Plaster coating equipment for high-elasticity wear-resistant fiber fabric

By designing a combined structure of the box, support table, pressurized assembly, guide roller and drive arm in the fiber fabric homogenization equipment, the problem of small operation space for fabric loading is solved, and the convenience and efficiency of fabric loading is improved.

CN223033652UActive Publication Date: 2025-06-27JIANGSU AROMA HOME TEXTILE CO LTD
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Patent Information

Application Number
CN202421905578.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-08
Publication Date
2025-06-27
Estimated Expiration
2034-08-08

AI Technical Summary

Technical Problem

The existing fiber fabric homogenization equipment has a small operating space after the fabric is replaced, which makes it difficult to load the fabric body.

Method used

A slurry coating equipment for high elastic wear-resistant fiber fabrics is designed, and a combined structure of a box, a support table, a pressurized assembly, a guide roller and a driving arm is used to adjust the position of the guide roller and a support table to form a wave-type or linear channel, which simplifies the loading process of the fabric.

Benefits of technology

Through the design of this equipment, the operating space for fabric loading is significantly expanded, and the convenience and efficiency of fabric loading is improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of fiber fabric, in particular to pasting equipment for high-elasticity wear-resistant fiber fabric, which comprises a box body, a support table and a plurality of pressurizing components are arranged in the box body, the pressurizing components are all positioned above the support table, and the pressurizing components are used for abutting a fabric body against the support table. A set of guide rollers are symmetrically arranged in the box body, the supporting table is located between the guide rollers, a driving arm is arranged between the guide rollers and the supporting table, the side wall, close to one end, of the driving arm is rotationally connected with the end walls of the guide rollers, and the side wall, close to the other end, of the driving arm is movably connected with the side wall of the supporting table. And the driving arm is rotationally connected with the side wall of the box body. The fabric has the effect of facilitating feeding of the fabric body.
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Description

Technical Field

[0001] The utility model relates to the technical field of fiber fabrics, in particular to a sizing equipment for high-elasticity and wear-resistant fiber fabrics. Background Technique

[0002] The sizing equipment for textile fabrics is used to uniformly print the sizing formed by mixing additives and dyes in the slurry onto the textile fabric during textile cloth dyeing and printing, so as to improve the strength of the textile fabric, increase the wear resistance of the textile fabric, and make the textile fabric maintain a certain elastic elongation.

[0003] In the related technology, a Chinese patent with the authorization announcement number CN212103300U provides a sizing equipment for high-elasticity and wear-resistant fabrics, which includes a processing box. An installation plate is arranged in the processing box. A connecting belt is rotatably arranged above the installation plate. A pressure roller is arranged outside the connecting belt. A buffer spring is installed between the pressure roller and the connecting belt. The pressure roller is used to press the fabric body against the installation plate. When the fabric body is conveyed in the processing box, the sizing in the processing box submerges the fabric body on the installation plate. At the same time, the concave-convex structure on the upper surface of the installation plate causes the pressure roller to generate a tremor pressure on the fabric body. The pressed fabric body bends through its own tension, separating the yarns, so as to ensure sufficient sizing of the fabric.

[0004] In the process of implementing this application, the inventor found that there are at least the following problems in this technology: When the fabric on the traction mechanism is rewound, it is necessary for the staff to re-traction the fabric body from between the installation plate and the pressure roller to between the extrusion rollers to complete feeding. Since the gap between the concave-convex structure on the upper surface of the installation plate and the pressure roller is small, and both the installation plate and the pressure roller are located in the processing box, the operation space for feeding the fabric body is narrow, making it difficult to feed the fabric body. Summary of the Utility Model

[0005] In order to facilitate the feeding of the fabric body, this application provides a sizing equipment for high-elasticity and wear-resistant fiber fabrics.

[0006] The sizing equipment for high-elasticity and wear-resistant fiber fabrics provided by this application adopts the following technical solutions:

[0007] A sizing equipment for high-elasticity and wear-resistant fiber fabrics includes a box body. A support table and a number of pressing components are arranged in the box body. The pressing components are all located above the support table. The pressing components are used to press the fabric body against the support table. A group of guide rollers are symmetrically arranged in the box body. The support table is located between the guide rollers. A driving arm is arranged between the guide roller and the support table. The side wall of the driving arm near one end is rotatably connected to the end wall of the guide roller. The side wall of the driving arm near the other end is movably connected to the side wall of the support table. The driving arm is rotatably connected to the side wall of the box body.

[0008] By adopting the above technical solution, when sizing the fabric body, the guiding roller is located diagonally below the supporting table, and the fabric body is wound through the gap between the guiding roller and the bottom wall of the box body into the gap between the pressing assembly and the supporting table. At the same time, the pressing assembly presses the fabric against the supporting table. At this time, the gap between the guiding roller and the bottom wall of the box body and the gap between the pressing assembly and the supporting table form a wavy channel. When changing the material of the fabric body, the driving arm rotates to drive the guiding roller to move upward, increasing the gap between the guiding roller and the bottom wall of the box body. At the same time, the driving arm rotates to drive the supporting table to move downward, increasing the gap between the pressing assembly and the supporting table, and moving the guiding roller above the supporting table. Furthermore, the gap between the guiding roller and the bottom wall of the box body and the gap between the pressing assembly and the supporting table form a straight channel, which is convenient for the traction of the fabric body for feeding.

[0009] Preferably, a connecting through hole is formed through the side wall of the supporting table, and a connecting slider is slidably arranged in the connecting through hole. The end wall of the connecting slider is rotatably connected to the driving arm.

[0010] By adopting the above technical solution, when the driving arm rotates, the driving arm drives the connecting slider to act, and the connecting slider moves horizontally along the connecting through hole. At the same time, the connecting slider drives the supporting seat to move in the height direction.

[0011] Preferably, a driving shaft is fixedly arranged on the driving arm. The driving shaft penetrates through the side wall of the box body and is rotatably connected to the box body. A driving gear is fixedly arranged at one end of the driving shaft outside the box body. A group of driving racks are slidably arranged on the outer wall of the box body, and the driving gear meshes with the driving racks.

[0012] By adopting the above technical solution, when the driving rack moves, the driving rack drives the driving gear to rotate, the driving gear rotates to drive the driving shaft to rotate, and the driving shaft rotates to drive the driving arm to rotate.

[0013] Preferably, a group of mounting seats are fixedly arranged on the outer wall of the box body. A driving slide rod is fixedly arranged between the mounting seats. A group of driving blocks are arranged through the driving slide rod. One of the driving blocks is fixedly connected to one of the driving racks, and the other driving block is fixedly connected to the other driving rack.

[0014] By adopting the above technical solution, the driving rack is slidably arranged on the outer wall of the box body through the driving block and the driving slide rod.

[0015] Preferably, a forward screw rod and a reverse screw rod are rotatably arranged between the mounting seats. The opposite surfaces of the forward screw rod and the reverse screw rod are fixedly connected. One of the driving blocks is threadedly connected to the forward screw rod, and the other driving block is threadedly connected to the reverse screw rod.

[0016] By adopting the above technical solution, when the forward screw and the reverse screw rotate synchronously, the driving block drives the driving rack to move synchronously, and then the driving arm rotates synchronously.

[0017] Preferably, a driving motor is fixedly arranged on the mounting seat, and the output shaft of the driving motor is fixedly connected to the forward screw.

[0018] By adopting the above technical solution, after the driving motor is started, it drives the forward screw and the reverse screw to rotate synchronously, reducing the situation of manually driving the forward screw and the reverse screw to rotate.

[0019] Preferably, the pressing assembly includes a housing, a spring, a support and a pressing roller. One end of the support is rotatably connected to the pressing roller, the other end of the support is slidably arranged in the housing, the spring is arranged in the housing, and the spring abuts between the inner wall of the housing and the support.

[0020] By adopting the above technical solution, the spring pushes the support to move away from the housing by its own elastic force, and then presses the fabric body against the support table through the pressing roller.

[0021] Preferably, a plurality of transmission rollers are rotatably arranged in the box body, a transmission belt is sleeved on the transmission rollers together, one end of the housing away from the pressing roller is fixedly connected to the outer wall of the transmission belt, and a transmission motor is fixedly arranged on the box body, and the transmission motor is used to drive the transmission rollers to rotate.

[0022] By adopting the above technical solution, when the transmission motor drives the transmission rollers to rotate, the transmission rollers drive the transmission belt to rotate, and the transmission belt drives the pressing rollers connected to the housing to sequentially extrude the fabric body. At the same time, the pressing rollers vibrate due to the protrusions on the support table, causing the fabric body to extend and making the fabric fully sized.

[0023] In summary, the present application includes at least one of the following beneficial technical effects:

[0024] 1. By providing the box body, the support table, the pressing assembly, the guiding roller and the driving arm, it is convenient to feed the fabric body by traction;

[0025] 2. By providing the drive shaft, the drive gear, the drive rack, the mounting seat, the drive slide rod, the drive block, the forward screw, the reverse screw and the drive motor, the drive arms rotate synchronously;

[0026] 3. By providing the housing, the spring, the support and the pressing roller, the fabric body is pressed against the support table. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] Figure 1 is a cross-sectional view of a sizing device for a highly elastic wear-resistant fiber fabric in an embodiment of the present application.

[0028] Figure 2 It is a cross-sectional view showing the positional relationship between the support table and the guide roller in the embodiment of the present application.

[0029] Figure 3 It is a schematic diagram showing the connection relationship between the support table and the guide roller in the embodiment of the present application.

[0030] Figure 4 It is a schematic diagram showing the connection relationship between the driving rack and the box body in the embodiment of the present application.

[0031] Figure 5 It is a cross-sectional view showing the connection relationship between the pressing roller and the housing in the embodiment of the present application.

[0032] Explanation of reference numerals: 1, box body; 11, mounting seat; 2, support table; 3, pressing assembly; 31, housing; 32, spring; 33, support; 34, pressing roller; 4, guide roller; 5, driving arm; 51, driving shaft; 52, driving gear; 53, driving rack; 6, connecting slider; 61, connecting through hole; 7, driving motor; 71, forward screw; 72, reverse screw; 73, driving slide bar; 74, driving block; 8, transmission belt; 81, transmission roller; 82, transmission motor; 9, fabric body. Detailed implementation manners

[0033] The following further elaborates on the present application in conjunction with the attached Figures 1-5 for a more detailed description.

[0034] The embodiment of the present application discloses a sizing device for a highly elastic wear-resistant fiber fabric. Refer to Figures 1 to 3, including a box body 1, a support platform 2 and a number of pressurizing components 3 are installed in the box body 1. The pressurizing components 3 are all located above the support platform 2. A number of protrusions are provided on the top of the support platform 2. The pressurizing components 3 are used to press the fabric body 9 against the support platform 2. A set of guide rollers 4 are symmetrically installed in the box body 1, and the support platform 2 is located between the guide rollers 4. A set of connecting through holes 61 are provided through the side wall of the support platform 2, and the connecting through holes 61 are symmetrically arranged. A connecting slider 6 is slidably arranged in the connecting through hole 61, and a driving arm 5 is rotatably arranged on the connecting slider 6. The driving arms 5 are symmetrically arranged. The side wall of one end of the driving arm 5 away from the connecting slider 6 is rotatably connected to the end wall of the guide roller 4, and the center of the driving arm 5 is rotatably connected to the side wall of the box body 1. When the fabric body 9 is coated with slurry, the driving arms 5 rotate to a position where the closer ends of the two driving arms 5 are higher than the farther ends of the two driving arms 5. At this time, the guide rollers 4 are located obliquely below the support platform 2, and the fabric body 9 is wound through the gap between the guide roller 4 and the bottom wall of the box body 1 into the gap between the pressurizing component 3 and the support platform 2. At the same time, the pressurizing component 3 presses the fabric against the support platform 2. Therefore, during the slurry coating process of the fabric body 9, the gap between the guide roller 4 and the bottom wall of the box body 1 and the gap between the pressurizing component 3 and the support platform 2 form a wavy channel. On the one hand, as much of the fabric body 9 as possible is immersed in the slurry. On the other hand, the fabric body 9 is tensioned, and the fabric body 9 bends by its own tension to separate the yarns. When the fabric body 9 is reloaded, the driving arms 5 rotate to a position where the closer ends of the two driving arms 5 are lower than the farther ends of the two driving arms 5. At this time, the guide rollers 4 are located obliquely above the support platform 2. On the one hand, the gap between the guide roller 4 and the bottom wall of the box body 1 is increased. On the other hand, the gap between the pressurizing component 3 and the support platform 2 is increased. Therefore, during the feeding process of the fabric body 9, the gap between the guide roller 4 and the bottom wall of the box body 1 and the gap between the pressurizing component 3 and the support platform 2 form a straight channel with a larger space, which is convenient for the traction of the fabric body 9 for feeding. During the rotation of the driving arm 5, the driving arm 5 drives the connecting slider 6 to move, so that the connecting slider 6 moves horizontally along the connecting through hole 61, and at the same time, the connecting slider 6 drives the support seat to move in the height direction.

[0035] In order to make the driving arms 5 rotate synchronously, refer to Figures 1 to 4, a drive shaft 51 is installed at the center of the drive arm 5. The drive shaft 51 penetrates through the side wall of the box body 1, and the drive shaft 51 is rotatably connected to the box body 1 through a bearing. A drive gear 52 is installed at one end of the drive shaft 51 outside the box body 1. A set of mounting seats 11 are installed on the outer wall of the box body 1. A drive motor 7 is installed on one of the mounting seats 11. A forward screw rod 71 is installed on the output shaft of the drive motor 7. A reverse screw rod 72 is installed at the end of the forward screw rod 71 away from the drive motor 7. The end of the reverse screw rod 72 away from the forward screw rod 71 is rotatably connected to the other mounting seat 11. Drive blocks 74 are threadedly connected to both the forward screw rod 71 and the reverse screw rod 72. A drive rack 53 is installed on the drive block 74, and the drive rack 53 meshes with the drive gear 52. A drive slide rod 73 is installed between the mounting seats 11, and the drive slide rod 73 penetrates through the drive block 74. After the drive motor 7 is started, the forward screw rod 71 and the reverse screw rod 72 rotate synchronously, causing the drive block 74 to drive the drive rack 53 to move synchronously. When the drive rack 53 moves, the drive rack 53 drives the drive gear 52 to rotate, the rotation of the drive gear 52 drives the drive shaft 51 to rotate, and the rotation of the drive shaft 51 drives the drive arm 5 to rotate.

[0036] In order to fully size the fabric, refer to Figures 1 to 5 , several transmission rollers 81 are rotatably arranged in the box body 1, and a transmission belt 8 is sleeved on the transmission rollers 81 together. A transmission motor 82 is installed on the box body 1, and the transmission motor 82 is used to drive the transmission rollers 81 to rotate. The pressing assembly 3 includes a housing 31, a spring 32, a support 33 and a pressing roller 34. One end of the support 33 is rotatably connected to the pressing roller 34, and the other end of the support 33 is slidably arranged in the housing 31. The spring 32 is arranged in the housing 31, and the spring 32 abuts between the inner wall of the housing 31 and the support 33. The end of the housing 31 away from the pressing roller 34 is connected to the conveyor belt. The spring 32 pushes the support 33 to move away from the housing 31 through its own elastic force, and then presses the fabric body 9 against the support table 2 through the pressing roller 34. When the transmission motor 82 drives the transmission rollers 81 to rotate, the transmission rollers 81 drive the transmission belt 8 to rotate, and the transmission belt 8 drives the pressing roller 34 connected to the housing 31 to sequentially extrude the fabric body 9. At the same time, the pressing roller 34 vibrates due to the protrusions on the support table 2, causing the fabric body 9 to stretch and fully sizing the fabric.

[0037] The implementation principle of a sizing equipment for a highly elastic and wear-resistant fiber fabric in an embodiment of the present application is as follows: When sizing the fabric body 9, the driving arms 5 rotate to a position where the ends of the two driving arms 5 close to each other are higher than the ends of the two driving arms 5 away from each other. At this time, the guiding roller 4 is located diagonally below the support table 2, and the fabric body 9 is wound through the gap between the guiding roller 4 and the bottom wall of the box body 1 into the gap between the pressing assembly 3 and the support table 2. At the same time, the pressing assembly 3 presses the fabric against the support table 2. Therefore, during the sizing process of the fabric body 9, the gap between the guiding roller 4 and the bottom wall of the box body 1 and the gap between the pressing assembly 3 and the support table 2 form a wavy channel. On the one hand, as many fabric bodies 9 as possible are soaked in the sizing slurry. On the other hand, the fabric body 9 is tensioned, and the fabric body 9 bends due to its own tension to separate the yarns. When changing the material of the fabric body 9, the driving arms 5 rotate to a position where the ends of the two driving arms 5 close to each other are lower than the ends of the two driving arms 5 away from each other. At this time, the guiding roller 4 is located diagonally above the support table 2. On the one hand, the gap between the guiding roller 4 and the bottom wall of the box body 1 is increased. On the other hand, the gap between the pressing assembly 3 and the support table 2 is increased. Therefore, during the feeding process of the fabric body 9, the gap between the guiding roller 4 and the bottom wall of the box body 1 and the gap between the pressing assembly 3 and the support table 2 form a straight channel with a large space, which is convenient for the traction of the fabric body 9 for feeding.

[0038] The above are all preferred embodiments of the present application, and the protection scope of the present application is not limited thereby. Therefore, all equivalent changes made according to the structure, shape, and principle of the present application should be covered within the protection scope of the present application.

Claims

1. A slurry coating device for highly elastic and wear-resistant fiber fabrics, comprising a box (1), a support platform (2) and a plurality of pressure components (3) are arranged in the box (1), the pressure components (3) are all located above the support platform (2), the pressure components (3) are used to make the fabric body (9) abut against the support platform (2), a group of guide rollers (4) are symmetrically arranged in the box (1), the support platform (2) is located between the guide rollers (4), and the characteristics are: A driving arm (5) is arranged between the guide roller (4) and the support platform (2); the side wall of the driving arm (5) close to one end is rotatably connected to the end wall of the guide roller (4); the side wall of the driving arm (5) close to the other end is movably connected to the side wall of the support platform (2); and the driving arm (5) is rotatably connected to the side wall of the box body (1).

2. The slurry coating equipment for high elastic wear-resistant fiber fabric according to claim 1, characterized in that: A connecting through hole (61) is formed through the side wall of the support platform (2), a connecting slider (6) is slidably arranged in the connecting through hole (61), and an end wall of the connecting slider (6) is rotatably connected to the driving arm (5).

3. The slurry coating equipment for high elastic wear-resistant fiber fabric according to claim 1, characterized in that: A driving shaft (51) is fixedly arranged on the driving arm (5), the driving shaft (51) passes through the side wall of the box body (1), the driving shaft (51) is rotatably connected to the box body (1), a driving gear (52) is fixedly arranged on one end of the driving shaft (51) outside the box body (1), a group of driving racks (53) are slidably arranged on the outer wall of the box body (1), and the driving gear (52) and the driving rack (53) are meshed with each other.

4. The slurry coating equipment for high elastic wear-resistant fiber fabric according to claim 3, characterized in that: A group of mounting seats (11) are fixedly arranged on the outer wall of the box body (1), a driving slide bar (73) is fixedly arranged between the mounting seats (11), a group of driving blocks (74) are arranged through the driving slide bar (73), one of the driving blocks (74) is fixedly connected to one of the driving racks (53), and the other driving block (74) is fixedly connected to the other driving rack (53).

5. The slurry coating equipment for high elastic wear-resistant fiber fabric according to claim 4, characterized in that: A forward screw (71) and a reverse screw (72) are rotatably arranged between the mounting seats (11), and the forward screw (71) and the reverse screw (72) are fixedly connected at opposite surfaces, wherein one of the driving blocks (74) is threadedly connected to the forward screw (71), and the other of the driving blocks (74) is threadedly connected to the reverse screw (72).

6. The slurry coating equipment for high elastic wear-resistant fiber fabric according to claim 5, characterized in that: A driving motor (7) is fixedly arranged on the mounting seat (11), and an output shaft of the driving motor (7) is fixedly connected to a forward screw rod (71).

7. The slurry coating equipment for high elastic wear-resistant fiber fabric according to claim 1, characterized in that: The pressure component (3) comprises a shell (31), a spring (32), a support (33) and a pressure roller (34); one end of the support (33) is rotatably connected to the pressure roller (34); the other end of the support (33) is slidably arranged in the shell (31); the spring (32) is arranged in the shell (31); and the spring (32) abuts between the inner wall of the shell (31) and the support (33).

8. The slurry coating equipment for high elastic wear-resistant fiber fabric according to claim 7, characterized in that: A plurality of transmission rollers (81) are rotatably arranged in the box body (1), a transmission belt (8) is sleeved on the transmission rollers (81), one end of the housing (31) away from the pressure roller (34) is fixedly connected to the outer wall of the transmission belt (8), and a transmission motor (82) is fixedly arranged on the box body (1), and the transmission motor (82) is used to drive the transmission rollers (81) to rotate.

Citation Information

Patent Citations

  • Homogenizing equipment for high-elasticity wear-resistant fabric

    CN212103300U