Production process and setting machine for all-cotton moisture-absorbing and quick-drying multi-layer gauze

By forming a rectangular raised structure on the surface of the multi-layer gauze and using a shaping machine for expansion and setting and heating steam treatment, the problem of poor water absorption of existing multi-layer gauze is solved, and the effect of rapid moisture absorption and drying is achieved.

CN115891308BActive Publication Date: 2025-06-24浙江夕尔科技有限公司
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Patent Information

Application Number
CN202211423357.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-11-15
Publication Date
2025-06-24
Estimated Expiration
2042-11-15

AI Technical Summary

Technical Problem

The existing multi-layer gauze has a flat structure after processing, making it difficult to improve water absorption, and the gap between the warp and weft yarns is fixed, so it cannot be increased to improve moisture absorption performance.

Method used

Retractable warp and weft yarns are adopted, and a rectangular raised structure is formed on the surface of the multi-layer gauze, which increases the gap between the gauze and between the warp and weft yarns, expands and heats the steam treatment through a shaping machine to promote the rapid circulation of moisture and air.

Benefits of technology

The rapid moisture absorption and drying of multi-layer gauze is achieved, and the water absorption and drying speed of the gauze is improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a production process and a shaping machine for all-cotton moisture-absorbing and quick-drying multi-layer gauze, belonging to the technical field of gauze production processes. The production process includes Step 1: arranging warp yarns and weft yarns according to the support requirements of the gauze and arranging them into a certain width; Step 2: transferring the sorted yarns to the heddle frames; Step 3: installing all the threaded heddle frames on a loom; Step 4: stacking and cutting the woven gauze and clamping it through a fixture; Step 5: shaping the clamped gauze by a shaping machine and sewing and shaping it by a sewing machine. The invention forms a number of rectangular raised structures on the surface of the multi-layer gauze, thereby facilitating the increase of the gap between the multi-layer gauze, and at the same time increasing the gap between the warp yarns and the weft yarns at the raised structures, thereby facilitating the rapid entry of moisture into the multi-layer gauze through the gaps and facilitating the realization of rapid moisture absorption.
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Description

Technical Field

[0001] The present invention relates to the field of gauze production processes, and specifically relates to a production process and a sizing machine for all-cotton moisture-absorbing and quick-drying multi-layer gauze. Background Art

[0002] Whether it is the traditional textile industry or the modern large-scale production textile industry, raw materials without twist are difficult to spin into yarns, and yarns without twist cannot be woven into cloth. Therefore, only twisted yarns can be used for weaving.

[0003] The existing multi-layer gauze is in a flat structure after processing, and the gauze of different layers is bonded together, thus reducing the gap between different gauzes. At the same time, the gap between warp yarns and weft yarns cannot be changed, which is not conducive to improving the water absorption of multi-layer gauze. Summary of the Invention

[0004] To solve the above technical problems, the present invention provides a production process for all-cotton moisture-absorbing and quick-drying multi-layer gauze, including the following steps:

[0005] Step 1, arranging the warp yarns and weft yarns according to the requirements of the gauze support and arranging them into a certain width;

[0006] Step 2, transmitting the arranged yarns to the heddle frames;

[0007] Step 3, installing all the installed heddle frames on the loom;

[0008] Step 4, stacking and cutting the woven gauze and clamping it through a fixture;

[0009] Step 5, sizing the clamped gauze with a sizing machine and sewing it into shape with a sewing machine.

[0010] Further, the warp yarn shrinkage rate is 5-8%, and the weft yarn shrinkage rate is 5-8%. Further, the warp yarn is made through spinning → twisting → warping → sizing → bleaching, and the weft yarn is made through spinning → weaving → bleaching.

[0011] Further, the stacked gauze layers in Step 4 are at least three layers.

[0012] A sizing machine for all-cotton moisture-absorbing and quick-drying multi-layer gauze further includes:

[0013] A frame, the frame includes a chassis, and the chassis is provided with two parallel side plates, and the two opposite side plates form a channel;

[0014] A conveyor belt, the conveyor belt is installed on the side plates and is driven by a motor to work;

[0015] A heating component, which is installed inside the inlet end of the chassis. The heating component is communicated with a steam supply pipeline, and steam is released through the surface of the heating component.

[0016] A forming component, which includes a forming block and a moving frame. Both the forming block and the moving frame are installed at the outlet end of the chassis. The gauze is pressed against the forming block by the contracting moving frame for forming.

[0017] A fixture, which is used for clamping multiple layers of gauze. The installed fixture moves along the channel formed by the chassis.

[0018] Furthermore, the frame further includes a bottom plate, which is installed between two side plates. Grooves are provided on both opposite sides of the bottom plate, and the grooves are distributed along the length direction of the bottom plate. The grooves and the corresponding side plates form limiting grooves. A long groove penetrates through the side plate, and the conveyor belt is installed in the long groove. Two parallel side plates in the chassis are connected by support legs to form an integral structure. A stepped surface is formed on the inner side of the side plate, and the side of the bottom plate is placed on the stepped surface to complete the support of the bottom plate. The long groove is distributed along the length direction of the side plate. The conveyor belt includes a rubber belt and rollers. Two rollers are installed at both ends of the long groove, and a rubber belt is sleeved on the outer sides of the two rollers. One side of the installed rubber belt extends into the interior of the chassis. The motor installed on the side plate drives one of the rollers to rotate, and the rotation directions of the two installed conveyor belts are opposite.

[0019] Furthermore, a number of positioning holes are provided on one side of the inlet end of the bottom plate. The heating component includes an exhaust housing, a runner, and a bottom box. The exhaust housing includes a support plate and a frame body. The middle part of the frame body is a cavity with an opening. A support plate is fitted and installed on the opening of the cavity. A number of through holes communicating with the cavity are provided on the surface of the support plate. The cylinder extending from one end of the runner is fitted and installed in the positioning hole. The teeth provided on the side of the runner extend into the limiting groove. The tops of a number of runners are all communicated with the cavity of the same frame body, and the bottoms of a number of runners are communicated with the interior of the same bottom box. The bottom box is closed at the port through the bottom plate. An air inlet pipe is also communicated on the side surface of the bottom box. The heating steam supply pipeline is communicated with the air inlet pipe, so as to realize that steam enters the chamber formed by the bottom box and the bottom plate through the air inlet pipe, and passes through the installed runner and enters the interior of the exhaust housing. During the process of driving the runner to rotate by an external force, the blades inside the runner push the steam to move upward.

[0020] Furthermore, the forming block includes a supporting block, a tube body and a spring, the supporting block is located above the base plate, the middle part of the bottom surface of the forming block is rotatably connected to the tube body, one end of the tube body extends downward through a circular hole corresponding to the base plate, a bracket corresponding to the supporting block is provided at the bottom of the base frame, the bracket includes a base plate and a connecting column, both sides of the base plate are fixedly connected to connecting columns, ends of the connecting columns are fixed to the outside of the base frame, a light hole corresponding to the tube body is opened on the base plate, the end of the tube body is fitted in the light hole, a spring is sleeved on the outside of the tube body, a spiral groove is opened on the outer wall of the tube body, the spiral groove cooperates with the convex point provided in the light hole, and a spiral blade is provided in the tube body.

[0021] Furthermore, the surface of the support block has a plurality of interlaced deep grooves to form a plurality of rectangular blocks, the middle of the rectangular block is a raised structure, and the middle of the rectangular block is provided with an air hole communicating with the interior of the support block.

[0022] Furthermore, the mobile frame is installed on the base frame through a telescopic hydraulic rod, and a card slot corresponding to the supporting block is provided on the mobile frame, and a connecting pipe connected to the card slot is installed on the mobile frame, and a position sensor is installed on the inner side of the side plate and corresponds to the forming block. When the installed position sensor detects that the multi-layer gauze moves to the forming block, the motor stops working, the installed hydraulic telescopic rod works and shortens to realize the downward movement of the mobile frame and press the multi-layer gauze against the surface of the forming block. At the same time, a convex ridge corresponding to the deep groove is provided in the mobile frame, which is convenient for realizing the cooperation and pressing of the deep groove and the convex ridge to avoid the deviation of the cloth during the expansion process. Hot steam is applied through the connecting pipe to cause the multi-layer gauze to deform. In the process of the moving frame pressing the multi-layer gauze, the supporting block is squeezed to compress the spring, thereby realizing the downward movement of the tube body. A spiral groove is opened on the outer wall of the tube body, which rotates through the convex point provided in the light hole. The rotating tube body discharges the gas inside the supporting block, which makes it convenient for the gas inside the moving frame to pass through the multi-layer gauze and enter the supporting block. In the process of the moving frame moving upward, the supporting block is reset under the action of the spring, and the installed tube body is flipped, and the external gas is sucked into the interior of the supporting block, thereby increasing the air pressure inside the supporting block, which makes it convenient for the multi-layer gauze to separate from the surface of the supporting block.

[0023] Further, the fixture includes an upper clamping plate and a lower clamping plate. The multi-layer gauze is clamped between the upper clamping plate and the lower clamping plate. Two groups of rollers are symmetrically installed on the lower side of the lower clamping plate. The rollers move along the limit groove, and the surface of the rollers contacts the conveyor belt. The multi-layer gauze to be processed is clamped by the upper clamping plate and the lower clamping plate. Two groups of rollers symmetrically installed on the lower side of the clamping plate are placed in the limit groove. The provided conveyor belt drives the rollers under the action of friction, driving the upper clamping plate and the lower clamping plate to move towards one side of the moving frame. When the rollers pass by the teeth on the side of the rotating wheel, the installed rotating wheel is driven to rotate, facilitating the rotating wheel to push the steam through the multi-layer gauze, and improving the heating and softening of the passing gauze.

[0024] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0025] 1. The present invention adopts retractable warp and weft yarns, thus facilitating the expansion and shaping of the processed gauze through a shaping machine. By forming several rectangular raised structures on the surface of the multi-layer gauze, the gap between the multi-layer gauze is increased, and at the same time, the gap between the warp and weft yarns at the raised structures is increased, facilitating the rapid entry of moisture into the multi-layer gauze through the gap, and facilitating rapid moisture absorption. During the laying process of the multi-layer gauze, the raised structures are wrinkled, forming multiple cavities, facilitating air flow for rapid drying.

[0026] 2. The position sensor of the present invention is installed inside the side plate and corresponds to the forming block. When the position sensor detects that the multi-layer gauze moves onto the forming block, the motor stops working, and the installed hydraulic expansion rod works and shortens to move the moving frame downward, pressing the multi-layer gauze tightly on the surface of the forming block. At the same time, the moving frame is provided with convex ribs corresponding to the deep grooves, facilitating the cooperation and pressing of the deep grooves and the convex ribs, preventing the fabric from shifting during the expansion process, and at the same time applying hot steam through the connecting pipe to cause the multi-layer gauze to deform.

[0027] 3. The present invention clamps the multi-layer gauze to be processed by the upper clamping plate and the lower clamping plate. Two groups of rollers symmetrically installed on the lower side of the clamping plate are placed in the limit groove. The provided conveyor belt drives the rollers under the action of friction, driving the upper clamping plate and the lower clamping plate to move towards one side of the moving frame. When the rollers pass by the teeth on the side of the rotating wheel, the installed rotating wheel is driven to rotate, facilitating the rotating wheel to push the steam through the multi-layer gauze, and improving the heating and softening of the passing gauze. BRIEF DESCRIPTION OF THE DRAWINGS

[0028] Figure 1 is the overall structural schematic diagram of the present invention;

[0029] Figure 2 is the frame structural schematic diagram of the present invention;

[0030] Figure 3Schematic diagram of the frame cross-sectional structure of the present invention;

[0031] Figure 4 Schematic diagram of the heating component structure of the present invention;

[0032] Figure 5 Schematic diagram of the cross-sectional structure of the heating component of the present invention;

[0033] Figure 6 Schematic diagram of the chassis structure of the present invention;

[0034] Figure 7 Schematic diagram of the fixture structure of the present invention.

[0035] In the figure: 1. Chassis; 101. Side plate; 2. Conveyor belt; 3. Motor; 4. Bottom plate; 401. Positioning hole; 402. Groove; 5. Molding block; 501. Supporting block; 502. Pipe body; 503. Spiral blade; 504. Spring; 505. Spiral groove; 6. Bracket; 601. Substrate; 602. Connecting column; 7. Moving frame; 701. Connecting pipe; 8. Exhaust housing; 801. Support plate; 8011. Through hole; 802. Frame body; 9. Runner; 10. Bottom box; 1001. Intake pipe; 11. Fixture; 1101. Upper clamping plate; 1102. Lower clamping plate; 1103. Roller; 12. Position sensor. Detailed implementation manners

[0036] The present invention will be further described in detail below in conjunction with the accompanying drawings and specific implementation manners. The embodiments of the present invention are given for the purpose of illustration and description, and are not exhaustive or limit the present invention to the disclosed form. Many modifications and variations are obvious to those of ordinary skill in the art. The embodiments are selected and described to better illustrate the principles and practical applications of the present invention, and enable those of ordinary skill in the art to understand the present invention and thus design various embodiments with various modifications suitable for specific purposes.

[0037] Embodiment 1

[0038] A production process of all-cotton moisture-absorbing and quick-drying multi-layer gauze, comprising the following steps:

[0039] Step 1, arranging the warp and weft yarns according to the requirements of the support of the gauze and arranging them into a certain width;

[0040] Step 2, transmitting the sorted yarns to the heddle frames;

[0041] Step 3, installing all the installed heddle frames on the loom;

[0042] Step 4, stacking and cutting the woven gauze and realizing clamping through a fixture;

[0043] Step 5: Shape the clamped gauze using a shaping machine and sew it into shape using a sewing machine. The warp shrinkage rate is 5 - 8%, and the weft shrinkage rate is 5 - 8%. The warp is made by spinning → twisting → warping → sizing →

[0044] bleaching, and the weft is made by spinning → weaving → bleaching.

[0045] The stacked gauze layers in Step 4 are at least three layers.

[0046] Use stretchable warp and weft, so as to facilitate the expansion and shaping of the processed gauze through a shaping machine. By forming several rectangular raised structures on the surface of the multi-layer gauze, it is convenient to increase the gap between the multi-layer gauze, and at the same time increase the gap between the warp and weft at the raised structure, so as to facilitate the rapid entry of moisture into the multi-layer gauze through the gap, facilitating rapid moisture absorption. During the laying process of the multi-layer gauze, the raised structure wrinkles, thus forming multiple cavities, facilitating air flow for rapid drying.

[0047] Embodiment 2

[0048] As Figures 1 - 7 shown, a shaping machine for all-cotton moisture-absorbing and quick-drying multi-layer gauze further includes:

[0049] A frame, which includes a chassis 1. The chassis 1 is provided with two parallel side plates 101, and the two opposite side plates 101 form a channel;

[0050] A conveyor belt 2, which is installed on the side plate 101 and is driven by a motor 3 to make the conveyor belt 2 work;

[0051] A heating component, which is installed inside the inlet end of the chassis 1. The heating component is connected to a steam supply pipeline, and steam is released through the surface of the heating component;

[0052] A shaping component, which includes a shaping block 5 and a moving frame 7. The shaping block 5 and the moving frame 7 are both installed at the outlet end of the chassis 1. The gauze is pressed against the shaping block 5 by the contracting moving frame 7 for shaping;

[0053] A clamp 11, which is used for clamping multi-layer gauze, and the provided clamp 11 moves along the channel formed by the chassis 1.

[0054] The frame further includes a bottom plate 4, which is installed between the two side plates 101. Grooves 402 are opened on both opposite sides of the bottom plate 4. The grooves 402 are distributed along the length direction of the bottom plate 4. The grooves 402 and the corresponding side plates 101 form limiting grooves, and long grooves penetrate through the side plates 101. The conveyor belt 2 is installed in the long grooves.

[0055] Two parallel side plates 101 in the chassis 1 are connected by support legs to form an integral structure. A stepped surface is formed on the inner side of the side plate 101, and the side of the bottom plate 4 is placed on the stepped surface to complete the support of the bottom plate 4.

[0056] The long grooves are distributed along the length direction of the side plate 101. The conveyor belt 2 includes a rubber belt and rollers. Two rollers are installed at both ends of the long groove. A rubber belt is sleeved on the outer sides of the two rollers. One side of the installed rubber belt extends into the interior of the chassis 1. The motor 3 installed on the side plate 101 drives one of the rollers to rotate, and the rotation directions of the two installed conveyor belts 2 are opposite.

[0057] On one side of the inlet end of the bottom plate 4, a plurality of positioning holes 401 are opened. The heating assembly includes an exhaust housing 8, a runner 9, and a bottom box 10. The exhaust housing 8 includes a support plate 801 and a frame 802. The middle of the frame 802 is a cavity with an opening. A support plate 801 is fitted and installed on the opening of the cavity. A plurality of through holes 8011 communicating with the cavity are opened on the surface of the support plate 801. A cylinder extending from one end of the runner 9 is fitted and installed in the positioning hole 401. The teeth provided on the side of the runner 9 extend into the limiting groove. The tops of a plurality of runners 9 communicate with the cavity of the same frame 802, and the bottoms of a plurality of runners 9 communicate with the interior of the same bottom box 10. The bottom box 10 is closed at the port through the bottom plate 4, and an air inlet pipe 1001 is also communicated on the side of the bottom box 10.

[0058] The heating steam supply pipe is communicated with the air inlet pipe 1001, so that steam enters the chamber formed by the bottom box 10 and the bottom plate 4 through the air inlet pipe, and passes through the installed runner 9 and enters the interior of the exhaust housing 8. During the process of driving the runner 9 to rotate by an external force, the blades inside the runner 9 push the steam to move upward.

[0059] The forming block 5 includes a supporting block 501, a pipe body 502, and a spring 504. The supporting block 501 is located above the bottom plate 4. A pipe body 502 is rotatably connected to the middle of the bottom surface of the forming block 5. One end of the pipe body 502 passes through the corresponding round hole of the bottom plate 4 and extends downward. A bracket 6 corresponding to the supporting block 501 is provided at the bottom of the chassis 1. The bracket 6 includes a base plate 601 and a connecting column 602. Connecting columns 602 are fixedly connected to both sides of the base plate 601, and the ends of the connecting columns 602 are fixed to the outside of the chassis 1. A light hole corresponding to the pipe body 502 is opened on the base plate 601. The end of the pipe body 502 is fitted and installed in the light hole. A spring 504 is sleeved on the outside of the pipe body 502. A spiral groove 505 is opened on the outer wall of the pipe body 502, and the spiral groove 505 cooperates with the convex points provided in the light hole. A spiral blade 503 is provided inside the pipe body 502.

[0060] The surface of the supporting block 501 has several mutually intersecting deep grooves, forming several rectangular blocks. The middle of the rectangular block is a raised structure, and an air hole communicating with the inside of the supporting block 501 is provided in the middle of the rectangular block.

[0061] The moving frame 7 is installed on the chassis 1 through a telescopic hydraulic rod. A clamping groove corresponding to the supporting block 501 is provided on the moving frame 7.

[0062] A connecting pipe 701 communicating with the clamping groove is installed on the moving frame 7.

[0063] The position sensor 12 is installed inside the side plate 101 and corresponds to the forming block 5. When the multi-layer gauze moves to the forming block 5 detected by the installed position sensor 12, the motor 3 stops working, and the installed hydraulic telescopic rod works and shortens to move the moving frame 7 downward, pressing the multi-layer gauze tightly on the surface of the forming block 5. At the same time, convex ribs corresponding to the deep grooves are provided inside the moving frame 7, which is convenient for the cooperation between the deep grooves and the convex ribs to press tightly, avoiding the deviation of the fabric during the expansion process. At the same time, hot steam is applied through the connecting pipe 701 to cause the multi-layer gauze to deform;

[0064] During the process of the moving frame 7 pressing the multi-layer gauze, the supporting block 501 is squeezed to compress the spring 504, so as to realize the downward movement of the pipe body 502. A spiral groove 505 is provided on the outer wall of the pipe body 502, and it rotates through the convex points provided in the light hole. The rotating pipe body 502 discharges the gas inside the supporting block 501, which is convenient for the gas inside the moving frame 7 to pass through the multi-layer gauze and enter the inside of the supporting block 501. During the upward movement of the moving frame 7, under the action of the spring 504, the supporting block 501 resets, realizing the flipping of the installed pipe body 502, sucking in external gas into the inside of the supporting block 501, increasing the air pressure inside the supporting block 501, and facilitating the separation of the multi-layer gauze from the surface of the supporting block 501.

[0065] The fixture 11 includes an upper clamping plate 1101 and a lower clamping plate 1102. The multi-layer gauze is clamped between the upper clamping plate 1101 and the lower clamping plate 1102. Two groups of rollers 1103 are symmetrically installed on the lower side of the lower clamping plate 1102. The rollers 1103 move along the limiting groove, and the surface of the rollers 1103 contacts the conveyor belt 2.

[0066] The multi-layer gauze to be processed is clamped by the upper clamping plate 1101 and the lower clamping plate 1102. The two groups of rollers 1103 symmetrically installed on the lower side of the lower clamping plate 1102 are placed in the limiting groove. The provided conveyor belt 2 drives the rollers 1103 under the action of friction, driving the upper clamping plate 1101 and the lower clamping plate 1102 to move to one side of the moving frame 7. When the rollers 1103 pass by the teeth on the side of the runner 9, the installed runner 9 is driven to rotate, which is convenient for the runner 9 to push the multi-layer gauze through which the steam flows, improving the heating and softening of the passing gauze.

[0067] Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all of them. All other embodiments obtained by those of ordinary skill in the art and related fields based on the embodiments of the present invention without creative efforts shall fall within the scope of protection of the present invention. Structures, devices, and operation methods not specifically described and explained in the present invention shall be implemented by conventional means in the art unless otherwise specified and limited.

Claims

1. A shaping machine for all-cotton moisture-absorbing and quick-drying multi-layer gauze, characterized in that, Further included are: A frame, the frame includes a chassis (1), the chassis (1) is provided with two parallel side plates (101), and the two opposite side plates (101) form a channel; A conveyor belt (2), the conveyor belt (2) is installed on the side plate (101) and is driven by a motor (3) to work; A heating component, the heating component is installed inside the inlet end of the chassis (1), the heating component is communicated with a steam supply pipeline, and steam is released through the surface of the heating component; A forming component, the forming component includes a forming block (5) and a moving frame (7), the forming block (5) and the moving frame (7) are both installed at the outlet end of the chassis (1), and the gauze is pressed against the forming block (5) by the contracting moving frame (7) for forming; A clamp (11), the clamp (11) is used for clamping multiple layers of gauze, and the provided clamp (11) moves along the channel formed by the chassis (1); The frame further includes a bottom plate (4), the bottom plate (4) is installed between the two side plates (101), grooves (402) are opened on both opposite sides of the bottom plate (4), and the grooves (402) are distributed along the length direction of the bottom plate (4); the grooves (402) and the corresponding side plates (101) form a limiting groove; a long groove penetrates through the side plate (101), and the conveyor belt (2) is installed in the long groove; A plurality of positioning holes (401) are opened on one side of the inlet end of the bottom plate (4); the heating component includes an exhaust housing (8), a runner (9) and a bottom box (10), the exhaust housing (8) includes a support plate (801) and a frame body (802), the middle of the frame body (802) is a cavity with an opening, a support plate (801) is fitted and installed on the opening of the cavity, and a plurality of through holes (8011) communicated with the cavity are opened on the surface of the support plate (801); a column body extending from one end of the runner (9) is fitted and installed in the positioning holes (401), the tooth teeth provided on the side of the runner (9) extend into the limiting groove, the tops of a plurality of runners (9) are all communicated with the cavity of the same frame body (802), the bottoms of a plurality of runners (9) are communicated with the inside of the same bottom box (10), the bottom box (10) is closed at the port through the bottom plate (4), and an air inlet pipe (1001) is also communicated with the side surface of the bottom box (10).

2. A shaping machine for all-cotton moisture-absorbing and quick-drying multi-layer gauze according to claim 1, characterized in that: The forming block (5) includes a supporting block (501), a pipe body (502) and a spring (504), the supporting block (501) is located above the bottom plate (4), the middle of the bottom surface of the forming block (5) is rotatably connected with a pipe body (502), and one end of the pipe body (502) extends downward through a corresponding round hole of the bottom plate (4); A bracket (6) corresponding to the supporting block (501) is provided at the bottom of the chassis (1), the bracket (6) includes a base plate (601) and a connecting column (602), both sides of the base plate (601) are fixedly connected with connecting columns (602), and the ends of the connecting columns (602) are fixed on the outside of the chassis (1); A light hole corresponding to the tube body (502) is formed in the substrate (601). The end of the tube body (502) is fitted and installed in the light hole. A spring (504) is sleeved outside the tube body (502). A spiral groove (505) is formed on the outer wall of the tube body (502), and the spiral groove (505) cooperates with a bump provided in the light hole. A spiral blade (503) is provided in the tube body (502).

3. The shaping machine for all-cotton moisture-absorbing and quick-drying multi-layer gauze according to claim 2, characterized in that: The moving frame (7) is installed on the chassis (1) through a telescopic hydraulic rod. A clamping groove corresponding to the supporting block (501) is provided on the moving frame (7), and a connecting pipe (701) communicated with the clamping groove is installed on the moving frame (7).

4. A shaping machine for all-cotton moisture-absorbing and quick-drying multi-layer gauze according to claim 3, characterized in that: The fixture (11) includes an upper clamping plate (1101) and a lower clamping plate (1102). Clamping of multiple layers of gauze is completed between the upper clamping plate (1101) and the lower clamping plate (1102). Two groups of rollers (1103) are symmetrically installed on the lower side of the lower clamping plate (1102). The rollers (1103) move along the limiting groove, and the surface of the rollers (1103) contacts the conveyor belt (2).

5. A production process of all-cotton moisture-absorbing and quick-drying multi-layer gauze, characterized in that, Produced by using a shaping machine for all-cotton moisture-absorbing and quick-drying multi-layer gauze as described in any one of claims 1-4, comprising the following steps: Step 1, arranging the warp and weft yarns according to the support requirements of the gauze and arranging them into a certain width; Step 2, transmitting the sorted yarns to the heddle frames; Step 3, installing all the threaded heddle frames on the loom; Step 4, stacking and cutting the woven gauze and realizing clamping through the fixture; Step 5, shaping the clamped gauze by the shaping machine and sewing and shaping it by the sewing machine.

6. The production process of a pure cotton moisture-absorbing and quick-drying multi-layer gauze according to claim 5, characterized in that: The warp shrinkage rate is 5-8%, and the weft shrinkage rate is 5-8%.

7. The production process of a pure cotton moisture-absorbing and quick-drying multi-layer gauze according to claim 5, characterized in that: The warp is made by spinning → twisting → warping → sizing → bleaching; The weft is made by spinning → weaving → bleaching.

8. The production process of a pure cotton moisture-absorbing and quick-drying multi-layer gauze according to claim 5, characterized in that: The stacked gauze layers in step 4 are at least three layers.

Citation Information

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