Low-energy-consumption fabric drying equipment and process

By using a combination technology of hot ironing assembly, thumping assembly and heat recovery assembly in fabric drying equipment, the problems of wrinkles and high energy consumption during fabric drying process are solved, and the flat drying of fabrics and the reduction of energy consumption are achieved.

CN120101428AInactive Publication Date: 2025-06-06SHAOXING COUNTY NANYANG TEXTILE CO LTD
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Patent Information

Application Number
CN202510317442.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-18
Publication Date
2025-06-06
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

During the drying process, existing fabric drying equipment can easily cause wrinkles on the fabric surface, and high energy consumption, which increases production costs.

Method used

A low-energy fabric drying equipment is designed, and the fabric is limited and tightened and ironed with a hot ironing assembly. The thumping assembly pounds and stretches the dried fabric. The heat recovery assembly recycles and reuses high-temperature gases to reduce energy consumption.

Benefits of technology

The fabric is kept flat during the drying process, which reduces the occurrence of wrinkles, improves the drying efficiency and the aesthetics of the fabric, and reduces energy consumption and production costs.

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Abstract

The invention relates to the technical field of low-energy-consumption fabric drying equipment and process, in particular to low-energy-consumption fabric drying equipment and process which comprises a heat preservation bin, an electric cabinet for controlling the temperature and the temperature pressure in the heat preservation bin, a drying assembly for drying fabric at high temperature and a supporting frame for supporting the heat preservation bin. A drying inlet and a drying outlet for fabric to pass through the heat preservation bin are formed in the front side and the rear side of the heat preservation bin respectively, a bearing frame is fixedly connected into the heat preservation bin, a turnover frame is hinged to the upper side of the end, facing the drying outlet, of the bearing frame, and supporting wheels are fixedly connected to the upper side of the section, facing the drying inlet, of the bearing frame. A hot ironing plate is fixedly connected to the bearing frame, and a hot ironing assembly for ironing the surface of the fabric is connected between the overturning frame and the hot ironing plate. According to the technical scheme, the fabric can be smoother and more attractive in the drying operation, the drying effect on the fabric is improved, the energy consumption of fabric drying is reduced, and the production cost is reduced.
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Description

Technical Field

[0001] The present invention relates to the technical field of low-energy consumption fabric drying equipment and process, and specifically, to low-energy consumption fabric drying equipment and process. Background Art

[0002] Fabric drying is a fixed process in fabric production. Fabrics after printing and dyeing must go through the drying process to remove excess moisture and ensure that dyes and auxiliaries are completely fixed. The main purpose of the drying operation is to improve the drying efficiency and quality stability of the fabric. Drying methods usually include hot air drying and hot air circulation drying. The former evaporates the moisture in the fabric through hot air, while the latter improves the drying uniformity and efficiency through circulating hot air. Temperature control is crucial in this process, because too high a temperature may cause the fabric to deform or shrink, while too low a temperature may cause the fabric to be incompletely dried, affecting subsequent processing and use. The drying time also needs to be adjusted according to the thickness and humidity of the fabric to avoid incomplete drying or over-drying. A uniform drying process can prevent the problem of uneven drying and wetness of the fabric, ensuring the consistent quality of each piece of fabric. In short, drying is a key link in the post-printing and dyeing treatment, which has a direct impact on the final quality, appearance and performance of the fabric. After the drying operation, the remaining moisture in the fabric is completely precipitated, and through drying, the fabric can be better stored and collected.

[0003] Existing fabrics have the following technical problems during drying operations: after the fabric is sent into the drying equipment, the fabric will be pulled by a drum, so that the fabric is dried during movement. During the drying process, the high temperature causes the tensile elasticity of different areas of the fabric to change, which makes the surface of the fabric prone to wrinkles during drying, thereby reducing the flatness of the fabric during output, requiring workers to additionally cut the wrinkled fabric sections, increasing production costs. At the same time, the fabric will cause a large amount of heat loss during drying, and some of the recoverable heat is not utilized, increasing the energy consumption of equipment production. Summary of the invention

[0004] The invention provides low-energy consumption fabric drying equipment, which can make the fabric smoother and more beautiful during the drying operation, improve the drying effect on the fabric, reduce the energy consumption of fabric drying, and reduce the production cost.

[0005] The technical solution of the present invention is as follows: A low-energy consumption fabric drying device, comprising a heat preservation chamber, an electric control box for controlling the temperature and temperature pressure in the heat preservation chamber, a drying assembly for drying fabrics at high temperature, and a support frame for supporting the heat preservation chamber, wherein a drying inlet and a drying outlet for fabrics to pass through the heat preservation chamber are respectively provided on the front and rear sides of the heat preservation chamber; A load-bearing frame is fixedly connected in the heat preservation bin, a turning frame is hingedly connected to the upper side of one end of the load-bearing frame facing the drying outlet, and a support wheel is fixedly connected to the upper side of a section of the load-bearing frame facing the drying inlet; A hot ironing plate is fixedly connected to the load-bearing frame, and a hot ironing component for ironing the surface of the fabric is connected between the turning frame and the hot ironing plate; A beating assembly is connected to the side of the load-bearing frame and the turning frame facing the drying outlet, and cooperates with the hot ironing assembly to quickly beat the surface of the dried fabric; The heat preservation bin is connected with a heat recovery component for recovering heat from the high-temperature gas in the heat preservation bin.

[0006] Furthermore, the hot ironing assembly includes a driving disk, a positioning wheel and two limiting columns, the driving disk is rotatably connected to the flip frame, the driving disk is fixedly connected to a first flip plate, an end of the first flip plate away from the driving disk is hinged to a second flip plate, an end of the second flip plate away from the first flip plate is hinged to a hot iron, and a limiting sleeve is fixedly connected to the hot iron; The two limit posts are fixedly connected to the two sides of the flip frame, and the two ends of the limit sleeve are slidably connected to the limit posts; The locking wheel is rotatably connected to the load-bearing frame, and the side edge of the driving disc abuts against the side edge of the locking wheel; One side of the driving disc is connected with a driving motor, and the driving motor is fixedly connected to the turning frame.

[0007] Furthermore, a clamping plate is fixedly connected to the side of the hot ironing plate facing the drying inlet, and two clamping posts are slidably connected to the clamping plate. A reset wheel for clamping the fabric is fixedly connected to the side of the two clamping posts away from the clamping plate, and each clamping post is sleeved with a clamping spring, and the two ends of the clamping spring are respectively in contact with the clamping plate and the reset wheel; The upper side of the reset wheel is connected with a clamping wheel, and the clamping wheel is rotatably connected to the lower side of the turning frame.

[0008] Further, the hammering assembly includes a first limiting plate and two second limiting plates, the first limiting plate and the two second limiting plates are fixedly connected to the lower side of the load-bearing frame, the first limiting plate is rotatably connected to a first synchronous wheel, the upper side of the first synchronous wheel is connected to a second synchronous wheel, and the second synchronous wheel is coaxially fixedly connected to the locking wheel; The first synchronous wheel and the second synchronous wheel are meshed with a synchronous belt; Each second limiting plate is rotatably connected to a beating cylinder on one side facing the first limiting plate, and one end of each beating cylinder facing the first synchronous wheel is coaxially and fixedly connected to the first synchronous wheel.

[0009] Furthermore, two receiving plates are fixedly connected to the lower side of the flip frame, and linkage columns are rotatably connected to the two receiving plates, and cooling fans with the same direction are fixedly connected to both ends of the linkage columns; A first pulley is sleeved on the linkage column, a belt is sleeved on the first pulley, a second pulley is connected to the side of the belt away from the first pulley, and the second pulley is coaxially fixedly connected to the driving disc.

[0010] Furthermore, the diameter of the second pulley is greater than the diameter of the first pulley.

[0011] Furthermore, a protective sleeve is fixedly connected to the linkage column, and the diameter of the protective sleeve is larger than the diameter of the outer ring of the first pulley.

[0012] Further, the heat recovery component includes a first pipe and two limit plates, the two ends of the first pipe are respectively connected to the lower side of the drying component and the upper inner wall of the heat preservation bin, a second pipe is fixedly connected to one side of the first pipe, one end of the second pipe is connected to the first pipe, and the end of the second pipe away from the first pipe is connected to a side of the heat preservation bin close to the drying outlet; The two limit plates are fixedly connected to the upper inner wall of the heat preservation bin, a sealing plate is slidably connected between the two limit plates, and a sealing block is fixedly connected to the sealing plate; Both ends of the sealing plate are hinged with force transmission plates, and one end of each force transmission plate away from the sealing plate is hinged to one side of the turning frame close to the drying entrance.

[0013] The beneficial effects of the present invention are: The hot ironing component can drive the turning frame to turn around the load-bearing frame, so that the falling turning frame can limit and clamp the fabric on the lower side, and then iron the fabric surface on the upper side of the hot ironing board, so that the fabric fits on the hot ironing board for drying, so that the section of fabric is subjected to the dual effects of drying and ironing, making the fabric smoother and less prone to wrinkles during the drying operation, thereby ensuring the beautiful effect of the fabric surface. The beating component can beat and stretch the fabric that has just been dried, so that the lumps precipitated from the fabric surface due to the dye solution are broken up and the lumps fall from the fabric surface, thereby ensuring the output effect of the fabric, and at the same time stretching the fabric surface to stretch the fabric It can help reduce wrinkles generated during the drying process and keep the fabric smoother in appearance. This is because stretching can restore the fabric fibers to their original tension state. At the same time, stretching can improve the dimensional stability of the fabric, making it less likely to deform or shrink during subsequent use. The stretching operation can make the surface of the fabric smoother, which helps to improve its appearance and touch. The heat recovery component can recover heat from the high-temperature gas in the insulation bin, allowing the hot air to circulate through the surface of the fabric. By recycling and reusing waste heat, the energy consumption of the drying component is reduced, thereby reducing energy demand, thereby reducing operating and energy costs.

[0014] Another object of the present invention is to provide a low-energy consumption fabric drying process, so that the fabric can be produced more evenly, the labor intensity of workers is reduced, and the aesthetics of the fabric surface is ensured.

[0015] The following steps are involved: S100: Dehydration: Remove excess dye liquid and water from the fabric through a centrifuge or other squeezing equipment; S200: Installation: Pull the fabric out from the unwinder, and send one end of the fabric into the heat preservation bin through the drying inlet by traction, and then ensure that the fabric moves out of the heat preservation bin through the drying outlet during movement, and finally connects with the winder for collecting the fabric, so that the fabric is in a straight state; S300: preheating and drying: the heat generated by the drying component is recycled through the heat recovery component, and part of the heat is used to preheat the surface of the fabric. Then, the hot ironing component limits the fabric while the drying component dries it. During the drying process, the surface of the fabric is ironed to prevent wrinkles from forming on the surface. Then, the fabric is moved after drying to be subjected to the beating component so that the fabric can be stretched after drying. Finally, the fabric is moved out of the heat preservation bin from the drying outlet. S400: Blowing and washing: by rotating the cooling fan in the same direction, the fast-flowing wind is blown toward the surface of the dried fabric, so that the dirt lumps precipitated on the surface of the fabric after stretching can be blown and washed by the wind, and the surface of the fabric is cooled; S500: Taking out: taking the dried fabric from the winder, further cooling the fabric, and then sending the cooled fabric to quality inspection; S600: Finishing inspection: The fabric is sent to the quality inspection department, where the fabric is inspected and finished to ensure that the dyeing is even and there are no wrinkles; S700: The fabric that has passed the inspection is stored and waits for the next production process.

[0016] The beneficial effects of the present invention are: It enables the fabric to be produced more smoothly, improves the qualified rate of fabric output, improves the drying effect of fabric, reduces the labor intensity of workers, and ensures the beauty of fabric surface. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] The present invention will be further described in detail below in conjunction with the accompanying drawings and specific embodiments.

[0018] Figure 1 It is a partial cross-section schematic diagram of the present invention; Figure 2 for Figure 1 A is an enlarged schematic diagram; Figure 3 It is a partially enlarged schematic diagram of the hot ironing assembly of the present invention; Figure 4 for Figure 3 A magnified schematic diagram of B; Figure 5 It is a partial exploded enlarged schematic diagram of the hot ironing assembly of the present invention; Figure 6 for Figure 5 A magnified schematic diagram of middle C; Figure 7 It is a partial enlarged schematic diagram of the hammering assembly of the present invention; Figure 8 This is an enlarged schematic diagram of the positive axis of the present invention. Figure 1 ; Fig. 9 The partial cross-section of the present invention is schematically shown in FIG. Figure 1 ; Fig.10 This is an enlarged schematic diagram of the positive axis of the present invention. Figure 2 ; Fig.11 The partial cross-section of the present invention is schematically shown in FIG. Figure 2 .

[0019] In the figure: 11, heat preservation chamber; 12, electric control box; 13, drying assembly; 14, fabric; 15, drying entrance; 16, drying exit; 17, load-bearing frame; 18, turning frame; 19, supporting wheel; 110, hot ironing plate; 21, driving plate; 22, first turning plate; 23, second turning plate; 24, hot iron; 25, limiting sleeve; 26, locking wheel; 27, limiting column; 28, locking plate; 29, locking column; 210, reset wheel; 211, clamping spring; 2 12. Drive motor; 213. Clamping wheel; 31. First limiting plate; 32. Second limiting plate; 33. First synchronous wheel; 34. Second synchronous wheel; 35. Synchronous belt; 36. Beating cylinder; 41. Receiver plate; 42. Linkage column; 43. Cooling fan; 44. First pulley; 45. Belt; 46. Second pulley; 47. Protective sleeve; 51. First pipeline; 52. Second pipeline; 53. Limiting plate; 54. Sealing plate; 55. Sealing block; 56. Force transmission plate. DETAILED DESCRIPTION

[0020] The following will be combined with the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention. Example 1

[0021] like Figure 1 to Figure 11 As shown, this embodiment proposes a low-energy consumption fabric drying device, including a heat preservation chamber 11, an electric control box 12 for controlling the temperature and temperature pressure in the heat preservation chamber 11, a drying assembly 13 for high-temperature drying of fabrics 14, and a support frame 111 for supporting the heat preservation chamber 11, and the front and rear sides of the heat preservation chamber 11 are respectively provided with a drying inlet 15 and a drying outlet 16 for the fabrics 14 to pass through the heat preservation chamber 11; The load-bearing frame 17 is fixedly connected in the heat preservation chamber 11, and the upper side of one end of the load-bearing frame 17 facing the drying outlet 16 is hinged to the turning frame 18, and the upper side of a section of the load-bearing frame 17 facing the drying inlet 15 is fixedly connected to the support wheel 19; The hot ironing plate 110 is fixedly connected to the load-bearing frame 17, and the hot ironing assembly for ironing the surface of the fabric 14 is connected between the turning frame 18 and the hot ironing plate 110; The hot ironing assembly can drive the turning frame 18 to turn around the load-bearing frame 17, so that the falling turning frame 18 can limit and clamp the fabric 14 on the lower side, and then iron the surface of the fabric 14 on the upper side of the hot ironing plate 110, so that the fabric 14 is attached to the hot ironing plate 110 for drying, so that the section of fabric 14 is subjected to the dual effects of drying and ironing, making the fabric 14 smoother, less likely to have wrinkles during the drying operation, and ensuring the beautiful effect of the surface of the fabric 14; The load-bearing frame 17 and the turning frame 18 are connected to a beating assembly that cooperates with the hot ironing assembly to quickly beat the surface of the dried fabric 14 toward the drying outlet 16; The beating assembly can perform beating and stretching operations on the fabric 14 that has just been dried, so that the lumps on the surface of the fabric 14 due to the precipitation of the dye solution are broken up and the lumps fall off the surface of the fabric 14, thereby ensuring the output effect of the fabric 14. At the same time, the surface of the fabric 14 is stretched. Stretching the fabric 14 can help reduce wrinkles generated during the drying process and keep the fabric 14 smoother in appearance. This is because stretching can restore the fibers of the fabric 14 to their original tension state. At the same time, through stretching, the dimensional stability of the fabric 14 can be improved, making it less likely to deform or shrink during subsequent use. In addition, the stretching operation can make the surface of the fabric 14 smoother, which helps to improve its appearance and touch. A heat recovery component for recovering heat from the high-temperature gas in the heat preservation bin 11 is connected to the heat preservation bin 11; The heat recovery component can recover heat from the high-temperature gas in the insulation bin 11, allowing the hot air to circulate through the surface of the fabric 14. By recovering and reusing waste heat, the energy consumption of the drying component 13 is reduced, thereby reducing energy demand and reducing operating and energy costs.

[0022] like Figure 1 and Figure 3~Figure 6 As shown, the hot ironing assembly includes a driving disc 21, a positioning wheel 26 and two limiting columns 27. The driving disc 21 is rotatably connected to the flip frame 18. The driving disc 21 is fixedly connected to the first flip plate 22. The end of the first flip plate 22 away from the driving disc 21 is hinged to the second flip plate 23. The end of the second flip plate 23 away from the first flip plate 22 is hinged to the hot iron 24. The limiting sleeve 25 is fixedly connected to the hot iron 24. The two limit posts 27 are fixedly connected to both sides of the flip frame 18, and the two ends of the limit sleeve 25 are slidably connected to the limit posts 27; The locking wheel 26 is rotatably connected to the load-bearing frame 17, and the side edge of the driving disc 21 abuts against the side edge of the locking wheel 26; The driving motor 212 is connected to one side of the driving disc 21, and the driving motor 212 is fixedly connected to the flip frame 18; The driving motor 212 drives the driving disc 21 to rotate. Due to the shape of the driving disc 21, when the side with a larger outer diameter of the driving disc 21 contacts the positioning wheel 26, it will drive the turning frame 18 to turn upward around the hinged position of the load-bearing frame 17, so that the fabric 14 moves, and a new fabric segment is sent to the lower side of the turning frame 18. At the same time, the rotation of the driving disc 21 will also drive the second turning plate 23 to rotate around the first turning plate 22, so that the limiting sleeve 25 moves back and forth along the limiting columns 27 on both sides. Then, when the smaller outer diameter of the driving disc 21 abuts against the positioning wheel 26 and rotates, the hot ironing plate 24 can iron the surface of the fabric 14 on the lower side, so that the fabric 14 is attached to the hot ironing plate 110 for drying, so that the section of fabric 14 is subjected to the dual effects of drying and ironing, so that the fabric 14 is smoother, less prone to wrinkles during the drying operation, and the beautiful effect of the surface of the fabric 14 is guaranteed.

[0023] like Figure 1 and Figure 3~Figure 6 As shown, the side of the hot ironing plate 110 facing the drying inlet 15 is fixedly connected to the clamping plate 28, two clamping posts 29 are slidably connected to the clamping plate 28, and the two clamping posts 29 are fixedly connected to the reset wheel 210 for clamping the fabric 14 on the side away from the clamping plate 28, and the clamping spring 211 is sleeved on the clamping post 29, and the two ends of the clamping spring 211 are respectively in contact with the clamping plate 28 and the reset wheel 210; The clamping wheel 213 is connected to the upper side of the reset wheel 210, and the clamping wheel 213 is rotatably connected to the lower side of the flip frame 18; When the turning frame 18 moves downward, the clamping wheel 213 can squeeze the reset wheel 210, thereby limiting and clamping the fed fabric 14, so that the fabric 14 will not deviate randomly when being dried and ironed by the hot ironing assembly, thereby ensuring the drying and ironing effect of the section of fabric 14 and making the surface of the fabric 14 smoother.

[0024] Figure 3~Figure 4 and Figure 7 As shown, the hammering assembly includes a first limiting plate 31 and two second limiting plates 32, the first limiting plate 31 and the two second limiting plates 32 are fixedly connected to the lower side of the load-bearing frame 17, the first synchronous wheel 33 is rotatably connected to the first limiting plate 31, the second synchronous wheel 34 is connected to the upper side of the first synchronous wheel 33, and the second synchronous wheel 34 is coaxially fixedly connected to the locking wheel 26; The synchronous belt 35 is meshed with the first synchronous wheel 33 and the second synchronous wheel 34; Each second limiting plate 32 is rotatably connected to the beating cylinder 36 on one side facing the first limiting plate 31, and one end of each beating cylinder 36 facing the first synchronous wheel 33 is coaxially fixedly connected to the first synchronous wheel 33; When the driving disk 21 rotates, it can drive the positioning wheel 26 to rotate, and then under the transmission of the first synchronous wheel 33 and the second synchronous wheel 34, it can drive the beating cylinders 36 on both sides to rotate, so that the beating cylinders 36 can beat and stretch the dried fabric 14, so that the lumps precipitated by the dye liquid on the surface of the fabric 14 are broken up, and the lumps fall from the surface of the fabric 14, thereby ensuring the output effect of the fabric 14 and stretching the surface of the fabric 14 at the same time. Stretching the fabric 14 can help reduce wrinkles generated during the drying process and keep the fabric 14 smoother in appearance. This is because stretching can restore the fibers of the fabric 14 to their original tension state. At the same time, stretching can improve the dimensional stability of the fabric 14, making it less likely to deform or shrink during subsequent use, and the stretching operation can make the surface of the fabric 14 smoother, which helps to improve its appearance and touch.

[0025] like Figure 1~Figure 2 and Fig.11 As shown, the lower side of the flip frame 18 is fixedly connected to two receiving plates 41, the linkage column 42 is rotatably connected to the two receiving plates 41, and two cooling fans 43 with the same direction are fixedly connected to both ends of the linkage column 42 respectively; The first pulley 44 is sleeved on the linkage column 42 and fixedly connected, the second pulley 46 is connected to the side of the belt 45 away from the first pulley 44, the belt 45 is sleeved on the first pulley 44 and the second pulley 46, and the second pulley 46 is coaxially fixedly connected to the driving disc 21; When the hot ironing assembly is driven by the driving disk 21, the linkage column 42 can be driven to rotate under the connection and cooperation of the first pulley 44 and the second pulley 46, so that the fabric 14 that has been dried and ironed by the hot ironing assembly has been dried when passing through the area between the two cooling fans 43, and the excess water vapor and dye liquid in the fibers of the fabric 14 have been precipitated into lumps. With the cooperation of the beating assembly, the fabric 14 is stretched, which will break up some of the agglomerated dye liquid. Finally, the surface of the fabric 14 is cooled by two cooling fans 43 in the same direction, and these broken lumps are blown off the fabric 14, making the surface of the fabric 14 neater, which is beneficial to the workers outside the insulation bin 11 to collect and cool down the fabric 14, and reduces the work pressure of the workers.

[0026] like Figure 1~Figure 2 and Fig.11 As shown, the diameter of the second pulley 46 is greater than the diameter of the first pulley 44; Through the diameter ratio, the second pulley 46 can drive the first pulley 44 to rotate multiple times in one circle, so that the cooling fan 43 connected to the first pulley 44 can generate enough wind force when the hot ironing component is in operation to complete the coordinated operation.

[0027] like Figure 1~Figure 2 and Fig.11 As shown, the protective sleeve 47 is fixedly connected to the linkage column 42, and the diameter of the protective sleeve 47 is larger than the outer ring diameter of the first pulley 44; The protective sleeve 47 is used to protect the linkage column 42 to prevent the fabric 14 from interfering with the first pulley 44 when moving out of the heat preservation bin 11, thereby protecting the normal operation of the equipment.

[0028] like Figure 1 and Figure 8~Figure 10 As shown, the heat recovery component includes a first pipe 51 and two limit plates 53, the two ends of the first pipe 51 are respectively connected to the lower side of the drying component 13 and the upper inner wall of the heat preservation bin 11, one side of the first pipe 51 is fixedly connected to the second pipe 52, one end of the second pipe 52 is connected to the first pipe 51, and the end of the second pipe 52 away from the first pipe 51 is connected to the side of the heat preservation bin 11 near the drying outlet 16; The two limit plates 53 are fixedly connected to the upper inner wall of the heat preservation bin 11, the sealing plate 54 is slidably connected between the two limit plates 53, and the sealing block 55 is fixedly connected to the sealing plate 54; The two ends of the sealing plate 54 are hinged to two force transmission plates 56, and one end of each force transmission plate 56 away from the sealing plate 54 is hinged to one side of the turning frame 18 close to the drying inlet 15; The hot air generated by the drying component 13 moves upward, and the hot air passes through the surface of the fabric 14, carrying away the moisture on the surface of the fabric 14, that is, drying the surface of the fabric 14, and the heat carrying the water vapor continuously moves upward, and finally flows back to the lower side of the drying component 13 through the first pipe 51. Preferably, a condensing device is installed in the first pipe 51, which can precipitate the water vapor to ensure the dryness of the hot air generated by the drying component 13. At the same time, when the turning frame 18 is lifted upward, the sealing plate 54 will be driven by the force transmission plate 56 to move upward along with the limit plates 53 on both sides, and finally the sealing plate 54 will block the upper inner wall of the heat preservation chamber 11, so that the high-temperature hot air swirls in the heat preservation chamber 11, and then preheats a section of fabric 14 newly entering the heat preservation chamber 11, so that the surface of the fabric 14 passes the preheating operation, and the drying efficiency can be improved by preheating the fabric 14. Preheating increases the temperature of the fabric 14, reduces the energy required for the main drying stage, and can also reduce the adhesion of moisture, accelerate the evaporation process, thereby shortening the total drying time and improving energy efficiency.

[0029] The working principle of this embodiment is: In the first step, the fabric 14 is pulled out from the unwinder, and one end of the fabric 14 is sent into the heat preservation bin 11 through the drying inlet 15 by traction, and then the fabric 14 is ensured to be moved out of the heat preservation bin 11 through the drying outlet 16 during movement, and finally connected to the winder for collecting the fabric 14, so that the fabric 14 is in a stretched state; Then, the driving motor 212 drives the driving disc 21 to rotate. Due to the shape of the driving disc 21, when the side with a larger outer diameter of the driving disc 21 contacts the positioning wheel 26, it will drive the turning frame 18 to turn upward around the hinged position of the load-bearing frame 17, so that the fabric 14 moves, and the new fabric segment is sent to the lower side of the turning frame 18. At the same time, the rotation of the driving disc 21 will also drive the second turning plate 23 to rotate around the first turning plate 22, so that the limiting sleeve 25 moves back and forth along the limiting columns 27 on both sides. Then, when the smaller outer diameter of the driving disc 21 abuts against the positioning wheel 26 and rotates, the hot ironing plate 24 can iron the surface of the fabric 14 on the lower side, so that the fabric 14 is attached to the hot ironing plate 110 for drying, so that the section of fabric 14 is subjected to the dual effects of drying and ironing, making the fabric 14 smoother and less prone to wrinkles during the drying operation, thereby ensuring the beautiful effect of the surface of the fabric 14. When the driving disc 21 rotates, it can drive the positioning wheel 26 to rotate, and then under the transmission of the first synchronous wheel 33 and the second synchronous wheel 34, it can drive the beating cylinders 36 on both sides to rotate, so that the beating cylinders 36 can beat and stretch the dried fabric 14, so that the lumps precipitated by the dye solution on the surface of the fabric 14 are broken, and the lumps fall from the surface of the fabric 14, so as to ensure the output effect of the fabric 14, and at the same time, the surface of the fabric 14 is stretched. Stretching the fabric 14 can help reduce wrinkles generated during the drying process and keep the fabric 14 smoother in appearance. This is because stretching can restore the fibers of the fabric 14 to their original tension state. At the same time, through stretching, the dimensional stability of the fabric 14 can be improved, so that it is less likely to deform or shrink during subsequent use, and the stretching operation can make the surface of the fabric 14 smoother, which helps to improve its appearance and touch. At the same time, when the driving disc 21 drives the hot ironing assembly to move, the linkage column 42 can be driven to rotate under the connection and cooperation of the first pulley 44 and the second pulley 46, so that the fabric 14 that has been dried and ironed by the hot ironing assembly has been dried by the fabric 14 when passing through the area between the two cooling fans 43, and the excess water vapor and dye liquid in the fibers of the fabric 14 have been precipitated and agglomerated. Under the cooperation of the beating assembly, the fabric 14 is stretched, and part of the agglomerated dye liquid is broken. Finally, the surface of the fabric 14 is cooled by two cooling fans 43 with the same direction, and these broken agglomerates are blown off the fabric 14, making the surface of the fabric 14 neater, which is conducive to the collection and cooling of the fabric 14 by the workers outside the heat preservation warehouse 11, and reduces the work pressure of the workers; Finally, the fabric 14 is removed from the drying outlet 16 after the drying is completed, and then the fabric 14 is rolled up on the winder through the further cooling effect of the worker; And when the fabric 14 is dried, the hot air generated by the drying component 13 moves upward, and the hot air passes through the surface of the fabric 14 to carry away the moisture on the surface of the fabric 14, that is, the surface of the fabric 14 is dried, and the heat carrying the water vapor continuously moves upward, and finally flows back to the lower side of the drying component 13 through the first pipe 51. Preferably, a condensing device is installed in the first pipe 51 to precipitate the water vapor to ensure the dryness of the hot air generated by the drying component 13. At the same time, when the turning frame 18 is lifted upward, the sealing plate 54 will be driven to move upward along with the limit plates 53 on both sides through the force transmission plate 56, and finally the sealing plate 54 will block the upper inner wall of the heat preservation bin 11, so that the high-temperature hot air swirls in the heat preservation bin 11, and then a section of fabric 14 newly entering the heat preservation bin 11 is preheated, so that the surface of the fabric 14 is preheated, and the drying efficiency can be improved by preheating the fabric 14. Preheating increases the temperature of the fabric 14, reducing the energy required in the main drying stage, while also reducing the adhesion of moisture and accelerating the evaporation process, thereby shortening the overall drying time and improving energy efficiency. Example 2

[0030] like Figure 1 to Figure 11 As shown, this embodiment is based on Embodiment 1 and proposes a low energy consumption fabric drying process, comprising the following steps: S100: Dehydration: removing excess dye liquid and water from the fabric 14 through a centrifuge or other squeezing equipment; By dehydrating, a large amount of water in the fabric 14 is first discharged, thereby reducing the work pressure of the subsequent drying operation; S200: Installation: The fabric 14 is pulled out from the unwinder, and one end of the fabric 14 is sent into the heat preservation bin 11 through the drying inlet 15 by traction, and then the fabric 14 is ensured to be moved out of the heat preservation bin 11 through the drying outlet 16 during movement, and finally connected to the winder for collecting the fabric 14, so that the fabric 14 is in a stretched state; By installing, the fabric 14 is ensured to be in a working state installed on the device, so that the fabric 14 can pass through the heat preservation bin 11 in an orderly manner for drying operation; S300: preheating and drying: the heat generated by the drying component 13 is recycled through the heat recovery component, and part of the heat is used to preheat the surface of the fabric 14, and then the hot ironing component is used to limit the fabric 14 while the drying component 13 is used to dry it, and at the same time, the surface of the fabric 14 is ironed to prevent wrinkles from occurring on the surface of the fabric 14, and then the dried fabric 14 is moved to be subjected to the beating component, so that the fabric 14 can be stretched after drying, and finally moved out of the heat preservation chamber 11 from the drying outlet 16; By preheating and drying, the fabric 14 can be dried better, and the surface of the fabric 14 is ironed, so that the fabric 14 is not prone to wrinkles during the drying process, which improves the flatness of the fabric 14, that is, improves the aesthetics of the fabric 14 after production. Then, some lumps precipitated from the fabric 14 by high temperature can also be shaken off before being moved out of the heat preservation chamber 11, and under the action of stretching, the surface of the dried fabric 14 can be more beautiful. S400: Blowing and washing: by rotating the cooling fan 43 in the same direction, the fast-flowing wind is blown toward the surface of the dried fabric 14, so that the dirt lumps precipitated on the surface of the fabric 14 after the stretching action can be washed by the wind, and the surface of the fabric 14 is cooled; By blowing and washing, the heat on the surface of the fabric 14 is quickly taken away, reducing the impact of the fabric 14 moving out of the heat preservation chamber 11 on the temperature in the workshop, and the lumps that are not completely shaken off the surface of the fabric 14 can be cleaned to ensure the aesthetics of the output of the fabric 14; S500: Taking out: taking the dried fabric 14 from the winder, further cooling the fabric 14, and then sending the cooled fabric 14 to quality inspection; By further cooling the fabric 14, it is convenient for subsequent quality inspection to observe the surface of the fabric 14, and the impact of the fabric 14 on the workshop environment is reduced; S600: Finishing inspection: The fabric 14 is sent to the quality inspection department, and the fabric 14 is inspected and finished to ensure that the dyeing is uniform and there are no wrinkles; Through the finishing inspection, the surface of the fabric 14 is inspected so that the fabric 14 that does not meet the standards can be inspected and the aesthetics of the subsequent processing of the fabric 14 is ensured; S700: The inspected qualified fabric 14 is stored and waits for the next production process; After the fabric 14 is inspected, it is stored in a dry warehouse, so that workers can quickly take the fabric 14 when the fabric 14 is used for cutting clothes or carving and sewing operations, and the dry warehouse can prevent the fabric 14 from mildewing.

[0031] The above are only preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the protection scope of the present invention.

Claims

1. A low-energy consumption fabric drying device, comprising a heat preservation chamber (11), an electric control box (12) for controlling the temperature and temperature pressure in the heat preservation chamber (11), a drying assembly (13) for drying fabric (14) at high temperature, and a support frame (111) for supporting the heat preservation chamber (11), wherein the heat preservation chamber (11) is provided with a drying inlet (15) and a drying outlet (16) for the fabric (14) to pass through the heat preservation chamber (11) on the front and rear sides, respectively, and characterized in that ; A load-bearing frame (17) is fixedly connected inside the heat preservation bin (11); a turning frame (18) is hingedly connected to the upper side of one end of the load-bearing frame (17) facing the drying outlet (16); and a support wheel (19) is fixedly connected to the upper side of a section of the load-bearing frame (17) facing the drying inlet (15); A hot ironing plate (110) is fixedly connected to the load-bearing frame (17), and a hot ironing component for ironing the surface of the fabric (14) is connected between the turning frame (18) and the hot ironing plate (110); A beating assembly is connected to the load-bearing frame (17) and the turning frame (18) on the side facing the drying outlet (16) and cooperates with the hot ironing assembly to quickly beat the surface of the dried fabric (14); The heat preservation bin (11) is connected to a heat recovery component for recovering heat from the high-temperature gas in the heat preservation bin (11).

2. The low energy consumption fabric drying device according to claim 1, characterized in that: The hot ironing assembly comprises a driving disc (21), a positioning wheel (26) and two limiting columns (27); the driving disc (21) is rotatably connected to the turning frame (18); a first turning plate (22) is fixedly connected to the driving disc (21); a second turning plate (23) is hingedly connected to one end of the first turning plate (22) away from the driving disc (21); a hot iron (24) is hingedly connected to one end of the second turning plate (23) away from the first turning plate (22); and a limiting sleeve (25) is fixedly connected to the hot iron (24); The two limit posts (27) are fixedly connected to two sides of the turning frame (18), and the two ends of the limit sleeve (25) are slidably connected to the limit posts (27); The locking wheel (26) is rotatably connected to the load-bearing frame (17), and the side edge of the driving plate (21) abuts against the side edge of the locking wheel (26); One side of the driving disc (21) is connected to a driving motor (212), and the driving motor (212) is fixedly connected to the turning frame (18).

3. The low energy consumption fabric drying device according to claim 2, characterized in that: A locking plate (28) is fixedly connected to the side of the hot ironing plate (110) facing the drying inlet (15); two locking posts (29) are slidably connected to the locking plate (28); a reset wheel (210) for clamping the fabric (14) is fixedly connected to the side of the two locking posts (29) away from the locking plate (28); a clamping spring (211) is sleeved on each of the locking posts (29); two ends of the clamping spring (211) are respectively in contact with the locking plate (28) and the reset wheel (210); The upper side of the reset wheel (210) is connected to a clamping wheel (213), and the clamping wheel (213) is rotatably connected to the lower side of the turning frame (18).

4. The low energy consumption fabric drying device according to claim 2, characterized in that: The hammering assembly comprises a first limiting plate (31) and two second limiting plates (32), the first limiting plate (31) and the two second limiting plates (32) are fixedly connected to the lower side of the load-bearing frame (17), a first synchronous wheel (33) is rotatably connected to the first limiting plate (31), a second synchronous wheel (34) is connected to the upper side of the first synchronous wheel (33), and the second synchronous wheel (34) is coaxially fixedly connected to the locking wheel (26); A synchronous belt (35) is meshed with the first synchronous wheel (33) and the second synchronous wheel (34); The second limiting plates (32) are rotatably connected to a beating cylinder (36) on one side facing the first limiting plate (31), and the ends of the beating cylinders (36) facing the first synchronous wheel (33) are coaxially fixedly connected to the first synchronous wheel (33).

5. The low energy consumption fabric drying device according to claim 2, characterized in that: Two receiving plates (41) are fixedly connected to the lower side of the turning frame (18), and linkage columns (42) are rotatably connected to the two receiving plates (41), and cooling fans (43) with the same direction are fixedly connected to both ends of the linkage columns (42); A first belt pulley (44) is sleeved on the linkage column (42), a belt (45) is sleeved on the first belt pulley (44), a second belt pulley (46) is connected to the side of the belt (45) away from the first belt pulley (44), and the second belt pulley (46) is coaxially fixedly connected to the driving disc (21).

6. The low energy consumption fabric drying device according to claim 5, characterized in that: The diameter of the second pulley (46) is greater than the diameter of the first pulley (44).

7. The low energy consumption fabric drying device according to claim 5, characterized in that: A protective sleeve (47) is fixedly connected to the linkage column (42), and the diameter of the protective sleeve (47) is greater than the outer ring diameter of the first pulley (44).

8. The low energy consumption fabric drying device according to claim 2, characterized in that: The heat recovery component comprises a first pipe (51) and two limit plates (53); two ends of the first pipe (51) are respectively in communication with the lower side of the drying component (13) and the upper inner wall of the heat preservation bin (11); a second pipe (52) is fixedly connected to one side of the first pipe (51); one end of the second pipe (52) is in communication with the first pipe (51); and an end of the second pipe (52) away from the first pipe (51) is in communication with a side of the heat preservation bin (11) close to the drying outlet (16); The two limit plates (53) are fixedly connected to the upper inner wall of the heat preservation bin (11); a sealing plate (54) is slidably connected between the two limit plates (53); and a sealing block (55) is fixedly connected to the sealing plate (54); Both ends of the sealing plate (54) are hingedly connected to force transmission plates (56), and one end of each force transmission plate (56) away from the sealing plate (54) is hingedly connected to a side of the turning frame (18) close to the drying inlet (15).

9. A low energy consumption fabric drying process, characterized in that: The low-energy consumption fabric drying device according to any one of claims 1 to 8 is characterized in that it comprises the following steps: S100: Dehydration: removing excess dye liquid and water from the fabric (14) by a centrifuge or other squeezing equipment; S200: Installation: The fabric (14) is pulled out from the unwinding machine, and one end of the fabric (14) is sent into the heat preservation chamber (11) through the drying inlet (15) by traction, and then the fabric (14) is ensured to be moved out of the heat preservation chamber (11) through the drying outlet (16) during movement, and finally connected to the winder for collecting the fabric (14), so that the fabric (14) is in a stretched state; S300: preheating and drying: the heat generated by the drying component (13) is recycled and utilized through the heat recovery component, and part of the heat is used to preheat the surface of the fabric (14). Then, the hot ironing component is used to limit the fabric (14) while allowing the drying component (13) to dry it. While drying, the surface of the fabric (14) is ironed to prevent wrinkles from forming on the surface of the fabric (14). Then, the fabric (14) that has been dried is moved so that the fabric (14) is subjected to the action of the beating component, so that the fabric (14) can be stretched after drying, and finally, the fabric (14) is moved out of the heat preservation chamber (11) from the drying outlet (16). S400: Blowing and washing: by rotating the cooling fan (43) in the same direction, a fast-flowing wind is blown toward the surface of the dried fabric (14), so that the dirt lumps precipitated on the surface of the fabric (14) after stretching can be washed by the wind, and the surface of the fabric (14) is cooled; S500: Removing: removing the dried fabric (14) from the winder, further cooling the fabric (14), and then sending the cooled fabric (14) to quality inspection; S600: Finishing inspection: Send the fabric (14) to the quality inspection department to inspect and finish the fabric (14) to ensure that the dyeing is even and there are no wrinkles; S700: The fabric (14) that has passed the inspection is stored and waits for the next production process.