Winding mechanism of textile printing equipment

By designing mounting plates, docking structures, and pulling structures, combined with synchronous brackets and drive structures, the problem of inconvenient assembly and disassembly of take-up rollers in textile printing equipment has been solved, enabling rapid installation and disassembly of take-up rollers and improving the efficiency of textile loading and unloading.

CN223836731UActive Publication Date: 2026-01-27SHAOXING HUATINGYI TEXTILE TECH CO LTD
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Patent Information

Application Number
CN202520526543.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-25
Publication Date
2026-01-27
Estimated Expiration
2035-03-25

AI Technical Summary

Technical Problem

In existing textile printing equipment, the installation and disassembly of the winding rollers are not convenient enough, which affects the ease of loading and unloading textiles.

Method used

A winding mechanism including a mounting plate, a docking structure, a pulling structure, and a winding roller is designed. The winding roller can be quickly installed and disassembled through the cooperation of a hexagonal plug and a socket. The winding roller is aligned with the center of the guide roller, the correction roller, and the tension adjustment structure through a synchronous bracket and a drive structure.

Benefits of technology

It enables quick installation and disassembly of the take-up roller, improves the efficiency of rapid unloading of textiles, and is suitable for center-symmetrical fixing of take-up rollers of different lengths, ensuring the ease of use of the device.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a winding mechanism of textile printing equipment, relates to the technical field of textile printing equipment, and aims to solve the technical problem that a winding roller in the current winding mechanism is inconvenient to disassemble and assemble. Through the designed structures such as the mounting plates, the butt joint structures, the pulling structures and the winding rollers, when the winding rollers are mounted, personnel can place the winding rollers between the butt joint structures of the two groups of mounting plates, and then the mounting plates are driven to move through the pulling structures; the hexagonal plugs in the butt joint structures on the mounting plates are inserted into the corresponding hexagonal insertion holes in the winding roller, so that the winding roller can be quickly mounted, and on the contrary, the hexagonal plugs are separated from the hexagonal insertion holes, so that the winding roller can be quickly dismounted, and after the winding roller completes winding of printed textiles, the winding roller can be quickly dismounted. And a worker can quickly take down the winding roller, and the effect of quickly discharging the wound textiles is achieved, so that the device is more convenient and quicker to use.
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Description

Technical Field

[0001] This utility model relates to the field of textile printing equipment technology, and more specifically, to a winding mechanism for textile printing equipment. Background Technology

[0002] During the textile printing process, the printed textiles need to be rolled up for subsequent processing, transportation and storage, which requires the use of a winding mechanism.

[0003] In existing winding mechanisms, the bearings at both ends of the winding roller are usually placed into a pre-set open arc groove during installation, and then the bearings are pressed and fixed by a ferrule and bolts. Therefore, the installation and disassembly of the winding roller is relatively troublesome, making it inconvenient for personnel to quickly assemble and disassemble the winding roller, which in turn affects the convenience of loading and unloading textiles. In view of this, we propose a winding mechanism for textile printing equipment. Utility Model Content

[0004] The purpose of this utility model is to overcome the shortcomings of the existing technology, adapt to the needs of reality, and provide a winding mechanism for textile printing equipment to solve the technical problem that the winding rollers in the current winding mechanism are not convenient to disassemble and assemble.

[0005] To solve the above technical problems, this utility model provides the following technical solution: a winding mechanism for a textile printing equipment, including a base, a first bracket arranged on the rear side of the top of the base, a guide roller rotatably arranged inside the rear side of the first bracket, a tension adjusting structure arranged inside the front side of the first bracket, a correction roller rotatably arranged inside the first bracket between the guide roller and the tension adjusting structure, mounting plates slidably arranged at both ends of the front side of the top of the base, a docking structure rotatably arranged on the top of the opposite sides of the two sets of mounting plates, and a winding roller arranged between the two sets of docking structures, a first motor arranged on the side of one set of mounting plates facing away from the docking structure, and a pulling structure arranged on the front side of the top of the base;

[0006] The pulling structure includes a synchronous bracket and a driving structure. The synchronous bracket is connected to two sets of mounting plates, and the driving structure is arranged on the base and passes through the synchronous bracket.

[0007] This invention utilizes a designed mounting plate, docking structure, pulling structure, and take-up roller. During installation, the take-up roller can be placed between the docking structures of two sets of mounting plates. The pulling structure then moves the mounting plates, allowing the hexagonal plug in the docking structure to insert into the corresponding hexagonal socket on the take-up roller, thus enabling rapid installation. Conversely, removing the hexagonal plug from the socket allows for rapid disassembly. Therefore, after the take-up roller has finished winding up the printed textile, it can be quickly removed, achieving rapid unloading of the textile. This makes the device more convenient and efficient to use. The pulling structure of this utility model is formed by the combination of a synchronous bracket and a drive structure. Therefore, when the gear shaft in the drive structure rotates, the rack and pinion of the first L-shaped plate and the second L-shaped plate can drive the first L-shaped plate and the second L-shaped plate to move synchronously relative to each other or move in opposite directions. This can achieve the synchronous displacement effect of the two sets of mounting plates, that is, it can ensure that after the docking structure on the two sets of mounting plates is fixed to the winding roller, the winding roller can always maintain the center correspondence with the guide roller, the correction roller and the tension adjustment structure. Moreover, it is suitable for the center symmetrical fixation of winding rollers of different lengths, which can further ensure the quick assembly and disassembly of the winding roller by the mounting plate and the docking structure.

[0008] Preferably, the first bracket has rectangular through holes on both sides corresponding to the tension adjustment structure. The tension adjustment structure includes an electro-hydraulic push rod, a pressure sensor, a mounting block, and a tension roller. The tension roller is located inside the first bracket. The mounting blocks are rotatably arranged through both ends of the rectangular through hole. The pressure sensor is arranged at the bottom of the mounting block. The electro-hydraulic push rod is arranged on the base, and the piston end of the electro-hydraulic push rod is connected to the pressure sensor. The tension roller is lower than the correction roller, and the guide roller is lower than the tension roller.

[0009] Preferably, the base has a first T-shaped groove at both ends on the front top side, and a first T-shaped slider is slidably arranged inside the first T-shaped groove, and the first T-shaped slider is connected to the mounting plate.

[0010] Preferably, the docking structure includes a circular seat, which is rotatably arranged on the mounting plate. A disc is arranged at one end of the circular seat facing away from the mounting plate, and a hexagonal plug is arranged on the side of the disc facing away from the circular seat. The rotating shaft of the first motor output end is connected to one end of the circular seat on the corresponding docking structure.

[0011] Preferably, the take-up roller includes a roller shaft with hexagonal insertion holes at both ends, the hexagonal insertion holes matching hexagonal plugs, a take-up sleeve fitted on the outside of the roller shaft, the diameter of the take-up sleeve being the same as the diameter of the disc, a number of equidistant limiting strips arranged on the inner wall of the take-up sleeve, and a limiting groove corresponding to the limiting strips being opened on the outer wall of the roller shaft.

[0012] Preferably, the synchronization bracket includes a first L-shaped plate and a second L-shaped plate, which are slidably connected. A rectangular hole is formed between the first L-shaped plate and the second L-shaped plate. One end of the first L-shaped plate facing away from the second L-shaped plate is connected to a set of mounting plates, and one end of the second L-shaped plate facing away from the first L-shaped plate is connected to another set of mounting plates.

[0013] Preferably, the drive structure includes a second bracket, a second motor, and a gear shaft. The second bracket is arranged on the top of the base, the second motor is arranged on the second bracket, and the gear shaft is rotatably arranged inside the second bracket. The rotating shaft at the output end of the second motor is connected to one end of the gear shaft. The gear shaft passes through a rectangular hole between the first L-shaped plate and the second L-shaped plate. Racks are arranged on opposite sides of the first L-shaped plate and the second L-shaped plate, and the racks on the first L-shaped plate and the second L-shaped plate mesh with the gear shaft.

[0014] Preferably, the first L-shaped plate and the second L-shaped plate have rectangular openings at their L-shaped ends. The rectangular opening at the L-shaped end of the first L-shaped plate is inserted into the second L-shaped plate, and the rectangular opening at the L-shaped end of the second L-shaped plate is inserted into the first L-shaped plate. The first L-shaped plate and the second L-shaped plate each have a second T-shaped groove on their front and rear sides. A second T-shaped slider corresponding to the second T-shaped groove is arranged in the rectangular opening, and the second T-shaped slider is slidably arranged in the corresponding second T-shaped groove.

[0015] Compared with the prior art, the beneficial effects of this utility model are:

[0016] 1. This utility model, through its designed mounting plate, docking structure, pulling structure, and take-up roller, allows for quick installation of the take-up roller. The roller is placed between the docking structures of two sets of mounting plates, and the pulling structure moves the mounting plates, causing the hexagonal plug in the docking structure to insert into the corresponding hexagonal socket on the take-up roller. Conversely, removing the hexagonal plug from the socket allows for quick disassembly. Therefore, after the take-up roller has finished winding up the printed textile, it can be quickly removed, achieving rapid unloading of the textile. This makes the device more convenient and efficient to use, solving the technical problem of inconvenient assembly and disassembly of the take-up roller in current winding mechanisms. Thus, this utility model offers the advantage of quick assembly and disassembly of the take-up roller.

[0017] 2. The pulling structure of this utility model is formed by the combination of a synchronous bracket and a drive structure. Therefore, when the gear shaft in the drive structure rotates, the rack and pinion of the first L-shaped plate and the second L-shaped plate can drive the first L-shaped plate and the second L-shaped plate to move synchronously relative to each other or move in opposite directions. This can achieve the synchronous displacement effect of the two sets of mounting plates, that is, it can ensure that after the docking structure on the two sets of mounting plates is fixed to the winding roller, the winding roller can always maintain the center correspondence with the guide roller, the correction roller and the tension adjustment structure. Moreover, it is suitable for the center symmetrical fixation of winding rollers of different lengths, which can further ensure the quick assembly and disassembly effect of the mounting plate and docking structure on the winding roller. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the first overall structure of the present invention;

[0019] Figure 2 This is a schematic diagram of the second overall structure of the present invention;

[0020] Figure 3 For the present utility model Figure 1 Enlarged view of point A in the middle;

[0021] Figure 4 This is a schematic diagram of the docking structure and the winding roller of this utility model;

[0022] Figure 5 This is a schematic diagram of the pulling structure of this utility model.

[0023] Explanation of the labels in the diagram:

[0024] 1. Base; 101. First T-shaped groove; 102. First T-shaped slider; 2. First bracket; 201. Rectangular through hole; 3. Guide roller; 4. Correcting roller; 5. Tension adjustment structure; 501. Electro-hydraulic push rod; 502. Pressure sensor; 503. Mounting block; 504. Tension roller; 6. Mounting plate; 7. Connecting structure; 701. Circular seat; 702. Disc; 703. Hexagonal plug; 8. Take-up roller; 801. Roller shaft; 802. 803. Hexagonal socket; 804. Limiting groove; 805. Retractor sleeve; 806. Limiting strip; 9. First motor; 10. Pulling structure; 11. Synchronous bracket; 1101. First L-shaped plate; 1102. Second L-shaped plate; 1103. Rack; 1104. Second T-shaped slide groove; 1105. Second T-shaped slider; 1106. Rectangular opening; 12. Drive structure; 1201. Second bracket; 1202. Second motor; 1203. Gear shaft. Detailed Implementation

[0025] like Figures 1 to 5As shown, the present invention relates to a winding mechanism for a textile printing equipment, comprising a base 1, a first support 2 arranged on the rear side of the top of the base 1, a guide roller 3 rotatably arranged inside the rear side of the first support 2, a tension adjusting structure 5 arranged inside the front side of the first support 2, a correction roller 4 rotatably arranged inside the first support 2 between the guide roller 3 and the tension adjusting structure 5, mounting plates 6 slidably arranged at both ends of the front top of the base 1, a docking structure 7 rotatably arranged on the top of the opposite sides of the two sets of mounting plates 6, and a winding roller 8 arranged between the two sets of docking structures 7, a first motor 9 arranged on the side of one set of mounting plates 6 facing away from the docking structure 7, and a pulling structure 10 arranged on the front top of the base 1; the docking structure 7 includes a circular seat 701, a circular... The circular seat 701 is rotatably arranged on the mounting plate 6. A disc 702 is arranged on one end of the circular seat 701 facing away from the mounting plate 6. A hexagonal plug 703 is arranged on the side of the disc 702 facing away from the circular seat 701. The rotating shaft of the output end of the first motor 9 is connected to one end of the circular seat 701 on the corresponding docking structure 7. The take-up roller 8 includes a roller shaft 801. Hexagonal insertion holes 802 are opened at both ends of the roller shaft 801, and the hexagonal insertion holes 802 match the hexagonal plug 703. Several sets of equidistant limiting strips 805 are arranged on the inner wall of the take-up sleeve 804. A limiting groove 803 corresponding to the limiting strips 805 is opened on the outer wall of the roller shaft 801. The take-up sleeve 804 is sleeved on the outer side of the roller shaft 801. The diameter of the take-up sleeve 804 is the same as the diameter of the disc 702.

[0026] After printing, the textiles pass through the guide roller 3, the correction roller 4, and the tension adjustment structure 5 in sequence, and then are wound onto the take-up roller 8. The first motor 9 is then controlled to drive the take-up roller 8 to rotate, and the take-up roller 8 takes up the textiles. The guide roller 3 guides the textiles. The correction roller 4 is elliptical, with a high center and low sides, which can correct the deviation. This is the existing technology. The tension adjustment structure 5 is used to adjust the tension of the textiles to ensure that the textiles are not loose or wrinkled when wound onto the take-up roller 8.

[0027] When installing the take-up roller 8, the operator can place the take-up roller 8 between the docking structures 7 of the two sets of mounting plates 6, and then move the mounting plates 6 by pulling the structure 10, so that the hexagonal plug 703 in the docking structure 7 on the mounting plate 6 is inserted into the corresponding hexagonal socket 802 on the take-up roller 8, thereby achieving quick installation of the take-up roller 8. Conversely, by removing the hexagonal plug 703 from the hexagonal socket 802, the take-up roller 8 can be quickly disassembled. Therefore, after the take-up roller 8 has finished taking up the printed textiles, the operator can quickly remove the take-up roller 8, and then pull the take-up sleeve 804 directly onto the roller shaft 801, thereby quickly unloading the textiles after taking up the textiles. Then, a new set of take-up sleeves 804 can be put on the roller shaft 801, and then the take-up roller 8 can be quickly installed between the two sets of mounting plates 6, so that the take-up roller 8 can be rotated by the first motor 9, thereby achieving quick take-up and feeding of textiles.

[0028] Specifically, the first support 2 has rectangular through holes 201 on both sides corresponding to the tension adjustment structure 5. The tension adjustment structure 5 includes an electro-hydraulic push rod 501, a pressure sensor 502, a mounting block 503, and a tension roller 504. The tension roller 504 is located inside the first support 2. The mounting blocks 503 are rotatably arranged at both ends of the tension roller 504 through the rectangular through hole 201. The pressure sensor 502 is arranged at the bottom of the mounting block 503. The electro-hydraulic push rod 501 is arranged on the base 1, and the piston end of the electro-hydraulic push rod 501 is connected to the pressure sensor 502. The tension roller 504 is lower than the correction roller 4, and the guide roller 3 is lower than the tension roller 504. When the textile passes through the tension roller 504 of the tension adjustment structure 5, the textile will exert a force on the tension roller 504. At this time, the pressure sensor 502 detects the force. Then, the personnel can use the electro-hydraulic push rod 501 to drive the mounting block 503 to rise or fall, thereby tightening or loosening the textile, thus adjusting the tension of the textile.

[0029] Furthermore, the base 1 has a first T-shaped groove 101 at both ends of the top front side, and a first T-shaped slider 102 is slidably arranged inside the first T-shaped groove 101. The first T-shaped slider 102 is connected to the mounting plate 6. The mounting plate 6 can be slidably installed with the cooperation of the first T-shaped groove 101 and the first T-shaped slider 102.

[0030] In an embodiment of this utility model, the pulling structure 10 includes a synchronous bracket 11 and a driving structure 12. The synchronous bracket 11 is connected to two sets of mounting plates 6, and the driving structure 12 is arranged on the base 1, passing through the synchronous bracket 11. The synchronous bracket 11 includes a first L-shaped plate 1101 and a second L-shaped plate 1102, which are slidably connected. A rectangular hole is formed between the first L-shaped plate 1101 and the second L-shaped plate 1102. One end of the first L-shaped plate 1101 facing away from the second L-shaped plate 1102 is connected to one set of mounting plates 6, and one end of the second L-shaped plate 1102 facing away from the first L-shaped plate 1101 is connected to another set of mounting plates 6. The moving structure 12 includes a second bracket 1201, a second motor 1202, and a gear shaft 1203. The second bracket 1201 is arranged on the top of the base 1, the second motor 1202 is arranged on the second bracket 1201, and the gear shaft 1203 is rotatably arranged inside the second bracket 1201. The rotating shaft at the output end of the second motor 1202 is connected to one end of the gear shaft 1203. The gear shaft 1203 passes through the rectangular hole between the first L-shaped plate 1101 and the second L-shaped plate 1102. Racks 1103 are arranged on opposite sides of the first L-shaped plate 1101 and the second L-shaped plate 1102. The racks 1103 on the first L-shaped plate 1101 and the second L-shaped plate 1102 mesh with the gear shaft 1203.

[0031] When the second motor 1202 in the drive structure 12 drives the gear shaft 1203 to rotate, the rack 1103 of the first L-shaped plate 1101 and the second L-shaped plate 1102 can drive the first L-shaped plate 1101 and the second L-shaped plate 1102 to move synchronously relative to each other or move in opposite directions. This can achieve the synchronous displacement effect of the two sets of mounting plates 6, that is, it can ensure that after the docking structure 7 on the two sets of mounting plates 6 fixes the winding roller 8, the winding roller 8 can always maintain the center correspondence with the guide roller 3, the correction roller 4 and the tension adjustment structure 5. Moreover, it is suitable for the center symmetrical fixation of winding rollers 8 of different lengths, which can further ensure the quick assembly and disassembly effect of the mounting plate 6 and the docking structure 7 on the winding roller 8.

[0032] Specifically, the L-shaped ends of the first L-shaped plate 1101 and the second L-shaped plate 1102 are provided with rectangular openings 1106. The rectangular opening 1106 at the L-shaped end of the first L-shaped plate 1101 is inserted into the second L-shaped plate 1102, and the rectangular opening 1106 at the L-shaped end of the second L-shaped plate 1102 is inserted into the first L-shaped plate 1101. The front and rear sides of the first L-shaped plate 1101 and the second L-shaped plate 1102 are provided with second T-shaped grooves 1104. A second T-shaped slider 1105 corresponding to the second T-shaped groove 1104 is arranged in the rectangular opening 1106. The second T-shaped slider 1105 is slidably arranged in the corresponding second T-shaped groove 1104. With the cooperation of the rectangular opening 1106, the second T-shaped groove 1104 and the second T-shaped slider 1105, the sliding connection and installation of the first L-shaped plate 1101 and the second L-shaped plate 1102 are realized.

[0033] Working principle: This embodiment provides a winding mechanism for a textile printing equipment. First, the printed textile passes through the guide roller 3, the correction roller 4, and the tension adjustment structure 5 in sequence, and then winds onto the winding roller 8. Then, the first motor 9 is controlled to drive the winding roller 8 to rotate, and the winding roller 8 winds up the textile. The guide roller 3 guides the textile. The correction roller 4 is elliptical, with a high center and low sides, which can correct the deviation. This is the prior art. Then, the tension adjustment structure 5 is used to adjust the tension of the textile to ensure that the textile is not loose or wrinkled when wound onto the winding roller 8.

[0034] Secondly, when installing the take-up roller 8, the operator can place the take-up roller 8 between the docking structures 7 of the two sets of mounting plates 6, and then move the mounting plates 6 by pulling the structure 10, so that the hexagonal plug 703 in the docking structure 7 on the mounting plate 6 is inserted into the corresponding hexagonal socket 802 on the take-up roller 8, thereby realizing the quick installation of the take-up roller 8. Conversely, by removing the hexagonal plug 703 from the hexagonal socket 802, the take-up roller 8 can be quickly disassembled. Therefore, after the take-up roller 8 has finished taking up the printed textiles, the operator can quickly remove the take-up roller 8, and then pull the take-up sleeve 804 directly onto the roller shaft 801, thereby quickly unloading the textiles after taking up. Then, a new set of take-up sleeves 804 can be put on the roller shaft 801, and then the take-up roller 8 can be quickly installed between the two sets of mounting plates 6, so that the take-up roller 8 can be rotated by the first motor 9, thereby realizing the quick take-up and feeding of textiles.

[0035] Finally, when the second motor 1202 in the drive structure 12 drives the gear shaft 1203 to rotate, the rack 1103 of the first L-shaped plate 1101 and the second L-shaped plate 1102 can drive the first L-shaped plate 1101 and the second L-shaped plate 1102 to move synchronously relative to each other or move in opposite directions. This can achieve the synchronous displacement effect of the two sets of mounting plates 6, that is, it can ensure that after the docking structure 7 on the two sets of mounting plates 6 is fixed to the winding roller 8, the winding roller 8 can always be kept in centered correspondence with the guide roller 3, the correction roller 4 and the tension adjustment structure 5. Moreover, it is suitable for the symmetrical fixing of winding rollers 8 of different lengths, which can further ensure the quick assembly and disassembly effect of the mounting plate 6 and the docking structure 7 on the winding roller 8.

[0036] The embodiments disclosed herein are preferred embodiments, but are not limited thereto. Those skilled in the art can readily grasp the spirit of this utility model based on the above embodiments and make different extensions and variations. However, as long as they do not depart from the spirit of this utility model, they are all within the protection scope of this utility model.

Claims

1. A winding mechanism for a textile printing device, characterized in that, The base includes a base (1), a first bracket (2) is arranged on the rear side of the top of the base (1), a guide roller (3) is rotatably arranged inside the rear side of the first bracket (2), a tension adjustment structure (5) is arranged inside the front side of the first bracket (2), a correction roller (4) is rotatably arranged inside the first bracket (2) between the guide roller (3) and the tension adjustment structure (5), mounting plates (6) are slidably arranged at both ends of the front side of the top of the base (1), a docking structure (7) is rotatably arranged on the top of the opposite sides of the two sets of mounting plates (6), and a winding roller (8) is arranged between the two sets of docking structures (7). A first motor (9) is arranged on the side of one set of mounting plates (6) facing away from the docking structure (7), and a pulling structure (10) is arranged on the front side of the top of the base (1). The pulling structure (10) includes a synchronous bracket (11) and a driving structure (12). The synchronous bracket (11) is connected to two sets of mounting plates (6). The driving structure (12) is arranged on the base (1) and passes through the synchronous bracket (11).

2. The winding mechanism of a textile printing equipment according to claim 1, characterized in that, The first bracket (2) has rectangular through holes (201) on both sides corresponding to the tension adjustment structure (5). The tension adjustment structure (5) includes an electric hydraulic push rod (501), a pressure sensor (502), a mounting block (503), and a tension roller (504). The tension roller (504) is located inside the first bracket (2). The tension roller (504) passes through the two ends of the rectangular through hole (201) and the mounting block (503) is rotatably arranged thereon. The pressure sensor (502) is arranged at the bottom of the mounting block (503). The electric hydraulic push rod (501) is arranged on the base (1), and the piston end of the electric hydraulic push rod (501) is connected to the pressure sensor (502). The tension roller (504) is lower than the correction roller (4), and the guide roller (3) is lower than the tension roller (504).

3. The winding mechanism of a textile printing equipment according to claim 1, characterized in that, The base (1) has a first T-shaped groove (101) at both ends on the front top side. A first T-shaped slider (102) is slidably arranged inside the first T-shaped groove (101). The first T-shaped slider (102) is connected to the mounting plate (6).

4. The winding mechanism of a textile printing equipment according to claim 1, characterized in that, The docking structure (7) includes a circular seat (701), which is rotatably arranged on the mounting plate (6). A disc (702) is arranged on one end of the circular seat (701) facing away from the mounting plate (6), and a hexagonal plug (703) is arranged on the side of the disc (702) facing away from the circular seat (701). The rotating shaft of the output end of the first motor (9) is connected to one end of the circular seat (701) on the corresponding docking structure (7).

5. The winding mechanism of a textile printing equipment according to claim 4, characterized in that, The take-up roller (8) includes a roller shaft (801), which has hexagonal insertion holes (802) at both ends, and the hexagonal insertion holes (802) match the hexagonal plug (703). A take-up sleeve (804) is fitted on the outside of the roller shaft (801), and the diameter of the take-up sleeve (804) is the same as the diameter of the disc (702). Several sets of equidistant limiting strips (805) are arranged on the inner wall of the take-up sleeve (804), and a limiting groove (803) corresponding to the limiting strips (805) is opened on the outer wall of the roller shaft (801).

6. The winding mechanism of a textile printing equipment according to claim 1, characterized in that, The synchronous bracket (11) includes a first L-shaped plate (1101) and a second L-shaped plate (1102), which are slidably connected. A rectangular hole is formed between the first L-shaped plate (1101) and the second L-shaped plate (1102). One end of the first L-shaped plate (1101) facing away from the second L-shaped plate (1102) is connected to a set of mounting plates (6), and one end of the second L-shaped plate (1102) facing away from the first L-shaped plate (1101) is connected to another set of mounting plates (6).

7. The winding mechanism of a textile printing equipment according to claim 6, characterized in that, The drive structure (12) includes a second bracket (1201), a second motor (1202), and a gear shaft (1203). The second bracket (1201) is arranged on the top of the base (1), the second motor (1202) is arranged on the second bracket (1201), and the gear shaft (1203) is rotatably arranged inside the second bracket (1201). The rotation shaft at the output end of the second motor (1202) is connected to one end of the gear shaft (1203). The gear shaft (1203) passes through the rectangular hole between the first L-shaped plate (1101) and the second L-shaped plate (1102). A rack (1103) is arranged on the opposite side of the first L-shaped plate (1101) and the second L-shaped plate (1102). The racks (1103) on the first L-shaped plate (1101) and the second L-shaped plate (1102) mesh with the gear shaft (1203).

8. The winding mechanism of a textile printing equipment according to claim 6, characterized in that, The first L-shaped plate (1101) and the second L-shaped plate (1102) have rectangular openings (1106) at their L-shaped ends. The rectangular opening (1106) at the L-shaped end of the first L-shaped plate (1101) is inserted into the second L-shaped plate (1102), and the rectangular opening (1106) at the L-shaped end of the second L-shaped plate (1102) is inserted into the first L-shaped plate (1101). The first L-shaped plate (1101) and the second L-shaped plate (1102) have second T-shaped grooves (1104) on their front and rear sides. A second T-shaped slider (1105) corresponding to the second T-shaped groove (1104) is arranged in the rectangular opening (1106), and the second T-shaped slider (1105) is slidably arranged in the corresponding second T-shaped groove (1104).