to rotate synchronously, and the rotation of the rotating shaft 30 drives the spiral blade fan 32 to rotate synchronously, thereby realizing the steam circulation inside the yarn steaming box 1 and improving the uniformity of the yarn steaming. At the same time, the reciprocating rotation of the drive shaft 25 can drive the spiral blade fan 32 to switch between forward and reverse rotation. When the air is supplied in the forward direction, the hot air may be concentrated in a specific area, resulting in uneven heating of the textile fabric. The brief reversal of the spiral blade fan 32 can disrupt the original airflow path, promote the hot air to diffuse more evenly in the yarn steaming box 1, ensure that the textile fabric in each part is evenly heated, and avoid excessive or insufficient steam in some areas.

[0023] As a preferred embodiment, a servo motor 33 is fixedly connected to the outer wall of the transmission box 24 on one side away from the circulating air duct 27. The output end of the servo motor 33 is fixedly connected to the drive shaft 25. The servo motor 33 drives the drive shaft 25 to rotate. The rotation of the drive shaft 25 drives the gear 26 and the first bevel gear 28 to rotate synchronously. The rotation of the gear 26 drives the tooth groove 23 to rotate, thereby driving the rotating ring 17 and the annular tube 18 to rotate. The servo motor 33 can drive the rotation of the annular tube 18 and the spiral blade fan 32 at the same time, thereby achieving a multiple drive effect and improving the energy-saving effect of the device.

[0024] As a preferred embodiment, the opening of the yarn steaming box body 1 is connected to a sealed door 34 through a hinge, the bottom inner wall of the yarn steaming box body 1 is connected to a support frame 35, both sides of the top outer wall of the support frame 35 are provided with limiting paths 36, both sides of the inner walls of the support frame 35 are provided with limiting grooves 37, the top of the support frame 35 is provided with a cloth rack 38, the bottom end of the cloth rack 38 is connected with a roller 39, the roller 39 matches the limiting path 36, the outer walls of both sides of the cloth rack 38 are connected to limiting sliders 40, the limiting sliders 40 match the limiting grooves 37, wherein the sealing The sealing door 34 plays a sealing role. An auxiliary frame is provided on the side of the yarn steaming box 1 close to the sealing door 34 to facilitate the entry of the cloth rack 38. The support frame 35 plays the role of supporting the cloth rack 38. The textile cloth roll can be placed on the cloth rack 38. The position of the cloth roll through the cloth rack 38 is matched with the supporting circular tube 6, so that the cloth roll contacts the mesh cylinder 12 after entering the yarn steaming box 1, thereby facilitating rotation during the yarn steaming process. The limiting groove 37 and the limiting path 36 play a limiting role to ensure that the cloth rack 38 and the supporting circular tube 6 can maintain a relative position.

[0025] As a preferred embodiment, a temperature and humidity sensor 41 is provided on the inner wall of one side of the yarn steaming box 1, a control panel 42 is provided on the outer wall of one side of the yarn steaming box 1, an exhaust pipe 43 is provided on one side of the control panel 42, a pressure relief valve is provided in the middle of the exhaust pipe 43, the end of the exhaust pipe 43 is connected to a heat exchange box 44, an air pipe 45 is provided on the top side of the yarn steaming box 1, and a solenoid valve 46 is provided in the middle of the air pipe 45. The temperature and humidity sensor 41 can monitor the temperature and humidity inside the yarn steaming box 1 in real time for adjustment, and the control panel 42 plays a control role. After the yarn steaming is completed, the steam can be discharged through the exhaust pipe 43, and the discharged steam can be heat exchanged through the heat exchange box 44 to realize heat recovery and utilization. The air pipe 45 can be used for vacuuming before steaming or air intake after the yarn steaming is completed.

[0026] The working process of this application is as follows: first, open the sealing door 34 and push the cloth rack 38 into the yarn steaming box 1. The limiting groove 37 and the limiting path 36 play a limiting role to ensure that the cloth rack 38 and the supporting circular tube 6 can maintain a relative position. Then close the sealing box door and connect the vacuum pump through the air pipe 45 to vacuum the inside of the yarn steaming box 1. After the vacuuming is completed, the yarn steaming box 1 is the main frame part of the entire device. The steam generator 2 can generate steam and transport the steam to the steam main pipe 3. During the yarn steaming process, the steam is conducted to the connecting pipe 4 through the steam main pipe 3 and then transported to the steam diversion chamber 5 and the diversion pipe 15 respectively through the connecting pipe 4. The steam entering the steam diversion chamber 5 is evenly transported to multiple groups of supporting circular tubes 6. Then, the steam is ejected through the No. 1 steam nozzle 13 to perform yarn steaming and color fixing. During the yarn steaming process, the cloth The positions of the material rack 38 and the supporting circular tube 6 match each other, so that the cloth roll and the mesh cylinder 12 can be in contact with each other. When steaming yarn, the worm 9 is driven to rotate by the high-temperature resistant motor 10. The rotation of the worm 9 drives multiple sets of worm gears 8 to rotate. The rotation of the worm gear 8 drives the supporting circular tube 6 and the mesh cylinder 12 to rotate synchronously, so that the No. 1 steam nozzle 13 can rotate to spray steam through the mesh cylinder 12 to the surface of the surrounding cloth roll, thereby improving the uniformity of steaming and fixing the color, and can make the cloth inside the cloth rack 38 also steamed uniformly. The mesh cylinder 12 can rotate synchronously with the supporting circular tube 6 to drive the cloth in contact with it to rotate. At the same time, the mesh cylinder 12 can avoid direct contact between the No. 1 steam nozzle 13 and the cloth. The cloth rotates following the rotation of the mesh cylinder 12, thereby improving the uniformity of contact with the steam, thereby improving the quality and efficiency of steaming yarn. The servo motor 33 drives the drive shaft 25 to rotate. The rotation of the drive shaft 25 drives the gear 26 and the No. 1 bevel gear 28 to rotate synchronously. The rotation of the gear 26 drives the tooth groove 23 to rotate, thereby driving the rotating ring 17 and the annular tube 18 to rotate. During the rotation of the annular tube 18, it drives the No. 2 steam nozzle 20 to rotate. The steam enters the annular tube 18 through the diversion pipe 15 and is ejected through the No. 2 steam nozzle 20. During the rotation, the No. 2 steam nozzle 20 can improve the uniformity of the steam and avoid dead corners. At the same time, during the rotation, the movable connecting pipe 19 always swings left and right along the arc groove shape in the arc groove ring 22, thereby driving the No. 2 steam nozzle 20 to swing, so that the No. 2 steam nozzle 20 rotates and jets while swinging back and forth left and right, further improving the uniformity of the steamed yarn. The above is the working principle of this textile fabric steaming machine.

Claims

1. A textile fabric yarn steaming machine, comprising a yarn steaming box (1), characterized in that: A steam generator (2) is provided on an outer wall of one side of the yarn steaming box (1), an output end of the steam generator (2) is connected to a steam main pipe (3), an end of the steam main pipe (3) away from the steam generator (2) passes through the yarn steaming box (1) and is connected to a connecting pipe (4) through a rotary joint, a steam diversion chamber (5) is fixedly connected to the inner wall of the bottom of the yarn steaming box (1) on the side close to the steam generator (2), the steam diversion chamber (5) and the connecting pipe (4) are connected through a rotary joint, an end of the steam diversion chamber (5) away from the connecting pipe (4) is movably connected to a supporting circular tube (6) through a rotary joint, the supporting circular tube (6) is arranged on one side of the steam diversion chamber (5), a driving box (7) is fixedly connected to one side of the steam diversion chamber (5), one end of the supporting circular tube (6) passes through the driving box (7) and extends into the yarn steaming box (1), and the supporting circular tube (6) and the driving box (7) are connected through a bearing; The outer wall of one side of the support circular tube (6) located in the drive box (7) is fixedly connected to a worm gear (8), the inner wall of the drive box (7) is arranged with a worm (9), and multiple groups of the worm gears (9) are respectively engaged with the worm gear (8) at corresponding positions. The bottom outer wall of the drive box (7) is arranged with a high-temperature resistant motor (10) fixedly connected, the output end of the high-temperature resistant motor (10) is connected to the worm gear (9), and the outer wall of the high-temperature resistant motor (10) is provided with a waterproof cover (101). The outer wall of the support circular tube (6) is fixedly connected to a mesh cylinder (12) through a support rod (11), and the outer wall of the support circular tube (6) is arranged with a No. 1 steam nozzle (13).

2. A textile fabric steaming machine according to claim 1, characterized in that: The top of the connecting pipe (4) is connected to a diversion pipe (15) through a three-way head (14), the middle inner wall of the yarn steaming box (1) is provided with an annular groove (16), the middle of the annular groove (16) is embedded with a rotating ring (17), the rotating ring (17) and the annular groove (16) are connected in a sliding manner, the inner wall of the rotating ring (17) is connected to an annular pipe (18), the end of the diversion pipe (15) away from the connecting pipe (4) is connected to the annular pipe (18), the inner wall of the annular pipe (18) is connected to a movable connecting pipe (19) through a universal joint, the end of the movable connecting pipe (19) is connected to the No. 2 steam nozzle (20), the bottom inner wall of the yarn steaming box (1) is fixedly connected to a fixing frame (21), the top of the fixing frame (21) is connected to an arc groove ring (22), and the middle of the movable connecting pipe (19) is embedded in the sliding groove of the arc groove ring (22).

3. A textile fabric steaming machine according to claim 2, characterized in that: The outer wall of the rotating ring (17) is surrounded by a tooth groove (23), the top outer wall of the yarn steaming box (1) is fixedly connected to a transmission box (24), the bottom end of the transmission box (24) is connected to the top of the annular groove (16), the middle inner wall of the transmission box (24) is connected to a driving shaft (25) through a bearing, the outer wall of the driving shaft (25) is fixedly connected to a gear (26), and the gear (26) is meshed with the tooth groove (23).

4. A textile fabric steaming machine according to claim 3, characterized in that: A circulating air duct (27) is provided on one side of the transmission box (24), and the air inlet end and the air outlet end of the circulating air duct (27) are both connected to the yarn steaming box (1). One end of the driving shaft (25) passes through the transmission box (24) and the circulating air duct (27) and extends to the inner wall of the circulating air duct (27), and the end of the driving shaft (25) is connected to the inner wall of the circulating air duct (27) through a bearing.

5. The textile fabric steaming machine according to claim 4, characterized in that: The outer wall of the driving shaft (25) located inside the circulating air duct (27) is fixedly connected to a first bevel gear (28), and the inner wall of one side of the circulating air duct (27) is fixedly connected to a blade fan frame (29), and the middle part of the blade fan frame (29) is connected to a rotating shaft (30) through a bearing, and the bottom end of the rotating shaft (30) is connected to a second bevel gear (31), and the second bevel gear (31) is meshed with the first bevel gear (28), and the outer wall of the middle part of the rotating shaft (30) is fixedly connected to a spiral blade fan (32).

6. The textile fabric steaming machine according to claim 5, characterized in that: A servo motor (33) is fixedly connected to the outer wall of the transmission box (24) on one side away from the circulating air duct (27). The output end of the servo motor (33) is fixedly connected to the drive shaft (25). The servo motor (33) drives the drive shaft (25) to rotate. The rotation of the drive shaft (25) drives the gear (26) and the first bevel gear (28) to rotate synchronously. The rotation of the gear (26) drives the tooth groove (23) to rotate, thereby driving the rotating ring (17) and the annular tube (18) to rotate.

7. The textile fabric steaming machine according to claim 3, characterized in that: The opening of the yarn steaming box (1) is connected to a sealed door (34) via a hinge, the bottom inner wall of the yarn steaming box (1) is connected to a support frame (35), both sides of the top outer wall of the support frame (35) are provided with limiting paths (36), both sides of the inner walls of the support frame (35) are provided with limiting grooves (37), the top of the support frame (35) is provided with a cloth rack (38), the bottom end of the cloth rack (38) is connected to a roller (39), the roller (39) matches the limiting path (36), both sides of the outer walls of the cloth rack (38) are connected to limiting sliders (40), and the limiting sliders (40) match the limiting grooves (37).

8. The textile fabric steaming machine according to claim 7, characterized in that: A temperature and humidity sensor (41) is provided on an inner wall of one side of the yarn steaming box (1), a control panel (42) is provided on an outer wall of one side of the yarn steaming box (1), an exhaust pipe (43) is provided on one side of the control panel (42), a pressure relief valve is provided in the middle of the exhaust pipe (43), and a heat exchange box (44) is connected to the end of the exhaust pipe (43), an air pipe (45) is provided on one side of the top of the yarn steaming box (1), and a solenoid valve (46) is provided in the middle of the air pipe (45).

Citation Information

Patent Citations

  • Intensive spray type yarn steaming machine

    CN112176580A