Fabric stretching detection system for garment production

By designing a fabric stretch detection system, using airflow blowing and automated collection technology, the problem of debris caused by cracking and producing during the stretching process is solved, and the cleanliness and working efficiency of the detection environment is improved.

CN120084657AActive Publication Date: 2025-06-03SHANDONG XIANXIA CLOTHING CO LTD

Patent Information

Application Number
CN202510560952.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-30
Publication Date
2025-06-03
Estimated Expiration
2045-04-30

AI Technical Summary

Technical Problem

The fabric may break during the stretching process due to exceeding the tensile strength, resulting in tiny thread tips or light debris, resulting in increased workload for detection of environmental pollution and post-cleaning.

Method used

A fabric stretch detection system is designed, including a rotating carrier plate, a collection cover, an air pump and a collection box, which blows floating debris through the airflow to prevent them from spreading, and automatically collects through the suction pump and piping system.

Benefits of technology

Effectively prevent debris from spreading, maintain the cleanliness of the detection environment, reduce manual cleaning needs, reduce labor intensity, improve work efficiency, and extend the service life of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a fabric stretching detection system for garment production, and relates to the technical field of fabric stretching detection, the fabric stretching detection system comprises a rotary carrier plate, the bottom of the rotary carrier plate is rotatably provided with a fixed table; a stand column is installed in the middle of the top of the rotary carrying plate. A guide vertical rod is mounted at the top of the stand column; a collecting cover is mounted on the outer side of the fixed table; a rotating plate is rotationally mounted at the top of the guide vertical rod; a plurality of uniformly distributed connecting rods are mounted on the side surface of the rotating plate; an air spraying pipe is mounted at the side end of the connecting rod; the side face of the air spraying pipe is connected with the top of the flow guide pipe, and an air spraying groove is formed in the bottom of the air spraying pipe. The air flow generated by the air pump blows floating scrap thread ends to effectively prevent the scrap thread ends from diffusing to other positions of the detection area, so that the cleanliness of the detection environment is maintained, and the problem that fine thread ends or light scraps generated by fabric breakage float to other positions along with air flow is solved.
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Description

Technical Field

[0001] The present invention relates to the technical field of fabric stretching detection, and particularly to a fabric stretching detection system for clothing production. Background Art

[0002] Fabrics in clothing production are the basic materials that make up clothing. They come in a wide variety of types and have different properties, directly affecting the appearance, comfort, durability, and functional characteristics of clothing. Therefore, during the process of clothing production, a detection system is needed to detect the stretchability of clothing fabrics to ensure the quality of the fabrics.

[0003] In the prior art, when detecting the stretchability of clothing fabrics, the two ends of the fabric to be tested are usually stretched to the extreme state to evaluate its performance. However, the fabric may rupture due to exceeding the tensile strength during the stretching process. The fine thread ends or light debris generated by the fabric breakage float to other positions with the air flow. The debris not only pollutes the detection environment but also increases the workload during the later cleaning process. Summary of the Invention

[0004] The present invention relates to a fabric stretching detection system for clothing production, which solves the problems that the fabric may rupture due to exceeding the tensile strength during the stretching process, and the fine thread ends or light debris generated by the fabric breakage float to other positions with the air flow. The debris not only pollutes the detection environment but also increases the workload during the later cleaning process.

[0005] The present invention provides a fabric stretching detection system for clothing production, which specifically includes: a rotating carrier plate, a fixed platform is rotatably installed at the bottom of the rotating carrier plate; a column is installed at the middle position of the top of the rotating carrier plate; a guiding vertical rod is installed at the top of the column; a collection hood is installed on the outer side of the fixed platform; an operation panel is installed on the outer side of the collection hood, and a collection box is also installed on the outer side of the collection hood; an air suction pump is provided on the side of the collection box, and a collection pipe is installed at the input end of the air suction pump; the collection pipe is of an annular structure and is located on the outer side of the bottom of the collection hood, and a connecting pipe is connected to the side of the collection pipe; the connecting pipe is installed on the side of the collection hood; an air pump is installed at the top of the collection box, and a diversion pipe is installed at the output end of the air pump; a rotating plate is rotatably installed at the top of the guiding vertical rod; a plurality of uniformly distributed connecting rods are installed on the side of the rotating plate; a jet pipe is installed at the side end of the connecting rod; the jet pipe is of an annular structure, and the side of the jet pipe is connected to the top of the diversion pipe, and a jet groove is provided at the bottom of the jet pipe.

[0006] Further, four positioning brackets are installed on the top of the rotating carrier plate; the positioning brackets are of a rectangular frame structure, and grooves are provided on both inner sides of the positioning brackets. The grooves are of a T-shaped structure, and a guiding sliding plate and a traction plate are respectively slidably installed in the grooves on both inner sides of the positioning brackets.

[0007] Further, a fixing groove is provided at the middle position of the guiding slide plate, and a rotating shaft is installed inside the guiding slide plate. Return springs are installed at both ends of the rotating shaft, and a fixing plate is installed on the rotating shaft; a fixing cone is provided on the side surface of the fixing plate, and the fixing plate rotates at one end of the fixing groove.

[0008] Further, an activity slotted groove is provided on the side surface of the guiding slide plate; a rotating shaft rotates inside the activity slotted groove, return springs are installed at both ends of the rotating shaft, and a flipping pressing plate is installed on the rotating shaft.

[0009] Further, the flipping pressing plate is rotatably installed on the other side surface of the fixing plate, and a flipping side plate is installed on one side of the flipping pressing plate; support plates are rotatably installed at both top ends of the flipping side plate; the side end of the support plate is rotatably installed on one side of the traction plate.

[0010] Further, a guiding groove is provided on the side surface of the column; the guiding groove is communicated with the inside of the column, and a driving cylinder is installed at the bottom end inside the column, a spring is installed inside the column, a fixed pushing plate is installed inside the column through the spring, wherein, an inclined structure is provided at the top of the fixed pushing plate; a guiding plate is slidably installed inside the column.

[0011] Further, the guiding plate is located outside the fixed pushing plate, and the guiding plate is of an arc-shaped structure, and a lower traction rod is installed on the outer side of the guiding plate; the lower traction rod is slidably installed inside the guiding groove, and the outer end of the lower traction rod is connected to the other side of the lower traction plate; a fixed slider is installed on the output end of the driving cylinder at the bottom end inside the column.

[0012] Further, the fixed slider is of a circular structure, and the fixed slider is slidably installed inside the fixed pushing plate; a driving cylinder is installed on one side at the top of the column, and a movable plate is installed on the output end of the driving cylinder; the movable plate is slidably installed outside the guiding vertical rod, and an upper traction rod is installed on the outer side of the movable plate.

[0013] Further, the side end of the upper traction rod is connected to the other side of the upper traction plate; a circulation pipe, a refrigeration component and a heating component are installed on the top of the rotating carrier plate; the circulation pipe is of an annular structure, and the circulation pipe is located outside the column.

[0014] Further, control valves are installed on the output ends of the refrigeration component and the heating component, and the output ends of the refrigeration component and the heating component are connected to the circulation pipe; a guiding vertical pipe is installed on the top of the circulation pipe, wherein, a slotted groove is provided on the side surface of the guiding vertical pipe.

[0015] The present invention provides a fabric stretching detection system for clothing production, which has the following beneficial effects: When the present invention is in use, the airflow generated by the air pump blows the floating debris and thread ends, effectively preventing them from spreading to other positions in the detection area, thereby maintaining the cleanliness of the detection environment and providing a stable and reliable guarantee for subsequent detection work. The debris flows towards the collection hood under the guidance of the airflow, and then is extracted by the collection pump and enters the collection box through the pipeline system, realizing automatic collection, greatly reducing the need for manual cleaning, reducing the labor intensity, and improving the work efficiency. By cleaning the debris in a timely manner, potential damage to the precision components of the detection equipment is avoided, the service life of the equipment is extended, and the maintenance cost is reduced.

[0016] In addition, the lower end position of the fabric can be precisely adjusted through the traction plate and the lower traction rod, so that the four fabrics reach the same initial relaxation degree, ensuring that the fabric is in a consistent initial state during each tensile test, and effectively improving the accuracy and comparability of the test data.

[0017] In addition, the ambient temperature during the tensile test can be flexibly adjusted through the refrigeration component and the heating component. Whether simulating a cold environment or high-temperature conditions, the required test environment is provided for the fabric, enabling the detection system to cover a wider range of scenarios and comprehensively evaluate the performance of the fabric under different conditions, thereby improving the comprehensiveness of the fabric tensile test results. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings of the embodiments will be briefly introduced below.

[0019] The drawings in the following description only relate to some embodiments of the present invention and do not limit the present invention.

[0020] In the drawings: Figure 1 A schematic diagram showing the overall structure of the present invention is shown; Figure 2 A three-dimensional structure schematic diagram of the positioning bracket of the present invention is shown; Figure 3 A three-dimensional structure schematic diagram of the traction plate of the present invention is shown; Figure 4 A cross-sectional structure schematic diagram of the guide sliding plate of the present invention is shown; Figure 5 A three-dimensional structure schematic diagram of the movable plate of the present invention is shown; Figure 6 A three-dimensional structure schematic diagram of the circulation pipe of the present invention is shown; Figure 7 A cross-sectional structure schematic diagram of the column of the present invention is shown; Figure 8 A three-dimensional structure schematic diagram of the collection hood of the present invention is shown; Figure 9Shows a schematic cross-sectional structure diagram of the air injection pipe of the present invention; Figure 10 Shows a system flow block diagram of the present invention.

[0021] List of reference numerals 1. Rotating carrier plate; 101. Fixed table; 102. Positioning bracket; 103. Guide slide plate; 104. Traction plate; 105. Fixed groove; 106. Fixed plate; 107. Movable slot; 108. Flipping pressure plate; 109. Flipping side plate; 1010. Support plate; 2. Column; 201. Guide vertical rod; 202. Guide groove; 203. Fixed push plate; 204. Guide plate; 205. Lower traction rod; 206. Fixed slider; 207. Movable plate; 208. Upper traction rod; 209. Circulation pipe; 2010. Refrigeration component; 2011. Heating component; 2012. Guide flow vertical pipe; 3. Collection hood; 301. Collection box; 302. Collection pipe; 303. Connecting pipe; 304. Guide pipe; 305. Rotating plate; 306. Connecting rod; 307. Air injection pipe; 308. Air injection slot. Detailed implementation manners

[0022] To make the objectives, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are some but not all of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the described embodiments of the present invention without creative efforts shall fall within the scope of protection of the present invention.

[0023] Please refer to Figures 1 to 10Example 1: The present invention proposes a fabric stretching detection system for clothing production, including: a rotating carrier plate 1, and a fixed platform 101 is rotatably installed at the bottom of the rotating carrier plate 1; four positioning brackets 102 are installed on the top of the rotating carrier plate 1; the positioning bracket 102 is of a rectangular frame structure, and grooves are provided on both inner sides of the positioning bracket 102. The grooves are of a T-shaped structure, and a guiding slide plate 103 and a traction plate 104 are respectively slidably installed in the grooves on both inner sides of the positioning bracket 102; a fixing groove 105 is provided at the middle position of the guiding slide plate 103, and a rotating shaft is installed on the inner side of the guiding slide plate 103. Return springs are installed at both ends of the rotating shaft, and a fixing plate 106 is installed on the rotating shaft; a fixing cone is provided on the side surface of the fixing plate 106, and the fixing plate 106 rotates at one end of the fixing groove 105; a movable slot 107 is provided on the side surface of the guiding slide plate 103; a rotating shaft is rotated inside the movable slot 107, return springs are installed at both ends of the rotating shaft, and a flipping pressing plate 108 is installed on the rotating shaft; the flipping pressing plate 108 is rotatably installed on the other side surface of the fixing plate 106, and a flipping side plate 109 is installed on one side of the flipping pressing plate 108; both ends of the top of the flipping side plate 109 are rotatably installed with support plates 1010; the side ends of the support plates 1010 are rotatably installed on one side of the traction plate 104.

[0024] In the embodiment of the present invention, when detecting the stretching performance of clothing fabric, the fixing plate 106 is toggled on the inner side of the guiding slide plate 103, so that the fixing cone on the side surface of the fixing plate 106 leaves one end of the fixing groove 105. Both ends of the fabric to be detected are respectively passed through the fixing grooves 105 on the upper and lower guiding slide plates 103 and placed on the side surface of the guiding slide plate 103. Under the action of the return spring, the fixing plate 106 performs preliminary positioning and fixing on one end of the fabric. After the fabric hangs naturally, the upper traction plate 104 pulls the support plates 1010 to move upward along the grooves on both inner sides of the positioning bracket 102. Then the support plates 1010 pull the flipping side plate 109 to rotate, and the flipping side plate 109 drives the flipping pressing plate 108 to rotate inside the movable slot 107. The flipping pressing plate 108 presses the other side surface of the fixing plate 106, so that the fixing plate 106 further fixes the upper end of the fabric. After the fabric is pulled upward and the lower traction plate 104 is fixed, when the fabric moves upward, it drives the guiding slide plate 103 to move upward. Then the lower support plate 1010 makes the flipping side plate 109 pull the flipping pressing plate 108 to apply pressure to the lower fixing plate 106 to fix the fabric. The greater the stretching amplitude of the fabric, the greater the fixing force on the fabric, preventing the situation of falling off. The rotating carrier plate 1 is rotated on the top of the fixed platform 101 to drive the four positioning brackets 102 to move for fixing the fabric, and the stretching detection of the four fabrics can be carried out simultaneously, and the sampled fabrics are detected in the same environment to ensure the accuracy of the detection data.

[0025] Embodiment 2, on the basis of Embodiment 1, a column 2 is installed at the middle position of the top of the rotating carrier plate 1; a guiding vertical rod 201 is installed at the top of the column 2; a guiding groove 202 is provided on the side surface of the column 2; the guiding groove 202 communicates with the inside of the column 2, and a driving cylinder is installed at the bottom end inside the column 2, a spring is installed inside the column 2, and a fixed push plate 203 is installed inside the column 2 through the spring. Among them, an inclined structure is provided on the top of the fixed push plate 203; a guiding plate 204 is slidably installed inside the column 2; the guiding plate 204 is located outside the fixed push plate 203, and the guiding plate 204 is an arc-shaped structure, and a lower traction rod 205 is installed on the outside of the guiding plate 204; the lower traction rod 205 is slidably installed inside the guiding groove 202, and the outer end of the lower traction rod 205 is connected to the other side of the lower traction plate 104; a fixed slider 206 is installed on the output end of the driving cylinder at the bottom end inside the column 2; the fixed slider 206 is a circular structure, and the fixed slider 206 is slidably installed inside the fixed push plate 203; a driving cylinder is installed on one side of the top of the column 2, and a movable plate 207 is installed on the output end of the driving cylinder; the movable plate 207 is slidably installed outside the guiding vertical rod 201, and an upper traction rod 208 is installed on the outside of the movable plate 207; the side end of the upper traction rod 208 is connected to the other side of the upper traction plate 104; a circulation pipe 209, a refrigeration component 2010 and a heating component 2011 are installed on the top of the rotating carrier plate 1; the circulation pipe 209 is a circular structure, and the circulation pipe 209 is located outside the column 2; control valves are installed on the output ends of the refrigeration component 2010 and the heating component 2011, and the output ends of the refrigeration component 2010 and the heating component 2011 are connected to the circulation pipe 209;A flow guide vertical pipe 2012 is installed at the top of the circulation pipe 209. Among them, slots are provided on the side of the flow guide vertical pipe 2012. When detecting the tensile performance of clothing fabrics, after the lower end of the fabric is fixed and hangs naturally, the lower traction plate 104 drives the lower traction rod 205 to move downward along the guide groove 202. The inner end of the lower traction rod 205 drives the guide plate 204 to move inside the column 2. After the fabrics at all places hang down, the guide plate 204 is driven to be at a relatively stable height, so that the fabrics at all places are in the same initial relaxation degree. The driving cylinder at the bottom end inside the column 2 drives the fixed slider 206 to move downward. The side of the fixed slider 206 pushes the fixed push plate 203 to move. After the fixed push plate 203 moves outward, the position of the guide plate 204 is fixed, and then the position of the lower end of the fabric is positioned. The upper traction rod 208 on the outside of the movable plate 207 drives the fabrics at all places to be at the same height. Then, the driving cylinder on one side of the top of the column 2 drives the movable plate 207 to move upward along the guide vertical rod 201. The movable plate 207 drives the upper end of the fabric to perform tensile testing through the upper traction rod 208. The refrigeration component 2010 or the heating component 2011 on the top of the rotating carrier plate 1 works. When the refrigeration component 2010 generates cold air flow, the heating component 2011 stops working. The cold air flow flows out through the slots on the side of the flow guide vertical pipe 2012 above the circulation pipe 209 to cool the stretched fabric, so that the fabric can be stretched and tested in a relatively cold environment. Or when the heating component 2011 generates hot air flow, the refrigeration component 2010 stops working. The hot air flow flows out through the slots on the side of the flow guide vertical pipe 2012 above the circulation pipe 209 to heat the stretched fabric, so that the fabric can be stretched and tested in a relatively hot environment. The fabric is tested in different environments to ensure the comprehensiveness of the fabric tensile testing.

[0026] Embodiment 3. On the basis of Embodiment 1, a collection hood 3 is installed outside the fixed table 101; an operation panel is installed outside the collection hood 3, and a collection box 301 is also installed outside the collection hood 3; an air suction pump is provided on the side of the collection box 301, and a collection pipe 302 is installed on the input end of the air suction pump; the collection pipe 302 is of an annular structure, and the collection pipe 302 is located outside the bottom of the collection hood 3, and a connecting pipe 303 is connected to the side of the collection pipe 302; the connecting pipe 303 is installed on the side of the collection hood 3; an air pump is installed on the top of the collection box 301, and a diversion pipe 304 is installed on the output end of the air pump; a rotating plate 305 is rotatably installed at the top of the guiding vertical rod 201; a plurality of uniformly distributed connecting rods 306 are installed on the side of the rotating plate 305; a jet pipe 307 is installed at the side end of the connecting rod 306; the jet pipe 307 is of an annular structure, and the side of the jet pipe 307 is connected to the top of the diversion pipe 304, and a jet groove 308 is provided at the bottom of the jet pipe 307. When detecting the tensile performance of the clothing fabric, when the fabric is stretched and broken, the air pump at the top of the collection box 301 works, and the air flow generated by the air pump enters the interiors of the two jet pipes 307 through the diversion pipe 304. When the rotating carrier plate 1 rotates, it drives the guiding vertical rod 201 to rotate at the bottom of the rotating plate 305. The rotating plate 305 positions the jet pipe 307 through the connecting rod 306, so that the air flow ejected from the jet groove 308 at the bottom of the jet pipe 307 blows and cleans the debris and thread ends floating during the fabric breaking process. The debris flows into the interior of the collection hood 3. The collection pump on the side of the collection box 301 works, and the collection hood 3 absorbs the air flow carrying the debris and flows downward. The air flow flows into the interior of the collection box 301 through the connecting pipe 303 and the collection pipe 302, preventing the problem that the thread ends and debris of the stretched and broken fabric float to other places, ensuring the cleanliness of the detection environment, and reducing the workload of later cleaning.

[0027] Working principle of this embodiment: During use, both ends of the fabric to be detected are respectively passed through the upper and lower fixing slots 105 and placed on the side of the guiding slide plate 103. Under the action of the return spring, the fixing plate 106 initially fixes one end of the fabric. When the fabric hangs naturally, the lower traction plate 104 drives the guiding plate 204 at the inner end of the lower traction rod 205 to move inside the column 2. After the fabric at the four places hangs down, the guiding plate 204 is in a relatively stable position. The driving cylinder at the bottom end inside the column 2 drives the fixed slider 206 to push the fixed push plate 203 to move and fix the guiding plate 204. The upper traction rod 208 on the outer side of the movable plate 207 drives the fabric at the four places to the same height. The driving cylinder on one side of the top of the column 2 drives the movable plate 207 to move upward along the guiding vertical rod 201. The movable plate 207 drives the upper end of the fabric to stretch through the upper traction rod 208. The upper traction rod 208 drives the upper traction plate 104 to pull the flipping side plate 109 to rotate through the support plate 1010, so that the flipping pressing plate 108 presses the other side of the fixing plate 106, and the upper end of the fabric is further fixed. After the fabric is pulled upward, the position of the lower traction plate 104 is fixed. After the lower support plate 1010 moves, the flipping side plate 109 pulls the flipping pressing plate 108 to apply pressure to the lower fixing plate 106 to fix the fabric. The greater the stretching amplitude of the fabric, the greater the fixing force on the fabric. At the same time, the stretching detection of the fabric at the four places is carried out. The refrigeration component 2010 generates cold air flow, which flows out through the slots on the side of the guiding vertical pipe 2012 above the circulation pipe 209. The fabric can be stretched and detected in a relatively cold environment, or the heating component 2011 generates hot air flow, which flows out through the slots on the side of the guiding vertical pipe 2012 above the circulation pipe 209. The fabric can be stretched and detected in a relatively hot environment, so that the fabric is detected in different environments. The air flow generated by the air pump at the top of the collection box 301 enters the two jet pipes 307 through the diversion pipe 304 and is ejected through the jet slots 308 to blow the debris and thread heads floating during the fabric breakage process downward to flow into the collection cover 3. The collection pump on the side of the collection box 301 works, and the collection cover 3 absorbs the air flow carrying debris and flows downward. The air flow flows into the interior of the collection box 301 through the connecting pipe 303 and the collection pipe 302, preventing the problem that the thread debris of the stretched and broken fabric floats to other places and ensuring the cleanliness of the detection environment.

[0028] In this article, the following points need to be noted: 1. The attached drawings of the embodiments of the present invention only relate to the structures involved in the embodiments of the present invention, and other structures can refer to the general design.

[0029] 2. Without conflict, the embodiments of the present invention and the features in the embodiments can be combined with each other to obtain new embodiments.

[0030] The above are only specific embodiments of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention can easily think of changes or substitutions, which should all be covered within the protection scope of the present invention. Therefore, the protection scope of the present invention shall be subject to the protection scope of the claims.

Claims

1. A fabric stretch detection system for clothing production, comprising: A rotating carrier (1), wherein a fixed platform (101) is rotatably mounted at the bottom of the rotating carrier (1); characterized in that a column (2) is mounted at the middle position of the top of the rotating carrier (1); a guide vertical rod (201) is mounted on the top of the column (2); a collection cover (3) is mounted on the outside of the fixed platform (101); an operation panel is mounted on the outside of the collection cover (3), and a collection box (301) is also mounted on the outside of the collection cover (3); an air suction pump is mounted on the side of the collection box (301), and a collection pipe (302) is mounted on the input end of the air suction pump; the collection pipe (302) is located on the outside of the bottom of the collection cover (3), and the collection pipe (302) is mounted on the outside of the bottom of the collection cover (3). The side of the tube (302) is connected to a connecting tube (303); the connecting tube (303) is installed on the side of the collection cover (3); an air pump is installed on the top of the collection box (301), and a guide tube (304) is installed on the output end of the air pump; a rotating plate (305) is rotatably installed on the top of the guide vertical rod (201); a plurality of evenly distributed connecting rods (306) are installed on the side of the rotating plate (305); an air jet pipe (307) is installed on the side end of the connecting rod (306); the side of the air jet pipe (307) is connected to the top of the guide tube (304), and an air jet groove (308) is provided at the bottom of the air jet pipe (307).

2. A fabric stretch detection system for clothing production according to claim 1, characterized in that: Four positioning brackets (102) are installed on the top of the rotating carrier plate (1); grooves are provided on both sides of the interior of the positioning bracket (102), and guide slide plates (103) and traction plates (104) are slidably installed in the grooves on both sides of the interior of the positioning bracket (102).

3. A fabric stretch detection system for clothing production according to claim 2, characterized in that: A fixing groove (105) is provided in the middle of the guide slide plate (103), a rotating shaft is installed on the inner side of the guide slide plate (103), return springs are installed at both ends of the rotating shaft, and a fixing plate (106) is installed on the rotating shaft; a fixing cone is provided on the side of the fixing plate (106), and the fixing plate (106) is rotatably located at one end of the fixing groove (105).

4. A fabric stretch detection system for clothing production according to claim 3, characterized in that: A movable slot (107) is provided on the side of the guide slide plate (103); a rotating shaft is provided inside the movable slot (107); return springs are installed on both ends of the rotating shaft; and a flip pressure plate (108) is installed on the rotating shaft.

5. The fabric stretch detection system for clothing production according to claim 4, characterized in that: The flip pressure plate (108) is rotatably mounted on the other side of the fixed plate (106), and a flip side plate (109) is mounted on one side of the flip pressure plate (108); support plates (1010) are rotatably mounted on both ends of the top of the flip side plate (109); and the side end of the support plate (1010) is rotatably mounted on one side of the traction plate (104).

6. A fabric stretch detection system for clothing production according to claim 5, characterized in that: A guide groove (202) is provided on the side of the column (2); the guide groove (202) is connected to the interior of the column (2); a driving cylinder is installed at the bottom end of the interior of the column (2); a spring is installed on the inner side of the column (2); a fixed push plate (203) is installed on the inner side of the column (2) via the spring; and a guide plate (204) is slidably installed on the inner side of the column (2).

7. A fabric stretch detection system for clothing production according to claim 6, characterized in that: The guide plate (204) is located outside the fixed push plate (203), and a lower traction rod (205) is installed on the outside of the guide plate (204); the lower traction rod (205) is slidably installed inside the guide groove (202), and the outer end of the lower traction rod (205) is connected to the other side of the lower traction plate (104); a fixed sliding block (206) is installed on the output end of the driving cylinder at the bottom end inside the column (2).

8. The fabric stretch detection system for clothing production according to claim 7, characterized in that: The fixed sliding block (206) is slidably mounted on the inner side of the fixed push plate (203); a driving cylinder is mounted on one side of the top of the column (2), and a movable plate (207) is mounted on the output end of the driving cylinder; the movable plate (207) is slidably mounted on the outer side of the guide vertical rod (201), and an upper traction rod (208) is mounted on the outer side of the movable plate (207).

9. A fabric stretch detection system for clothing production according to claim 8, characterized in that: The side end of the upper traction rod (208) is connected to the other side of the upper traction plate (104); a circulation pipe (209), a refrigeration component (2010) and a heating component (211) are installed on the top of the rotating carrier plate (1); the circulation pipe (209) is an annular structure, and the circulation pipe (209) is located outside the column (2).

10. A fabric stretch detection system for clothing production according to claim 9, characterized in that: Control valves are installed on the output ends of the refrigeration component (2010) and the heating component (2011), and the output ends of the refrigeration component (2010) and the heating component (2011) are connected to the circulation pipe (209); a flow guide vertical pipe (2012) is installed on the top of the circulation pipe (209), wherein a groove is provided on the side of the flow guide vertical pipe (2012).

Citation Information

Patent Citations

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