Garment thickness detection device for garment processing

By designing a clothing thickness detection device with a smoothing mechanism and a measuring mechanism, the problem of accuracy in measuring the thickness of clothing made of special materials is solved, and efficient and stable thickness detection is achieved, which is suitable for a variety of fabric textures.

CN120721035APending Publication Date: 2025-09-30QUANZHOU NORMAL UNIV
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Patent Information

Application Number
CN202510703539.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-29
Publication Date
2025-09-30

AI Technical Summary

Technical Problem

Existing technology makes it difficult to quickly and accurately measure the thickness of clothing made of special materials, especially stretch knitwear, bubble cotton, lambskin and other clothing. High-pressure airflow cannot completely smooth out wrinkles, affecting detection accuracy.

Method used

A clothing thickness detection device was designed, which adopts a smoothing mechanism and a measuring mechanism. The smoothing mechanism realizes vertical pressing and horizontal movement through the linkage between the eccentric wheel and the track. Combined with the flexible design of the rubber sleeve, it is suitable for a variety of fabric textures. The measuring mechanism realizes pressure adjustment and firm fixation of the fabric through the threaded transmission structure of the bidirectional threaded rod and the slider, which is suitable for the measurement needs of thin and thick materials.

Benefits of technology

It significantly improves the efficiency of fabric pre-processing, ensures the stability and reliability of measurement data, adapts to the detection needs of fabrics of various textures, and avoids damage and measurement deviation caused by offset or uneven pressure.

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Abstract

The invention relates to the related technical field of garment manufacturing, in particular to a garment thickness detection device for garment processing, which comprises a table plate, a bottom bracket is fixedly connected to the lower surface of the table plate, foot pads are fixedly connected to the lower surface of the bottom bracket, and a side plate is fixedly connected to the upper surface of the table plate. A limiting hole is formed in the surface of one side of the side plate, and a smoothing mechanism is arranged on one side of the side plate. According to the device, through the arrangement of the smoothing mechanism and the linkage design of an eccentric wheel and a crawler belt, vertical pressing and horizontal moving can be achieved at the same time, the treatment time is greatly shortened, the cloth pretreatment efficiency is remarkably improved, and through the multi-limiting structure design, it is ensured that the movement track of a rubber sleeve is accurate and controllable, and the rubber sleeve is made of soft materials and moves regularly; the cloth flattening device is simple in structure and convenient to use, can adapt to cloth of various textures, and can effectively flatten soft silk, thick denim and elastic knitted cotton on the premise that cloth fibers are not damaged.
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Description

Technical Field

[0001] The present invention relates to the technical field related to clothing manufacturing, and in particular to a clothing thickness detection device used for clothing processing. Background Art

[0002] In the field of clothing manufacturing equipment technology, the clothing processing process covers multiple links such as cutting, sewing, and ironing, and clothing thickness is a key parameter that affects product quality and wearing experience. Traditional manual measurement of clothing thickness is inefficient and has large errors, and it is difficult to adapt to the automation and high-precision production requirements of the modern clothing manufacturing industry. On the automated production line, slight differences in the thickness of different batches of fabrics will lead to uneven sewing seams and distortion of the pattern. Therefore, there is an urgent need for special equipment that can quickly and accurately measure the thickness of clothing, monitor the thickness data in the production process in real time, and ensure product quality consistency and process stability. Therefore, there is a special need for a clothing thickness detection device for clothing processing.

[0003] The Chinese patent CN117268310A published on December 22, 2023 discloses a thickness detection device for fabric printing. By setting the jet device body, air duct, diverter box and nozzle, when performing wrinkle treatment, the two jet device bodies are started. Under the action of the jet device body, the air inside it will become a high-pressure airflow. The high-pressure airflow passes through the air duct and flows to each nozzle under the action of the diverter box, and finally acts on the top of the fabric. According to Bernoulli's principle, the pressure is small where the flow rate is large. The pressure at the bottom of the object to be treated is greater than that at the top, so the wrinkles at the bottom will be flattened, eliminating the problem of wrinkles at the bottom. This causes the problem of increased error in the test results. However, the thickness detection device uses high-pressure airflow to flatten the wrinkles of the fabric, and then uses a rangefinder to complete the detection. This method shows certain advantages in conventional fabric detection. However, when faced with special material clothing such as stretch knitwear, bubble cotton, and lambskin, this detection mode reveals its limitations. These special materials have fluffy structures and rich elasticity, and it is difficult to completely smooth out the wrinkles on their surfaces by high-pressure airflow alone. In order to comprehensively evaluate the performance of such materials, in addition to detecting the thickness under normal conditions, it is also necessary to obtain the thickness data under tension, so as to provide sufficient basis for the precise adjustment of subsequent process parameters. Summary of the Invention

[0004] The object of the present invention is to provide a garment thickness detection device for garment processing to solve the problems raised in the above background technology.

[0005] To achieve the above-mentioned object, the present invention provides the following technical solution: a clothing thickness detection device for clothing processing, comprising a table top, a bottom bracket fixedly connected to the lower surface of the table top, a foot fixedly connected to the lower surface of the bottom bracket, a side panel fixedly connected to the upper surface of the table top, a limiting hole provided on one side surface of the side panel, a smoothing mechanism provided on one side of the side panel, a measuring mechanism provided on one side surface of the side panel, a card block provided on the upper surface of the measuring mechanism, a rangefinder fixedly connected to one side surface of the card block, and a spotlight fixedly connected to one side surface of the rangefinder;

[0006] The cam is connected to the first gear and the second gear is connected with the guide rail, and the guide rail is connected with the second gear by the up-down knob.

[0007] Preferably, the first rotating shafts are provided with two of the same size and are symmetrically distributed along one side surface of the side plate. The side plates are provided with two of the same size, and the two side plates and the two first rotating shafts are arranged in a "well" shape.

[0008] Preferably, the center radius of the first rotating shaft is greater than the center radius of the second rotating shaft, the center line of the first rotating shaft is arranged in parallel with the center line of the second rotating shaft, and the transmission belt, crawler belt and motor are distributed in parallel.

[0009] Preferably, the outer wall size of the slide rod matches the outer wall size of the limiting hole, the horizontal center line of the slide rod is perpendicular to the horizontal and vertical center lines of the table top, and the circular axis coincides with the center line of the center of the slide rod.

[0010] Preferably, two discs of the same size are provided and symmetrically distributed along the two ends of the circular shaft. The outer wall size of the disc is larger than the inner wall size of the sliding hole, and the outer wall size of the circular shaft matches the transverse width of the inner wall of the sliding hole.

[0011] Preferably, the outer wall size of the eccentric wheel is consistent with the inner wall size of the ring, the fixing seat, the eccentric wheel and the ring are distributed in parallel, and the center line of the center of the fixing rod is distributed in parallel with the center line of the center of the first rotating shaft.

[0012] Preferably, the measuring mechanism includes a support plate, which is fixedly connected to the upper surface of the side plate, a rectangular groove is provided on one side surface of the support plate, the upper surface of the support plate is fixedly connected to the top plate, a slot is provided on one side surface of the top plate, one side surface of the support plate is rotatably connected to a two-way threaded rod, one side surface of the two-way threaded rod is fixedly connected to a handle, the outer wall surface of the two-way threaded rod is threadedly connected to a slider, one side surface of the slider is fixedly connected to a cylinder, the outer wall surface of the slider is slidably connected to a connecting rod, one side surface of the connecting rod is provided with a rotating hole, the inner wall surface of the rotating hole is rotatably connected to a movable part, the lower surface of the movable part is fixedly connected to a pressure plate, and one side surface of the pressure plate is fixedly connected to a rectangular block.

[0013] Preferably, the pressure plate, crawler track, top plate and rangefinder are distributed in parallel, and the inner wall size of the card slot is consistent with the outer wall size of the end of the card block close to the spotlight.

[0014] Preferably, two support plates of the same size are provided and are symmetrically distributed along the central axis of the pressure plate, and the spacing between the two support plates is consistent with the lateral width of the pressure plate. Two rectangular blocks of the same size are provided and are symmetrically distributed, and the outer wall size of the rectangular block is consistent with the inner wall size of the rectangular groove.

[0015] Preferably, the connecting rods are provided with four of the same size, the inner wall size of the rotating hole matches the outer wall size of the cylinder, and the sliding blocks are provided with two of the same size and are symmetrically distributed along the center line of the bidirectional threaded rod.

[0016] Compared with the prior art, the present invention has the following beneficial effects:

[0017] 1. Through the setting of the smoothing mechanism and the linkage design of the eccentric wheel and the crawler, vertical pressing and horizontal movement can be achieved simultaneously. Compared with the traditional single-direction smoothing method, the processing time is greatly shortened and the efficiency of fabric pretreatment is significantly improved. The multiple limiting structure design, such as the coordination of the round shaft, disc, slide rod and corresponding hole positions, ensures that the movement trajectory of the rubber sleeve is precise and controllable, avoiding fabric damage or incomplete wrinkle treatment due to offset. The soft material and regular movement of the rubber sleeve can adapt to fabrics of various textures. Whether it is soft silk, thick denim, or stretchy knitted cotton, it can achieve effective smoothing without damaging the fabric fibers.

[0018] 2. Through the setting of the measuring mechanism, the threaded transmission structure of the bidirectional threaded rod and the slider can realize the effective adjustment of the pressure of the pressing plate, which can adapt to the gentle compaction requirements of light and thin fabrics, and can also meet the firm fixation of thick materials. At the same time, by adjusting the position of the pressing plate, the thickness measurement switch between the normal and tensioned states can be easily realized. The frame structure composed of the support plate, top plate and slider, combined with the transmission design of the connecting rod, movable parts and cylinder, forms a stable mechanical support during the fabric compaction process, effectively reducing the measurement deviation caused by uneven pressure, ensuring stable and reliable measurement data. The matching design of the card slot and the card block facilitates the replacement of the rangefinder, thereby improving the versatility of the equipment. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0020] Figure 2 This is a side structural diagram of the present invention;

[0021] Figure 3 This is a schematic diagram of the back structure of the present invention;

[0022] Figure 4 This is a schematic diagram of the separation structure of the rangefinder of the present invention;

[0023] Figure 5 Schematic diagram of the overall structure of the measuring mechanism of the present invention;

[0024] Figure 6 This is a schematic diagram of the overall disassembly structure of the measuring mechanism of the present invention;

[0025] Figure 7 This is a schematic diagram of the rubber sleeve separation structure of the smoothing mechanism of the present invention;

[0026] Figure 8 This is a schematic diagram of the first rotating shaft structure of the smoothing mechanism of the present invention;

[0027] Figure 9 This is a schematic diagram of the overall structure of the smoothing mechanism of the present invention;

[0028] Figure 10 It is a schematic diagram of the disassembled structure of the smoothing mechanism of the present invention.

[0029] In the figure: 1, table top; 2, bottom bracket; 3, foot pad; 4, side panel; 5, limit hole; 6, smoothing mechanism; 601, first rotating shaft; 602, motor; 603, transmission belt; 604, second rotating shaft; 605, rotating rod; 606, fixing seat; 607, eccentric wheel; 608, circular ring; 609, limiting member; 610, sliding hole; 611, circular shaft; 612, circular disc; 613, sliding rod; 614, Track; 615, fixing rod; 616, rubber sleeve; 7, measuring mechanism; 701, support plate; 702, rectangular groove; 703, top plate; 704, card slot; 705, two-way threaded rod; 706, grip; 707, slider; 708, cylinder; 709, connecting rod; 710, rotating hole; 711, movable part; 712, pressure plate; 713, rectangular block; 8, card block; 9, rangefinder; 10, spotlight. DETAILED DESCRIPTION

[0030] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0031] See also Figures 1-9 The present invention provides a technical solution: a clothing thickness detection device for clothing processing, comprising a table top 1, a bottom bracket 2 is fixedly connected to the lower surface of the table top 1, a foot 3 is fixedly connected to the lower surface of the bottom bracket 2, a side panel 4 is fixedly connected to the upper surface of the table top 1, a limiting hole 5 is provided on one side surface of the side panel 4, a smoothing mechanism 6 is provided on one side of the side panel 4, a measuring mechanism 7 is provided on one side surface of the side panel 4, a clamping block 8 is provided on the upper surface of the measuring mechanism 7, a rangefinder 9 is fixedly connected to one side surface of the clamping block 8, and a spotlight 10 is fixedly connected to one side surface of the rangefinder 9;

[0032] The smoothing mechanism 6 includes a first rotating shaft 601, which is rotatably connected to a side surface of the side plate 4, and a motor 602 is rotatably connected to a side surface of the first rotating shaft 601. The outer wall surface of the first rotating shaft 601 is slidably connected to a transmission belt 603, and the inner wall surface of the transmission belt 603 is slidably connected to a second rotating shaft 604. A rotating rod 605 is connected to a side surface of the second rotating shaft 604, and the rotating rod 605 is connected to a fixed seat 606. The outer wall surface of the rotating rod 605 is fixedly connected to an eccentric wheel 607, and the outer wall surface of the eccentric wheel 607 is slidably connected to a ring 608. A limiting member 609 is fixedly connected to a side surface of the ring 608. The limiting member 60 A sliding hole 610 is provided on one side surface of the first rotating shaft 601, and a circular shaft 611 is slidably connected to the inner wall surface of the sliding hole 610. A circular disc 612 is fixedly connected to one side surface of the circular shaft 611, and a sliding rod 613 is fixedly connected to the lower surface of the circular disc 612. A crawler 614 is slidably connected to the outer wall surface of the first rotating shaft 601. A fixing rod 615 is fixedly connected to one side surface of the circular ring 608, and a rubber sleeve 616 is fixedly connected to the outer wall surface of the fixing rod 615. Through the first rotating shaft 601, the motor 602, the transmission belt 603, the second rotating shaft 604, the rotating rod 605, the fixing seat 606, the eccentric wheel 607, the circular ring 608, the limiting member 609, the sliding hole 610, the circular shaft 611 , disc 612, slide bar 613, crawler track 614, fixed rod 615 and rubber sleeve 616 are arranged. When in use, the motor 602 outputs power to drive the first rotating shaft 601 to rotate. Based on the transmission connection of the transmission belt 603 between the first rotating shaft 601 and the second rotating shaft 604, and due to the larger center radius design of the first rotating shaft 601, the second rotating shaft 604 runs synchronously at a higher speed. The second rotating shaft 604 drives the rotating rod 605, prompting the eccentric wheel 607 to rotate at a high speed. The eccentric wheel 607 continuously pushes the ring 608 during the rotation process, thereby causing the ring 608 to drive the rubber sleeve 616 to perform regular vertical reciprocating motion through the fixed rod 615. At the same time, the ring 608 drives the rubber sleeve 616 to perform regular vertical reciprocating motion. The limiting structure composed of the shaft 611, the disc 612, and the slide rod 613 plays a stabilizing role. The circular shaft 611 slides smoothly on the inner wall of the sliding hole 610. The disc 612 ensures that the circular shaft 611 does not fall out of the sliding hole 610. The slide rod 613 moves vertically along the limiting hole 5, providing precise guidance for the movement of the rubber sleeve 616; and the first rotating shaft 601, with the help of the crawler 614, drives the cloth to move at a uniform speed in the horizontal direction. The vertical pressure of the rubber sleeve 616 and the horizontal movement of the cloth cooperate with each other to smooth out the wrinkles on the surface of the cloth. This flexible reciprocating contact design not only ensures the smoothing effect, but also avoids the risk of rigid components scratching high-end fabrics such as silk and wool, effectively improving the yield rate.

[0033] Furthermore, two first rotating shafts 601 of the same size are provided and are symmetrically distributed along the surface of one side of the side panel 4. Two side panels 4 of the same size are provided. The two side panels 4 and the two first rotating shafts 601 are arranged in a "well" shape. Through the setting of the side panels 4, the side panels 4 serve as key supporting components to provide a stable installation foundation for the entire smoothing mechanism 6. The two side panels 4 are symmetrically arranged to construct a stable frame structure, which limits the movement trajectory of the first rotating shaft 601, so that it can maintain stable rotation under the drive of the motor 602, and avoid displacement due to uneven force.

[0034] Furthermore, the center radius of the first rotating shaft 601 is larger than the center radius of the second rotating shaft 604, and the center line of the center of the first rotating shaft 601 is arranged parallel to the center line of the center of the second rotating shaft 604. The transmission belt 603, the crawler 614 and the motor 602 are distributed in parallel. Through the setting of the second rotating shaft 604, when in use, the differentiated radius design and parallel layout of the second rotating shaft 604 assume key transmission and speed regulation functions in the system. The motor 602 drives the first rotating shaft 601 to rotate and transmits power to the second rotating shaft 604 through the transmission belt 603. Since the radius of the first rotating shaft 601 is larger than that of the second rotating shaft 604, the angular velocity of the second rotating shaft 604 will increase accordingly, thereby driving the eccentric wheel 607 to rotate at high speed, enhancing the vertical vibration frequency of the rubber sleeve 616, and achieving high-frequency beating and smoothing of fabric wrinkles.

[0035] Furthermore, the outer wall size of the slide rod 613 is consistent with the outer wall size of the limiting hole 5, the horizontal center line of the slide rod 613 is perpendicular to the horizontal and vertical center lines of the table top 1, and the circular axis 611 coincides with the center line of the center of the circle of the slide rod 613. Through the setting of the slide rod 613 and the limiting hole 5, when in use, the close fit between the slide rod 613 and the limiting hole 5 provides high-precision guidance for the movement of the rubber sleeve 616, ensuring the accurate position of each smoothing operation, and avoiding local unsmoothing or excessive extrusion damage of the fabric due to offset.

[0036] Furthermore, two discs 612 of the same size are provided and are symmetrically distributed along the two ends of the circular shaft 611. The outer wall size of the disc 612 is larger than the inner wall size of the sliding hole 610, and the outer wall size of the circular shaft 611 coincides with the lateral width of the inner wall of the sliding hole 610. Through the provision of the disc 612, when in use, the disc 612 forms a key limiting constraint with the sliding hole 610 through the structural design of being symmetrically distributed at both ends of the circular shaft 611. When the ring 608 drives the fixing rod 615 and the rubber sleeve 616 to move up and down, the circular shaft 611 slides in the vertical direction in the sliding hole 610. Since the outer diameter of the disc 612 is larger than the inner diameter of the sliding hole 610, it always fits the surface of the limiting member 609, preventing the circular shaft 611 from detaching from the sliding hole 610, ensuring that the vertical movement trajectory of the rubber sleeve 616 is stable and controllable.

[0037] Furthermore, the outer wall size of the eccentric wheel 607 matches the inner wall size of the circular ring 608. The fixed seat 606, the eccentric wheel 607, and the circular ring 608 are arranged in parallel. The center line of the fixed rod 615 is parallel to the center line of the first rotating shaft 601. Through the arrangement of the eccentric wheel 607 and the circular ring 608, the precise coordination of the eccentric wheel 607 and the circular ring 608 constitutes the core motion conversion system of the smoothing mechanism during use. When the second rotating shaft 604 drives the eccentric wheel 607 to rotate, the eccentric distance of the eccentric wheel 607 causes its outer wall to produce continuous rolling contact with the inner wall of the circular ring 608. Since the sizes of the two are precisely matched, the circular motion of the eccentric wheel 607 is converted into the linear reciprocating motion of the circular ring 608. The parallel distribution of the fixed seat 606, the eccentric wheel 607, and the circular ring 608 ensures the stability of the force transmission path.

[0038] Furthermore, the measuring mechanism 7 includes a support plate 701, which is fixedly connected to the upper surface of the side plate 4, a rectangular groove 702 is provided on one side surface of the support plate 701, a top plate 703 is fixedly connected to the upper surface of the support plate 701, a slot 704 is provided on one side surface of the top plate 703, a bidirectional threaded rod 705 is rotatably connected to one side surface of the support plate 701, a handle 706 is fixedly connected to one side surface of the bidirectional threaded rod 705, and a slider is threadedly connected to the outer wall surface of the bidirectional threaded rod 705. 707, a cylinder 708 is fixedly connected to one side surface of the slider 707, a connecting rod 709 is slidably connected to the outer wall surface of the slider 707, a rotating hole 710 is opened on one side surface of the connecting rod 709, a movable part 711 is rotatably connected to the inner wall surface of the rotating hole 710, a pressing plate 712 is fixedly connected to the lower surface of the movable part 711, a rectangular block 713 is fixedly connected to one side surface of the pressing plate 712, and a supporting plate 701, a rectangular groove 702, a top plate 703, a card slot 704, a bidirectional threaded rod 705, and a handle 706 are connected to the supporting plate 701. 06, the setting of the slider 707, the cylinder 708, the connecting rod 709, the rotating hole 710, the movable part 711, the pressure plate 712, and the rectangular block 713. When in use, the handle 706 is manipulated to rotate, and the bidirectional threaded rod 705 rotates synchronously therewith. Based on the thread transmission characteristics of the bidirectional threaded rod 705 and the two sliders 707, the slider 707 slides smoothly along the support plate 701 under the drive of the bidirectional threaded rod 705. At the same time, the cooperation of the rectangular block 713 and the rectangular groove 702 plays a double limiting role. The two sides of the slider 707 The cylinder 708 drives the pressing plate 712 to press down steadily through the transmission of the connecting rod 709, the movable part 711, and the rotating hole 710, thereby firmly compacting the fabric. The rangefinder 9 on the card block 8 is embedded in the card slot 704 of the top plate 703, and the spotlight 10 projects a positioning light to assist in measurement. The rangefinder 9 then accurately detects the thickness of the compacted fabric. The staff can accurately control the degree of downward pressure of the pressing plate according to the characteristics of the fabric to avoid damage to the fabric due to excessive pressure or measurement deviation caused by insufficient pressure, thereby ensuring the accuracy of the test data.

[0039] Furthermore, the pressing plate 712, the crawler track 614, the top plate 703 and the rangefinder 9 are distributed in parallel, and the inner wall size of the slot 704 matches the outer wall size of the end of the card block 8 close to the spotlight 10. Through the arrangement of the slot 704 and the card block 8, when in use, the precise cooperation between the slot 704 and the card block 8 constitutes a positioning reference system of the measuring mechanism 7. When the rangefinder 9 needs to perform a detection operation, the card block 8 is directly embedded in the slot 704 of the top plate 703. Since the sizes of the two are precisely matched, the outer wall of the card block 8 forms a surface contact positioning with the inner wall of the slot 704, ensuring that the optical axis of the rangefinder 9 is strictly parallel to the plane of the pressing plate 712 and the crawler track 614. This parallel distribution design makes the measuring direction of the rangefinder 9 perpendicular to the fabric surface, avoiding detection errors caused by angle deviation.

[0040] Furthermore, two support plates 701 are provided with the same size, and are symmetrically distributed along the central axis of the pressure plate 712. The spacing between the two support plates 701 coincides with the lateral width of the pressure plate 712. Two rectangular blocks 713 are provided with the same size, and are symmetrically distributed. The outer wall size of the rectangular block 713 coincides with the inner wall size of the rectangular groove 702. Through the setting of the rectangular block 713 and the rectangular groove 702, when in use, the cooperation between the rectangular block 713 and the rectangular groove 702 forms precise guidance and limitation. When the control handle 706 drives the bidirectional threaded rod 705 to rotate and drives the slider 707 to move along the support plate 701, the rectangular block 713 is tightly embedded in the rectangular groove 702 and slides. The two symmetrically distributed rectangular blocks 713 and the rectangular groove 702 constrain the slider 707 from both sides, ensuring that the slider can only move along the straight line direction of the support plate 701, effectively limiting its horizontal displacement and rotation. At the same time, the design of matching dimensions ensures that the rectangular blocks 713 maintain stable contact when sliding in the groove, controlling the motion error of the slider 707 within a very small range, thereby ensuring that the pressing plate 712 presses down smoothly and evenly compacts the fabric.

[0041] Furthermore, the connecting rod 709 is provided with four of the same size, the inner wall size of the rotating hole 710 is consistent with the outer wall size of the cylinder 708, and the slider 707 is provided with two of the same size, which are symmetrically distributed along the center line of the circle of the bidirectional threaded rod 705. Through the setting of the rotating hole 710 and the cylinder 708, when in use, the precise matching of the rotating hole 710 and the cylinder 708 constitutes the core transmission hub of the measuring mechanism. When the bidirectional threaded rod 705 rotates and drives the slider 707 to translate along the support plate 701, the cylinders 708 on both sides of the slider 707 serve as transmission fulcrums and rotate in the rotating hole 710 of the connecting rod 709. Since the inner wall of the rotating hole 710 is precisely matched with the outer wall size of the cylinder 708, the rotation of the cylinder 708 can convert the horizontal displacement of the slider 707 into the swing of the connecting rod 709 without gap or jamming, and then drive the pressure plate 712 to press down smoothly through the movable part 711. The tight fit design of the rotating hole 710 and the cylinder 708 minimizes the energy loss in the transmission process, and can quickly and accurately convert the horizontal movement of the slider into the vertical movement of the pressure plate, thereby improving the detection efficiency.

[0042] Working principle: The clothing thickness detection device realizes detection through the coordinated work of the smoothing mechanism 6 and the measuring mechanism 7. The clothing fabric is spread on the surface of the crawler 614, and then the motor 602 is started. The motor 602 outputs power to drive the first rotating shaft 601 to rotate. Based on the transmission connection between the first rotating shaft 601 and the second rotating shaft 604 via the transmission belt 603, and due to the larger center radius design of the first rotating shaft 601, the second rotating shaft 604 runs synchronously at a higher speed. The second rotating shaft 604 drives the rotating rod 605, causing the eccentric wheel 607 to rotate at high speed. The eccentric wheel 607 continuously pushes the ring 608 during the rotation process, thereby causing the ring 608 to drive the rubber sleeve 616 to perform regular vertical reciprocating motion through the fixed rod 615. At the same time, the limiting structure composed of the circular shaft 611, the circular plate 612, and the sliding rod 613 plays a stabilizing role. The circular shaft 611 slides smoothly on the inner wall of the sliding hole 610. The circular plate 612 ensures that the circular shaft 611 does not leave the sliding hole 610. The sliding rod 613 moves vertically along the limiting hole 5, providing precise guidance for the movement of the rubber sleeve 616. The first rotating shaft 601 uses the track The belt 614 drives the fabric to move at a constant speed in the horizontal direction. The vertical pressure of the rubber sleeve 616 cooperates with the horizontal movement of the fabric to effectively smooth out the wrinkles on the fabric surface. After the fabric smoothing process is completed, the handle 706 is controlled to rotate, and the bidirectional threaded rod 705 rotates synchronously. Based on the thread transmission characteristics of the bidirectional threaded rod 705 and the two sliders 707, the sliders 707 slide smoothly along the support plate 701 under the drive of the bidirectional threaded rod 705. The cylinders 708 on both sides of the slider 707 are connected by the connecting rod 709 and the movable part 707. 11. The transmission of the rotary hole 710 drives the pressing plate 712 to press down steadily, firmly compacting the cloth. At this time, the rangefinder 9 on the card block 8 is accurately embedded in the card slot 704 of the top plate 703, and the spotlight 10 projects a positioning light to assist in measurement. The rangefinder 9 then accurately detects the thickness of the cloth in the compacted state and obtains the thickness data under the normal state. If it is necessary to detect the thickness of the cloth in the taut state, the position of the pressing plate 712 can be adjusted to meet the detection requirements of the clothing thickness in different states, providing a reliable data basis for clothing production quality control.

[0043] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. A garment thickness detection device for garment processing, comprising a table board (1), characterized in that: The lower surface of the table top (1) is fixedly connected to a bottom bracket (2), the lower surface of the bottom bracket (2) is fixedly connected to a foot pad (3), the upper surface of the table top (1) is fixedly connected to a side panel (4), a limiting hole (5) is provided on one side surface of the side panel (4), a smoothing mechanism (6) is provided on one side of the side panel (4), a measuring mechanism (7) is provided on one side surface of the side panel (4), a card block (8) is provided on the upper surface of the measuring mechanism (7), a rangefinder (9) is fixedly connected to one side surface of the card block (8), and a spotlight (10) is fixedly connected to one side surface of the rangefinder (9); The smoothing mechanism (6) includes a first rotating shaft (601), the first rotating shaft (601) is rotatably connected to a side surface of the side plate (4), the side surface of the first rotating shaft (601) is rotatably connected to a motor (602), the outer wall surface of the first rotating shaft (601) is slidably connected to a transmission belt (603), the inner wall surface of the transmission belt (603) is slidably connected to a second rotating shaft (604), a side surface of the second rotating shaft (604) is connected to a rotating rod (605), the rotating rod (605) is connected to a fixed seat (606), the outer wall surface of the rotating rod (605) is fixedly connected to an eccentric wheel (607), the outer wall of the eccentric wheel (607) is connected to the outer wall of the eccentric wheel (607). A circular ring (608) is slidably connected to the surface, a limiting member (609) is fixedly connected to one side surface of the circular ring (608), a sliding hole (610) is provided on one side surface of the limiting member (609), a circular shaft (611) is slidably connected to the inner wall surface of the sliding hole (610), a circular disc (612) is fixedly connected to one side surface of the circular shaft (611), a sliding rod (613) is fixedly connected to the lower surface of the circular disc (612), a crawler (614) is slidably connected to the outer wall surface of the first rotating shaft (601), a fixing rod (615) is fixedly connected to one side surface of the circular ring (608), and a rubber sleeve (616) is fixedly connected to the outer wall surface of the fixing rod (615).

2. The garment thickness detection device for garment processing according to claim 1, characterized in that: The first rotating shafts (601) are provided with two of the same size and are symmetrically distributed along the surface of one side of the side plate (4). The side plate (4) is provided with two of the same size, and the two side plates (4) and the two first rotating shafts (601) are arranged in a "well" shape.

3. The garment thickness detection device for garment processing according to claim 1, characterized in that: The center radius of the first rotating shaft (601) is greater than the center radius of the second rotating shaft (604), the center line of the center of the first rotating shaft (601) and the center line of the center of the second rotating shaft (604) are arranged in parallel, and the transmission belt (603), the crawler belt (614) and the motor (602) are distributed in parallel.

4. The garment thickness detection device for garment processing according to claim 1, characterized in that: The outer wall size of the slide rod (613) matches the outer wall size of the limiting hole (5), the horizontal center line of the slide rod (613) and the horizontal and vertical center lines of the table top (1) are perpendicularly intersected, and the circular axis (611) coincides with the center line of the center of the slide rod (613).

5. The garment thickness detection device for garment processing according to claim 1, characterized in that: Two discs (612) of the same size are provided and are symmetrically distributed along the two ends of the circular shaft (611). The outer wall size of the disc (612) is larger than the inner wall size of the sliding hole (610). The outer wall size of the circular shaft (611) is consistent with the transverse width of the inner wall of the sliding hole (610).

6. The garment thickness detection device for garment processing according to claim 1, characterized in that: The outer wall size of the eccentric wheel (607) is consistent with the inner wall size of the ring (608). The fixing seat (606), the eccentric wheel (607) and the ring (608) are distributed in parallel, and the center line of the center of the fixing rod (615) is distributed in parallel with the center line of the center of the first rotating shaft (601).

7. The garment thickness detection device for garment processing according to claim 1, characterized in that: The measuring mechanism (7) includes a support plate (701), the support plate (701) is fixedly connected to the upper surface of the side plate (4), a rectangular groove (702) is provided on one side surface of the support plate (701), a top plate (703) is fixedly connected to the upper surface of the support plate (701), a slot (704) is provided on one side surface of the top plate (703), a bidirectional threaded rod (705) is rotatably connected to one side surface of the support plate (701), and a handle (706) is fixedly connected to one side surface of the bidirectional threaded rod (705). The outer wall surface of the bidirectional threaded rod (705) is threadedly connected to a slider (707), one side surface of the slider (707) is fixedly connected to a cylinder (708), the outer wall surface of the slider (707) is slidably connected to a connecting rod (709), one side surface of the connecting rod (709) is provided with a rotating hole (710), the inner wall surface of the rotating hole (710) is rotatably connected to a movable part (711), the lower surface of the movable part (711) is fixedly connected to a pressure plate (712), and one side surface of the pressure plate (712) is fixedly connected to a rectangular block (713).

8. The garment thickness detection device for garment processing according to claim 7, characterized in that: The pressing plate (712), the crawler (614), the top plate (703) and the rangefinder (9) are distributed in parallel, and the inner wall size of the card slot (704) matches the outer wall size of the end of the card block (8) close to the spotlight (10).

9. The garment thickness detection device for garment processing according to claim 7, characterized in that: The support plates (701) are provided with two of the same size and are symmetrically distributed along the central axis of the pressing plate (712). The spacing between the two support plates (701) matches the transverse width of the pressing plate (712). The rectangular blocks (713) are provided with two of the same size and are symmetrically distributed. The outer wall size of the rectangular block (713) matches the inner wall size of the rectangular groove (702).

10. The garment thickness detection device for garment processing according to claim 7, characterized in that: The connecting rods (709) are provided with four of the same size, the inner wall size of the rotating hole (710) matches the outer wall size of the cylinder (708), and the sliders (707) are provided with two of the same size and are symmetrically distributed along the center line of the bidirectional threaded rod (705).

Citation Information

Patent Citations

  • Thickness detection device for cloth printing

    CN117268310A