Cutting equipment for canvas glove manufacturing

By working together with the fixed-cutting component and the pick-and-place component, the problem of uneven size when cutting multi-layered canvas gloves is solved, achieving flat and precise cutting of the fabric, and improving product quality and production efficiency.

CN224196140UActive Publication Date: 2026-05-05HEBEI YIJIMING TEXTILE NEW MATERIALS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HEBEI YIJIMING TEXTILE NEW MATERIALS CO LTD
Filing Date
2025-05-27
Publication Date
2026-05-05

AI Technical Summary

Technical Problem

During the production of canvas gloves, gaps and wrinkles exist when cutting multiple layers of fabric, resulting in uneven cutting dimensions, which affects product quality and production efficiency.

Method used

Employing a fixed-cutting component and a pick-and-place component, the fabric is flattened and precisely cut through the coordinated work of components such as a moving electric slide rail, a lifting electric push rod, a rotary motor, and a laser cutter. Multi-segment pressing and cutting are performed using a pressing mold and a laser cutter, and the fabric is automatically collected by combining negative pressure adsorption technology.

Benefits of technology

It improves the dimensional accuracy of cutting and forming, reduces dimensional errors, enhances product quality and production efficiency, simplifies operation steps, and reduces the burden on staff.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses cutting equipment for canvas glove manufacturing, which is characterized in that movable electric slide rails are symmetrically clamped at the top end of a processing operation frame, the side ends of the two movable electric slide rails are connected with a transposition integration frame through slide rail seats, and alignment electric slide rails are symmetrically clamped at one end of the inner side of the transposition integration frame; a lifting electric push rod is connected to one end of the alignment electric sliding rail in a clamped mode through a sliding rail base, a combined limiting sleeve is installed at the bottom end of the lifting electric push rod, a rotating motor is installed on the inner side of the combined limiting sleeve through a motor base, and a reversing integration frame is connected to an output shaft of the rotating motor in a clamped mode. The cloth cutting device is matched with a laser cutter to move and cut the cloth along the pressing die, the size uniformity and the size accuracy of cloth cutting are guaranteed, the large influence on the product quality due to the fact that the cloth is uneven is reduced, the cutting forming quality is improved, and the follow-up production efficiency is guaranteed.
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Description

Technical Field

[0001] This utility model relates to the field of glove manufacturing technology, specifically to a cutting device for making canvas gloves. Background Technology

[0002] Canvas gloves are a common type of work protective gloves, made primarily of canvas. They are often combined with other materials to enhance functionality. Their main advantages include high abrasion resistance, good breathability, high flexibility, and low cost. The processing of canvas gloves typically includes material preparation, cutting, sewing, post-processing, and quality inspection. The specific steps vary depending on the type of glove and functional requirements. Nowadays, when cutting canvas material for canvas gloves, electric shears, laser cutting, and other equipment are generally used.

[0003] However, when cutting canvas, because multiple layers of fabric are cut at the same time, there are gaps between the fabrics, and the fabric is prone to wrinkles and unevenness. This can lead to uneven cutting dimensions when multiple layers are cut at the same time, resulting in large dimensional errors in the cut products, which affects product quality and subsequent production efficiency. Utility Model Content

[0004] This invention provides a cutting device for making canvas gloves, which can effectively solve the problem mentioned in the background art that when cutting canvas material, gaps exist between multiple layers of fabric at the same time, and the fabric is prone to wrinkles and unevenness, resulting in uneven cutting dimensions when cutting multiple layers at the same time. This leads to large dimensional errors in the cut products, affecting product quality and subsequent production efficiency.

[0005] To achieve the above objectives, the present invention provides the following technical solution: a cutting device for making canvas gloves, comprising a processing frame, wherein a fixed cutting component is provided at the top of the processing frame;

[0006] The fixed-cutting component includes a movable electric slide rail;

[0007] The top of the processing operation frame is symmetrically fitted with movable electric slide rails, and the two sides of the movable electric slide rails are connected to a transposition integration frame through slide rail seats.

[0008] The inner side of the transposition integration frame is symmetrically connected to the alignment electric slide rail, and the alignment electric slide rail is connected to the lifting electric push rod through the slide rail seat. The bottom end of the lifting electric push rod is equipped with a combination limiting sleeve.

[0009] A rotary motor is mounted on the inner side of the combined limiting sleeve via a motor mount. The output shaft of the rotary motor is engaged with a reversing integration frame, and a pressing mold is engaged at the bottom end of the reversing integration frame.

[0010] Several irregularly shaped electric slide rails are equidistantly engaged at the corresponding pressing mold positions on the inner side of the reversing integration frame, and a laser cutter is installed at the bottom end of the irregularly shaped electric slide rails through the slide rail seat;

[0011] Both ends of the inner side of the transposition integration frame are embedded with pressing electric slide rails, and a pressing limiting frame is installed at one end of the pressing electric slide rail through a slide rail seat.

[0012] According to the above technical solution, the repositioning integration frame is slidably connected to the processing operation frame, and the reversing integration frame is rotatably connected to the combination limiting sleeve.

[0013] According to the above technical solution, the pressing and limiting frame is slidably installed inside the transposition and integration frame;

[0014] The input ends of the movable electric slide rail, the alignment electric slide rail, the lifting electric push rod, the rotary motor, the irregular-shaped electric slide rail, the laser cutter, and the pressing electric slide rail are all electrically connected to the output end of an external power supply.

[0015] According to the above technical solution, a pick-and-place component is provided on the side of the processing operation frame;

[0016] The pick-and-place assembly includes a pick-and-place slide rail;

[0017] Both ends of the processing operation frame are embedded with discharge slide rails, and one end of the discharge slide rail is equipped with a pick-up and put-down operation frame via a slide rail seat.

[0018] The top of the pick-and-place operation frame is rotatably connected to a positioning moving frame, the top of the positioning moving frame is engaged with a reciprocating electric slide rail, and the top of the reciprocating electric slide rail is equipped with a reciprocating processing frame via a slide rail seat.

[0019] The bottom end of the reciprocating processing frame is engaged with a downward electric push rod, and the bottom end of the downward electric push rod is equipped with a vacuum pick-and-place frame.

[0020] A vacuum tube is connected through the top of the vacuum pick-and-place frame, an air pump is mounted on one end of the vacuum pick-and-place frame via a motor mount, and a swing motor is mounted on the top inner side of the pick-and-place operation frame via a motor mount.

[0021] According to the above technical solution, the pick-and-place operation frame is slidably connected to the processing operation frame, and the bottom end of the alignment moving frame is snapped into the output shaft of the swing motor.

[0022] According to the above technical solution, the air pump and the vacuum tube are connected via an adapter;

[0023] The input terminals of the discharge / recharge slide rail, reciprocating electric slide rail, downward electric push rod, air pump, and swing motor are all electrically connected to the output terminal of an external power supply.

[0024] Compared with the prior art, the advantages of this utility model are: the structure of this utility model is scientific and reasonable, and it is safe and convenient to use.

[0025] 1. Equipped with a fixed-cutting component, the moving electric slide rail drives the shifting and integrating frame to move, the alignment electric slide rail drives the lifting electric push rod to move, and the rotary motor drives the shifting and integrating frame and the pressing mold to rotate, changing the mold alignment angle. The cutting position is adjusted according to the predetermined cutting position. The pressing electric slide rail drives the pressing limiting frame to move down along the shifting and integrating frame. The pressing limiting frame is used to press the fabric, and in conjunction with the pressing mold, two-stage pressing is performed to achieve flattening and air venting, reducing the gaps between the fabrics. The multi-stage pressing process flattens the fabric, reducing the occurrence of unevenness and wrinkles. In conjunction with the laser cutter, the fabric is cut along the pressing mold, ensuring the uniformity and accuracy of the fabric cut dimensions, reducing the impact of uneven fabric on product quality, improving the quality of cutting and forming, and ensuring the efficiency of subsequent production.

[0026] 2. Equipped with a pick-and-place component, the pick-and-place operation frame is moved by a pick-and-place slide rail, the alignment moving frame is rotated by a swing motor, and the reciprocating electric slide rail moves the reciprocating processing frame along the alignment moving frame. The downward electric push rod moves the pick-and-place vacuum frame to insert into the side end of the cut fabric. The air pump and vacuum tube extract the air at the position of the pick-and-place vacuum frame, and the fabric is adsorbed by the negative pressure environment to achieve the pressing and collection of the fabric. This allows for quick operation when it is necessary to pick up and release the cut products, realizing centralized and automated processing, reducing the number of operation steps for workers, reducing the tediousness of operation, and improving the processing efficiency by processing simultaneously with the cutting. Attached Figure Description

[0027] The accompanying drawings are provided to further understand the present invention and form part of the specification. They are used together with the embodiments of the present invention to explain the present invention and do not constitute a limitation thereof.

[0028] In the attached diagram:

[0029] Figure 1 This is a three-dimensional structural schematic diagram of the present invention;

[0030] Figure 2 This is a schematic diagram of the structure of the cutting component of this utility model;

[0031] Figure 3 This is a schematic diagram of the installation structure of the rotary motor of this utility model;

[0032] Figure 4 This is a schematic diagram of the structure of the pick-and-place component of this utility model;

[0033] Numbered in the diagram: 1. Processing control frame;

[0034] 2. Fixed cutting assembly; 201. Moving electric slide rail; 202. Repositioning integration frame; 203. Alignment electric slide rail; 204. Lifting electric push rod; 205. Combined limiting sleeve; 206. Rotary motor; 207. Reversing integration frame; 208. Pressing mold; 209. Irregular shaped electric slide rail; 210. Laser cutter; 211. Pressing electric slide rail; 212. Pressing limiting frame;

[0035] 3. Pick-up and placement assembly; 301. Pick-up and discharge slide rail; 302. Pick-up and placement operation frame; 303. Alignment moving frame; 304. Reciprocating electric slide rail; 305. Reciprocating processing frame; 306. Lowering electric push rod; 307. Pick-up and placement vacuum frame; 308. Vacuum tube; 309. Air pump; 310. Swing motor. Detailed Implementation

[0036] The preferred embodiments of the present invention will be described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are for illustration and explanation only and are not intended to limit the present invention.

[0037] Example: Figure 1-4 As shown, this utility model provides a technical solution: a cutting device for making canvas gloves, including a processing operation frame 1. The top of the processing operation frame 1 is provided with a fixed cutting component 2. The fixed cutting component 2 includes a moving electric slide rail 201, a repositioning integration frame 202, an alignment electric slide rail 203, a lifting electric push rod 204, a combination limiting sleeve 205, a rotary motor 206, a reversing integration frame 207, a pressing mold 208, an irregularly shaped electric slide rail 209, a laser cutter 210, a pressing electric slide rail 211, and a pressing limiting frame 212.

[0038] The top of the processing operation frame 1 is symmetrically fitted with movable electric slide rails 201. The two movable electric slide rails 201 are connected to the side ends of the two slide rail seats via a transposition integration frame 202. The transposition integration frame 202 is slidably connected to the processing operation frame 1 to realize alignment support and transposition restriction, and ensure the alignment stability of continuous cutting processing.

[0039] The inner side of the transposition integration frame 202 is symmetrically connected to the alignment electric slide rail 203. One end of the alignment electric slide rail 203 is connected to the lifting electric push rod 204 through the slide rail seat. The bottom end of the lifting electric push rod 204 is equipped with a combination limiting sleeve 205.

[0040] A rotary motor 206 is mounted on the inner side of the combined limiting sleeve 205 via a motor mount. The output shaft of the rotary motor 206 is snapped with a reversing integration frame 207. The reversing integration frame 207 is rotatably connected to the combined limiting sleeve 205 to realize reversing alignment and reversing cooperation. A pressing mold 208 is snapped at the bottom of the reversing integration frame 207.

[0041] Several irregularly shaped electric slide rails 209 are equidistantly engaged at positions corresponding to the pressing mold 208 on the inner side of the reversing integration frame 207. A laser cutter 210 is installed at the bottom of the irregularly shaped electric slide rails 209 through a slide rail seat.

[0042] Both ends of the inner side of the transposition integration frame 202 are embedded with pressing electric slide rails 211. One end of the pressing electric slide rail 211 is equipped with a pressing limit frame 212 through a slide rail seat. The pressing limit frame 212 is slidably installed inside the transposition integration frame 202 to ensure the stability of alignment restriction and alignment engagement.

[0043] To ensure stable operation of the equipment, the input ends of the moving electric slide rail 201, the positioning electric slide rail 203, the lifting electric push rod 204, the rotary motor 206, the irregular electric slide rail 209, the laser cutter 210, and the pressing electric slide rail 211 are all electrically connected to the output end of an external power supply.

[0044] The processing operation frame 1 is provided with a pick-and-place assembly 3 on its side. The pick-and-place assembly 3 includes a pick-and-place slide rail 301, a pick-and-place operation frame 302, an alignment moving frame 303, a reciprocating electric slide rail 304, a reciprocating processing frame 305, a downward moving electric push rod 306, a pick-and-place vacuum frame 307, a vacuum tube 308, an air pump 309, and a swing motor 310.

[0045] Both ends of the processing operation frame 1 are embedded with discharge slide rails 301. One end of the discharge slide rail 301 is equipped with a pick-up and place operation frame 302 through a slide rail seat. The pick-up and place operation frame 302 is slidably connected to the processing operation frame 1, so that the pick-up and place lifting and pick-up repositioning can be operated steadily.

[0046] The top of the pick-and-place operation frame 302 is rotatably connected to the alignment moving frame 303, the top of the alignment moving frame 303 is snapped with the reciprocating electric slide rail 304, and the top of the reciprocating electric slide rail 304 is mounted with the reciprocating processing frame 305 through the slide rail seat.

[0047] The bottom end of the reciprocating processing rack 305 is snapped with a downward electric push rod 306, and the bottom end of the downward electric push rod 306 is equipped with a vacuum pick-and-place rack 307.

[0048] A vacuum tube 308 is connected through the top of the vacuum pick-and-place frame 307. An air pump 309 is installed at one end of the vacuum pick-and-place frame 307 via a motor mount. The air pump 309 is connected to the vacuum tube 308 via an adapter to achieve vacuum adsorption treatment. A swing motor 310 is installed at the top of the inner side of the pick-and-place operation frame 302 via a motor mount. The bottom of the alignment moving frame 303 is snapped together with the output shaft of the swing motor 310 to ensure the stability of the reversing support and reversing alignment.

[0049] To ensure stable operation of the equipment, the input terminals of the discharge / take-up slide rail 301, the reciprocating electric slide rail 304, the downward electric push rod 306, the air pump 309, and the swing motor 310 are all electrically connected to the output terminal of an external power supply.

[0050] The working principle and usage process of this utility model are as follows: When cutting canvas gloves, the canvas material to be cut is laid on the top of the processing operation frame 1. The moving electric slide rail 201 drives the shifting and integrating frame 202 to move. The alignment electric slide rail 203 drives the lifting electric push rod 204 to move along the shifting and integrating frame 202, moving the pressing mold 208 to the cutting alignment. The rotary motor 206 drives the reversing integrating frame 207 and the pressing mold 208 to rotate along the combined limiting sleeve 205, changing the angle of the pressing mold 208 to achieve alignment processing, ensuring full utilization of the fabric and cutting processing.

[0051] The lifting electric push rod 204 drives the combined limiting sleeve 205, the reversing integration frame 207, and the pressing mold 208 to move down and fit against the top of the fabric. At this time, the pressing electric slide rail 211 drives the pressing limiting frame 212 to move down along the reversing integration frame 202. The pressing limiting frame 212 is used to squeeze the fabric and flatten the fabric at the cut. Then, the lifting electric push rod 204 drives the pressing mold 208 to flatten the fabric again. The irregular electric slide rail 209 drives the laser cutter 210 to move. The laser cutter 210 is used to cut the fabric along the pressing mold 208 to cut the fabric into production parts for canvas gloves. After one cut is completed, the above operation is repeated to achieve the cutting and shaping process again.

[0052] The take-up and put-down operation frame 302 is moved along the processing operation frame 1 by the take-up and put-down slide rail 301. The alignment moving frame 303 is rotated along the take-up and put-down operation frame 302 by the swing motor 310. The reciprocating electric slide rail 304 moves the reciprocating processing frame 305 along the alignment moving frame 303. The downward electric push rod 306 moves the take-up and put-down vacuum frame 307 to be inserted into the side end of the cut fabric. The air pump 309 and vacuum tube 308 extract air from the position of the take-up and put-down vacuum frame 307. The air is used to adsorb the fabric in a negative pressure environment to achieve the pressing and collection of the fabric. After the extraction and positioning are completed, the downward electric push rod 306 drives the vacuum frame 307 to rise. At this time, the swing motor 310 drives the alignment moving frame 303 to rotate, and the reciprocating electric slide rail 304 drives the reciprocating processing frame 305 and the vacuum frame 307 to move, thereby taking out the fabric. The air pump 309 and vacuum tube 308 are used to push the fabric down again to achieve rapid material handling.

[0053] Finally, it should be noted that the above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.

Claims

1. A cutting device for making canvas gloves, comprising a processing frame (1), characterized in that: The processing operation frame (1) is equipped with a fixed cutting component (2) at its top; The fixed cutting component (2) includes a movable electric slide rail (201); The top of the processing operation frame (1) is symmetrically fitted with movable electric slide rails (201), and the two movable electric slide rails (201) are connected to a transposition integration frame (202) through slide rail seats on their sides; The inner side of the transposition integration frame (202) is symmetrically connected to the alignment electric slide rail (203), and the alignment electric slide rail (203) is connected to the lifting electric push rod (204) through the slide rail seat at one end. The bottom end of the lifting electric push rod (204) is equipped with a combination limiting sleeve (205). A rotary motor (206) is mounted on the inner side of the combined limiting sleeve (205) via a motor mount. The output shaft of the rotary motor (206) is snapped with a reversing integration frame (207). A pressing mold (208) is snapped with the bottom end of the reversing integration frame (207). The inner side of the reversing integration frame (207) is equidistantly connected to the pressing mold (208) with several irregular electric slide rails (209), and the bottom end of the irregular electric slide rails (209) is equipped with a laser cutter (210) through the slide rail seat; The inner ends of the transposition integration frame (202) are both embedded with pressing electric slide rails (211), and a pressing limiting frame (212) is installed at one end of the pressing electric slide rail (211) through the slide rail seat.

2. The cutting and manufacturing equipment for canvas gloves according to claim 1, characterized in that, The repositioning integration frame (202) is slidably connected to the processing operation frame (1), and the reversing integration frame (207) is rotatably connected to the combination limiting sleeve (205).

3. The cutting and manufacturing equipment for canvas gloves according to claim 1, characterized in that, The pressing and limiting frame (212) is slidably installed inside the transposition and integration frame (202); The input ends of the movable electric slide rail (201), the alignment electric slide rail (203), the lifting electric push rod (204), the rotary motor (206), the irregular electric slide rail (209), the laser cutter (210), and the pressing electric slide rail (211) are all electrically connected to the output end of an external power supply.

4. The cutting and manufacturing equipment for canvas gloves according to claim 3, characterized in that, The processing operation frame (1) is provided with a pick-and-place component (3) on its side; The pick-and-place assembly (3) includes a pick-and-place slide rail (301); Both ends of the processing operation frame (1) are embedded with discharge slide rails (301), and one end of the discharge slide rail (301) is equipped with a pick-up and put-down operation frame (302) through a slide rail seat; The top of the pick-and-place operation frame (302) is rotatably connected to the alignment moving frame (303), the top of the alignment moving frame (303) is engaged with the reciprocating electric slide rail (304), and the top of the reciprocating electric slide rail (304) is mounted with the reciprocating processing frame (305) through the slide rail seat. The bottom end of the reciprocating processing rack (305) is engaged with a downward electric push rod (306), and the bottom end of the downward electric push rod (306) is equipped with a vacuum pick-and-place rack (307); A vacuum tube (308) is connected through the top of the vacuum rack (307). An air pump (309) is installed at one end of the vacuum rack (307) via a motor mount. A swing motor (310) is installed at the top of the inner side of the vacuum rack (302) via a motor mount.

5. The cutting and manufacturing equipment for canvas gloves according to claim 4, characterized in that, The pick-and-place operation frame (302) is slidably connected to the processing operation frame (1), and the bottom end of the alignment moving frame (303) is engaged with the output shaft of the swing motor (310).

6. The cutting and manufacturing equipment for canvas gloves according to claim 4, characterized in that, The air pump (309) is connected to the vacuum tube (308) via an adapter; The input terminals of the discharge / recharge slide rail (301), reciprocating electric slide rail (304), downward electric push rod (306), air pump (309) and swing motor (310) are all electrically connected to the output terminal of an external power supply.