Face accessory elasticity detection equipment for garment making

By using servo motor-driven multi-angle, multi-directional stretching and extrusion technology, the problem of existing equipment being able to only stretch in one direction has been solved, thus achieving accuracy and reliability in elasticity testing of fabrics and accessories used in garment manufacturing.

CN120801029AInactive Publication Date: 2025-10-17QINGDAO GAOXIANG GARMENT CO LTD
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Patent Information

Application Number
CN202511101008.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-07
Publication Date
2025-10-17
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing elasticity testing equipment for garment fabrics and accessories can only perform unidirectional stretching and cannot simulate multidirectional stress on garments, resulting in large discrepancies between test data and actual values, which affects production and manufacturing.

Method used

An elasticity testing device for garment manufacturing fabrics is used. Through a servo motor-driven moving plate and multiple hydraulic grippers, combined with intermittent moving components and transmission components, it realizes multi-angle and multi-directional stretching and compression of samples to simulate the actual use of garments.

Benefits of technology

This improves the accuracy of elasticity test results, better reflects the actual application of samples, and enhances the reliability and precision of the test results.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses fabric and accessory elasticity detection equipment for garment making, and belongs to the technical field of garment making. The clamping device comprises a base, the base is fixedly connected with a frame, the frame is slidably connected with a movable plate, the base is fixedly connected with a fixed hydraulic clamping jaw, the movable plate is provided with a plurality of movable hydraulic clamping jaws through an intermittent moving assembly, and the intermittent moving assembly comprises a plurality of fixed frames fixedly installed on the lower side of the movable plate; and a second connecting rod is rotationally connected into the fixing frame, a square block is fixedly connected to the second connecting rod, a square frame is slidably connected to the square block, and the square frame is fixedly connected with the movable hydraulic clamping jaw. When elastic detection is needed, under the action of the sliding rod of the track, the stretching effect on a sample is changed to a certain extent, the actual application of the sample is better met, and then the accuracy of a detection result can be improved.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of garment making, and particularly relates to a face auxiliary material elasticity detection device for garment making. BACKGROUND

[0002] In garment making, the face material and the auxiliary material are two basic materials for forming a garment, which jointly determine the appearance, texture, wearing comfort, durability and overall quality of the garment. Before the face auxiliary material is processed, the elasticity performance of the face auxiliary material needs to be tested. A common detection method is to make the face auxiliary material into multiple samples, place the samples on a universal material testing machine, and perform multiple repeated stretching operations to measure the elasticity recovery rate of the samples after each stretching, thereby completing the elasticity test operation of the face auxiliary material. The overall operation is simple.

[0003] However, in the actual test process, first, when the universal material testing machine is used for testing, only single-direction stretching operation of the sample can be formed, which has great difference from the actual wearing and cannot simulate the multi-directional stress state of the garment, thereby leading to that the data obtained by the test is more close to the theoretical value rather than the actual value, which brings great inconvenience in the subsequent production and manufacturing process. Therefore, the face auxiliary material elasticity detection device for garment making is provided. SUMMARY

[0004] The purpose of the present application is to solve the problems in the prior art and provide a face auxiliary material elasticity detection device for garment making.

[0005] The present application adopts the following technical solutions:

[0006] The face auxiliary material elasticity detection device for garment making comprises a base, the base is fixedly connected with a frame, the frame is slidingly connected with a moving plate, the base is fixedly connected with a fixed hydraulic clamp jaw, the moving plate is provided with a plurality of moving hydraulic clamp jaws through an intermittent moving assembly, the intermittent moving assembly comprises a plurality of fixed frames fixedly installed on the lower side of the moving plate, the fixed frame is rotatably connected with a second connecting rod, the second connecting rod is fixedly connected with a square block, the square block is slidingly connected with a square frame, the square frame is fixedly connected with the moving hydraulic clamp jaw, the moving plate is rotatably connected with a plurality of rotating shafts, the rotating shafts are drivingly connected through a transmission assembly, the rotating shaft is fixedly connected with a circular plate, the circular plate is provided with a track, the moving plate is slidingly connected with a plurality of square rods, the square rods are fixedly and penetratingly connected with slide rods, the slide rods are slidingly connected with the track, and the square rods are rotatably connected with the square frame.

[0007] Preferably, the square rod is provided with a control assembly for controlling rotation of the square frame, the control assembly comprises two limiting clamping plates fixedly installed on the square frame, the two limiting clamping plates are fixedly connected with a limiting shaft penetratingly connected, the limiting shaft is rotatably connected with the square rod, the fixed frame is rotatably connected with a control shaft, the control shaft is fixedly connected with a ratchet cylinder, the control shaft is fixedly connected with two fifth gears, the fifth gears are fixedly connected with torsion springs between the fifth gears and the fixed frame, the fixed frame is slidingly penetratingly connected with two limiting rods, the two limiting rods are fixedly connected with a fifth rack, the fifth rack is engaged with the fifth gears, the fifth rack is hingedly connected with a telescopic rod, the telescopic rod is fixedly connected with the limiting shaft, the square rod is slidingly penetratingly connected with a plurality of control rods, and the control rods are fixedly connected with second springs between the control rods and the square rod.

[0008] Preferably, the limiting shaft is fixedly connected with a fourth gear, the lower side of the moving plate is slidingly connected with a plurality of connecting plates, the connecting plates are arranged in pairs, and each pair of the connecting plates is opposite to the moving hydraulic clamping jaw, the connecting plates are fixedly connected with a fourth rack through a third connecting rod, the fourth rack is engaged with the fourth gear, the connecting plates are fixedly connected with a moving clamping rod, the moving clamping rod is fixedly connected with a moving clamping plate, and the moving clamping plate is fixedly connected with a plurality of protrusions.

[0009] Preferably, the lower side of the moving plate is provided with a positioning assembly, the positioning assembly comprises two fixed clamping rods fixedly connected together, the moving plate is slidingly connected with a control plate, the control plate and the moving plate are fixedly connected with a first spring, the control plate is located on the upper side of the sliding rod, the control plate is fixedly connected with a first connecting rod, and the first connecting rod and one of the fixed clamping rods are fixedly connected.

[0010] Preferably, one of the rotating shafts is rotatably penetrating in the moving plate, and a first gear is fixedly connected to the side, away from the moving plate, of the rotating shaft, a first rack is fixedly connected to the side wall of the frame, and the first rack is engaged with the first gear.

[0011] Preferably, the transmission assembly comprises a plurality of third gears rotatably installed in the moving plate, a second gear is fixedly connected to the outer side of the rotating shaft, adjacent second gears and third gears are engaged, and the diameters of each of the second gears and the third gears are different.

[0012] Preferably, the upper side of the frame is fixedly connected with a top plate, the lower side of the top plate is fixedly connected with a servo motor, the output end of the servo motor is fixedly connected with a ball screw, and the ball screw is rotatably connected with the moving plate.

[0013] The present application has the following advantages:

[0014] 1、First, when the elasticity needs to be detected, one end of the sample is clamped on the fixed hydraulic clamp jaw, the other end is clamped on the moving hydraulic clamp jaw, the servo motor is started, the stretching operation of the sample can be completed, the elastic recovery rate after each sample stretching is measured, the experimental data is counted and analyzed, and finally the elasticity detection of the sample is completed. In this process, under the action of the track and the slide bar, the stretching effect of the sample will change to some extent, which is more in line with the actual application of the sample, and thus the accuracy of the detection result can be improved;

[0015] 2、And, in this process, because the rotation speed of the rotating shaft is different, the rotation speed of each circular plate is also different, that is, the time of the square rod moving up and down relative to the moving plate is different, which will eventually lead to a certain difference in the stretching effect of each moving hydraulic clamp jaw on the sample, which can further meet the actual application of the sample and further improve the accuracy of the detection result;

[0016] 3、At the same time, during the detection, the limiting clamping plate, the square frame and the moving hydraulic clamp jaw will rotate counterclockwise around the limiting shaft, and because the time of the adjacent square rods moving up and down relative to the moving plate is different, the sample will be further stretched, and this stretching is mainly a horizontal stretching of the sample, which is different from the vertical stretching of the sample before, and can form a multi-angle detection of the sample;

[0017] 4、Then, during the detection, an intermittent extrusion effect on the sample is formed, which makes the sample during the detection further similar to the actual use of the sample, and thus the accuracy of the detection result can be further improved;

[0018] 5、Finally, during the detection of the sample, the sample is located between the two fixed clamping rods, and when the moving hydraulic clamp jaw rotates, the sample and the fixed clamping rod abut, so that the sample is bent, and the bending position of the sample is different each time, which can further simulate the actual use of the sample and further improve the accuracy of the detection result. BRIEF DESCRIPTION OF DRAWINGS

[0019] Figure 1 It is a structural schematic view of a garment manufacturing surface auxiliary material elasticity detection equipment proposed by the present application;

[0020] Figure 2 It is a structural schematic view of a moving plate and a moving hydraulic clamp jaw in a garment manufacturing surface auxiliary material elasticity detection equipment proposed by the present application;

[0021] Figure 3 It is a structural schematic view of a moving plate in a garment manufacturing surface auxiliary material elasticity detection equipment proposed by the present application;

[0022] Figure 4This is a cross-sectional connection diagram of a movable plate in a device for detecting elasticity of fabric and auxiliary materials for garment manufacturing proposed by the present invention;

[0023] Figure 5 This is a cross-sectional connection diagram of another angle of the movable plate in the elasticity detection device for fabric and auxiliary materials used in garment manufacturing proposed by the present invention;

[0024] Figure 6 for Figure 5 A magnified view of the structure at point A;

[0025] Figure 7 This is a schematic structural diagram of a control panel and a fixed clamping rod in a device for detecting elasticity of fabric and auxiliary materials for garment manufacturing proposed by the present invention;

[0026] Figure 8 This is a schematic diagram of the connection between the fixed hydraulic clamping jaws and the square frame in the elasticity detection equipment for fabric and auxiliary materials used in clothing manufacturing proposed by the present invention;

[0027] Figure 9 This is a schematic diagram of the connection between the square frame and the square rod in the elasticity detection device for fabric and auxiliary materials used in clothing manufacturing proposed by the present invention;

[0028] Figure 10 This is a schematic diagram of the connection between the second connecting rod and the square frame in the elasticity detection device for fabric and auxiliary materials used in clothing manufacturing proposed by the present invention;

[0029] Figure 11 This is a schematic diagram of the connection between the fourth gear and the fourth rack in the elasticity detection device for fabric and auxiliary materials used in garment manufacturing proposed by the present invention;

[0030] Figure 12 This is a schematic diagram of the connection between the control rod and the square rod in the elasticity detection device for fabric and auxiliary materials used in clothing production proposed by the present invention.

[0031] In the figure: 1 base, 2 fixed hydraulic clamping jaw, 3 frame, 4 movable plate, 5 movable hydraulic clamping jaw, 6 first rack, 7 first gear, 8 rotating shaft, 9 second gear, 10 third gear, 11 control plate, 12 circular plate, 13 track, 14 square rod, 15 slide rod, 16 first spring, 17 first connecting rod, 18 fixed clamping rod, 19 fixed frame, 20 connecting plate, 21 movable clamping rod, 22 movable clamping plate, 23 square frame, 24 square block, 25 second connecting rod, 26 second spring, 27 third connecting rod, 28 fourth rack, 29 ratchet cylinder, 30 torsion spring, 31 fifth gear, 32 limiting rod, 33 fifth rack, 34 control rod, 35 telescopic rod, 36 control shaft, 37 fourth gear, 38 limiting shaft, 39 limiting clamping plate. DETAILED DESCRIPTION

[0032] See Figures 1-12The utility model provides a kind of clothing is made using face auxiliary material elasticity detection equipment, including base 1, the upper side of base 1 is fixedly connected with frame 3, slidingly connected with moving plate 4 in frame 3, the upper side of frame 3 is fixedly connected with top plate, the lower side of top plate is fixedly connected with servo motor, the output of servo motor is fixedly connected with ball screw, ball screw and moving plate 4 are mechanically matched connection, the upper side of base 1 is fixedly connected with fixed hydraulic clamp jaw 2, moving plate 4 lower side is equipped with multiple mobile hydraulic clamp jaw 5 by intermittent moving subassembly, the position of multiple mobile hydraulic clamp jaw 5 and fixed hydraulic clamp jaw 2 position is opposite;

[0033] First, mobile hydraulic clamp jaw 5 and fixed hydraulic clamp jaw 2 are only different in size, its specific structure, working principle is completely same, is all through the power machinery driven by hydraulic system, belongs to conventional technical means, second, when needing to carry out elasticity detection, first one end of sample is clamped on fixed hydraulic clamp jaw 2, then the other end of sample is clamped in mobile hydraulic clamp jaw 5, start servo motor, servo motor drives ball screw to rotate, ball screw drives moving plate 4 to move upwards, sample is stretched, when sample is stretched to certain interval, servo motor is started again, moving plate 4 moves downwards until sample is not in stretching, stand for a period of time, repeat the above operation again, measure the elasticity recovery rate after each sample stretching, statistics and analysis experimental data, finally complete the elasticity detection of sample;

[0034] Intermittent moving subassembly includes multiple fixed frames 19 fixedly installed in the lower side of moving plate 4, the position and quantity of multiple fixed frames 19 are opposite to mobile hydraulic clamp jaw 5, second connecting rod 25 is rotatably connected in fixed frame 19, square block 24 is fixedly connected on the outer side of second connecting rod 25, square frame 23 is slidably connected on the outer side of square block 24, square frame 23 is fixedly connected with mobile hydraulic clamp jaw 5, multiple rotating shafts 8 are rotatably connected in moving plate 4, circular plate 12 is fixedly connected on the outer side of each rotating shaft 8, track 13 is formed in the side wall of circular plate 12, multiple square rods 14 are slidably connected on the lower side of moving plate 4, slide rod 15 is fixedly connected and penetrates through square rod 14, one end of slide rod 15 extends into track 13 and is slidably connected with track 13, square rod 14 is rotatably connected with square frame 23, multiple rotating shafts 8 are drivingly connected through transmission assembly, one of rotating shafts 8 rotatably penetrates through moving plate 4, and first gear 7 is fixedly connected on the side of this rotating shaft 8 away from moving plate 4, first rack 6 is fixedly connected on the side wall of frame 3, first rack 6 is engaged with first gear 7, transmission assembly includes multiple third gears 10 rotatably installed in moving plate 4, second gear 9 is fixedly connected on the outer side of rotating shaft 8, adjacent second gear 9 and third gear 10 are engaged, and the diameter of each second gear 9 and third gear 10 is different;

[0035] Firstly, in the process of rotating the rotating shaft 8, the rotating shaft 8 drives the circular plate 12 to rotate. Since the square rod 14 and the moving plate 4 are connected in an up-down sliding manner, and the track 13 is composed of two parts, namely a circular part and a straight part, when the sliding rod 15 is located in the circular part, the square rod 14 is stationary relative to the moving plate 4, and when the sliding rod 15 is located in the straight part, the square rod 14 will move up and down relative to the moving plate 4. Therefore, under the action of the track 13 and the sliding rod 15, the intermittent up-down movement of the square rod 14 relative to the moving plate 4 is caused during the up-down movement of the moving plate 4. The square rod 14 drives the square frame 23 to move up and down intermittently relative to the moving plate 4 through the limiting shaft 38 and the limiting clamping plate 39, and the moving hydraulic clamping jaw 5 moves up and down intermittently relative to the moving plate 4 through the square frame 23, thereby causing the stretching effect on the sample to change during the stretching of the sample, which is more in line with the actual application of the sample, thereby improving the accuracy of the detection result.

[0036] During the movement of the moving plate 4, the rotating shaft 8 that moves with the moving plate 4 is caused to rotate by the first gear 7 and the first rack 6. Since the rotating shafts 8 are connected in transmission through the second gear 9 and the third gear 10, but the diameters of the second gear 9 and the third gear 10 are different, the rotating speeds of the rotating shafts 8 are different, and thus the rotating speeds of each circular plate 12 are different, that is, the time for the square rod 14 to move up and down relative to the moving plate 4 is different, and finally the stretching effect of each moving hydraulic clamping jaw 5 on the sample also has certain differences, which can further meet the actual application of the sample and further improve the accuracy of the detection result.

[0037] The square rod 14 is provided with a control assembly for controlling the rotation of the square frame 23. The control assembly comprises two limiting clamping plates 39 fixedly installed on the upper side of the square frame 23, two limiting clamping plates 39 are fixedly connected in penetration to form a limiting shaft 38, the limiting shaft 38 is rotatably connected with the square rod 14, a control shaft 36 is rotatably connected in the fixed frame 19, a ratchet cylinder 29 is fixedly connected on the outer side of the control shaft 36, two fifth gears 31 are fixedly connected on the outer side of the control shaft 36 in a symmetrical manner, a torsion spring 30 is fixedly connected between the two fifth gears 31 and the fixed frame 19, two limiting rods 32 are slidably connected in penetration in the side wall of the fixed frame 19, the two limiting rods 32 are fixedly connected with a fifth rack 33 on one side in the fixed frame 19, the fifth rack 33 is engaged with the fifth gear 31, a telescopic rod 35 is hinged on the lower side of the fifth rack 33, the telescopic rod 35 is fixedly connected with the limiting shaft 38, a plurality of control rods 34 are slidably connected in penetration in the square rod 14, and a second spring 26 is fixedly connected between the control rod 34 and the square rod 14;

[0038] Under the action of the ratchet cylinder 29 and the control rod 34, during the process of the square rod 14 moving up and down relative to the movable plate 4, that is, during the process of the square rod 14 moving up and down relative to the fixed frame 19, due to the special shape of the ratchet cylinder 29, when the square rod 14 moves upward, the control rod 34 and the ratchet cylinder 29 abut against each other, causing the control rod 34 to move rightward relative to the square rod 14, and the ratchet cylinder 29 to remain stationary. However, when the square rod 14 moves downward, the control rod 34 and the ratchet cylinder 29 abut against each other, causing the ratchet cylinder 29 to rotate, so that the square rod 14 can move downward. Figure 12 From the perspective of , the ratchet cylinder 29 will rotate clockwise, and the ratchet cylinder 29 will drive the control shaft 36 and the fifth gear 31 to rotate clockwise, and the fifth gear 31 will drive the fifth rack 33 to move left. Since the fifth rack 33 and the telescopic rod 35 are hinged, and the telescopic rod 35 and the limit shaft 38 are fixedly connected, the fifth rack 33 moving left will drive the limit shaft 38 to rotate counterclockwise, and the limit shaft 38 will drive the limit clamp 39, the square frame 23 and the movable hydraulic clamp 5 to rotate counterclockwise around the limit shaft 38. And since the time when adjacent square rods 14 move up and down relative to the movable plate 4 is different, the sample is further stretched, and this stretching and most importantly the lateral stretching of the sample are different from the previous vertical stretching of the sample, which can form multi-angle detection of the sample.

[0039] The limiting shaft 38 is fixedly connected to the fourth gear 37. The lower side of the movable plate 4 is slidably connected to a plurality of connecting plates 20. The plurality of connecting plates 20 are grouped in twos, and each group of connecting plates 20 is opposite to the movable hydraulic clamping jaw 5. The connecting plates 20 are fixedly connected to the fourth rack 28 through the third connecting rod 27. The fourth rack 28 is meshed with the fourth gear 37. The connecting plate 20 is fixedly connected to the movable clamping rod 21. The movable clamping rod 21 is fixedly connected to the movable clamping plate 22. The movable clamping plate 22 is fixedly connected to a plurality of protrusions.

[0040] First, in the initial state, the protrusion and the sample are against each other, which will form an extrusion effect on the sample. Secondly, when the limit shaft 38 rotates counterclockwise, the fourth gear 37 will rotate, and the fourth gear 37 drives the fifth rack 33 to move. The fifth rack 33 drives the movable clamping plate 22 to move through the third connecting rod 27, the connecting plate 20, and the movable clamping rod 21. The connection between the protrusion on the outside of the movable clamping plate 22 and the sample is disconnected, but when the square rod 14 stops moving, the limit shaft 38 returns to its original position relative to the square rod 14, and the protrusion is against the sample again, forming an extrusion effect on the sample. Finally, during the detection process, an intermittent extrusion effect on the sample will be formed, so that the sample during detection is further similar to the actual use of the sample, thereby further improving the accuracy of the test results.

[0041] The lower side of the moving plate 4 is provided with a positioning assembly, the positioning assembly comprises two fixed clamping rods 18 fixedly connected together, the moving plate 4 is slidably connected with a control plate 11, the control plate 11 and the moving plate 4 are fixedly connected with a first spring 16, the control plate 11 is located on the upper side of the sliding rod 15, the lower side of the control plate 11 is fixedly connected with a first connecting rod 17, and the first connecting rod 17 is fixedly connected with one of the fixed clamping rods 18;

[0042] When the sample is detected, the sample is located between the two fixed clamping rods 18, when the movable hydraulic clamping jaw 5 rotates, the sample and the fixed clamping rod 18 abut, so that the sample is bent, and since the control plate 11 is located on the upper side of the sliding rod 15 and abuts against the sliding rod 15 in the highest position at the same time under the action of the first spring 16, therefore, when the movable hydraulic clamping jaw 5 rotates, the bending position of the sample is also different each time, which can further simulate the actual use of the sample, and further improve the accuracy of the detection result.

[0043] In the application, when the elasticity detection is needed, the sample is installed between the fixed hydraulic clamping jaw 2 and the movable hydraulic clamping jaw 5, the servo motor is started to drive the moving plate 4 to move upwards to stretch the sample, when the sample is stretched to a certain distance, the servo motor is started again to drive the moving plate 4 to move downwards until the sample is not stretched, and then the sample is placed for a period of time, and the above operation is repeated again to measure the elasticity recovery rate of the sample after each stretching, and finally the elasticity detection of the sample is completed by counting and analyzing the experimental data.

[0044] In the process of moving the moving plate 4, the rotating shaft 8 rotates, and under the action of the track 13 and the sliding rod 15, the square rod 14 moves up and down intermittently relative to the moving plate 4 in the process of moving the moving plate 4 up and down, the square rod 14 drives the square frame 23 to move up and down intermittently relative to the moving plate 4 through the limiting shaft 38 and the limiting clamping plate 39, the square frame 23 drives the movable hydraulic clamping jaw 5 to move up and down intermittently relative to the moving plate 4, and thus the stretching effect on the sample will change when the sample is stretched, which is more in line with the actual application of the sample, and thus the accuracy of the detection result can be improved, and the rotating speed of the rotating shaft 8 is different, so the rotating speed of each circular plate 12 is also different, that is, the time for the square rod 14 to move up and down relative to the moving plate 4 is different, and finally the stretching effect of each movable hydraulic clamping jaw 5 on the sample also has certain differences, which can be more in line with the actual application of the sample, and the accuracy of the detection result can be further improved.

[0045] Under the action of the ratchet cylinder 29 and the control rod 34, during the up and down movement of the square rod 14 relative to the moving plate 4, when the square rod 14 moves upward, the control rod 34 and the ratchet cylinder 29 abut, which causes the control rod 34 to move right relative to the square rod 14, and the ratchet cylinder 29 is stationary, but when the square rod 14 moves downward, the control rod 34 and the ratchet cylinder 29 abut, which causes the ratchet cylinder 29 to rotate clockwise, the ratchet cylinder 29 drives the control shaft 36 and the fifth gear 31 to rotate clockwise, the fifth gear 31 drives the fifth rack 33 to move left, drives the limiting shaft 38 to rotate counterclockwise, the limiting shaft 38 drives the limiting clamping plate 39, the square frame 23 and the moving hydraulic clamping jaw 5 to rotate counterclockwise around the limiting shaft 38, and due to the different time of the adjacent square rod 14 moving up and down relative to the moving plate 4, further stretching the sample, and this stretching and the most important is the transverse stretching of the sample, which is different from the vertical stretching of the sample before, and can form multi-angle detection of the sample;

[0046] When the limiting shaft 38 rotates counterclockwise, the fourth gear 37 rotates, the fourth gear 37 drives the fifth rack 33 to move, the fifth rack 33 drives the moving clamp plate 22 to move through the third connecting rod 27, the connecting plate 20 and the moving clamp rod 21, the protrusion on the outer side of the moving clamp plate 22 and the sample are disconnected, when the square rod 14 stops moving, the limiting shaft 38 returns to the original position relative to the square rod 14, the protrusion abuts the sample again, forming a squeezing effect on the sample;

[0047] When the moving hydraulic clamping jaw 5 rotates, the sample abuts the fixed clamp rod 18, causing the sample to bend, and since the control plate 11 is located on the upper side of the slide rod 15, and under the action of the first spring 16, the control plate 11 abuts the slide rod 15 which is at the highest position at the same time, therefore, when the moving hydraulic clamping jaw 5 rotates, the bending position of the sample is also different each time, which can further simulate the actual use of the sample, and further improve the accuracy of the detection result.

Claims

1. A device for detecting elasticity of fabric and auxiliary materials for garment production, comprising a base (1), characterized in that: The base (1) is fixedly connected to a frame (3), the frame (3) is slidably connected to a movable plate (4), the base (1) is fixedly connected to a fixed hydraulic clamp (2), the movable plate (4) is installed with a plurality of movable hydraulic clamps (5) via an intermittent moving assembly, the intermittent moving assembly comprises a plurality of fixed frames (19) fixedly installed on the lower side of the movable plate (4), a second connecting rod (25) is rotatably connected in the fixed frame (19), the second connecting rod (25) is fixedly connected to a square block (24), the square block (24) is slidably connected to the square frame (23 ), the square frame (23) and the movable hydraulic clamp (5) are fixedly connected, the movable plate (4) is rotatably connected to a plurality of rotating shafts (8), the plurality of rotating shafts (8) are transmission-connected through a transmission assembly, the rotating shafts (8) are fixedly connected to a circular plate (12), the circular plate (12) is provided with a track (13), the movable plate (4) is slidably connected to a plurality of square rods (14), the square rods (14) are fixedly connected through a sliding rod (15), the sliding rod (15) and the track (13) are slidably connected, and the square rods (14) and the square frame (23) are rotatably connected.

2. The elasticity detection device for fabric and auxiliary materials used in garment making according to claim 1, characterized in that: The square rod (14) is provided with a control assembly for controlling the rotation of the square frame (23). The control assembly comprises two limit clamps (39) fixedly mounted on the square frame (23). The two limit clamps (39) are fixedly connected to a limit shaft (38). The limit shaft (38) is rotatably connected to the square rod (14). The fixed frame (19) is rotatably connected to a control shaft (36). The control shaft (36) is fixedly connected to a ratchet cylinder (29). The control shaft (36) is fixedly connected to two fifth gears (31). The fifth gear (31) and the fixed frame (19) are fixedly connected to each other. (19) is fixedly connected with a torsion spring (30), the fixed frame (19) is slidably connected to two limit rods (32), the two limit rods (32) are fixedly connected with a fifth rack (33), the fifth rack (33) and the fifth gear (31) are meshed, the fifth rack (33) is hinged with a telescopic rod (35), the telescopic rod (35) and the limit shaft (38) are fixedly connected, the square rod (14) is slidably connected to a plurality of control rods (34), and a second spring (26) is fixedly connected between the control rod (34) and the square rod (14).

3. The elasticity detection device for fabric and auxiliary materials used in garment making according to claim 2, characterized in that: The limiting shaft (38) is fixedly connected to the fourth gear (37), and the lower side of the movable plate (4) is slidably connected to a plurality of connecting plates (20), and the plurality of connecting plates (20) are grouped in pairs, and each group of connecting plates (20) is opposite to the movable hydraulic clamp (5), and the connecting plate (20) is fixedly connected to the fourth rack (28) through the third connecting rod (27), and the fourth rack (28) and the fourth gear (37) are engaged with each other, and the connecting plate (20) is fixedly connected to the movable clamp rod (21), and the movable clamp rod (21) is fixedly connected to the movable clamp plate (22), and the movable clamp plate (22) is fixedly connected to a plurality of protrusions.

4. The elasticity detection device for fabric and auxiliary materials used in garment making according to claim 3, characterized in that: A positioning assembly is installed on the lower side of the movable plate (4), and the positioning assembly includes two fixed clamping rods (18) fixedly connected together. A control plate (11) is slidably connected inside the movable plate (4), and a first spring (16) is fixedly connected between the control plate (11) and the movable plate (4). The control plate (11) is located on the upper side of the sliding rod (15), and the control plate (11) is fixedly connected to a first connecting rod (17), and the first connecting rod (17) is fixedly connected to one of the fixed clamping rods (18).

5. The elasticity detection device for fabric and auxiliary materials used in garment making according to claim 4, characterized in that: One of the rotating shafts (8) rotates and passes through the movable plate (4), and a first gear (7) is fixedly connected to the side of the rotating shaft (8) away from the movable plate (4), and a first rack (6) is fixedly connected to the side wall of the frame (3), and the first rack (6) and the first gear (7) are meshed.

6. The elasticity detection device for fabric and auxiliary materials used in garment making according to claim 5, characterized in that: The transmission assembly comprises a plurality of third gears (10) rotatably mounted in the movable plate (4); a second gear (9) is fixedly connected to the outer side of the rotating shaft (8); adjacent second gears (9) and third gears (10) are meshed with each other, and the diameters of each second gear (9) and third gear (10) are different.

7. The elasticity detection device for fabric and auxiliary materials used in garment making according to claim 1, characterized in that: The upper side of the frame (3) is fixedly connected to a top plate, the lower side of the top plate is fixedly connected to a servo motor, the output end of the servo motor is fixedly connected to a ball screw, and the ball screw is rotatably connected to the movable plate (4).