Automatic cloth stacking, cutting and stacking all-in-one machine and using method thereof

The integrated design of the automatic fabric cutting and folding machine solves the problem of low automation in existing equipment, realizes automation and precision in the fabric production process, and improves production efficiency and product consistency.

CN120887285APending Publication Date: 2025-11-04山东航空学院
View PDF 0 Cites 2 Cited by

Patent Information

Application Number
CN202511343352.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-09-19
Publication Date
2025-11-04

AI Technical Summary

Technical Problem

Existing fabric production equipment has a low degree of automation. The processes of stacking, cutting, and folding fabric rely on manual operation, making it difficult to achieve automation and precision, which affects production efficiency and product consistency.

Method used

Design an automatic fabric stacking, cutting and folding machine that integrates automatic fabric stacking, cutting and folding mechanisms. Through unified scheduling by the control system, it realizes the automatic import, stacking, cutting and folding of fabrics, with seamless connection between each link and reduced manual intervention.

Benefits of technology

It has achieved automation and continuity in the fabric production process, improved production efficiency, ensured the accuracy and consistency of fabric stacking, cutting and folding, and adapted to the needs of large-scale production.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120887285A_ABST
    Figure CN120887285A_ABST
Patent Text Reader

Abstract

The invention relates to the technical field of cloth production equipment, and discloses an automatic cloth plaiting, cutting and folding all-in-one machine and a using method thereof.The automatic cloth plaiting, cutting and folding all-in-one machine comprises a frame, and a control system, an automatic cloth plaiting mechanism, a cloth cutting mechanism and a cloth folding mechanism are installed on the frame; the automatic plaiting mechanism comprises a plaiting platform and a cloth guide assembly, and the bottom of the plaiting platform is slidably connected to the frame through an electric guide rail assembly; the cloth guiding assembly is installed on the frame and used for guiding cloth to the cloth plaiting platform. The cloth cutting mechanism is mounted at the bottom of the cloth guide assembly; the cloth folding mechanism comprises a cloth pulling assembly, a conveying belt assembly and a cloth folding platform, the cloth pulling assembly is used for conveying cloth on the cloth plaiting platform to the conveying belt assembly, the cloth folding platform and the conveying belt assembly are both installed on the frame, and cloth folding and pressing assemblies are installed on the two sides of the cloth folding platform. According to the invention, continuous production of a series of actions of automatic plaiting, cutting and folding of long-section cloth and automation of the whole process can be realized, and the production efficiency is greatly improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to the field of fabric production equipment technology, and in particular to an automatic fabric cutting and folding integrated machine and its usage method. Background Technology

[0002] In the fabric production industry, fabric stacking, cutting, and folding are key steps in subsequent processing, and traditional production methods suffer from numerous efficiency bottlenecks. Existing equipment is mostly a single-function, independent device, and the fabric stacking process relies on manual assistance for positioning, making it difficult to achieve automatic fabric stacking of different lengths and specifications. Furthermore, the stacking accuracy is low, and wrinkles or misalignments are prone to occur, affecting the quality of subsequent fabric cutting.

[0003] The fabric cutting and stacking processes are loosely connected, requiring manual transfer of stacked fabric to the cutting equipment. This not only increases labor intensity but also leads to poor production continuity due to the time-consuming intermediate steps. The fabric folding process also relies on manual operation, with the neatness of the folds greatly affected by human factors. Furthermore, the folding method cannot be flexibly adjusted according to needs, making it difficult to meet the consistency requirements of large-scale production. In addition, the existing equipment has a low level of automation; parameters for each stage must be set individually, preventing coordinated operation through a unified control system. This results in low production efficiency and makes it difficult to meet the fabric market's demand for efficient and precise production.

[0004] Therefore, an automatic fabric cutting and folding integrated machine and its usage method are proposed. Summary of the Invention

[0005] The purpose of this invention is to provide an automatic fabric cutting and folding machine, which aims to solve or improve at least one of the above-mentioned technical problems.

[0006] To achieve the above objectives, the present invention provides the following solution: The present invention provides an automatic fabric folding, cutting and stacking integrated machine, including a frame, on which a control system, an automatic fabric folding mechanism, a fabric cutting mechanism and a fabric stacking mechanism are installed;

[0007] The automatic fabric stacking mechanism includes a fabric stacking platform and a fabric guiding assembly. The bottom of the fabric stacking platform is slidably connected to the frame via an electric guide rail assembly. The fabric guiding assembly is mounted on the frame and is used to guide the fabric onto the fabric stacking platform. The fabric cutting mechanism is mounted at the bottom of the fabric guiding assembly.

[0008] The fabric stacking mechanism includes a fabric pulling assembly, a conveyor belt assembly, and a fabric stacking platform. The fabric pulling assembly is used to transport the fabric on the fabric stacking platform to the conveyor belt assembly. The fabric stacking platform and the conveyor belt assembly are both mounted on the frame. The fabric stacking platform is located below the conveyor belt assembly. Fabric stacking and pressing assemblies are installed on both sides of the fabric stacking platform. The fabric stacking and pressing assemblies are used to fold the fabric on the fabric stacking platform.

[0009] The electric guide rail assembly, the fabric cutting mechanism, the fabric pulling assembly, the conveyor belt assembly, and the fabric stacking and pressing assembly are all electrically connected to the control system.

[0010] According to the present invention, an automatic fabric cutting and folding integrated machine is provided, wherein the conveyor belt assembly includes a first motor and two drive rollers arranged side by side. Both drive rollers are rotatably connected to the frame. The first motor is mounted on the frame and is electrically connected to the control system. The output shaft of the first motor is connected to one of the drive rollers via a coupling. A plurality of drive belt chains are sleeved on the two drive rollers, and the two drive rollers are connected by the plurality of drive belt chains.

[0011] Several transmission belt chains are arranged at equal intervals. The fabric stacking platform is located close to the bottom surface of the transmission belt chains, and there is a gap between the top surface of the fabric stacking platform and the bottom surface of the transmission belt chains. The fabric pulling assembly is used to transport the fabric on the fabric stacking platform to the transmission belt chains.

[0012] According to the present invention, an automatic fabric cutting and folding integrated machine is provided, wherein the fabric folding and pressing assembly includes a fabric folding component and a fabric pressing component; the fabric folding component includes two fabric folding rotating shafts, which are rotatably connected to the frame and located on opposite sides of the fabric folding platform; the fabric folding rotating shafts are driven by a second motor, which is mounted on the frame; a plurality of folding plates are mounted on the fabric folding rotating shafts, and the plurality of folding plates are alternately arranged with a plurality of transmission belts and chains; the second motor is electrically connected to the control system, and the fabric pressing component is mounted on the frame.

[0013] According to the present invention, an automatic fabric cutting and folding integrated machine is provided, wherein the fabric pressing component includes two lifting cylinders mounted on the frame, a telescopic cylinder is mounted on the piston end of the lifting cylinder, and a pressure plate is mounted on the piston end of the telescopic cylinder, and the telescopic cylinder is arranged perpendicularly to the lifting cylinder; the two pressure plates are respectively located on both sides of a plurality of transmission belt chains, and both the lifting cylinder and the telescopic cylinder are electrically connected to the control system.

[0014] According to the present invention, an automatic fabric cutting and folding integrated machine is provided, wherein the fabric pulling assembly includes an electric walking guide rail arranged laterally between the fabric pulling platform and the transmission belt chain, the electric walking guide rail is mounted on the frame, and a plurality of fabric pulling grippers are installed at the moving end of the electric walking guide rail, and the fabric pulling grippers and the electric walking guide rail are electrically connected to the control system.

[0015] According to the present invention, an automatic fabric cutting and folding integrated machine is provided, wherein the electric guide rail assembly includes a fabric-laying electric guide rail mounted on the frame, the fabric-laying electric guide rail being electrically connected to the control system, and the fabric-laying platform being mounted on the moving end of the fabric-laying electric guide rail.

[0016] According to the present invention, an automatic fabric cutting and stacking integrated machine is provided, wherein the fabric guide assembly includes a fabric guide connecting frame mounted on the frame, and two adjustable-spaced guide plates are mounted on the fabric guide connecting frame. The fabric cutting mechanism is mounted on the bottom of one of the guide plates, and the guide plate is located above the fabric stacking platform.

[0017] According to the present invention, an automatic fabric cutting and folding integrated machine is provided, wherein the fabric cutting mechanism includes a transverse electric slide rail, the transverse electric slide rail is installed at the bottom of one of the guide plates, a third motor is installed at the moving end of the transverse electric slide rail, a fabric cutting knife is installed at the output end of the third motor, and the third motor and the transverse electric slide rail are both electrically connected to the control system.

[0018] According to the present invention, an automatic fabric cutting and stacking integrated machine is provided, wherein limit baffles are installed on both sides of the top surface of the fabric stacking platform.

[0019] This invention also provides a method of using an automatic fabric cutting and folding machine, comprising the following steps:

[0020] Step 1: Fabric feeding. Use the fabric guide assembly to guide the fabric onto the fabric stacking platform.

[0021] Step 2: Fabric stacking. The fabric stacking platform is moved by the electric guide rail assembly to complete the automatic fabric stacking. The stacking knife remains stationary during the stacking process.

[0022] Step 3: Fabric spreading. The cut fabric is conveyed to the conveyor belt assembly using a suspended fabric spreading assembly. The fabric spreading assembly adopts a single-power structure to achieve smooth fabric spreading.

[0023] Step 4: Folding and pressing the fabric. The folding and pressing component is used to fold and press the fabric on the folding platform to achieve automatic folding and pressing of the fabric.

[0024] The present invention discloses the following technical effects:

[0025] This invention integrates an automatic fabric stacking mechanism, a fabric cutting mechanism, and a fabric folding mechanism. Through unified scheduling by a control system, the fabric guiding component guides the fabric into the stacking platform, and the electric guide rail component drives the stacking platform to move precisely to complete the automatic fabric stacking. The fabric cutting mechanism directly cuts the fabric at the bottom of the guiding component, avoiding manual transfer. The fabric pulling component transports the cut fabric to the conveyor belt component, and finally, the fabric folding and pressing component folds and stacks the fabric on the folding platform. Each link is seamlessly connected, reducing manual intervention and realizing the continuous production of a series of actions for automatic fabric stacking, cutting, and folding of long pieces of fabric, as well as full-process automation, which greatly improves production efficiency. Attached Figure Description

[0026] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0027] Figure 1 This is a schematic diagram of the structure of the present invention.

[0028] The components include: 1. Frame; 2. Fabric stacking platform; 3. Fabric folding platform; 4. Drive roller; 5. Drive belt chain; 6. Lifting cylinder; 7. Telescopic cylinder; 8. Electric walking guide rail; 9. Fabric stacking electric guide rail; 10. Fabric guide connecting frame; 11. Guide plate; 12. Limiting baffle. Detailed Implementation

[0029] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0030] To make the above-mentioned objects, features and advantages of the present invention more apparent and understandable, the present invention will be further described in detail below with reference to the accompanying drawings and specific embodiments.

[0031] Reference Figure 1 The present invention provides an automatic fabric folding, cutting and stacking machine, including a frame 1, on which a control system, an automatic fabric folding mechanism, a fabric cutting mechanism and a fabric stacking mechanism are installed.

[0032] The automatic fabric stacking mechanism includes a fabric stacking platform 2 and a fabric guide assembly. The bottom of the fabric stacking platform 2 is slidably connected to the frame 1 via an electric guide rail assembly. The fabric guide assembly is installed on the frame 1 and is used to guide the fabric onto the fabric stacking platform 2. The fabric cutting mechanism is installed at the bottom of the fabric guide assembly.

[0033] The fabric stacking mechanism includes a fabric pulling assembly, a conveyor belt assembly, and a fabric stacking platform 3. The fabric pulling assembly is used to transport the fabric on the fabric stacking platform 2 to the conveyor belt assembly. The fabric stacking platform 3 and the conveyor belt assembly are both installed on the frame 1. The fabric stacking platform 3 is located below the conveyor belt assembly. Fabric stacking and pressing assemblies are installed on both sides of the fabric stacking platform 3. The fabric stacking and pressing assemblies are used to fold the fabric on the fabric stacking platform 3.

[0034] The electric guide rail assembly, fabric cutting mechanism, fabric pulling assembly, conveyor belt assembly, and fabric stacking and pressing assembly are all electrically connected to the control system;

[0035] With this configuration, the present invention integrates an automatic fabric stacking mechanism, a fabric cutting mechanism, and a fabric folding mechanism. Through unified scheduling by the control system, the fabric guiding component guides the fabric into the fabric stacking platform 2, and the electric guide rail component drives the fabric stacking platform 2 to move precisely to complete the automatic fabric stacking. The fabric cutting mechanism directly cuts the fabric at the bottom of the fabric guiding component, avoiding manual transfer. The fabric pulling component transports the cut fabric to the conveyor belt component, and finally, the fabric folding and pressing component completes the folding and stacking on the fabric folding platform 3. The seamless connection of each link reduces manual intervention and realizes the continuous production of a series of actions for automatic fabric stacking, cutting, and folding of long pieces of fabric and the automation of the entire process, which greatly improves production efficiency.

[0036] The scheme is further optimized. The conveyor belt assembly includes a first motor and two drive rollers 4 arranged side by side. Both drive rollers 4 are rotatably connected to the frame 1. The first motor is mounted on the frame 1 and is electrically connected to the control system. The output shaft of the first motor is connected to one of the drive rollers 4 through a coupling. Several drive belt chains 5 are sleeved on the two drive rollers 4, and the two drive rollers 4 are connected by several drive belt chains 5.

[0037] Several transmission belt chains 5 are arranged at equal intervals. The stacking platform 3 is set close to the bottom surface of the transmission belt chains 5, and there is a gap between the top surface of the stacking platform 3 and the bottom surface of the transmission belt chains 5. The fabric pulling assembly is used to transport the fabric on the stacking platform 2 to the transmission belt chains 5.

[0038] After the fabric is conveyed onto the drive belt chain 5 via the fabric feeding assembly, it is transported forward by the cyclical movement of the drive belt chain 5. The stacking platform 3 is positioned close to the bottom surface of the drive belt chain 5, and the gap between them ensures that the operation of the drive belt chain 5 is unobstructed, while also allowing the fabric to smoothly transition from the drive belt chain 5 to the stacking platform 3. The equally spaced drive belt chains 5 can evenly bear the fabric, preventing localized sagging or shifting of the fabric and ensuring the stability of the conveying process.

[0039] The scheme is further optimized. The fabric stacking and pressing assembly includes a fabric stacking component and a fabric pressing component. The fabric stacking component includes two fabric stacking rotating shafts, which are rotatably connected to the frame 1. The two fabric stacking rotating shafts are located on both sides of the fabric stacking platform 3. The fabric stacking rotating shafts are driven by a second motor, which is mounted on the frame 1. Several folding plates are installed on the fabric stacking rotating shafts, and the several folding plates are alternately arranged with several transmission belt chains 5. The second motor is electrically connected to the control system, and the fabric pressing component is mounted on the frame 1.

[0040] When the fabric is conveyed above the folding platform 3, the control system activates the second motor. The folding shaft drives the folding plates to flip upwards, folding the fabric from both sides towards the center, completing the side folding. The number and position of the folding plates are adapted to the arrangement of the transmission belt chain 5, ensuring even force distribution on all parts of the fabric and high folding neatness. The second motor, controlled by the control system, can precisely control the folding angle and speed, adapting to the folding needs of fabrics of different thicknesses.

[0041] Further optimization of the scheme: the pressing component includes two lifting cylinders 6 installed on the frame 1. The piston end of the lifting cylinder 6 is equipped with a telescopic cylinder 7. The piston end of the telescopic cylinder 7 is equipped with a pressure plate. The telescopic cylinder 7 is set perpendicular to the lifting cylinder 6. The two pressure plates are located on both sides of several transmission belt chains 5. Both the lifting cylinder 6 and the telescopic cylinder 7 are electrically connected to the control system.

[0042] When the fabric is conveyed to the stacking platform 3, the piston end of the lifting cylinder 6 first descends, driving the telescopic cylinder 7 and the pressure plate closer to the fabric; then the piston end of the telescopic cylinder 7 extends, pushing the pressure plate to move towards the center of the fabric, pressing the two sides of the fabric firmly, and then performing a folding operation; after folding, the pressure plate is pushed back to its original position under the action of the lifting cylinder 6 and the telescopic cylinder 7, and then the fabric is conveyed out.

[0043] The fabric pulling component is further optimized by including an electric walking guide rail 8 that is horizontally arranged between the fabric stacking platform 2 and the transmission belt chain 5. The electric walking guide rail 8 is mounted on the frame 1. Several fabric pulling grippers are installed at the moving end of the electric walking guide rail 8. Both the fabric pulling grippers and the electric walking guide rail 8 are electrically connected to the control system.

[0044] After the fabric stacking platform 2 completes the stacking and cutting, the fabric gripper closes and grasps the edge of the fabric. The electric guide rail 8 drives the moving end from the fabric stacking platform 2 to the transmission belt chain 5, smoothly transferring the fabric onto the transmission belt chain 5. Once it reaches the position, the fabric gripper releases, and the electric guide rail 8 drives it to reset, ready for the next gripping. This structure can precisely control the fabric transfer trajectory, avoiding fabric wrinkles or deviations during the transfer process, and ensuring the stability of subsequent conveying and folding processes.

[0045] The scheme is further optimized. The electric guide rail assembly includes a fabric-laying electric guide rail 9 mounted on the frame 1. The fabric-laying electric guide rail 9 is electrically connected to the control system. The fabric-laying platform 2 is mounted on the moving end of the fabric-laying electric guide rail 9.

[0046] When the fabric guide assembly feeds the fabric to the fabric stacking platform 2, the control system drives the electric fabric stacking guide rail 9 to operate according to the preset fabric stacking length, causing the fabric stacking platform 2 to move along the guide rail direction, achieving continuous fabric stacking in conjunction with the fabric feeding speed. Once the fabric stacking length reaches the preset value, the electric fabric stacking guide rail 9 stops operating, ensuring accurate fabric stacking dimensions. This structure replaces traditional manual positioning, improving fabric stacking efficiency and accuracy, and allows for flexible adjustment of the moving speed and distance through the control system to adapt to the stacking needs of fabrics of different specifications.

[0047] Further optimization of the scheme: the fabric guide assembly includes a fabric guide connecting frame 10 mounted on the frame 1, and two adjustable-spaced guide plates 11 are mounted on the fabric guide connecting frame 10. The fabric cutting mechanism is mounted on the bottom of one of the guide plates 11, and the guide plate 11 is located above the fabric stacking platform 2.

[0048] When the fabric enters between the guide plates 11, the guide plates 11 on both sides restrict the lateral displacement of the fabric, ensuring that the fabric is transported flat to the stacking platform 2 below. The cutting mechanism is installed at the bottom of one of the guide plates 11, so that the cutting action is close to the guide plate outlet, reducing the displacement of the fabric on the stacking platform 2 and further improving the cutting accuracy. The guide plates 11 are located above the stacking platform 2, forming a continuous channel from the guide plate to the stacking platform, preventing the fabric from sagging or wrinkling during the transport process.

[0049] The design is further optimized so that the fabric cutting mechanism includes a transverse electric slide rail, which is installed at the bottom of one of the guide plates 11. A third motor is installed at the moving end of the transverse electric slide rail, and a fabric cutting knife is installed at the output end of the third motor. Both the third motor and the transverse electric slide rail are electrically connected to the control system. The fabric cutting knife cuts the fabric at the bottom of the guide plate 11 during the transverse movement.

[0050] To further optimize the design, limit baffles 12 are installed on both sides of the top surface of the fabric stacking platform 2. These limit baffles 12 form a longitudinal constraint, preventing the fabric from shifting to either side when it is being conveyed and stacked on the platform, ensuring the fabric edges are aligned. Especially when the fabric stacking platform 2 moves with the electric guide rail assembly, the limit baffles 12 prevent lateral displacement of the fabric due to inertia, ensuring the neatness of the stacked fabric and providing a precise reference for subsequent cutting and transfer processes, reducing processing errors caused by fabric offset.

[0051] To further optimize the design, a tension sensor and an adjustable-speed guide roller are installed between the guide plates 11 of the fabric guide assembly. The tension sensor monitors the fabric tension data in real time and transmits it to the control system. When excessive or insufficient tension is detected, the control system automatically adjusts the rotation speed of the guide roller to maintain stable tension by changing the fabric conveying speed. This structure avoids stretching deformation or wrinkling of the fabric due to uneven tension, and is especially suitable for processing thinner fabrics, improving the accuracy of fabric stacking and cutting.

[0052] To further optimize the design, a pressure sensor or laser rangefinder is installed at the bottom of the fabric stacking platform 3, electrically connected to the control system. After each fabric stacking operation, the sensor records the number of stacked layers and calculates the total thickness, with the data displayed in real-time on the control panel. When the stacked thickness reaches a preset value (e.g., meeting packaging specifications), the control system automatically issues an alarm and pauses the stacking process, prompting the operator to retrieve the materials promptly. Simultaneously, this device can statistically analyze the production quantity for a single day or batch, automating production data recording and facilitating production management and capacity statistics.

[0053] In a further optimized design, pressure needles are evenly distributed on the lower surfaces of two adjustable guide plates 11, which are used to fix the fabric. A resistance wire is arranged along the length of the lower surface of the guide plate 11, which is used to melt and cut fabric pieces that meet the required dimensions.

[0054] This invention also provides a method of using an automatic fabric cutting and folding machine, comprising the following steps:

[0055] Step 1: Fabric feeding. The control system drives the fabric guide assembly to guide the fabric onto the fabric feeding platform 2. During the fabric feeding process, the fabric guide assembly clamps the fabric to maintain the stability of the fabric feeding.

[0056] Step 2: Fabric stacking. The control system drives the electric guide rail assembly, which in turn moves the fabric stacking platform 2 to complete the automatic fabric stacking. During the stacking process, the stacking knife remains stationary. This invention creatively adjusts the traditional fabric stacking process by having the stacking platform 2 move while the stacking knife remains stationary, significantly improving the fabric stacking efficiency.

[0057] Step 3: Fabric spreading. The fabric spreading assembly is driven by the control system. The suspended fabric spreading assembly conveys the cut fabric to the conveyor belt assembly. The fabric spreading assembly adopts a single-power structure to achieve smooth fabric spreading. The single-power structure effectively avoids the problem of misalignment and deviation caused by the power asynchrony in traditional dual-power systems.

[0058] Step 4: Folding and pressing the fabric. The control system drives the folding and pressing component to fold and press the fabric on the folding platform 3, thereby realizing the automatic folding and pressing of the fabric.

[0059] In the description of this invention, it should be understood that the terms "longitudinal", "lateral", "up", "down", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this invention, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this invention.

[0060] Obviously, the above embodiments of the present invention are merely examples for clearly illustrating the present invention, and are not intended to limit the implementation of the present invention. For those skilled in the art, other variations or modifications can be made based on the above description. It is neither necessary nor possible to exhaustively describe all embodiments here. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention should be included within the scope of protection of the claims of the present invention.

Claims

1. An automatic fabric cutting and folding integrated machine, characterized in that: Includes a frame (1), on which a control system, an automatic fabric stacking mechanism, a fabric cutting mechanism and a fabric folding mechanism are installed; The automatic fabric stacking mechanism includes a fabric stacking platform (2) and a fabric guide assembly. The bottom of the fabric stacking platform (2) is slidably connected to the frame (1) via an electric guide rail assembly. The fabric guide assembly is installed on the frame (1) and is used to guide the fabric onto the fabric stacking platform (2). The fabric cutting mechanism is installed at the bottom of the fabric guide assembly. The fabric stacking mechanism includes a fabric pulling assembly, a conveyor belt assembly, and a fabric stacking platform (3). The fabric pulling assembly is used to transport the fabric on the fabric stacking platform (2) to the conveyor belt assembly. The fabric stacking platform (3) and the conveyor belt assembly are both installed on the frame (1). The fabric stacking platform (3) is located below the conveyor belt assembly. Fabric stacking and pressing assemblies are installed on both sides of the fabric stacking platform (3). The fabric stacking and pressing assemblies are used to fold the fabric on the fabric stacking platform (3).

2. The automatic fabric cutting and folding integrated machine according to claim 1, characterized in that: The conveyor belt assembly includes a first motor and two drive rollers (4) arranged side by side. Both drive rollers (4) are rotatably connected to the frame (1). The first motor is mounted on the frame (1) and is electrically connected to the control system. The output shaft of the first motor is connected to one of the drive rollers (4) via a coupling. Several drive belt chains (5) are sleeved on the two drive rollers (4), and the two drive rollers (4) are connected by several drive belt chains (5). Several of the aforementioned transmission belt chains (5) are arranged at equal intervals. The stacking platform (3) is located close to the bottom surface of the transmission belt chains (5), and the top surface of the stacking platform (3) and the bottom surface of the transmission belt chains (5) are provided with a gap. The fabric pulling assembly is used to transport the fabric on the stacking platform (2) to the transmission belt chains (5).

3. The automatic fabric cutting and folding integrated machine according to claim 2, characterized in that: The fabric stacking and pressing assembly includes a fabric stacking component and a fabric pressing component; the fabric stacking component includes two fabric stacking rotating shafts, which are rotatably connected to the frame (1). The two fabric stacking rotating shafts are located on both sides of the fabric stacking platform (3). The fabric stacking rotating shafts are driven by a second motor, which is mounted on the frame (1). Several folding plates are mounted on the fabric stacking rotating shafts, and the several folding plates are alternately arranged with several transmission belt chains (5). The second motor is electrically connected to the control system, and the fabric pressing component is mounted on the frame (1).

4. The automatic fabric cutting and folding integrated machine according to claim 3, characterized in that: The pressing component includes two lifting cylinders (6) mounted on the frame (1). The piston end of the lifting cylinder (6) is equipped with a telescopic cylinder (7), and the piston end of the telescopic cylinder (7) is equipped with a pressure plate. The telescopic cylinder (7) is perpendicular to the lifting cylinder (6). The two pressure plates are respectively located on both sides of several transmission belt chains (5). The lifting cylinder (6) and the telescopic cylinder (7) are both electrically connected to the control system.

5. The automatic fabric cutting and folding integrated machine according to claim 2, characterized in that: The fabric spreading assembly includes an electric walking guide rail (8) arranged laterally between the fabric spreading platform (2) and the transmission belt chain (5). The electric walking guide rail (8) is mounted on the frame (1). Several fabric spreading grippers are installed at the moving end of the electric walking guide rail (8). The fabric spreading grippers and the electric walking guide rail (8) are both electrically connected to the control system.

6. The automatic fabric cutting and folding integrated machine according to claim 1, characterized in that: The electric guide rail assembly includes a fabric-laying electric guide rail (9) mounted on the frame (1), the fabric-laying electric guide rail (9) being electrically connected to the control system, and the fabric-laying platform (2) being mounted on the moving end of the fabric-laying electric guide rail (9).

7. The automatic fabric cutting and folding integrated machine according to claim 1, characterized in that: The fabric guide assembly includes a fabric guide connector (10) mounted on the frame (1), on which two spaced adjustable guide plates (11) are mounted. The fabric cutting mechanism is mounted on the bottom of one of the guide plates (11), which is located above the fabric stacking platform (2).

8. The automatic fabric cutting and folding integrated machine according to claim 7, characterized in that: The fabric cutting mechanism includes a transverse electric slide rail, which is installed at the bottom of one of the guide plates (11). A third motor is installed at the moving end of the transverse electric slide rail, and a fabric cutting knife is installed at the output end of the third motor. Both the third motor and the transverse electric slide rail are electrically connected to the control system.

9. The automatic fabric cutting and folding integrated machine according to claim 1, characterized in that: Limiting baffles (12) are installed on both sides of the top surface of the cloth clothing platform (2).

10. A method of using an automatic fabric cutting and folding machine, based on the automatic fabric cutting and folding machine according to any one of claims 1-9, characterized in that, Includes the following steps: Step 1: Fabric feeding. The fabric is fed onto the fabric feeding platform (2) by using the fabric guiding assembly and real-time tension bar. Step 2, Fabric stacking: The electric guide rail assembly drives the fabric stacking platform (2) to move horizontally to complete the automatic fabric stacking. During the fabric stacking process, the stacking knife remains in a horizontal position and moves up and down in the vertical direction to provide space for the needle plate of the fabric stacking platform to pass through. Step 3: Fabric spreading. The fabric is fed to the conveyor belt assembly using a suspended fabric spreading assembly. The fabric spreading assembly adopts a single-power structure to achieve horizontal fabric spreading. Step 4: Folding and pressing the fabric. The folding and pressing components are used to fold and press the fabric on the folding platform (3) to achieve automatic folding and pressing of the fabric.

Citation Information

Cited By

  • Full-automatic cloth code cutting and labeling integrated equipment

    CN121341731A

  • A full-automatic cloth coding and labeling integrated device

    CN121341731B