A steaming machine for cloth proofing
Patent Information
- Application Number
- CN202521931456.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-09
- Publication Date
- 2026-08-21
- Estimated Expiration
- 2035-09-09
AI Technical Summary
[0003]但是传统布匹打样用蒸化机缺乏,在小批量多品种生产时,操作人员需频繁手动托举布匹,或者额外配置托架,显著增加工作强度,同时,直排式蒸汽处理方式造成大量水资源浪费,增加企业用水成本,在连续化生产场景中资源浪费
[0023]1. This utility model provides stable support for the fabric in the unfolded state, effectively preventing sagging and deformation during the sampling process. When folded, it fits tightly against the side wall of the equipment, greatly optimizing space utilization. It is especially suitable for the production of small batches of multi-variety samples. Its modular adjustment function can quickly adapt to the needs of different widths of fabric. The overall design takes into account both production efficiency and ease of operation.
Smart Images

Figure CN224663189U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of fabric processing technology, and specifically relates to a steaming machine for fabric sampling. Background Technology
[0002] A fabric steaming machine is a steam treatment device used in the dyeing and finishing process of textiles. It uses high-temperature steam to fix the dye to the fabric, thereby improving the dyeing effect. As a component of a complete set of dyeing and finishing equipment, it is widely used in the textile printing and dyeing industry. The fabric sampling steaming machine is a small steaming machine, mainly used for sampling and steaming small quantities of fabric.
[0003] However, traditional steaming machines for fabric sampling are lacking. In small-batch, multi-variety production, operators need to frequently manually lift the fabric or use additional supports, which significantly increases the workload. At the same time, the direct-discharge steam treatment method causes a lot of water waste, increasing the company's water costs and wasting resources in continuous production scenarios.
[0004] To address the problems mentioned in the background above, a steaming machine for fabric sampling is proposed. Utility Model Content
[0005] The purpose of this utility model is to provide a steaming machine for fabric sampling, which has the advantages of a foldable bracket and condensate recovery.
[0006] The above-mentioned technical objective of this utility model is achieved through the following technical solution: a steaming machine for fabric sampling, comprising a shell, a base bolted to the bottom of the shell, a sleeve bolted to the front of the base, a sliding rod slidably sleeved inside the sleeve, slots formed on both sides of the inner wall of the sleeve, elastic elements bolted to the rear ends of both sides of the sliding rod, and the surface of the elastic elements engaging with the interior of the slots at the rear ends, a support plate bolted to the front ends of the opposite sides of the two sliding rods, a recycling mechanism provided at the bottom of the left side of the front of the shell, a driving mechanism provided at the front end of the left side of the base, and a circulation mechanism provided at the rear end of the left side of the base.
[0007] The above technical solution is as follows: In the initial state, the elastic element at the rear end of the slide rod is engaged in the groove at the rear end of the inner wall of the sleeve. At this time, most of the slide rod is retracted inside the sleeve, and the support plate is in a retracted position near the base, not occupying the operating space in front of the steaming machine. When it is necessary to lift the fabric sampling component, the operator manually pulls the support plate forward, causing the slide rod to slide forward along the inner wall of the sleeve. During the sliding process, the elastic elements on both sides of the slide rod are deformed by the pressure of the inner wall of the sleeve and disengage from the rear end groove. As the slide rod continues to move forward, the elastic elements will engage with the grooves at different positions on the inner wall of the sleeve in sequence under their own elastic force, realizing the positioning of the slide rod at different extension lengths. After adjusting the extension length of the support plate according to the sampling requirements, the elastic elements are stable. The tray is fixed into the corresponding slot, maintaining a horizontal support state to support the fabric and ensure its flatness and uniform stress during steaming. When the tray is no longer needed, manually push it backward, and the elastic element will be squeezed out of the current slot. The slide bar will retract along the sleeve until the elastic element re-enters the initial rear slot, completing the reset and reducing space occupation. In the unfolded state, it provides stable support for the fabric, effectively preventing sagging and deformation during sampling. When folded, it fits tightly against the side wall of the equipment, greatly optimizing space utilization. It is particularly suitable for small-batch, multi-variety sample production scenarios. Its modular adjustment function can quickly adapt to the needs of different fabric widths. The overall design takes into account both production efficiency and ease of operation.
[0008] The present invention is further configured such that the recycling mechanism includes an exhaust pipe, which is located at the bottom of the left side of the front of the outer casing and is sleeved thereon. A recycling box is fixedly sleeved at the front end of the surface of the exhaust pipe, and an exhaust pipe is connected to the top of the recycling box. A slot is opened in the middle of the inner wall of the exhaust pipe, and a spring is bolted to the top of the slot. A retaining ball is sleeved at the bottom of the spring, and the bottom of the retaining ball is engaged with the bottom of the slot. A recycling pipe is connected to the front end of the bottom of the recycling box.
[0009] The above technical solution employs a recovery mechanism. During operation, the humid steam generated by the evaporator enters the recovery tank through exhaust pipe one at the bottom of the outer casing. The steam condenses inside the recovery tank, with some of it turning into liquid condensate. This condensate settles at the bottom of the recovery tank due to gravity and can be discharged to an external collection device through the recovery pipe at the bottom front, thus recovering the condensate. The remaining, incompletely condensed steam flows upward to exhaust pipe two. At this point, a retaining ball in the groove on the inner wall of exhaust pipe two is pressed tightly against the bottom of the groove by the spring force, forming a seal and preventing steam from leaking out. As steam accumulates in the recovery tank, causing the pressure to rise, the pressure of the residual steam exceeds the pressure of the spring on the retaining ball. When the pressure is high, the steam pushes the retaining ball upwards, compressing the spring. The retaining ball then moves upwards and detaches from the bottom of the slot, opening the slotted channel. Residual steam is discharged from the recovery box through the exhaust pipe. When the pressure inside the recovery box decreases, the spring force exceeds the steam pressure, and the spring resets, pushing the retaining ball downwards again to seal the slot. This prevents cold air from entering the recovery box and interfering with the internal pressure environment. This steam condensation recovery system significantly improves the resource utilization efficiency of the steam generator. By recycling steam condensate, it effectively reduces production water consumption. It automatically releases pressure when the steam pressure is high, ensuring safe operation of the equipment and avoiding energy waste. It is especially suitable for the sustainable development needs of continuous production scenarios.
[0010] The present invention is further configured such that the driving mechanism includes a motor, the motor is located at the front end of the left side of the left base, a guide roller 1 is fixedly sleeved on the right side of the motor, and the right side of the guide roller 1 is rotatably connected to the front end of the left side of the right base, a guide roller 4 is rotatably connected to the rear end of the two opposite sides of the two bases, a guide roller 2 is rotatably connected to the middle of the two opposite sides of the two bases, a guide roller 3 is rotatably connected to the top and bottom of the inner wall of the outer shell near the middle, a synchronous pulley is fixedly sleeved on both sides of the guide roller 1, guide roller 2, guide roller 3, and guide roller 4, a synchronous belt is connected to the surface of the synchronous pulley, and an opening is provided at the front end and rear end of the outer shell near the middle.
[0011] The above technical solution is adopted as follows: By setting up a drive mechanism, the motor drives the first guide roller to rotate, the first guide roller drives the synchronous wheels on both sides of the fixed sleeve to rotate, and the synchronous wheels drive the second guide roller, the third guide roller, and the fourth guide roller to rotate through the synchronous belt. The sample fabric is guided into the first guide roller, passes between the two second guide rollers at the front end, passes through the front opening and enters the shell. When passing through the shell, it is steamed. The fabric passes over the top of the third guide roller at the front end, then passes under the bottom of the third guide roller at the bottom front end, and finally goes down the third guide roller at the rear end, passes through the rear opening, and finally exits from between the two second guide rollers at the rear end to the top of the fourth guide roller, and the steaming ends.
[0012] The present invention is further configured such that the circulation mechanism includes a water tank, which is bolted to the rear end of the left side of the base. The rear end of the top of the water tank is connected to an air inlet pipe, and the end of the air inlet pipe away from the water tank is connected to a circulation pipe. The front of the circulation pipe is connected to an air inlet pipe, and the surface of the air inlet pipe penetrates the front end of the top and bottom left side of the outer casing. The back of the circulation pipe is connected to a suction fan, and the top and bottom of the suction fan are connected to suction pipes, and the surface of the suction pipe penetrates the rear end of the top and bottom left side of the outer casing. A heat pipe is provided on the back of the water tank.
[0013] The above technical solution is adopted as follows: By setting up a circulation mechanism, the water inside the water tank is heated by the heat pipe to generate water vapor. The water vapor enters the circulation pipe from the first air inlet pipe, and then enters the interior of the outer shell from the second air inlet pipe. The steam is sprayed out from the top and bottom of the interior of the outer shell to steam the fabric. The suction fan works to draw the water vapor inside the outer shell from the top and bottom of the interior of the outer shell into the suction pipe, and then into the circulation pipe. It then enters the interior of the outer shell through the second air inlet pipe, and so on.
[0014] The present invention is further configured such that a water valve is fitted onto the bottom of the surface of the recycling pipe.
[0015] The above technical solution involves installing a water valve to control the water inside the recycling bin to drain from the bottom of the recycling pipe.
[0016] The present invention is further configured such that the bottom of the inside of the recycling bin is a ramp.
[0017] The above technical solution allows for easy drainage of water from the bottom of the recycling pipe by setting it up as a ramp.
[0018] The present invention is further configured such that a tensioning wheel is rotatably connected to the bottom of the middle of the two opposite sides of the base.
[0019] The above technical solution, by setting a tensioning pulley, can prevent the timing belt from becoming loose.
[0020] The present invention is further provided with a transparent window at the top of the front side of the outer casing.
[0021] The above technical solution allows for observation of the internal workings of the casing from the outside by incorporating a transparent window.
[0022] In summary, this utility model has the following beneficial effects:
[0023] 1. This utility model provides stable support for the fabric in the unfolded state, effectively preventing sagging and deformation during the sampling process. When folded, it fits tightly against the side wall of the equipment, greatly optimizing space utilization. It is especially suitable for the production of small batches of multi-variety samples. Its modular adjustment function can quickly adapt to the needs of different widths of fabric. The overall design takes into account both production efficiency and ease of operation.
[0024] 2. This utility model significantly improves the resource utilization efficiency of the steam generator through the steam condensation recovery system. By recycling the steam condensate, it effectively reduces the consumption of production water. When the steam pressure is high, it automatically releases pressure, which not only ensures the safe operation of the equipment but also avoids energy waste. It is especially suitable for the sustainable development needs of continuous production scenarios. Attached Figure Description
[0025] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0026] Figure 2 This is a partial top view of the structure of this utility model;
[0027] Figure 3 This is a top sectional view of a partial structure of this utility model;
[0028] Figure 4 This is a right-side sectional view of a partial structure of this utility model;
[0029] Figure 5 This is a right-side sectional view of the internal structure of the outer shell of this utility model;
[0030] Figure 6 This is a partial structural left view of this utility model.
[0031] Reference numerals: 1. Outer shell; 2. Base; 3. Sleeve; 4. Slide rod; 5. Slot; 6. Elastic element; 7. Support plate; 8. Exhaust pipe one; 9. Exhaust pipe two; 10. Recycling box; 11. Recycling pipe; 12. Slot; 13. Spring; 14. Ball catcher; 15. Motor; 16. Guide roller one; 17. Guide roller two; 18. Guide roller three; 19. Guide roller four; 20. Synchronous pulley; 21. Synchronous belt; 22. Opening; 23. Water tank; 24. Air inlet pipe one; 25. Air inlet pipe two; 26. Circulation pipe; 27. Suction pipe; 28. Fan; 29. Water valve; 30. Tensioning pulley; 31. Transparent window; 32. Heat pipe. Detailed Implementation
[0032] The present invention will be further described in detail below with reference to the accompanying drawings.
[0033] Example 1:
[0034] refer to Figure 1 , Figure 2 , Figure 3 A fabric sampling steaming machine includes a housing 1, a base 2 bolted to the bottom of the housing 1, a sleeve 3 bolted to the front of the base 2, a sliding rod 4 slidably fitted inside the sleeve 3, and slots 5 with a spacing of 60mm and a depth of 3mm on both sides of the inner wall of the sleeve 3. Elastic elements 6 are bolted to the rear ends of both sides of the sliding rod 4, and the surface of the elastic elements 6 engages with the interior of the rear slots 5. The elastic elements 6 are stainless steel spring clips, 1mm thick, with an elastic force of 4N. A support plate 7 is bolted to the front ends of the two opposing sides of the sliding rods 4. A recycling mechanism is located at the bottom left side of the front of the housing 1, a driving mechanism is located at the front end of the left side of the left base 2, and a circulation mechanism is located at the rear end of the left side of the left base 2. In the initial state, the elastic elements 6 at the rear ends of the sliding rods 4 are engaged in the slots 5 at the rear ends of the inner wall of the sleeve 3. At this time, most of the sliding rods 4 are retracted inside the sleeve 3, and the support plate 7 is in a retracted position close to the base 2, not occupying space. Using the operating space in front of the steaming machine, when it is necessary to support the fabric sampling component, the operator manually pulls the tray 7 forward, causing the slide rod 4 to slide forward along the inner wall of the sleeve 3. During the sliding process, the elastic elements 6 on both sides of the slide rod 4 are deformed by the pressure of the inner wall of the sleeve 3 and disengage from the rear end slot 5. As the slide rod 4 continues to move forward, the elastic elements 6 will sequentially engage with the slots 5 at different positions on the inner wall of the sleeve 3 under their own elastic force, realizing the positioning of the slide rod 4 at different extension lengths. After adjusting the extension length of the tray 7 according to the sampling requirements, the elastic elements 6 stably engage with the corresponding slots 5, and the tray 7 maintains a horizontal support state, which can bear the fabric and ensure the flatness and uniform force of the fabric during the steaming process. When the tray 7 is no longer needed, the operator manually pushes the tray 7 backward, and the elastic elements 6 are squeezed out of the current slot 5 again. The slide rod 4 retracts along the sleeve 3 until the elastic elements 6 re-engage with the initial rear end slot 5, completing the reset and reducing space occupation.
[0035] refer to Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6The drive mechanism includes a motor 15, which is located at the front end of the left side of the left base 2. A guide roller 16 is fixedly sleeved on the right side of the motor 15, and the right side of the guide roller 16 is rotatably connected to the front end of the left side of the right base 2. A guide roller 4 19 is rotatably connected to the rear end of the opposite side of the two bases 2. A guide roller 2 17 is rotatably connected to the middle of the opposite side of the two bases 2. A guide roller 3 18 is rotatably connected to the top and bottom of the inner wall of the outer casing 1 near the middle. Synchronous pulleys 20 are fixedly sleeved on both sides of the guide rollers 16, 27, 38, and 49. A synchronous belt 21 is connected to the surface of the synchronous pulleys 20. Openings 22 are provided at the front and rear ends of the outer casing 1 near the middle. The drive mechanism is configured to... Motor 15 drives guide roller 16 to rotate, guide roller 16 drives synchronous wheels 20 fixed on both sides to rotate, synchronous wheels 20 drive guide rollers 27, 318 and 419 to rotate via synchronous belt 21. The sample fabric is guided into the housing 1 by guide roller 16, passes between the two guide rollers 27 at the front end, passes through the front opening 22 and enters the housing 1. It is steamed inside the housing 1. The fabric passes over the top of guide roller 318 at the front end, then passes under the bottom of guide roller 318 at the bottom front end, and finally goes down from guide roller 318 at the rear end, passes through the rear opening 22, and finally exits from the top of guide roller 419 between the two guide rollers 217 at the rear end, and the steaming ends.
[0036] refer to Figure 4 , Figure 5 The bottom of the two bases 2 facing each other is rotatably connected to a tension wheel 30. By setting the tension wheel 30, the timing belt 21 can be prevented from becoming loose.
[0037] refer to Figure 1 A transparent window 31 is provided on the top of the front of the outer casing 1, allowing the working conditions inside the outer casing 1 to be observed from the outside.
[0038] Example 2:
[0039] refer to Figure 1 , Figure 2 , Figure 4 , Figure 5 , Figure 6A fabric sampling steaming machine includes a recycling mechanism comprising an exhaust pipe 8, which is located at the bottom left side of the front of the outer casing 1 and is fitted with a recycling box 10. An exhaust pipe 9 is fitted through and attached to the top of the recycling box 10. A slot 12 is formed in the middle of the inner wall of the exhaust pipe 9. A spring 13 is bolted to the top of the slot 12. The spring 13 has a spring constant of 25 N / m and a free length of 30 mm. A retaining ball 14 is fitted to the bottom of the spring 13, and the bottom of the retaining ball 14 engages with the bottom of the slot 12. A recycling pipe 11 is fitted through and attached to the front end of the bottom of the recycling box 10. Moist steam generated during the operation of the steaming machine enters the recycling box 10 through the exhaust pipe 8 at the bottom of the outer casing 1. The steam condenses inside the recycling box 10, and some of the steam is converted into liquid condensate, which settles at the bottom of the recycling box 10 under gravity. The condensate is discharged through the recovery pipe 11 at the bottom front end to the external collection device to realize the recovery of condensate. The residual steam that is not completely condensed flows upward to the exhaust pipe 2 9. At this time, the retaining ball 14 in the slot 12 on the inner wall of the exhaust pipe 2 9 is pressed tightly against the bottom of the slot 12 under the action of the spring 13 to form a seal and prevent the steam from leaking out at will. When the steam in the recovery box 10 continues to accumulate and the pressure rises, when the pressure of the residual steam exceeds the pressure of the spring 13 on the retaining ball 14, the steam pushes the retaining ball 14 upward, causing the spring 13 to be compressed. The retaining ball 14 then moves upward and leaves the bottom of the slot 12, the channel of the slot 12 is opened, and the residual steam is discharged from the recovery box 10 through the exhaust pipe 2 9. When the pressure in the recovery box 10 decreases, the spring force of the spring 13 is greater than the steam pressure, the spring 13 resets and pushes the retaining ball 14 down again to seal the slot 12, preventing the outside cold air from entering the recovery box 10 in reverse and interfering with the internal pressure environment.
[0040] refer to Figure 2 , Figure 4 , Figure 5 , Figure 6The circulation mechanism includes a water tank 23, which is bolted to the rear end of the left side of the base 2. An air inlet pipe 24 is connected to the rear end of the top of the water tank 23. A circulation pipe 26 is connected to the end of the air inlet pipe away from the water tank 23. An air inlet pipe 25 is connected to the front of the circulation pipe 26, and the surface of the air inlet pipe 25 penetrates the front end of the top and bottom left side of the outer casing 1. A suction fan 28 is connected to the back of the circulation pipe 26. An air suction pipe 27 is connected to the top and bottom of the suction fan 28, and the surface of the air suction pipe 27 penetrates the rear end of the top and bottom left side of the outer casing 1. The water tank 23... A heat pipe 32 is installed on the back. Through the circulation mechanism, the water in the water tank 23 is heated by the heat pipe 32 to generate water vapor. The water vapor enters the circulation pipe 26 from the first air inlet pipe 24, and then enters the second air inlet pipe 25 from the circulation pipe 26 into the interior of the outer shell 1. The steam is sprayed out from the top and bottom of the interior of the outer shell 1 to steam the fabric. The suction fan 28 works to draw the water vapor inside the outer shell 1 from the top and bottom of the interior of the outer shell 1 into the suction pipe 27, and then from the suction pipe 27 into the circulation pipe 26. It then enters the interior of the outer shell 1 through the second air inlet pipe 25, and so on.
[0041] refer to Figure 4 , Figure 5 , Figure 6 A water valve 29 is fitted onto the bottom of the surface of the recycling pipe 11. By setting the water valve 29, the water inside the recycling tank 10 can be controlled to be discharged from the bottom of the recycling pipe 11.
[0042] refer to Figure 4 The bottom of the recycling bin 10 is designed as a slope. By designing it as a slope, the water inside the recycling bin 10 can be easily drained from the bottom of the recycling pipe 11. The slope is 6°, and it is made of stainless steel with a thickness of 2mm.
[0043] Brief description of usage: In the initial state, the elastic element 6 at the rear end of the slide rod 4 is engaged in the groove 5 at the rear end of the inner wall of the sleeve 3. At this time, most of the slide rod 4 is retracted inside the sleeve 3, and the support plate 7 is in a retracted position close to the base 2, not occupying the operating space in front of the steaming machine. When it is necessary to lift the fabric sampling part, the operator manually pulls the support plate 7 forward, causing the slide rod 4 to slide forward along the inner wall of the sleeve 3. During the sliding process, the elastic elements 6 on both sides of the slide rod 4 are deformed by the pressure of the inner wall of the sleeve 3 and disengage from the rear end groove 5. As the slide rod 4 continues to move forward, the elastic elements 6 exert their own elastic force. The slide bar 4 engages sequentially with different slots 5 on the inner wall of the sleeve 3, achieving positioning of the slide bar 4 at different extension lengths. After adjusting the extension length of the support plate 7 according to sampling requirements, the elastic element 6 stably engages with the corresponding slot 5, and the support plate 7 maintains a horizontal support state, capable of bearing the fabric and ensuring the flatness and uniform force distribution of the fabric during steaming. When the support plate 7 is no longer needed, it is manually pushed backward, and the elastic element 6 is squeezed out of the current slot 5 again. The slide bar 4 retracts along the sleeve 3 until the elastic element 6 re-engages with the initial rear slot 5, completing the reset and reducing space occupation. When the steam generator is working, the humid steam generated enters the recovery tank 10 through the exhaust pipe 8 at the bottom of the outer shell 1. The steam condenses inside the recovery tank 10, and some of the steam is converted into liquid condensate, which is deposited at the bottom of the recovery tank 10 under the action of gravity. It can be discharged to an external collection device through the recovery pipe 11 at the bottom front end to realize the recovery of condensate. The residual steam that is not completely condensed flows upward to the exhaust pipe 9. At this time, the retaining ball 14 in the groove 12 on the inner wall of the exhaust pipe 9 is pressed tightly against the bottom of the groove 12 under the action of the spring force of the spring 13, forming a sealed state and preventing steam from flowing freely. When steam accumulates continuously inside the recovery box 10, causing the pressure to rise, and the pressure of the residual steam exceeds the pressure of the spring 13 on the locking ball 14, the steam pushes the locking ball 14 upward, compressing the spring 13. The locking ball 14 then moves upward and detaches from the bottom of the slot 12, opening the channel of the slot 12. The residual steam is discharged from the recovery box 10 through the exhaust pipe 2 9. When the pressure inside the recovery box 10 decreases, the elastic force of the spring 13 is greater than the steam pressure. The spring 13 resets and pushes the locking ball 14 down again to seal the slot 12, preventing cold air from entering the recovery box 10 in the opposite direction and interfering with the internal pressure environment.
[0044] It should be noted that parts have a lifespan and can be replaced during regular maintenance when they no longer meet performance requirements. Deterioration in performance due to prolonged use of parts is not a design defect of this application.
[0045] This specific embodiment is merely an explanation of the present utility model and is not intended to limit the present utility model. After reading this specification, those skilled in the art can make modifications to this embodiment without contributing any inventive step, but as long as they are within the scope of the claims of the present utility model, they are protected by patent law.
Claims
1. A steaming machine for fabric sampling, comprising a casing (1), characterized in that: A base (2) is bolted to the bottom of the outer shell (1), a sleeve (3) is bolted to the front of the base (2), a slide rod (4) is slidably sleeved inside the sleeve (3), slots (5) are provided on both sides of the inner wall of the sleeve (3), elastic elements (6) are bolted to the rear ends of both sides of the slide rod (4), and the surface of the elastic element (6) is engaged with the inside of the slot (5) at the rear end. A support plate (7) is bolted to the front end of the opposite side of the two slide rods (4). A recycling mechanism is provided at the bottom of the left side of the front of the outer shell (1), a driving mechanism is provided at the front end of the left side of the base (2) on the left side, and a circulation mechanism is provided at the rear end of the left side of the base (2) on the left side.
2. The steaming machine for fabric sampling according to claim 1, characterized in that: The recycling mechanism includes an exhaust pipe (8), which is located at the bottom of the left side of the front of the outer shell (1) and is sleeved thereon. A recycling box (10) is fixedly sleeved at the front end of the surface of the exhaust pipe (8). An exhaust pipe (9) is connected to the top of the recycling box (10). A slot (12) is provided in the middle of the inner wall of the exhaust pipe (9). A spring (13) is bolted to the top inside the slot (12). A retaining ball (14) is sleeved at the bottom of the spring (13), and the bottom of the retaining ball (14) is engaged with the bottom inside the slot (12). A recycling pipe (11) is connected to the front end of the bottom inside the recycling box (10).
3. The steaming machine for fabric sampling according to claim 1, characterized in that: The driving mechanism includes a motor (15), which is located at the front end of the left side of the left base (2). A guide roller (16) is fixedly sleeved on the right side of the motor (15), and the right side of the guide roller (16) is rotatably connected to the front end of the left side of the right base (2). A guide roller (4) (19) is rotatably connected to the rear end of the opposite side of the two bases (2). A guide roller (27) is rotatably connected to the middle of the opposite side of the two bases (2). A guide roller (3) (18) is rotatably connected to the top and bottom of the inner wall of the outer shell (1) near the middle. A synchronous wheel (20) is fixedly sleeved on both sides of the guide roller (16), guide roller (27), guide roller (38), and guide roller (49). A synchronous belt (21) is connected to the surface of the synchronous wheel (20). An opening (22) is opened at the front end and rear end of the outer shell (1) near the middle.
4. A steaming machine for fabric sampling according to claim 1, characterized in that: The circulation mechanism includes a water tank (23), which is bolted to the rear end of the left side of the base (2). The rear end of the top of the water tank (23) is connected to an air inlet pipe (24). The end of the air inlet pipe away from the water tank (23) is connected to a circulation pipe (26). The front of the circulation pipe (26) is connected to an air inlet pipe (25), and the surface of the air inlet pipe (25) penetrates the front end of the top and bottom left side of the outer casing (1). The back of the circulation pipe (26) is connected to a suction fan (28). The top and bottom of the suction fan (28) are connected to a suction pipe (27), and the surface of the suction pipe (27) penetrates the rear end of the top and bottom left side of the outer casing (1). A heat pipe (32) is provided on the back of the water tank (23).
5. A steaming machine for fabric sampling according to claim 2, characterized in that: A water valve (29) is fitted onto the bottom of the surface of the recovery pipe (11).
6. A steaming machine for fabric sampling according to claim 2, characterized in that: The bottom of the inside of the recycling bin (10) is set as a ramp.
7. A steaming machine for fabric sampling according to claim 1, characterized in that: Tensioning wheels (30) are rotatably connected to the bottom of the two bases (2) on opposite sides.
8. A steaming machine for fabric sampling according to claim 1, characterized in that: A transparent window (31) is provided at the top of the front of the outer casing (1).