Intelligent temperature control fabric production equipment and process

By using a liquid extraction mechanism and negative pressure soaking technology with rollers, combined with a cleaning design for fans and slag extraction boxes, the problems of microcapsule rupture and uneven penetration of soaking solution in the production of temperature-controlled fabrics have been solved, achieving efficient soaking and impurity removal, and improving fabric quality and production efficiency.

CN121760153APending Publication Date: 2026-03-31福建恒捷实业有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-02-03
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

In existing temperature-controlled fabric production equipment, the rigid compression of the fabric by the pressure rollers causes the temperature-controlled microcapsules to rupture, making it difficult for the soaking solution to quickly penetrate into the fiber. Furthermore, there are problems such as wastage of the soaking solution and uneven liquid content after the fabric leaves the tank.

Method used

The system employs a liquid extraction mechanism and rollers, using a circulating pump to create negative pressure, allowing the soaking liquid to penetrate the fabric and enter the fiber gaps. Combined with a blower and a slag removal box, impurities are removed. Flexible contact and pretreatment are used to improve soaking efficiency and reduce slurry waste.

Benefits of technology

This ensures the integrity of temperature-controlled microcapsules, improves the penetration efficiency of the soaking solution, reduces slurry waste, enhances finished product quality, and lowers subsequent processing costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses intelligent temperature control fabric production equipment and technology, and relates to the technical field of textile processing equipment. The fabric soaking device comprises a rack, a soaking box is fixedly mounted at the bottom of the rack and used for soaking fabric, one side of the soaking box is rotationally connected with a penetrating mounting shaft, one end of the mounting shaft is fixedly connected with a roller, and a plurality of penetrating through holes are formed in the circumference of the roller and used for soaking liquid to penetrate through; the side, away from the mounting shaft, of the soaking box is fixedly connected with a hollow liquid pumping box, the liquid pumping box is arc-shaped, and the bottom of the liquid pumping box is attached to the inner wall of the roller; a feeding guide roller, a middle guide roller and a discharging guide roller are rotationally connected between the inner walls of the two sides of the soaking box, and the fabric is attached to the bottom of the roller when passing through the middle guide roller. Completeness of the temperature control microcapsules is guaranteed, meanwhile, soaking liquid fully enters fiber gaps, the quality of finished products is improved, the soaking efficiency is improved through pretreatment, pulp waste is reduced through pulp squeezing, and meanwhile the cost is reduced for the follow-up drying procedure.
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Description

Technical Field

[0001] This invention belongs to the field of textile processing equipment technology, and in particular relates to an intelligent temperature-controlled fabric production equipment and process. Background Technology

[0002] Intelligent temperature-controlled fabrics, due to their ability to adjust heat transfer according to changes in ambient temperature, are increasingly widely used in clothing, home furnishings, and other fields. The production process of these fabrics requires immersing a soaking solution containing temperature-controlled microcapsules into the interstices of the fabric fibers. This soaking treatment directly affects the fabric's temperature control performance and lifespan, making it one of the key steps in production. Currently, most fabric soaking equipment on the market uses guide rollers to guide the fabric into the soaking tank, and pressure rollers to bring the fabric into contact with the soaking solution to achieve immersion.

[0003] In existing soaking equipment, the rigid compression of the fabric by the pressure rollers can easily cause the temperature control microcapsules to rupture, affecting the temperature control effect of the fabric. In addition, the lack of effective pretreatment before the fabric enters the soaking area makes it difficult for the soaking solution to quickly penetrate into the fiber. Some equipment also suffers from serious waste of soaking solution and uneven liquid content after the fabric leaves the pool, which increases the cost of subsequent processing. Therefore, an intelligent temperature control fabric production equipment is proposed. Summary of the Invention

[0004] The purpose of this invention is to provide an intelligent temperature-controlled fabric production equipment and process that ensures the integrity of temperature-controlled microcapsules, allows the soaking liquid to fully enter the fiber gaps, improves the quality of the finished product, enhances soaking efficiency through pretreatment, reduces pulp waste through squeezing, and lowers costs for subsequent drying processes, thus solving existing technical problems.

[0005] To solve the above-mentioned technical problems, the present invention is achieved through the following technical solution: The frame has a soaking tank fixedly installed at the bottom for soaking fabric. A through mounting shaft is rotatably connected to one side of the soaking tank. A roller is fixedly connected to one end of the mounting shaft. The circumference of the roller has multiple through holes for the soaking liquid to pass through. A hollow liquid extraction box is fixedly connected to the side of the soaking tank away from the mounting shaft. The liquid extraction box is arc-shaped and its bottom is in contact with the inner wall of the roller. The two inner walls of the soaking tank are rotatably connected by an infeed guide roller, an intermediate guide roller and an outlet guide roller, and the fabric adheres to the bottom of the roller when it passes through the intermediate guide roller. A motor is fixedly connected to one side of the frame, and one end of the motor output shaft is fixed to the mounting shaft; The liquid extraction mechanism, located at the bottom of the frame, is used to allow the soaking liquid to penetrate the fabric.

[0006] Furthermore, the liquid extraction mechanism includes a circulation pump fixed to the bottom of the frame, the liquid extraction end of the circulation pump is fixedly connected to a suction pipe, the suction pipe is fixedly connected to a liquid extraction box, and the liquid outlet end of the circulation pump is fixedly connected to an outlet pipe, the outlet end of the outlet pipe is located inside the soaking tank.

[0007] Furthermore, a liquid outlet tank is fixedly connected between the inner walls of both sides of the soaking tank, and the liquid outlet tank is fixedly connected to the liquid outlet pipe. The bottom of the liquid outlet tank is open and faces the fabric.

[0008] Furthermore, a mounting plate is fixedly connected to the top of the frame, and a receiving box and a blower are fixedly connected to the surface of the mounting plate. The exhaust end of the blower is fixedly connected to the receiving box. Two through suction pipes are fixedly connected to the top of the receiving box. Two suction boxes are fixedly connected to the inner wall of one side of the soaking tank. The open ends of the two suction boxes face the outer wall and inner wall of the drum, respectively. The two suction boxes are connected to the two suction pipes.

[0009] Furthermore, inclined baffles are fixedly connected to both inner walls of the receiving box, and a through collection box is slidably connected to one side of the receiving box. The collection box is located below the lower end of the two baffles, and the slag suction pipe is located above the collection box.

[0010] Furthermore, a rotating shaft is rotatably connected between the inner walls of the two sides of the soaking tank. Multiple striking rods are fixedly connected to the circumference of the rotating shaft. The striking rods contact the roller and are located between the two sludge extraction boxes. A lever is fixedly connected to one side of the rotating shaft. Multiple evenly distributed levers are fixedly connected to one end of the liquid extraction box. The levers and levers are used in conjunction.

[0011] Furthermore, guide rails are fixedly connected to both inner walls of the soaking tank, and slide plates are slidably connected inside the guide rails. A second pressure roller is rotatably connected between the slide plates. The second pressure roller is located obliquely below the feed guide roller and is used to squeeze the fabric. A vertical plate is fixedly connected to the top of each slide plate. Two sets of protrusions are fixed on the circumference of the feed guide roller. The two sets of protrusions are located on one side of the two vertical plates and cooperate with them.

[0012] Furthermore, a top frame is fixedly connected to the top of the soaking tank, and slides are provided on both sides of the soaking tank. Sliders are slidably connected in the slides, and a first pressure roller is rotatably connected between the sliders. The first pressure roller is located obliquely above the discharge guide roller, and a gap is left between the two for the fabric to pass through. A connecting frame is fixedly connected between the two sliders, and a screw is rotatably connected to the top of the connecting frame. The screw thread passes through the top frame.

[0013] Furthermore, an unwinding roller and a take-up roller are rotatably mounted on one side of the frame.

[0014] This invention also proposes a production process for intelligent temperature-controlled fabric production equipment, including the following steps: S1: The fabric first passes between the feed guide roller and the second pressure roller, and after being guided by the intermediate guide roller, it passes between the discharge guide roller and the first pressure roller. After the equipment is started, the soaking material is immersed in the fabric in the soaking tank. S2: The motor drives the roller to rotate through the mounting shaft. The fabric and the roller move synchronously. The circulation pump starts, creating a negative pressure in the liquid extraction box. The soaking material passes through the fabric and the roller and enters the liquid extraction box, allowing the slurry to enter the fabric flexibly and avoiding rolling the fabric. At the same time, the penetrating flow forces the fluid carrying the microcapsules into the gaps between the fiber bundles, and there is no rigid rolling contact, which physically ensures the integrity of the microcapsules. S3: The circulating pump injects the slurry into the outlet tank through the outlet pipe. After being guided by the outlet tank, the slurry flows to the fabric. At the same time, some of it accumulates between the fabric and the feed guide roller. When the feed guide roller rotates, the slide plate is pushed back and forth by the protrusion. The slide plate drives the second rubber pressure roller to press the fabric back and forth to pre-treat it, so that some of the slurry enters the fabric and improves the soaking efficiency. S4: After soaking, the fabric passes between the discharge guide roller and the first pressure roller. The two rollers work together to gently press the fabric, squeezing out excess slurry, which facilitates subsequent drying and reduces slurry waste. During soaking, the blower is activated to create negative pressure in the receiving box. The suction pipe and slag box are used to suck up the lint remaining on the inner and outer walls of the roller. Moist foreign objects fall into the collection box through the suction pipe and are collected to prevent foreign objects from clogging the roller and improve the quality of the finished fabric. When the roller rotates, it also drives the lever to rotate. The lever reciprocates to lift the lever, which in turn allows the striking rod to reciprocate to strike the roller, improving the effectiveness of the slag box.

[0015] The embodiments of the present invention have the following beneficial effects: In this invention, the liquid extraction mechanism, roller, and extraction box work together. A circulating pump creates negative pressure inside the extraction box, driving the soaking liquid to penetrate the fabric and flow into the extraction box through the roller perforations. During this process, the fabric only has flexible contact with the roller, without rigid roller pressure, ensuring the integrity of the temperature-controlled microcapsules. At the same time, it allows the soaking liquid to fully enter the fiber gaps, improving the quality of the finished product.

[0016] In this invention, the fan, slag extraction box, striking rod and collection box are used in combination. The fan causes the slag extraction box to generate suction. The paddle moves the striking rod to repeatedly strike the roller to shake off impurities. The slag extraction box sucks in the impurities from the inner and outer walls and sends them to the collection box through the suction pipe. This avoids the roller perforation and blockage and reduces the adhesion of impurities to the fabric.

[0017] In this invention, the second pressure roller and the protrusion, and the first pressure roller and the screw work together to pre-treat the fabric by pushing the second pressure roller to reciprocate and lightly press it. The screw adjusts the gap between the first pressure roller and the discharge guide roller to squeeze out excess slurry. Pre-treatment improves soaking efficiency, squeezing out slurry reduces slurry waste, and at the same time reduces costs for subsequent drying processes.

[0018] Of course, any product implementing this invention does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description

[0019] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0020] Figure 1 This is a schematic diagram of a three-dimensional structure from a first perspective according to an embodiment of the present invention; Figure 2 This is a schematic diagram of a two-dimensional structure from a second perspective according to an embodiment of the present invention; Figure 3 This is a partial cross-sectional view of an embodiment of the present invention; Figure 4 This is an embodiment of the present invention. Figure 3 Another perspective structural diagram; Figure 5 This is a schematic diagram of the first pressure roller mounting structure according to an embodiment of the present invention; Figure 6 This is a schematic cross-sectional view of a drum according to an embodiment of the present invention; Figure 7 This is a schematic diagram of the second pressure roller mounting structure according to an embodiment of the present invention.

[0021] In the diagram: 1. Frame; 2. Unwinding roller; 201. Rewinding roller; 3. Soaking tank; 4. Circulating pump; 5. Receiving box; 6. Fan; 7. Mounting plate; 8. Collection box; 9. Baffle; 10. Slag suction pipe; 11. Feed guide roller; 12. Intermediate guide roller; 13. Discharge guide roller; 14. Drum; 141. Mounting shaft; 15. Liquid discharge box; 16. Motor; 17. Top frame; 18. Slider; 19. Screw; 20. First pressure roller; 21. Connecting frame; 22. Liquid extraction box; 23. Suction pipe; 231. Liquid discharge pipe; 24. Slag extraction box; 25. Rotating shaft; 26. Striking rod; 27. Pulley; 28. Pulley block; 29. ​​Guide rail; 30. Slide plate; 31. Second pressure roller; 32. Protrusion; 33. Vertical plate. Detailed Implementation

[0022] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0023] To keep the following description of the embodiments of the present invention clear and concise, detailed descriptions of known functions and known components are omitted.

[0024] In one embodiment, please refer to Figures 1-7 As shown, this embodiment provides an intelligent temperature-controlled fabric production equipment, including: a frame 1, which is welded from high-strength aluminum alloy. A soaking tank 3 is fixedly installed at the bottom of the frame 1 by bolts. The soaking tank 3 is a rectangular box structure with an open top, which is used to hold soaking liquid containing temperature-controlled microcapsules. A circular mounting hole is opened on one side wall of the soaking tank 3. A mounting shaft 141 is rotatably connected to the mounting hole through a bearing. The axis of the mounting shaft 141 is perpendicular to the side wall of the soaking tank 3. One end of the shaft extends through the side wall of the soaking tank 3 into the box body. The extended end is fixedly connected to a roller 14 by a flat key. The other end is located outside the soaking tank 3 and connected to a power mechanism. The drum 14 is a hollow cylindrical structure with multiple through circular perforations evenly distributed on its circumferential wall. The perforations ensure that the soaking liquid can pass through smoothly. On the inner wall of the soaking tank 3 away from the mounting shaft 141, a hollow liquid extraction box 22 is fixedly connected by welding. The liquid extraction box 22 is arc-shaped to match the curvature of the inner wall of the drum 14. Its bottom edge fits against the inner wall of the drum 14. The fit can be sealed with an elastic sealing gasket to ensure that a relatively sealed space is formed between the liquid extraction box 22 and the inner wall of the drum 14.

[0025] Between the inner walls of both sides of the soaking tank 3, three sets of guide rollers are rotatably connected via bearing seats: the feed guide roller 11, the intermediate guide roller 12, and the discharge guide roller 13. The feed guide roller 11 is installed on the side of the soaking tank 3 near the fabric input, the intermediate guide roller 12 is installed in the middle of the soaking tank 3, and the discharge guide roller 13 is installed on the side of the soaking tank 3 near the fabric output. The fabric is guided by the three sets of guide rollers in the equipment. Specifically, after being drawn out from the external unwinding mechanism, it first passes around the bottom of the feed guide roller 11, then extends downward to the intermediate guide roller 12. When guided by the intermediate guide roller 12, it fits tightly against the bottom inner wall of the roller 14, and then passes upward around the discharge guide roller 13 and is finally conveyed to the subsequent processing mechanism (drying).

[0026] On the side of the frame 1 near the extension end of the mounting shaft 141, a motor 16 is fixedly connected via a motor mount. The motor 16 is a servo motor, and the axis of its output shaft is aligned with the axis of the mounting shaft 141. One end of the output shaft is fixed to the outer end of the mounting shaft 141 via a coupling. The forward rotation of the motor 16 drives the mounting shaft 141 to rotate the roller 14 synchronously. The rotation direction of the roller 14 is consistent with the fabric transmission direction, and the rotation speed can be adaptively adjusted according to the fabric transmission speed to ensure that the fabric and the roller 14 always maintain a synchronous movement.

[0027] The bottom of the frame 1 is also equipped with a liquid extraction mechanism to create a circulating flow of the soaking liquid, forcing the soaking liquid to fully penetrate the fabric. The core component of the liquid extraction mechanism is a circulation pump 4, which is fixed to the mounting bracket at the bottom of the frame 1 by bolts. Its extraction end is connected to a suction pipe 23 by a pipe clamp, and its other end passes through the side wall of the soaking tank 3 and is fixedly connected to the internal space of the extraction box 22. The outlet end of the circulation pump 4 is connected to an outlet pipe 231 by a pipe clamp. The extension end of the outlet pipe 231 also passes through the soaking tank 3 and enters its interior. Its outlet end is connected to an outlet box 15 fixed between the inner walls on both sides of the soaking tank 3. The outlet box 15 is a rectangular hollow structure with an open bottom, and the opening faces the fabric transport path below. The bottom edge of the outlet box 15 is also provided with evenly distributed guide holes so that the flowing soaking liquid can evenly cover the fabric surface.

[0028] In another embodiment: refer to Appendix Figures 1-7 A smart temperature-controlled fabric production equipment.

[0029] After the equipment is started, the circulation pump 4 starts simultaneously, drawing air from the inside of the extraction box 22 through the suction pipe 23 to create a negative pressure environment inside the extraction box 22. At this time, the soaking liquid in the soaking tank 3, under the action of air pressure difference, passes through the fabric in contact with the roller 14, and then enters the extraction box 22 through the perforations on the circumferential wall of the roller 14, and is then sucked into the circulation pump 4. This penetrating flow method can force the fluid carrying microcapsules to actively enter the gaps between the fiber bundles of the fabric, and the fabric only maintains flexible contact with the inner wall of the roller 14 throughout the process, without any rigid rolling action. This ensures the integrity of the temperature-controlled microcapsules from a physical perspective and avoids the microcapsule rupture problem caused by traditional roller-pressing soaking methods. The soaking liquid entering the circulation pump 4 is then transported to the outlet tank 15 through the outlet pipe 231, and flows back to the soaking tank 3 evenly through the guide hole at the bottom of the outlet tank 15. At the same time, some slurry will accumulate in the area between the fabric and the feed guide roller 11, forming a local liquid accumulation environment.

[0030] At the top of the frame 1, a horizontally mounted mounting plate 7 is fixedly connected by bolts. A receiving box 5 and a blower 6 are fixedly mounted side by side on the surface of the mounting plate 7. The blower 6 is a negative pressure blower, and its exhaust end is fixedly connected to the top of the receiving box 5 through a flange. The operation of the blower 6 creates a stable negative pressure inside the receiving box 5. Two through-hole slag suction pipes 10 are also vertically fixedly connected to the top of the receiving box 5. Their lower ends pass through the mounting plate 7 and the top of the soaking tank 3, extending into the inside of the soaking tank 3 and communicating with two slag suction boxes 24 fixed on one side of the inner wall of the soaking tank 3. Both slag suction boxes 24 are hollow structures. The open end of one slag suction box 24 faces the outer wall of the drum 14, and the open end of the other faces the inner wall of the drum 14. Flexible brushes can be set on the edges of the open ends. The brushes make slight contact with the wall of the drum 14, which can clean the attached lint and impurities without hindering the rotation of the drum 14.

[0031] On the inner walls of both sides of the receiving box 5, there are two inclined baffles 9 fixedly connected by welding. The lower end of each baffle faces the middle of the receiving box 5. On the side wall of the receiving box 5 corresponding to the lower end of the baffle 9, there is a rectangular opening. A collection box 8 is slidably connected through the opening. The outer wall of the collection box 8 is tightly fitted with the edge of the opening. Its top is an open structure, located exactly below the lower ends of the two baffles 9. The outlet of the suction pipe 10 is located directly above the collection box 8. When the blower 6 is started, the negative pressure formed in the receiving box 5 is transmitted to the slag extraction box 24 through the suction pipe 10. The slag extraction box 24 sucks in the lint and impurities on the inner and outer walls of the roller 14. The damp foreign matter is driven by the airflow to enter the receiving box 5 through the suction pipe 10, and then falls on the baffle 9. It slides along the inclined baffle 9 into the collection box 8 below to complete the collection. This avoids foreign matter clogging the perforations on the roller 14, and at the same time reduces the adhesion of impurities on the fabric surface, improving the finished quality of the fabric.

[0032] Between the inner walls of both sides of the soaking tank 3, a rotating shaft 25 is rotatably connected via bearings. The axis of the rotating shaft 25 is parallel to the axis of the drum 14. Multiple striking rods 26 are fixedly connected to its circumferential wall by welding. The end away from the rotating shaft 25 contacts the outer wall of the drum 14, and this contact position is located between the two slag extraction boxes 24. One end of the rotating shaft 25 extends to the outside of the soaking tank 3, and a lever 27 is fixedly connected to the extended end by welding. Its free end faces the direction of the liquid extraction box 22. At the end of the liquid extraction box 22 near the lever 27, multiple striking rods are fixedly connected by bolts. The evenly distributed paddle blocks 28, each with a hemispherical structure, allow the liquid extraction box 22 to remain stationary while the roller 14 drives the mounting shaft 141 to rotate. The rotation of the roller 14 indirectly drives the surrounding structure through a transmission relationship, causing the paddle blocks 28 to engage with the lever 27 as the equipment operates. The paddle blocks 28 periodically contact and lift the lever 27 along their rotation path. After the paddle blocks 28 pass the lever 27, the lever 27 resets under its own gravity, causing the rotating shaft 25 to rotate rapidly at a certain angle. This causes the striking rod 26 to repeatedly strike the outer wall of the roller 14. This reciprocating striking causes the roller 14 to vibrate slightly, dislodging lint and impurities adhering to its wall surface, facilitating a more thorough removal of impurities by the sludge extraction box 24 and significantly improving its performance.

[0033] On the inner walls of both sides of the soaking tank 3, corresponding to the position below the feed guide roller 11, a vertically arranged guide rail 29 is fixedly connected by bolts. The guide rail 29 has a U-shaped groove structure, with its groove openings facing each other. Slide plates 30 are slidably connected in the grooves of both guide rails 29. A second pressure roller 31 is rotatably connected between the two slide plates 30 via bearings. The roller surface of the second pressure roller 31 is made of rubber, and its axis is parallel to the axis of the feed guide roller 11 and located diagonally below the feed guide roller 11. The gap between the two allows the fabric to pass through, which is used for compression pretreatment of the fabric before it enters the soaking tank 3. At the top of the slide plate 30, a vertical plate 33 is fixedly connected by welding. The vertical plate 33 is rectangular, and its top extends to the side of the feed guide roller 11. Two sets of protrusions 32 are integrally formed on the circumferential wall of the feed guide roller 11. The two sets of protrusions 32 are located on one side of the two vertical plates 33, and each set of protrusions 32 consists of multiple hemispherical protrusions evenly distributed along the circumference of the feed guide roller 11. When the feed guide roller 11 rotates synchronously with the fabric conveyor, the protrusions 32 periodically contact the vertical plates 33 and push them to move outward. After the protrusions 32 have passed the vertical plates 33, the vertical plates 33 slowly reset under the action of the fabric between the slide plate 30 and the guide rail 29, thereby driving the second pressure roller 31 to reciprocate and lightly press the fabric in the vertical direction. This pretreatment method allows some of the slurry accumulated on the surface of the fabric to enter the interior of the fabric in advance, effectively improving the efficiency of the subsequent soaking process.

[0034] The top of the soaking tank 3 is bolted to a gate-shaped top frame 17, the crossbeam of which is located directly above the discharge guide roller 13. Vertical slides are provided on the side walls of the soaking tank 3 corresponding to the discharge guide roller 13. Sliding blocks 18 are slidably connected within these slides. A first pressure roller 20 is rotatably connected between two sliding blocks 18 via bearings. The axis of the first pressure roller 20 is parallel to the axis of the discharge guide roller 13 and is located diagonally above it, with a gap between them for the fabric to pass through. The size of this gap can be adjusted according to the fabric thickness. A horizontal connecting frame 21 is welded and fixedly connected between the tops of the two sliding blocks 18. A vertical screw 19 is rotatably connected to the middle of the connecting frame 21. The upper end of the screw 19 is threaded through the crossbeam of the top frame 17 and extends to the upper end of the top frame 17, where an adjusting handwheel is fixedly connected. By rotating the adjusting handwheel, the screw 19 is rotated, and the connecting frame 21 drives the slider 18 to move up and down along the slide rail through the threaded transmission, thereby adjusting the height of the first pressure roller 20 and adjusting the gap between the first pressure roller 20 and the discharge guide roller 13. When the soaked fabric passes through this gap, the two work together to gently press it, squeezing out the excess slurry from the fabric. The squeezed slurry drips back into the soaking tank 3 along the fabric surface, which not only facilitates the subsequent drying process but also reduces the waste of slurry.

[0035] On the side of the frame 1 near the feed guide roller 11, an unwinding roller 2 is rotatably mounted via a bearing seat. The unwinding roller 2 is used to mount the fabric roll, and its axis is parallel to the axis of the feed guide roller 11. On the other side of the frame 1 near the discharge guide roller 13, a take-up roller 201 is also rotatably mounted via a bearing seat. The axis of the take-up roller 201 is parallel to the axis of the discharge guide roller 13, and one end of it is connected to an independent drive motor. The drive motor drives the take-up roller 201 to rotate, continuously winding up the soaked fabric to form a neat fabric roll.

[0036] The production process of an intelligent temperature-controlled fabric production equipment includes the following steps: S1: The fabric first passes between the feed guide roller 11 and the second pressure roller 31, and after being guided by the intermediate guide roller 12, it passes between the discharge guide roller 13 and the first pressure roller 20. After the equipment is started, the soaking material is immersed in the fabric in the soaking tank 3. S2: Motor 16 drives roller 14 to rotate via mounting shaft 141. The fabric moves synchronously in contact with roller 14. Circulation pump 4 starts, creating negative pressure in extraction box 22. Soaking material passes through fabric and roller 14 into extraction box 22, allowing the slurry to flexibly enter the fabric and avoid rolling the fabric. At the same time, the penetrating flow forces the fluid carrying microcapsules into the fiber bundle gaps, and there is no rigid rolling contact, which physically ensures the integrity of the microcapsules. S3: The circulating pump 4 injects the slurry into the outlet tank 15 through the outlet pipe 231. After being guided by the outlet tank 15, the slurry flows towards the fabric. At the same time, some of it accumulates between the fabric and the feed guide roller 11. When the feed guide roller 11 rotates, the slide plate 30 is pushed back and forth by the protrusion 32. The slide plate 30 drives the second rubber pressure roller 31 to press the fabric back and forth to pre-treat it, so that some of the slurry enters the fabric and improves the soaking efficiency. S4: After soaking, the fabric passes between the discharge guide roller 13 and the first pressure roller 20. The two rollers work together to gently press the fabric, squeezing out excess slurry, which facilitates subsequent drying and reduces slurry waste. During soaking, the blower 6 is started to create a negative pressure in the receiving box 5. The suction pipe 10 and the slag extraction box 24 are used to suck up the lint remaining on the inner and outer walls of the roller 14. The damp foreign matter falls into the collection box 8 through the suction pipe 10 and is collected to prevent foreign matter from clogging the roller 14 and improve the quality of the finished fabric. When the roller 14 rotates, it also drives the lever 28 to rotate. The lever 28 pushes the lever 27 back and forth, which allows the striking rod 26 to strike the roller 14 back and forth, improving the performance of the slag extraction box 24.

[0037] It should be noted that in the description of this specification, descriptions such as "first" and "second" are only used to distinguish the features and do not have any actual order or directional meaning. This application is not limited to this.

[0038] In the description of this specification, references to terms such as "an embodiment," "example," "specific example," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the invention. In this specification, illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

[0039] The preferred embodiments of the present invention disclosed above are merely illustrative of the invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the invention to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of the invention, thereby enabling those skilled in the art to better understand and utilize the invention. The invention is limited only by the claims and their full scope and equivalents.

Claims

1. An intelligent temperature control fabric production apparatus, characterized by, Include: Frame (1), the bottom of the frame (1) is fixedly installed with a soaking box (3) for soaking fabric, one side of the soaking box (3) is rotatably connected with a penetrating mounting shaft (141), one end of the mounting shaft (141) is fixedly connected with a roller (14), the circumference of the roller (14) is provided with a plurality of penetrating perforations for the soaking liquid to pass through, and the side of the soaking box (3) away from the mounting shaft (141) is fixedly connected with a hollow liquid suction box (22), the liquid suction box (22) is arc-shaped and the bottom is attached to the inner wall of the roller (14); The inner walls between the two sides of the soaking box (3) are rotatably connected with an inlet guide roller (11), an intermediate guide roller (12) and an outlet guide roller (13), and the fabric is attached to the bottom of the roller (14) when passing through the intermediate guide roller (12); One side of the frame (1) is fixedly connected with a motor (16), and one end of the output shaft of the motor (16) is fixedly connected with the mounting shaft (141); The liquid suction mechanism is arranged at the bottom of the frame (1) for soaking the fabric.

2. The intelligent temperature control fabric production apparatus of claim 1, wherein, The liquid suction mechanism includes a circulating pump (4) fixed at the bottom of the frame (1), a liquid suction pipe (23) fixedly communicated with the liquid suction end of the circulating pump (4), the liquid suction pipe (23) fixedly communicated with the liquid suction box (22), and a liquid outlet pipe (231) fixedly communicated with the liquid outlet end of the circulating pump (4), and the liquid outlet end of the liquid outlet pipe (231) is located in the soaking box (3).

3. The intelligent temperature control fabric production apparatus of claim 2, wherein, The inner walls between the two sides of the soaking box (3) are fixedly connected with a liquid outlet box (15), the liquid outlet box (15) is fixedly communicated with the liquid outlet pipe (231), and the bottom of the liquid outlet box (15) is open and faces the fabric.

4. The intelligent temperature control fabric production apparatus of claim 1, wherein, The top of the frame (1) is fixedly connected with a mounting plate (7), the surface of the mounting plate (7) is fixedly connected with a receiving box (5) and a fan (6), the suction end of the fan (6) is fixedly communicated with the receiving box (5), the top of the receiving box (5) is fixedly connected with two penetrating slag suction pipes (10), one side of the inner wall of the soaking box (3) is fixedly connected with two slag suction boxes (24), the open ends of the two slag suction boxes (24) respectively face the outer wall and the inner wall of the roller (14), and the two slag suction boxes (24) are respectively communicated with the two slag suction pipes (10).

5. The intelligent temperature control fabric production apparatus of claim 4, wherein, The inner walls of the receiving box (5) are fixedly connected with inclined baffles (9), one side of the receiving box (5) is slidably connected with a penetrating collection box (8), the collection box (8) is located below the lower end of the two baffles (9), and the slag suction pipe (10) is located above the collection box (8).

6. The intelligent temperature control fabric production apparatus of claim 4, wherein, The inner walls between the two sides of the soaking box (3) are rotatably connected with a rotating shaft (25), a plurality of knocking rods (26) are fixedly connected with the circumference of the rotating shaft (25), the knocking rods (26) are in contact with the roller (14) and located between the two slag suction boxes (24), one side of the rotating shaft (25) is fixedly connected with a lever (27), one end of the liquid suction box (22) is fixedly connected with a plurality of evenly distributed levers (28), and the levers (28) are used in cooperation with the lever (27).

7. The intelligent temperature control fabric production apparatus of claim 1, wherein, Both sides of the soaking box (3) are fixedly connected with guide rails (29), the guide rails (29) are slidably connected with sliding plates (30), the sliding plates (30) are rotatably connected with second compression rollers (31), the second compression rollers (31) are located obliquely below the feeding guide roller (11) and are used for extruding the fabric, the top of the sliding plate (30) is fixedly connected with a vertical plate (33), the circumference of the feeding guide roller (11) is fixedly connected with two groups of protrusions (32), and the two groups of protrusions (32) are located on the side of the two vertical plates (33) and are used in cooperation with the vertical plates (33).

8. The intelligent temperature control fabric production apparatus of claim 1, wherein, The top of the soaking box (3) is fixedly connected with a top frame (17), both sides of the soaking box (3) are provided with sliding channels, the sliding channels are slidably connected with sliding blocks (18), the sliding blocks (18) are rotatably connected with first compression rollers (20), the first compression rollers (20) are located obliquely above the discharging guide roller (13) and leave gaps between the first compression rollers (20) and the discharging guide roller (13) for the fabric to pass through, the two sliding blocks (18) are fixedly connected with a connecting frame (21), the top of the connecting frame (21) is rotatably connected with a screw rod (19), and the screw rod (19) is threadedly connected with the top frame (17).

9. The intelligent temperature control fabric production apparatus of claim 1, wherein, One side of the rack (1) is rotatably connected with a pay-off roller (2) and a winding roller (201).

10. The production process of the intelligent temperature control fabric production equipment according to any one of claims 1-9, characterized in that, The method comprises the following steps: S1: the cloth first passes between the feeding guide roller (11) and the second compression roller (31), is guided through the intermediate guide roller (12) and then passes between the discharging guide roller (13) and the first compression roller (20), after the equipment is started, the soaking material is soaked into the fabric in the soaking box (3); S2: the motor (16) drives the roller (14) to rotate through the mounting shaft (141), the fabric is synchronously moved in contact with the roller (14), the circulating pump (4) is started, a negative pressure is formed in the liquid suction box (22), the soaking material passes through the fabric and the roller (14) and enters the liquid suction box (22), so that the pulp can be flexibly entered into the fabric, the fabric is prevented from being rolled, the fluid carrying the microcapsules is forced to enter the fiber gap, and there is no rigid roller pressing contact, so that the integrity of the microcapsules is physically ensured; S3: the circulating pump (4) injects the pulp into the liquid outlet tank (15) through the liquid outlet pipe (231), the pulp is guided to the fabric through the liquid outlet tank (15) and is partially gathered between the fabric and the feeding guide roller (11), when the feeding guide roller (11) rotates, the sliding plate (30) is reciprocatingly pushed to move through the protrusion (32), the sliding plate (30) drives the second compression roller (31) made of rubber to reciprocatingly and lightly press the fabric, the fabric is pretreated, part of the pulp enters the fabric, and the soaking efficiency is improved. S4: the soaked fabric passes between the discharge guide roller (13) and the first compression roller (20), and the two cooperate to lightly compress the fabric, extruding excess sizing agent, facilitating subsequent drying, reducing sizing agent waste, during the sizing process, the fan (6) is started to form negative pressure in the receiving box (5), the sludge suction pipe (10) and the sludge extraction box (24) are used to suck the lint remaining on the inner and outer walls of the roller (14), the wet foreign matter falls into the collection box (8) through the sludge suction pipe (10), and then is collected, avoiding blockage of the roller (14) by foreign matter and improving the finished product quality of the fabric. When the roller (14) rotates, the push block (28) also rotates, the push block (28) reciprocatingly lifts the push rod (27), and then the knocking rod (26) can reciprocatingly knock the roller (14), improving the use effect of the sludge extraction box (24).