A fabric performance detection device for clothing production

By using pleat removal components and limit movement components in the cloth performance detection device for clothing production, the problem of wrinkles easily occur during the inspection process of fabrics is solved, and the uniform expansion and uniform stress of the fabrics are achieved, and the accuracy of the detection results is improved.

CN119959004BActive Publication Date: 2025-06-13ZHUHAI KASUO DEV CO LTD
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Patent Information

Application Number
CN202510447891.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-10
Publication Date
2025-06-13
Estimated Expiration
2045-04-10

AI Technical Summary

Technical Problem

During the clothing production process, the fabric is prone to wrinkles, resulting in uneven stress and affecting the detection results.

Method used

A cloth performance detection device for clothing production is designed, using a pleat removal assembly and a limit movement assembly, and the rotating rod is driven to rotate through the gear drive system to form longitudinal eccentric vibration and flatten the fabric; at the same time, through the cooperation of the forward and reverse screws and the screw seat, the horizontal extension and limit fixation of the fabric are achieved.

Benefits of technology

It effectively avoids wrinkles in the fabric during the inspection process, ensures that the fabric is subjected to uniform stress everywhere, improves the accuracy of the detection results, and is suitable for fabrics of different materials.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a fabric performance detection device for clothing production, which belongs to the field of fabric detection technology, and includes a detection platform, wherein the top of the detection platform is connected to a top bracket, and the top of the detection platform is connected to two symmetrically arranged mobile brackets through a movable limit assembly. In the present invention, by setting a pleat removal assembly, the fabric to be tested can be completely and evenly unfolded and flattened, so that the fabric to be tested is subjected to force and maintained in balance at all locations during the test process, thereby ensuring the accuracy of the test results. At the same time, the connecting rod cooperates with the sleeve, the travel block and the travel groove to move the deflection hollow block outward and deflect, so that the overall eccentricity of the rotating rod changes. At the same time, due to the change in the angle of the deflection hollow block, the position of the counterweight medium changes, so that the relative center of gravity of the deflection hollow block changes, so that the amplitude of the laminating roller changes, so that it is suitable for vibration pleat removal of fabrics of different materials, and the overall applicability of the device is improved.
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Description

Technical Field

[0001] The invention belongs to the technical field of cloth detection, and in particular relates to a cloth performance detection device for clothing production. Background Art

[0002] Clothing production is a complex process involving multiple links and technologies. During the clothing production process, fabric performance testing equipment is a professional equipment used to evaluate the physical, chemical and functional properties of fabrics to ensure that the fabrics meet production requirements and quality standards.

[0003] The document with publication number CN219161837U discloses a tensile performance testing device for garment production, comprising a base, a mounting seat is installed at the top of the base, and first electric push rods are installed on both sides of the mounting seat, and connecting seats are installed on the outer sides of the first electric push rods. The utility model passes the two ends of the garment fabric around the bottom of the support block, and circles around the inner side from the top of the fixed roller once, and then circles around the outer side of the bottom end of the fixed roller, so that the garment fabric is half-surrounded inside the fixed roller. At this time, the second electric push rod is started to drive the fixed roller to rise so that the fabric is clamped. The upper part of the holding part is clamped between the bottom end of the support block and the top end of the fixed roller, and then the threaded rod is rotated to drive the movable block and the lower clamping plate to move up, so that the lower part of the cloth clamping part is clamped between the bottom end of the fixed roller and the top end of the lower clamping plate. Therefore, the double clamping can effectively improve the limiting and fixing effect of the clothing cloth, so that it is not easy to slide and deviate during the detection process to affect the detection effect. However, in the actual detection process of the cloth, the cloth is prone to wrinkles, which makes the force on the cloth uneven, thereby affecting the detection result. Therefore, improvement is needed. Summary of the invention

[0004] The purpose of the present invention is to solve the problem that during the detection process, wrinkles easily appear on the cloth, resulting in uneven force on different parts of the cloth, thus affecting the detection result, and to propose a cloth performance detection device for clothing production.

[0005] In order to achieve the above object, the present invention adopts the following technical solutions:

[0006] A fabric performance testing device for clothing production, comprising a testing platform, a top bracket connected to the top of the testing platform, a movable limit assembly arranged on the top of the testing platform, two symmetrically arranged bracket groups arranged on the top of the movable limit assembly, the bracket group comprising two symmetrically arranged mobile brackets, two laminating rollers rotatably connected between the two mobile brackets, a pleat removal assembly arranged inside the laminating rollers, and a conversion assembly arranged below the top bracket;

[0007] The depletion assembly includes a rotatable rotating rod, which is rotatably connected to the laminating roller, one side of the rotating rod is connected to two symmetrically arranged deflection boxes, a movable plate is connected to the deflection box, one side of the movable plate is rotatably connected to a plurality of connecting rods distributed in a linear array, one end of the connecting rod away from the movable plate is connected to a deflection hollow block that can be moved and deflected, a counterweight medium is arranged in the deflection hollow block, the outer surface of the connecting rod is sleeved with a sleeve, and the deflection hollow block adjusts its own position deflection angle under the cooperation of the connecting rod and the sleeve.

[0008] As a further description of the above technical solution:

[0009] Both sides of the sleeve are connected with mounting rods, one end of the mounting rod away from the sleeve is connected to one side of the inner wall of the deflection box, both sides of the sleeve are provided with travel grooves, both sides of the connecting rod are connected with travel blocks, and the travel blocks are slidably connected in the travel grooves.

[0010] As a further description of the above technical solution:

[0011] A plurality of driving cylinders distributed in a linear array are connected to a side of the movable plate away from the connecting rod, and an end of the driving cylinder away from the movable plate is connected to a side of the inner wall of the deflection box.

[0012] As a further description of the above technical solution:

[0013] The bonding roller is connected to fixed rings on both sides, the inner wall of the fixed ring is connected to an internal gear ring, the inner part of the internal gear ring is meshed with two symmetrically arranged interlocking gears, the two interlocking gears are meshed with the same driving gear, and both ends of the rotating rod extend to the outside of the bonding roller and are connected to one side of the driving gear.

[0014] As a further description of the above technical solution:

[0015] The movable limit assembly includes two symmetrically arranged mobile bases, the two mobile bases are transmission-connected with the same adjusting screw, both ends of the adjusting screw are rotatably connected with mounting blocks, the bottom of the mounting block is connected to the top of the detection table, the top of the movable base is connected to the bottom of the movable bracket, a movable groove is opened on the opposite side of the movable bracket, a positive and negative screws are rotatably connected in the movable groove, and the outer surfaces of the positive and negative screws are transmission-connected with two symmetrically arranged screw seats, the screw seat is slidably connected in the movable groove, a mounting groove is opened on one side of the screw seat, the fixed ring is rotatably connected in the mounting groove, a rotating shaft is connected to one side of the linkage gear, and the other end of the rotating shaft is rotatably connected to one side of the inner wall of the mounting groove.

[0016] As a further description of the above technical solution:

[0017] A transmission gear ring is connected to the outer surface of the fixed ring. An electric push rod is connected to one side of the lead screw base. A limit block is connected to the bottom of the electric push rod. The limit block is meshed with the transmission gear ring.

[0018] As a further description of the above technical solution:

[0019] Two symmetrically arranged fixed slide rods are connected to the top of the inspection table. The fixed slide rods are slidably connected to the moving base. The positive and negative lead screws and the adjustment lead screws are symmetrically distributed along their central positions, and the thread directions on both sides of the positive and negative lead screws and the adjustment lead screws are opposite. Both ends of the adjustment lead screw extend to the other side of the lifting block and are connected with a hand crank.

[0020] As a further description of the above technical solution:

[0021] The conversion assembly includes a conversion roller arranged below the top bracket. Pressure test pieces and tear test pieces are respectively connected to both sides of the outer surface of the conversion roller. Lifting blocks are rotatably connected to both sides of the conversion roller. Two symmetrically arranged movable cylinders are connected to the top of the top bracket. The output ends of the movable cylinders extend to the other side of the top bracket and are connected to the tops of the lifting blocks.

[0022] As a further description of the above technical solution:

[0023] A conversion motor is installed on one side of the lifting block. The output shaft of the conversion motor is connected with a connecting shaft. The other end of the connecting shaft extends to the other side of the lifting block and is connected with one side of the conversion roller.

[0024] As a further description of the above technical solution:

[0025] A display panel is arranged on one side of the inspection table. Support legs are connected to the four peripheries of the bottom of the inspection table.

[0026] In summary, due to the adoption of the above technical solution, the beneficial effects of the present invention are:

[0027] 1. In the present invention, by providing a pleat-removing assembly, during the process of the laminating roller rolling and unfolding the fabric to be tested, the rotating rod is driven to rotate by a gear drive system composed of an internal gear ring, a linkage gear, and a driving gear. Moreover, due to the deflection box and the deflection hollow block provided on one side of the rotating rod, when the rotating rod rotates, a longitudinal eccentric vibration relative to the fabric to be tested is formed. The eccentric vibration acts on the fabric to be tested through the laminating roller, forming a longitudinal vibration wave on the fabric to be tested, thereby completing the longitudinal pleat-removing of the fabric to be tested, enabling the fabric to be tested to be completely and evenly unfolded and flattened, so that all parts of the fabric to be tested are stressed and balanced during the testing process, thus ensuring the accuracy of the test results. At the same time, the connecting rod cooperates with the sleeve, the stroke block, and the stroke groove to move the deflection hollow block outward and deflect it, changing the overall eccentricity of the rotating rod. At the same time, due to the change in the angle of the deflection hollow block and the change in the position of the weight medium, the relative center of gravity of the deflection hollow block changes, thereby changing the amplitude of the laminating roller, so as to be applicable to the vibration pleat-removing of fabrics of different materials and improving the overall applicability of the device.

[0028] 2. In the present invention, by providing a limit moving assembly, through the cooperation between the positive and negative lead screws and the lead screw seats, the two laminating rollers complete the lamination of the fabric to be tested. Moreover, during the movement of the laminating rollers, the lateral extension and flattening of the fabric to be tested are realized, thereby ensuring the lateral flatness of the fabric to be tested. The driving gear ring is limited by the limit block to prevent the laminating rollers from rotating, and the movement of the moving base is used to keep the fabric to be tested in a taut state, meeting the detection requirements of the fabric to be tested. At the same time, by controlling the distance between the two lead screw seats, the distance between the two laminating rollers changes, which can meet the limit requirements for fabrics of different materials, thereby improving the overall applicability of the device.

[0029] 3. In the present invention, by providing a conversion assembly, the conversion motor drives the conversion roller to rotate 180 degrees, enabling the relative conversion of the positions of the pressure test piece and the tear test piece. During testing, the movable cylinder drives the lifting block and the conversion roller to move downward, and the conversion roller drives the pressure test piece or the tear test piece to perform performance detection on the fabric to be tested. Through the conversion between the pressure test piece and the tear test piece, the fabric to be tested can be subjected to different types of tests according to actual requirements, meeting different detection requirements and improving the flexibility of the overall testing of the device. BRIEF DESCRIPTION OF THE DRAWINGS

[0030] Figure 1 is the overall three-dimensional structure schematic diagram of the present invention;

[0031] Figure 2 is the three-dimensional structure schematic diagram of another perspective of the present invention;

[0032] Figure 3 is of the present invention Figure 2Schematic diagram of the enlarged structure of part A;

[0033] Figure 4 Schematic three-dimensional structure diagram of the mobile limiting component of the present invention;

[0034] Figure 5 Schematic three-dimensional disassembled structure diagram of the mobile limiting component of the present invention;

[0035] Figure 6 Schematic three-dimensional disassembled structure diagram of the laminating roller and the lead screw base of the present invention;

[0036] Figure 7 For the present invention Figure 6 Schematic diagram of the enlarged structure of part B;

[0037] Figure 8 Schematic diagram of the internal sectional structure of the laminating roller of the present invention;

[0038] Figure 9 Schematic three-dimensional disassembled structure diagram of the pleat removing component of the present invention;

[0039] Figure 10 Schematic partial three-dimensional structure diagram of the pleat removing component of the present invention;

[0040] Figure 11 For the present invention Figure 10 Schematic diagram of the enlarged structure of part C.

[0041] Legend:

[0042] 1. Top bracket; 2. Detection table; 3. Display panel; 4. Moving cylinder; 5. Conversion component; 501. Lifting block; 502. Conversion roller; 503. Pressure test piece; 504. Tear test piece; 505. Conversion motor; 6. Mobile limiting component; 601. Hand crank; 602. Adjusting lead screw; 603. Fixed slide bar; 604. Moving base; 605. Lead screw base; 606. Positive and negative lead screw; 607. Moving groove; 608. Driving gear ring; 609. Electric push rod; 610. Limiting block; 611. Installation groove; 7. Laminating roller; 8. Moving bracket; 9. Pleat removing component; 901. Inner gear ring; 902. Linkage gear; 903. Driving gear; 904. Rotating rod; 905. Deflection box; 906. Deflection hollow block; 907. Driving cylinder; 908. Movable plate; 909. Connecting rod; 910. Installation rod; 911. Stroke block; 912. Stroke groove; 913. Sleeve; 10. Fixed ring. Detailed implementation mode

[0043] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present invention.

[0044] Please refer to Figures 1-11 , the present invention provides a technical solution:

[0045] A device for detecting the performance of fabrics used in clothing production, including a detection table 2, a top bracket 1 is connected to the top of the detection table 2, a moving limit component 6 is arranged on the top of the detection table 2, two symmetrically arranged bracket groups are arranged on the top of the moving limit component 6, the bracket group includes two symmetrically arranged moving brackets 8, two fitting rollers 7 are rotatably connected between the two moving brackets 8, a pleat removing component 9 is arranged inside the fitting roller 7, a conversion component 5 is arranged below the top bracket 1, a display panel 3 is arranged on one side of the detection table 2, and support legs are connected to the four peripheries of the bottom of the detection table 2.

[0046] The pleat removing component 9 includes a rotatable rotating rod 904, the rotating rod 904 is rotatably connected inside the fitting roller 7, two symmetrically arranged deflection boxes 905 are connected to one side of the rotating rod 904, a movable plate 908 is connected inside the deflection box 905, a plurality of connecting rods 909 arranged in a linear array are rotatably connected to one side of the movable plate 908, a deflection hollow block 906 capable of moving and deflecting is connected to the end of the connecting rod 909 away from the movable plate 908, a weight medium is arranged inside the deflection hollow block 906, a sleeve 913 is sleeved on the outer surface of the connecting rod 909, the deflection hollow block 906 adjusts its own position and deflection angle under the cooperation of the connecting rod 909 and the sleeve 913, mounting rods 910 are connected to both sides of the sleeve 913, the end of the mounting rod 910 away from the sleeve 913 is connected to one side of the inner wall of the deflection box 905, stroke grooves 912 are opened on both sides of the sleeve 913, stroke blocks 911 are connected to both sides of the connecting rod 909, and the stroke blocks 911 are slidably connected inside the stroke grooves 912, a plurality of driving cylinders 907 arranged in a linear array are connected to the side of the movable plate 908 away from the connecting rod 909, the end of the driving cylinder 907 away from the movable plate 908 is connected to one side of the inner wall of the deflection box 905, fixing rings 10 are connected to both sides of the fitting roller 7, an internal gear ring 901 is connected to the inner wall of the fixing ring 10, two symmetrically arranged linkage gears 902 are meshed inside the internal gear ring 901, the same driving gear 903 is meshed between the two linkage gears 902, and both ends of the rotating rod 904 extend outside the fitting roller 7 and are connected to one side of the driving gear 903.

[0047] The implementation manner is specifically as follows: By setting the pleat removing assembly 9, during the process of the laminating roller 7 rolling and unfolding the cloth to be measured, the rotating rod 904 is driven to rotate by the gear drive system composed of the internal gear ring 901, the linkage gear 902 and the driving gear 903. Moreover, due to the deflection box 905 and the deflection hollow block 906 arranged on one side of the rotating rod 904, when the rotating rod 904 rotates, an eccentric vibration in the longitudinal direction relative to the cloth to be measured is formed. The eccentric vibration acts on the cloth to be measured through the laminating roller 7, and a longitudinal vibration wave is formed on the cloth to be measured, thereby completing the longitudinal pleat removing of the cloth to be measured, enabling the cloth to be measured to be completely and evenly unfolded and flattened, so that the cloth to be measured is uniformly stressed at each part during the test process, thus ensuring the accuracy of the test result. At the same time, the connecting rod 909 cooperates with the sleeve, the travel block 911 and the travel groove 912 to make the deflection hollow block 906 move outwards and deflect, so that the overall eccentricity of the rotating rod 904 changes. At the same time, due to the change in the angle of the deflection hollow block 906 and the change in the position of the weight medium, the relative center of gravity of the deflection hollow block 906 changes, thereby changing the amplitude of the laminating roller 7, so as to be applicable to the vibration pleat removing of cloths of different materials and improve the overall applicability of the device. The weight medium is flowing sand, which is used to flow inside the deflection hollow block 906 and change the overall center of gravity of the deflection hollow block 906.

[0048] The moving limit assembly 6 includes two symmetrically arranged moving bases 604. There is a same adjusting lead screw 602 drivingly connected between the two moving bases 604. Both ends of the adjusting lead screw 602 are rotatably connected to mounting blocks, and the bottoms of the mounting blocks are connected to the top of the inspection table 2. The tops of the moving bases 604 are connected to the bottoms of the moving brackets 8. Opposite sides of the moving brackets 8 are provided with moving grooves 607. A forward and reverse lead screw 606 is rotatably connected in the moving grooves 607. Two symmetrically arranged lead screw seats 605 are drivingly connected to the outer surface of the forward and reverse lead screw 606. The lead screw seats 605 are slidably connected in the moving grooves 607. One side of the lead screw seats 605 is provided with mounting grooves 611. The fixed ring 10 is rotatably connected in the mounting grooves 611. One side of the linkage gear 902 is connected with a rotating shaft, and the other end of the rotating shaft is rotatably connected to one side of the inner wall of the mounting groove 611. The outer surface of the fixed ring 10 is connected with a transmission gear ring 608. One side of the lead screw seats 605 is connected with an electric push rod 609. The bottom of the electric push rod 609 is connected with a limit block 610, and the limit block 610 is meshingly connected with the transmission gear ring 608. The top of the inspection table 2 is connected with two symmetrically arranged fixed slide rods 603, and the fixed slide rods 603 are slidably connected with the moving bases 604. The forward and reverse lead screw 606 and the adjusting lead screw 602 are both symmetrically distributed along their own central positions, and the thread directions on both sides of the forward and reverse lead screw 606 and the adjusting lead screw 602 are opposite. Both ends of the adjusting lead screw 602 extend to the other side of the lifting block 501 and are connected with a hand crank 601.

[0049] The implementation method is specifically as follows: Through the cooperation between the positive and negative lead screws 606 and the lead screw seats 605, the two laminating rollers 7 complete the lamination of the cloth to be tested. Moreover, during the movement of the laminating rollers 7, the cloth to be tested is laterally extended and flattened, thereby ensuring the flatness of the cloth to be tested in the lateral direction. The driving gear ring is limited by the limit block 610, so that the laminating rollers 7 cannot rotate, and the movement of the moving base 604 is coordinated to make the cloth to be tested in a taut state, meeting the detection requirements of the cloth to be tested. At the same time, by controlling the distance between the two lead screw seats 605, the distance between the two laminating rollers 7 changes, which can meet the limiting requirements for cloths of different materials, thereby improving the overall applicability of the device.

[0050] The conversion assembly 5 includes a conversion roller 502 disposed below the top bracket 1. Pressure test pieces 503 and tearing test pieces 504 are respectively connected to both sides of the outer surface of the conversion roller 502. Lifting blocks 501 are rotatably connected to both sides of the conversion roller 502. Two symmetrically arranged movable cylinders 4 are connected to the top of the top bracket 1. The output ends of the movable cylinders 4 extend to the other side of the top bracket 1 and are connected to the tops of the lifting blocks 501. A conversion motor 505 is installed on one side of the lifting block 501. The output shaft of the conversion motor 505 is connected to a connecting shaft, and the other end of the connecting shaft extends to the other side of the lifting block 501 and is connected to one side of the conversion roller 502.

[0051] The implementation method is specifically as follows: By setting the conversion assembly 5, the conversion roller 502 is driven by the conversion motor 505 to rotate 180 degrees, so that the positions of the pressure test piece 503 and the tearing test piece 504 can be relatively converted. During the test, the movable cylinder 4 drives the lifting block 501 and the conversion roller 502 to move downward, and the conversion roller 502 drives the pressure test piece 503 or the tearing test piece 504 to perform performance detection on the cloth to be tested. Through the conversion between the pressure test piece 503 and the tearing test piece, the cloth to be tested can be subjected to different types of tests according to actual requirements, meeting different detection requirements and improving the flexibility of the overall test of the device. The conversion motor 505 is a servo motor, and this type of motor has self-locking property. The end of the pressure test piece 503 is provided with a rounded corner. During the test, the cloth to be tested is subjected to a vertical pressure. The end of the tearing test piece 504 is designed like a cutter. During the test, the force on the cloth is more inclined to be cut and torn. Through these two designs, different types of tests on the cloth to be tested are satisfied.

[0052] Working principle: Before the test, the staff moves the two moving bases 604 to a position close to each other by adjusting the lead screw 602. Then, the staff places the cloth to be tested between the two laminating rollers 7. The staff rotates the positive and negative lead screw 606, and the positive and negative lead screw 606 drives the lead screw seats 605 to move relatively. The lead screw seats 605 drive the two laminating rollers 7 to approach each other through the mounting grooves 611 and the fixing rings 10 and perform lamination and extrusion on the cloth to be tested.

[0053] After completing the lamination of the fabric to be tested, the staff drives the adjustment lead screw 602 to rotate through the hand shaker 601. The adjustment lead screw 602 drives the moving bases 604 to move away from each other. During this process, the lamination roller 7 rotates relatively under the action of friction. The lamination roller 7 drives the fixed ring 10 to rotate. The fixed ring 10 drives the linkage gear 902 to rotate. The linkage gear 902 drives the drive gear 903 to rotate. The drive gear 903 drives the rotating rod 904 to rotate. The rotating rod 904 drives the deflection box 905, the deflection hollow block 906 and the counterweight medium to rotate, so as to drive the lamination roller 7 to complete eccentric vibration. When the lamination roller 7 unfolds the fabric to be tested, through the vibration of the fabric to be tested, the fabric to be tested can be subjected to transverse vibration to remove wrinkles, so that the fabric to be tested can be completely and evenly unfolded and flattened. Moreover, in response to different fabrics, the electric push rod 609 drives the movable plate 908 to move. The movable plate 908 drives the connecting rod 909 to move. The connecting rod 909 moves in the sleeve 913. Moreover, the connecting rod 909 drives the stroke block 911 to move in the stroke groove 912, so that the connecting rod 909 drives the deflection hollow block 906 to move outwards and deflect, changing the overall eccentricity of the rotating rod 904, thereby changing the amplitude of vibration.

[0054] After completing the unfolding and wrinkle removal of the fabric to be tested, the staff starts the electric push rod 609. The electric push rod 609 drives the limit block 610 to limit the drive gear ring, so that the lamination roller 7 cannot rotate. At this time, the two relatively arranged lamination rollers 7 can limit and fix the fabric to be tested, and cooperate with the movement of the moving base 604 to make the fabric to be tested in a taut state. Then, the staff adjusts the positions of the pressure test piece 503 and the tearing test piece through the conversion motor 505. When it is necessary to perform a pressure test on the fabric to be tested, the pressure test piece 503 is directly below the conversion roller 502. The movable cylinder 4 drives the lifting block 501, the conversion roller 502 and the pressure test piece 503 to move downwards, and performs a pressure test on the fabric to be tested. When it is necessary to perform a tearing test on the fabric to be tested, the tearing test piece is directly below the conversion roller 502. The movable cylinder 4 drives the lifting block 501, the conversion roller 502 and the tearing test piece to move downwards, and performs a tearing test on the fabric to be tested. Through the conversion between the pressure test piece 503 and the tearing test piece, the fabric to be tested can be subjected to different types of tests according to actual requirements.

[0055] The above is only a preferred specific embodiment 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, according to the technical solution of the present invention and its inventive concept, makes equivalent substitutions or changes, and should be covered by the protection scope of the present invention.

Claims

1. A fabric performance testing device for clothing production, comprising a testing platform (2), characterized in that: The top of the detection platform (2) is connected to a top bracket (1), the top of the detection platform (2) is transmission-connected to two symmetrically arranged mobile brackets (8) via a mobile limit assembly (6), and two laminating rollers (7) are rotationally connected between the two relatively arranged mobile brackets (8), a de-wrinkling assembly (9) is arranged inside the laminating roller (7), and a conversion assembly (5) is arranged below the detection platform (2); The depletion assembly (9) comprises a rotatable rotating rod (904), the rotating rod (904) being rotatably connected to the laminating roller (7), one side of the rotating rod (904) being connected to two symmetrically arranged deflection boxes (905), the deflection box (905) being connected to a movable plate (908), one side of the movable plate (908) being rotatably connected to a plurality of connecting rods (909) distributed in a linear array, one end of the connecting rod (909) away from the movable plate (908) being connected to a deflection hollow block (906) capable of moving and deflecting, a counterweight medium being arranged in the deflection hollow block (906), the outer surface of the connecting rod (909) being sleeved with a sleeve (913), and the deflection hollow block (906) adjusting its own position deflection angle under the cooperation of the connecting rod (909) and the sleeve (913); Both sides of the sleeve (913) are connected to mounting rods (910), one end of the mounting rod (910) away from the sleeve (913) is connected to one side of the inner wall of the deflection box (905), both sides of the sleeve (913) are provided with travel grooves (912), both sides of the connecting rod (909) are connected to travel blocks (911), and the travel blocks (911) are slidably connected in the travel grooves (912); Both sides of the laminating roller (7) are connected to fixing rings (10), the inner wall of the fixing ring (10) is connected to an inner toothed ring (901), the inner part of the inner toothed ring (901) is meshedly connected to two symmetrically arranged linkage gears (902), the two linkage gears (902) are meshedly connected to a common driving gear (903), and both ends of the rotating rod (904) extend outside the laminating roller (7) and are connected to one side of the driving gear (903); The movable limit assembly (6) comprises two symmetrically arranged movable bases (604), the two movable bases (604) are transmission-connected with a same adjusting screw (602), both ends of the adjusting screw (602) are rotationally connected with mounting blocks, the bottom of the mounting block is connected to the top of the detection platform (2), the top of the movable base (604) is connected to the bottom of the movable bracket (8), a movable groove (607) is provided on the opposite side of the movable bracket (8), a forward and reverse screw (606) is rotationally connected in the movable groove (607), the outer surface of the forward and reverse screw (606) is transmission-connected with two symmetrically arranged screw seats (605), the screw seat (605) is slidably connected in the movable groove (607), a mounting groove (611) is provided on one side of the screw seat (605), the fixed ring (10) is rotationally connected in the mounting groove (611), one side of the linkage gear (902) is connected with a rotating shaft, and the other end of the rotating shaft is rotationally connected to one side of the inner wall of the mounting groove (611); The conversion assembly (5) comprises a conversion roller (502) arranged below the top bracket (1); the outer surfaces of the conversion roller (502) are respectively connected to a pressure test piece (503) and a tear test piece (504); both sides of the conversion roller (502) are rotatably connected to a lifting block (501); the top of the top bracket (1) is connected to two symmetrically arranged movable cylinders (4); the output ends of the movable cylinders (4) extend to the other side of the top bracket (1) and are connected to the top of the lifting block (501).

2. A fabric performance detection device for clothing production according to claim 1, characterized in that: A plurality of driving cylinders (907) distributed in a linear array are connected to a side of the movable plate (908) away from the connecting rod (909), and an end of the driving cylinder (907) away from the movable plate (908) is connected to a side of the inner wall of the deflection box (905).

3. A fabric performance detection device for clothing production according to claim 1, characterized in that: The outer surface of the fixing ring (10) is connected to a transmission gear ring (608), one side of the lead screw seat (605) is connected to an electric push rod (609), the bottom of the electric push rod (609) is connected to a limit block (610), and the limit block (610) is meshingly connected to the transmission gear ring (608).

4. A fabric performance detection device for clothing production according to claim 1, characterized in that: The top of the detection platform (2) is connected to two symmetrically arranged fixed slide bars (603), the fixed slide bars (603) are slidably connected to the movable base (604), the forward and reverse lead screws (606) and the adjustment lead screw (602) are symmetrically distributed along their own center positions, and the thread directions of the forward and reverse lead screws (606) and the adjustment lead screw (602) are opposite, and both ends of the adjustment lead screw (602) extend to the other side of the lifting block (501) and are connected to a hand crank (601).

5. A fabric performance detection device for clothing production according to claim 4, characterized in that: A conversion motor (505) is installed on one side of the lifting block (501); an output shaft of the conversion motor (505) is connected to a connecting shaft; the other end of the connecting shaft extends to the other side of the lifting block (501) and is connected to one side of the conversion roller (502).

6. A fabric performance detection device for clothing production according to claim 1, characterized in that: A display panel (3) is provided on one side of the detection platform (2), and supporting legs are connected to the four sides of the bottom of the detection platform (2).

Citation Information

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