Textile printing and dyeing processing system and process

By designing a textile printing and dyeing system driven by a sliding seat, a swing seat, and a servo motor, the problem that existing devices can only perform single-color printing and dyeing has been solved, and efficient processing of multi-color printing and dyeing has been achieved.

CN121802640APending Publication Date: 2026-04-07万陈
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Patent Information

Application Number
CN202310729149.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2023-06-20
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing textile printing and dyeing equipment can only process one color on fabric, which cannot meet the needs of printing and dyeing multiple colors.

Method used

A textile printing and dyeing processing system was designed, including components such as a sliding seat, a swing seat, a printing and dyeing roller, a coating space, and a servo motor. Multiple colors can be printed and dyed through multiple coating spaces and printing holes. The servo motor drives the fabric feeding and the rotation of the printing and dyeing roller, and the printing and dyeing arc body with absorbent material can achieve multi-color printing and dyeing.

Benefits of technology

It enables the simultaneous printing of multiple colors on fabrics, meeting different usage needs and improving printing efficiency and effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the field of textile printing and dyeing, in particular to a textile printing and dyeing processing system and a textile printing and dyeing processing technology. The textile printing and dyeing processing system comprises a device support, two sliding seats are slidably connected to the device support, two swing seats are slidably connected to each sliding seat, and compression springs I are fixedly connected between the swing seats and the sliding seats; two printing and dyeing rollers are arranged among the four sliding seats, and a plurality of coating spaces are formed in each printing and dyeing roller; the process comprises the following steps: 1, introducing different coatings into a coating space through a plurality of coating pipelines; 2, the textile fabric to be printed and dyed penetrates through the space between two printing and dyeing rollers, and the two printing and dyeing rollers continuously rotate; 3, different coating spaces are arranged in the printing and dyeing roller, and different coatings are printed and dyed on the textile fabric in the rotating process of the printing and dyeing roller; and various colors can be printed and dyed on the cloth according to different use requirements.
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Description

Technical Field

[0001] This invention relates to the field of textile printing and dyeing, and more specifically to a textile printing and dyeing processing system and process. Background Technology

[0002] Textile printing and dyeing is a fabric processing method used to color fabrics. There are many fabric coloring devices in the existing technology, such as patent number CN211138463U, entitled "A Textile Printing and Dyeing Device". This patent discloses a fabric printing and dyeing device, but it can only complete the single coloring of the fabric, that is, it can only apply one color to the fabric, and it cannot print multiple colors on the fabric according to different usage requirements. Summary of the Invention

[0003] The purpose of this invention is to provide a textile printing and dyeing system and process that can print and dye various colors on fabrics according to different usage requirements.

[0004] The objective of this invention is achieved through the following technical solution:

[0005] A textile printing and dyeing processing system includes a device support frame, two sliding seats slidably connected to the device support frame, two swing seats slidably connected to each sliding seat, a compression spring I fixedly connected between the swing seats and the sliding seats, two printing and dyeing rollers arranged between the four sliding seats, and multiple coating spaces arranged in each printing and dyeing roller.

[0006] Each of the four sliding seats is rotatably connected to a support cylinder, and each support cylinder is fixedly connected to a baffle on its inner side. Two printing and dyeing rollers are fixedly connected between the four baffles. A power mechanism I for driving the support cylinder to rotate is fixedly connected to the sliding seat. The power mechanism I is preferably a servo motor.

[0007] Each printing and dyeing roller is equipped with a support roller. Multiple partition plates I are fixedly connected between the support roller and the printing and dyeing roller. The multiple partition plates I divide the space between the support roller and the printing and dyeing roller to form multiple coating spaces. Multiple printing and dyeing holes are provided on the printing and dyeing roller, and the multiple printing and dyeing holes are respectively connected to the multiple coating spaces.

[0008] Each partition plate I is slidably connected to a partition plate II, and a compression spring II is fixedly connected between partition plate II and partition plate I.

[0009] Multiple printing and dyeing arcs are fixedly connected to the printing and dyeing roller, and the multiple printing and dyeing arcs are respectively arranged between multiple partition plates II;

[0010] The printing and dyeing arc body is available in different length models;

[0011] The printing and dyeing process uses absorbent materials;

[0012] The end of the support roller extends between two support cylinders. A sliding sleeve is slidably connected between the support roller and the support cylinders. Multiple paint pipes are fixedly connected to the sliding sleeve. A sealing plate is fixedly connected to each paint pipe. The multiple sealing plates are slidably connected in multiple paint spaces.

[0013] Each coating pipe is fixedly connected to a rotating ring, each rotating ring is rotatably connected to a coating cavity, and each coating cavity is fixedly connected to a connecting pipe. The coating pipe and the coating cavity are connected, and the coating pipe and the coating space are connected.

[0014] Two support seats are fixedly connected to the device bracket. Two feeding rollers are rotatably connected to each support seat. The two feeding rollers on the same support seat mesh with each other. A power mechanism II that drives one of the feeding rollers to rotate is fixedly connected to one of the support seats. The power mechanism II is preferably a servo motor.

[0015] Each support base is rotatably connected to two swing seats, each swing seat is hinged to a connecting rod I, each connecting rod I is slidably connected to a connecting rod II, and a compression spring III is fixedly connected between connecting rod II and connecting rod I. The inner ends of the four connecting rods II are respectively hinged to two sliding seats.

[0016] Each rotating seat is fixedly connected to a telescopic mechanism, and each telescopic mechanism is fixedly connected to a support ring at its telescopic end. The support ring is rotatably connected to the sliding sleeve.

[0017] A textile printing and dyeing process, which includes the following steps:

[0018] Step 1: Different paints are introduced into the paint space through multiple paint pipes;

[0019] Step 2: The dyed textile fabric passes between two dyeing rollers, which rotate continuously.

[0020] Step 3: Different coating spaces are set inside the printing roller. As the printing roller rotates, different coatings are printed onto the textile fabric. Attached Figure Description

[0021] The present invention will now be described in further detail with reference to the accompanying drawings and specific implementation methods.

[0022] Figure 1 This is a schematic diagram of the textile printing and dyeing process of the present invention;

[0023] Figure 2 This is a schematic diagram of the textile printing and dyeing processing system of the present invention;

[0024] Figure 3 This is a partial structural diagram of the textile printing and dyeing processing system of the present invention;

[0025] Figure 4 This is a schematic diagram of the device support structure of the present invention;

[0026] Figure 5 This is a schematic diagram of the feeding roller structure of the present invention;

[0027] Figure 6 This is a schematic diagram of the dyeing roller structure of the present invention;

[0028] Figure 7 This is a schematic diagram of the dyeing roller structure of the present invention;

[0029] Figure 8 This is a schematic diagram of the dyeing roller structure of the present invention;

[0030] Figure 9 This is a schematic diagram of the dyeing roller structure of the present invention;

[0031] Figure 10 This is a schematic diagram of the coating pipeline structure of the present invention;

[0032] Figure 11 This is a schematic diagram of the coating pipeline structure of the present invention;

[0033] Figure 12 This is a schematic diagram of the rotating seat structure of the present invention.

[0034] In the picture:

[0035] Device bracket 11; support base 12;

[0036] 20 feed rollers;

[0037] Support roller 31; printing and dyeing roller 32; separator plate I 33; separator plate II 34;

[0038] Support cylinder 41; baffle 42;

[0039] 51. Sliding sleeve; 52. Paint pipe; 53. Rotating ring; 54. Sealing plate; 55. Paint cavity; 56. Connecting pipe;

[0040] Swing seat 61; Link I 62; Link II 63;

[0041] Sliding seat 71; Rotating seat 72;

[0042] Telescopic mechanism 81; support ring 82;

[0043] Printing and dyeing arc body 90. Detailed Implementation

[0044] The present invention will now be described in further detail with reference to the accompanying drawings.

[0045] like Figures 2 to 12As shown below, the structure and function of a textile printing and dyeing processing system will be described in detail.

[0046] A textile printing and dyeing processing system includes a device support 11, on which two sliding seats 71 are slidably connected, and on each sliding seat 71 two swing seats 61 are slidably connected, and a compression spring I is fixedly connected between the swing seats 61 and the sliding seats 71. Two printing and dyeing rollers 32 are arranged between the four sliding seats 71, and multiple coating spaces are arranged in each printing and dyeing roller 32.

[0047] Each of the four sliding seats 71 is rotatably connected to a support cylinder 41, and a baffle 42 is fixedly connected to the inner side of each support cylinder 41. Two printing and dyeing rollers 32 are fixedly connected between the four baffles 42. A power mechanism I for driving the support cylinder 41 to rotate is fixedly connected to the sliding seat 71. The power mechanism I is preferably a servo motor.

[0048] Each dyeing roller 32 is provided with a support roller 31. Multiple partition plates I 33 are fixedly connected between the support roller 31 and the dyeing roller 32. The multiple partition plates I 33 divide the space between the support roller 31 and the dyeing roller 32 to form multiple coating spaces. Multiple dyeing holes are provided on the dyeing roller 32, and the multiple dyeing holes are respectively connected to the multiple coating spaces.

[0049] Each partition plate I33 is slidably connected to a partition plate II34, and a compression spring II is fixedly connected between partition plate II34 and partition plate I33.

[0050] Multiple printing and dyeing arcs 90 are fixedly connected to the printing and dyeing roller 32, and the multiple printing and dyeing arcs 90 are respectively arranged between multiple partition plates II 34.

[0051] The 90mm diameter of the dyeing and printing arc is made of absorbent material;

[0052] The end of the support roller 31 extends between two support cylinders 41. A sliding sleeve 51 is slidably connected between the support roller 31 and the support cylinders 41. Multiple paint pipes 52 are fixedly connected to the sliding sleeve 51. Each paint pipe 52 is fixedly connected to a sealing plate 54. The multiple sealing plates 54 are slidably connected in multiple paint spaces.

[0053] Each paint pipe 52 is fixedly connected to a rotating ring 53, each rotating ring 53 is rotatably connected to a paint cavity 55, and each paint cavity 55 is fixedly connected to a connecting pipe 56. The paint pipe 52 and the paint cavity 55 are connected, and the paint pipe 52 is connected to the paint space.

[0054] Two support seats 12 are fixedly connected to the device bracket 11. Two feeding rollers 20 are rotatably connected to each support seat 12. The two feeding rollers 20 on the same support seat 12 mesh with each other. A power mechanism II that drives one of the feeding rollers 20 to rotate is fixedly connected to one of the support seats 12 on one side. The power mechanism II is preferably a servo motor.

[0055] Each rotating seat 72 is fixedly connected to a telescopic mechanism 81, and each telescopic mechanism 81 is fixedly connected to a support ring 82 at its telescopic end. The support ring 82 is rotatably connected to the sliding sleeve 51.

[0056] When using, such as Figure 3 As shown, different dye pipes are connected to the connecting pipe 56 according to the dyeing sequence required in advance. The connecting pipe 56 is connected to the paint cavity 55, so that the dye enters the paint cavity 55. The paint cavity 55 is connected to the paint space through the paint pipe 52, so that different dyes enter different paint spaces respectively.

[0057] like Figure 2 As shown, the textile fabric to be printed and dyed is passed between two feed rollers 20, between two dyeing rollers 32, and between two feed rollers 20. The power mechanism II is started, and the output shaft of the power mechanism II starts to rotate. The power mechanism II is fixedly connected to the support base 12 located on the front side. The output shaft of the power mechanism II drives one of the feed rollers 20 to rotate. The two feed rollers 20 on the front side mesh and drive each other, so that the two feed rollers 20 rotate together and in opposite directions. The rotation of the two feed rollers 20 continuously pushes the fabric to move, so that the fabric continuously passes between the two dyeing rollers 32.

[0058] When the power mechanism I is started, the output shaft of the power mechanism I begins to rotate. The output shaft of the power mechanism I drives the support cylinder 41 to rotate, the support cylinder 41 drives the baffle 42 to rotate, and the baffle 42 drives the dyeing roller 32 to rotate. Both dyeing rollers 32 rotate together, and at the same time, the connecting pipe 56 continuously feeds dye into the coating space. The dye in the coating space enters the dyeing arc body 90 through multiple dyeing holes provided on the dyeing roller 32. The dyeing arc body 90 is preferably made of a material such as a sponge that can absorb dye. Different dyeing arc bodies 90 absorb different dyes. During the rotation of the dyeing roller 32, the dyeing roller 32 drives multiple dyeing arc bodies 90 to rotate, so that the multiple dyeing arc bodies 90 apply different dyes to the fabric.

[0059] Furthermore, in order to prevent the dyes from contaminating each other among the multiple printing and dyeing arcs 90, a partition plate II 34 is provided. The partition plate II 34 separates the multiple printing and dyeing arcs 90. At the same time, the partition plate II 34 can also slide on the partition plate I 33 to ensure that the partition plate II 34 can shrink accordingly when the printing and dyeing arcs 90 deform.

[0060] Furthermore, when the width of the fabric requiring dye changes, the telescopic mechanism 81 is activated. The telescopic mechanism 81 can be a hydraulic cylinder or an electric push rod. The telescopic end of the telescopic mechanism 81 drives the support ring 82, which in turn drives the sliding sleeve 51 to move. The sliding sleeve 51 drives multiple sealing plates 54 to slide within the coating space, thereby adjusting the width of the dyeing roller 32 that can discharge pigment, thus meeting different usage requirements.

[0061] Furthermore, the printing and dyeing arc 90 is available in different length models, and the length models of the printing and dyeing arc 90 can be changed at the same time, thereby enabling the printing and dyeing roller 32 to print and dye fabrics of different widths.

[0062] Furthermore, depending on the usage requirements, the same dye can be introduced into adjacent or different paint spaces to adjust the area of ​​that color on the fabric.

[0063] Furthermore, each support base 12 is rotatably connected to two swing seats 61, each swing seat 61 is hinged to a connecting rod I 62, each connecting rod I 62 is slidably connected to a connecting rod II 63, and a compression spring III is fixedly connected between the connecting rod II 63 and the connecting rod I 62. The inner ends of the four connecting rods II 63 are respectively hinged to two sliding seats 71. A power mechanism III for driving the swing seats 61 to rotate is fixedly connected to the support base 12. The power mechanism III is preferably a servo motor.

[0064] In order to ensure that the dyeing roller 32 can fully dye the fabric, the fabric needs to be in a certain state of tension during the dyeing process, so that the dye on the dyeing roller 32 can fully enter the fabric gaps, thereby ensuring that the fabric is fully dyed.

[0065] When the power mechanism III is started, the output shaft of the power mechanism III begins to rotate. The output shaft of the power mechanism III drives the swing seat 61 to swing. The swing seat 61 drives the connecting rod I 62 to swing. The connecting rod I 62 drives the connecting rod II 63 to swing. The connecting rod II 63 drives the sliding seat 71 to move up and down, so that the sliding seat 71 slides up and down on the device support 11. The sliding seat 71 drives the two printing and dyeing rollers 32 to move up and down.

[0066] When the two printing rollers 32 move away from the center line of the two feeding rollers 20, the two support rollers 31 pull the fabric, causing the middle of the fabric to bulge upwards or downwards, thus stretching the fabric to a certain tension. When the two support rollers 31 move closer to the center line of the two feeding rollers 20, the two feeding rollers 20 feed the fabric out. At this time, the fabric is in a relatively relaxed state and is not printed. Then, when the two printing rollers 32 pull the fabric, printing occurs, ensuring the printing effect of the fabric.

[0067] like Figure 1 As shown below, the steps and functions of a textile printing and dyeing process will be explained in detail.

[0068] A textile printing and dyeing process, which includes the following steps:

[0069] Step 1: Different paints are introduced into the paint space through multiple paint pipes 52;

[0070] Step 2: The dyed textile fabric passes between two dyeing rollers 32, which rotate continuously.

[0071] Step 3: Different coating spaces are set inside the printing roller 32. During the rotation of the printing roller 32, different coatings are printed onto the textile fabric.

Claims

1. A textile printing and dyeing processing system, comprising a device support (11), characterized in that: The device support (11) has two sliding seats (71) slidably connected, and each sliding seat (71) has two swing seats (61) slidably connected. A compression spring I is fixedly connected between the swing seats (61) and the sliding seats (71). Two printing and dyeing rollers (32) are arranged between the four sliding seats (71), and each printing and dyeing roller (32) has multiple paint spaces.

2. The textile printing and dyeing processing system according to claim 1, characterized in that: Each of the four sliding seats (71) is rotatably connected to a support cylinder (41), and each support cylinder (41) is fixedly connected to a baffle (42) on its inner side. Two printing and dyeing rollers (32) are fixedly connected between the four baffles (42).

3. The textile printing and dyeing processing system according to claim 2, characterized in that: Each dyeing roller (32) is provided with a support roller (31). Multiple partition plates I (33) are fixedly connected between the support roller (31) and the dyeing roller (32). The multiple partition plates I (33) divide the space between the support roller (31) and the dyeing roller (32) to form multiple coating spaces. Multiple dyeing holes are provided on the dyeing roller (32), and the multiple dyeing holes are respectively connected to the multiple coating spaces.

4. The textile printing and dyeing processing system according to claim 3, characterized in that: Each partition plate I (33) is slidably connected to a partition plate II (34), and a compression spring II is fixedly connected between partition plate II (34) and partition plate I (33).

5. A textile printing and dyeing processing system according to claim 4, characterized in that: Multiple printing and dyeing arcs (90) are fixedly connected to the printing and dyeing roller (32), and the multiple printing and dyeing arcs (90) are respectively arranged between multiple partition plates II (34).

6. A textile printing and dyeing processing system according to claim 5, characterized in that: The printing and dyeing arc body (90) is available in different length models, and the printing and dyeing arc body (90) is made of water-absorbing material.

7. A textile printing and dyeing processing system according to claim 5, characterized in that: The end of the support roller (31) extends between two support cylinders (41). A sliding sleeve (51) is slidably connected between the support roller (31) and the support cylinder (41). Multiple paint pipes (52) are fixedly connected to the sliding sleeve (51). A sealing plate (54) is fixedly connected to each paint pipe (52). Multiple sealing plates (54) are slidably connected in multiple paint spaces. A rotating ring (53) is fixedly connected to each paint pipe (52). A paint cavity (55) is rotatably connected to each rotating ring (53). A connecting pipe (56) is fixedly connected to each paint cavity (55). The paint pipes (52) and paint cavities (55) are connected. The paint pipes (52) and paint spaces are connected.

8. A textile printing and dyeing processing system according to claim 7, characterized in that: Two support seats (12) are fixedly connected to the device bracket (11), and two feeding rollers (20) are rotatably connected to each support seat (12). The two feeding rollers (20) on the same support seat (12) mesh and drive each other.

9. A textile printing and dyeing processing system according to claim 8, characterized in that: Each support seat (12) is rotatably connected to two swing seats (61), each swing seat (61) is hinged to a connecting rod I (62), each connecting rod I (62) is slidably connected to a connecting rod II (63), a compression spring III is fixedly connected between connecting rod II (63) and connecting rod I (62), the inner ends of the four connecting rods II (63) are respectively hinged to two sliding seats (71), each rotating seat (72) is fixedly connected to a telescopic mechanism (81), each telescopic mechanism (81) is fixedly connected to a support ring (82) at its telescopic end, and the support ring (82) is rotatably connected to a sliding sleeve (51).

10. A process for textile printing and dyeing using the textile printing and dyeing processing system according to claim 9, characterized in that: The process can be summarized in the following steps: Step 1: Different paints are introduced into the paint space through multiple paint pipes (52); Step 2: The dyed textile fabric passes between two dyeing rollers (32), and the two dyeing rollers (32) rotate continuously; Step 3: Different coating spaces are set inside the printing roller (32). During the rotation of the printing roller (32), different coatings are printed onto the textile fabric.

Citation Information

Patent Citations

  • Textile printing and dyeing device

    CN211138463U