Seamless hot melting coating mechanism for clothes and processing method

By designing hot pressing components, adsorption components and glue coating components in the clothing seamless hot melt coating mechanism, the problem of increasing power consumption and lack of cleaning structure in the prior art is solved, and the pressure bonding effect is reduced with high efficiency and low cost fabric seamless hot melt coating and cleaning effect is achieved.

CN119926747APending Publication Date: 2025-05-06BIJIE JINGWONG GARMENT CO LTD
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Patent Information

Application Number
CN202510308010.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-17
Publication Date
2025-05-06

AI Technical Summary

Technical Problem

The existing seamless hot melt coating mechanism requires multiple drive sources during the fabric pressing process, which increases power consumption and cost, and the lack of cleaning structure leads to a reduced pressing effect.

Method used

A seamless hot melt coating mechanism for clothing is designed, including a hot press assembly, an adsorption assembly and an adhesive coating assembly. The preheating and pressing of the adhesive is achieved through the lifting and lowering components, and the thread heads and debris on the fabric are cleaned through an electrostatic adsorption roller.

Benefits of technology

Seamless hot melt coating of fabric is achieved, reducing the number of driving sources used, reducing energy consumption and production costs, and improving pressing effect and cleaning efficiency.

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Abstract

The invention relates to the technical field of garment processing, in particular to a garment seamless hot melting coating mechanism and a processing method.The garment seamless hot melting coating mechanism comprises a base and further comprises a processing table, a gluing assembly, an adsorption assembly and a hot pressing assembly; the hot pressing assembly comprises a hot pressing plate, a lifting component, two positioning plates and two connecting components, the adsorption assembly comprises an electrostatic adsorption roller, a telescopic component, a rotating component and a transmission component, and the gluing assembly comprises a gluing component, a moving component, an extruding component and a feeding component. According to the mechanism, the cloth can be firstly positioned and pressed and then subjected to hot pressing, the synchronism is high, meanwhile, the two actions share one driving source, the using number of the driving sources of the mechanism is reduced, and the seamless hot melting coating cost of the clothing cloth is reduced.
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Description

Technical Field

[0001] The invention relates to the technical field of garment processing, in particular to a garment seamless hot-melt coating mechanism and a processing method. Background Art

[0002] The seamless hot-melt coating mechanism mainly realizes the seamless connection function, that is, connecting different fabrics or materials through adhesives or technology without traditional sewing or needlework. It is widely used in seamless garment production. The coating mechanism evenly coats the adhesive on the fabric, and then uses a hot press to heat-press and bond the two pieces of fabric under pressure to achieve seamless connection.

[0003] The existing seamless hot melt coating mechanism has the following shortcomings: When pressing two pieces of cloth together, the existing mechanism needs to first press the two pieces of cloth together through a pressing mechanism, and then drive the hot pressing plate down through a lifting mechanism to heat the adhesive at the joint of the two pieces of cloth and then press them together. The two mechanisms need to use multiple driving sources, which increases the power consumption of the device, thereby increasing the cost of cloth hot pressing processing; The existing mechanism does not have a cleaning structure, and directly glues the two pieces of fabric and then presses them together. The joints of the two pieces of fabric are prone to have thread ends or fabric debris dropped during the previous processing, which can easily reduce the pressing effect. In view of the above problems, a seamless hot-melt coating mechanism and a processing method for clothing are now provided. Summary of the invention

[0004] The object of the present invention is to provide a seamless hot-melt coating mechanism and a processing method for clothing to solve the problems raised in the above-mentioned background technology.

[0005] To achieve the above object, the present invention provides the following technical solutions: A seamless hot-melt coating mechanism for clothing comprises a base, a processing table, a glue coating component, an adsorption component and a hot pressing component. The processing table is slidably arranged on the top of the base, and a sliding component for driving the processing table to move is arranged above the base. The gluing component, the adsorption component and the hot pressing component are sequentially arranged above the base; The hot pressing assembly includes a hot pressing plate, a lifting component, two positioning plates and two connecting components. The hot pressing plate is located above the base, the two positioning plates are symmetrically arranged on both sides below the hot pressing plate, the lifting component is located above the hot pressing plate, and each connecting component is located between the lifting component and a positioning plate. The adsorption assembly includes an electrostatic adsorption roller, a telescopic component, a rotating component and a transmission component. The electrostatic adsorption roller is located at the top of the base, the telescopic component is installed at one end of the electrostatic adsorption roller, the rotating component is located at the end of the electrostatic adsorption roller away from the telescopic component, and the transmission component is located between the processing table and the rotating component. The gluing component includes a gluing part, a moving part, an extruding part and a feeding part. The gluing part is located on the side of the electrostatic adsorption roller away from the hot pressing plate, the moving part is installed on the top of the gluing part, the feeding part is fixed on the base, and the extruding part is located at one end of the feeding part.

[0006] As a further solution of the present invention: the lifting component includes a second U-shaped frame, a cylinder, a movable plate and two second guide rods, the second U-shaped frame is fixedly installed on the top of the base, the movable plate is located between the second U-shaped frame and the base, the cylinder is installed on the top of the second U-shaped frame, the output end of the cylinder passes through the second U-shaped frame and is fixedly connected to the movable plate, the hot pressing plate is fixedly installed on the bottom end of the movable plate, the two second guide rods are symmetrically slidably arranged on both sides of the second U-shaped frame, and the bottom end of each second guide rod is fixedly connected to the movable plate.

[0007] As a further solution of the present invention: each connecting component includes multiple connecting rods and multiple springs, the multiple springs are equidistantly slidably arranged on the movable plate, the bottom end of each connecting rod is fixedly connected to a positioning plate, each spring is sleeved on the outside of a connecting rod, and the two ends of each spring are respectively connected to the movable plate and the positioning plate.

[0008] As a further scheme of the present invention: the moving component includes a first U-shaped frame, a fixed frame, a screw rod, a moving block, a first motor and two first guide rods. The first U-shaped frame is fixed at the top of the base, the fixed frame is installed at the bottom end of the first U-shaped frame, the two ends of the screw rod are rotatably connected with the two sides of the fixed frame through bearings respectively, the first motor is installed at one end of the fixed frame, the output end of the first motor is fixedly connected to one end of the screw rod, the two first guide rods are symmetrically arranged on both sides of the screw rod, each first guide rod is fixedly connected to the fixed frame, the moving block is slidably arranged on the two first guide rods, the screw rod passes through the moving block and is threadedly matched with the moving block, and the rubber coating component is installed at the bottom end of the moving block.

[0009] As a further solution of the present invention: the telescopic component includes a connecting plate, a second electric push rod, a connecting shaft, a collecting box, a mounting plate and a rotating seat, the connecting plate is fixed between the first U-shaped frame and the second U-shaped frame, the second electric push rod is installed on one side of the connecting plate, the collecting box is fixed at the top of the base and is located on the side of the processing table away from the connecting plate, the mounting plate is fixed on one side of the collecting box, the rotating seat is rotatably set on the mounting plate through a bearing, one end of the connecting shaft is rotatably connected to the output end of the second electric push rod through a bearing, the other end of the connecting shaft is slidably set on the rotating seat, and the electrostatic adsorption roller is fixedly mounted on the surface of the connecting shaft.

[0010] As a further solution of the present invention: the rotating component includes a mounting seat, a rotating shaft, a driving wheel, a transmission belt, a driven wheel, a limit block and a limit groove, the limit groove is opened on the surface of the connecting shaft, the limit block is slidably arranged inside the limit groove, the limit block is fixedly installed on the inner wall of the rotating seat, the driven wheel is fixed on the outer wall of the rotating seat, the mounting seat is fixed on the base, the rotating shaft is rotatably arranged on the mounting seat, the driving wheel is fixed to one end of the rotating shaft, and the transmission belt is sleeved on the outer walls of the driven wheel and the driving wheel.

[0011] As a further solution of the present invention: the transmission component includes a gear and a rack, the rack is fixed on one side of the processing table, the gear is located below the rack, the gear is fixed to the end of the rotating shaft away from the driving wheel, and the gear and the rack are meshed with each other.

[0012] As a further solution of the present invention: the feeding component includes a storage cylinder, a hose, a push plate and a push rod, the storage cylinder is installed at the top of the base, one end of the hose is connected to the storage cylinder, the other end of the hose is connected to the glue coating component, the push plate is slidably arranged inside the storage cylinder, the push rod is inserted at one end of the storage cylinder away from the hose, and one end of the push rod is fixedly connected to the push plate.

[0013] As a further solution of the present invention: the extrusion component includes a second guide rail, a slider, a second motor, a transmission shaft, two chains and four sprockets. The second guide rail is located at one end of the storage tube and fixed on the base. The slider is slidably arranged inside the second guide rail, and the end of the push rod away from the push plate is fixedly connected to the slider. Every two sprockets are located on one side of the second guide rail, and each sprocket is rotatably arranged on the base. Each chain is sleeved on two sprockets located on the same side. The two sides of the slider are respectively connected to the two chains, and the two ends of the transmission shaft are fixedly connected to the two sprockets away from one end of the storage tube. The second motor is installed at the top of the base, and the output end of the second motor is fixedly connected to one of the sprockets.

[0014] The processing method of the seamless hot-melt coating mechanism for clothing comprises the following steps: S1. Fabric feeding: Lay the fabric to be processed flat on the processing table so that the position where glue is required is below the glue-coating part; S2. Fabric cleaning: The processing table is driven to slide on the base by the sliding component, and the cloth moves with the processing table. The electrostatic adsorption roller is used to adsorb the thread ends or debris on the cloth. At the same time, when the processing table moves, the transmission component drives the rotating component to work, so that the electrostatic adsorption roller can rotate during the movement of the processing table to increase the adsorption area. When the adsorption of the thread ends on the cloth is completed, the processing table is reset under the action of the sliding component, and the electrostatic adsorption roller is driven to move to the top of the collection box by the telescopic component. Then the electrostatic adsorption roller is powered off, and the thread ends directly fall into the collection box for collection; S3. Gluing of fabric: The controller controls the extrusion component to work, so that the feeding component can convey the adhesive to the gluing component, and the gluing component is used to apply the adhesive to the connection of the cloth. The controller controls the moving component to work, and the moving component can drive the gluing component to move along the connection of the cloth to evenly apply glue to the connection of the cloth. S4. Fabric pressing: After the gluing is completed, the processing table is driven by the sliding component to move to the bottom of the hot pressing plate, and the controller controls the lifting component to work. The lifting component drives the hot pressing plate and the two positioning plates to move downward. In the process of moving downward, the two positioning plates first contact with the cloth to achieve the positioning of the cloth. As the lifting component continues to work, the hot pressing plate is driven to continue to move downward. In the process of the hot pressing plate moving downward, the adhesive is first preheated. When the hot pressing plate moves to contact with the adhesive on the cloth, the adhesive at the joints of the cloth can be pressed.

[0015] Compared with the prior art, the present invention has the following beneficial effects: 1. A seamless hot-melt coating mechanism and processing method for clothing of the present invention, by setting a hot pressing component, when it is necessary to press the cloth, the lifting component can drive the hot pressing plate and the two positioning plates to move downward, in the process of moving downward, the two positioning plates first contact with the cloth to achieve the positioning of the cloth and ensure the stability of the cloth, as the lifting component continues to work, the hot pressing plate is driven to continue to move downward, in the process of the hot pressing plate moving downward, the adhesive is first preheated so that the adhesive can be melted, when the hot pressing plate moves to contact with the adhesive on the cloth, the adhesive at the joint of the cloth can be pressed, thereby realizing seamless hot-melt coating of clothing cloth.

[0016] 2. A seamless hot-melt coating mechanism and processing method for clothing of the present invention, by arranging the pressing and positioning of the fabric and the pressing of the fabric in one component, can realize the first positioning and pressing of the fabric and then the hot pressing and pressing, with high synchronization. At the same time, the two actions share a driving source, which reduces the number of driving sources used in the mechanism and reduces the cost of seamless hot-melt coating of clothing fabrics.

[0017] 3. A seamless hot-melt coating mechanism and processing method for clothing of the present invention, by setting an adsorption component, can use an electrostatic adsorption roller to adsorb the lines attached to the clothing fabric, thereby reducing the influence of the lines on the subsequent hot pressing. At the same time, when the processing table moves, the electrostatic adsorption roller can be driven to rotate through the transmission component and the rotating component to increase the adsorption area, thereby improving the adsorption effect. The transmission component can drive the electrostatic adsorption roller to rotate when the processing table moves, and a linkage effect can be formed between the processing table and the electrostatic adsorption roller, with high synchronization; 4. A seamless hot-melt coating mechanism and processing method for clothing of the present invention, through the provision of a gluing component, the adhesive can be transported to the gluing component by using an extrusion component and a feeding component, and the adhesive can be applied to the connection of the fabric by using the gluing component. At the same time, in conjunction with the moving component, the gluing component can move along the connection of the fabric to evenly coat the connection of the fabric with glue. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 The structure of the present invention is schematically shown Figure 1 .

[0019] Figure 2 The structure of the present invention is schematically shown Figure 2 .

[0020] Figure 3 For the present invention Figure 2 Schematic diagram of the enlarged structure of part A.

[0021] Figure 4 For the present invention Figure 2 Schematic diagram of the enlarged structure of part B.

[0022] Figure 5 It is a side view of the present invention.

[0023] Figure 6 It is a schematic diagram of the structure of the hot pressing assembly in the present invention.

[0024] Figure 7 It is a structural schematic diagram of the sliding component in the present invention.

[0025] Figure 8 For the present invention Figure 7 Schematic diagram of the enlarged structure of part C.

[0026] Fig. 9 It is a schematic diagram of the structure of the moving parts in the present invention.

[0027] Fig.10 It is a schematic cross-sectional structural diagram of the storage tube in the present invention.

[0028] Among them: 11, base; 12, processing table; 13, first guide rail; 14, vertical plate; 15, side plate; 16, first electric push rod; 17, first U-shaped frame; 18, fixed frame; 19, screw rod; 20, moving block; 21, glue coating component; 22, first guide rod; 23, first motor; 24, second U-shaped frame; 25, cylinder; 26, second guide rod; 27, moving plate; 28, hot pressing plate; 29, positioning plate; 30, connecting rod; 31, spring; 32, connecting plate; 33, second Electric push rod; 34, connecting shaft; 35, electrostatic adsorption roller; 36, collecting box; 37, mounting plate; 38, rotating seat; 39, limiting groove; 40, limiting block; 41, driven wheel; 42, driving wheel; 43, transmission belt; 44, mounting seat; 45, rotating shaft; 46, gear; 47, rack; 48, hose; 49, storage cylinder; 50, push plate; 51, push rod; 52, second guide rail; 53, slider; 54, sprocket; 55, chain; 56, second motor; 57, transmission shaft. DETAILED DESCRIPTION

[0029] The principles and features of the present invention are described below in conjunction with the accompanying drawings. The examples given are only used to explain the present invention and are not used to limit the scope of the present invention.

[0030] The present invention provides the following preferred embodiments: Embodiment 1, as Figure 1-Figure 10 As shown, a seamless hot-melt coating mechanism for clothing includes a base 11, a processing table 12, a gluing component, an adsorption component and a hot pressing component. The processing table 12 is slidably arranged on the top of the base 11. Specifically, two first guide rails 13 are symmetrically fixed on both sides of the top of the base 11. The processing table 12 is slidably arranged on the top of the two first guide rails 13. A sliding component for driving the processing table 12 to move is provided above the base 11. The sliding component includes a vertical plate 14, a side plate 15 and a first electric push rod 16. The side plate 15 is located below the processing table 12 and is fixed on the base 11. The vertical plate 14 is fixed to one side of the bottom end of the processing table 12. The first electric push rod 16 is installed on one side of the side plate 15. The output end of the first electric push rod 16 is fixedly connected to the vertical plate 14. By controlling the first electric push rod 16 to work, the first electric push rod 16 can drive the processing table 12 to slide on the two first guide rails 13 through the vertical plate 14; The gluing assembly, the adsorption assembly and the hot pressing assembly are sequentially arranged above the base 11; The hot pressing assembly includes a hot pressing plate 28, a lifting component, two positioning plates 29 and two connecting components. The hot pressing plate 28 is located above the base 11, and the two positioning plates 29 are symmetrically arranged on both sides below the hot pressing plate 28. The lifting component is located above the hot pressing plate 28, and each connecting component is located between the lifting component and a positioning plate 29. Specifically, an electric heating plate is provided inside the hot pressing plate 28, and the electric heating plate is a prior art and will not be described in detail here; The adsorption assembly includes an electrostatic adsorption roller 35, a telescopic component, a rotating component and a transmission component. The electrostatic adsorption roller 35 is located at the top of the base 11, the telescopic component is installed at one end of the electrostatic adsorption roller 35, the rotating component is located at the end of the electrostatic adsorption roller 35 away from the telescopic component, and the transmission component is located between the processing table 12 and the rotating component. Specifically, an electrostatic generator is installed inside the electrostatic adsorption roller 35. The electrostatic generator can easily remove lines and dust on the cloth through the principle of electrostatic adsorption. The electrostatic generator is a prior art and will not be described in detail here. When the processing table 12 moves, the transmission component drives the rotating component to work, so that the electrostatic adsorption roller 35 can rotate during the movement of the processing table 12, thereby increasing the adsorption area; The gluing component includes a gluing part 21, a moving part, an extruding part and a feeding part. The gluing part 21 is located on the side of the electrostatic adsorption roller 35 away from the hot pressing plate 28, the moving part is installed on the top of the gluing part 21, the feeding part is fixed on the base 11, and the extruding part is located at one end of the feeding part.

[0031] like Figure 1-Figure 10 As shown, the lifting component includes a second U-shaped frame 24, a cylinder 25, a movable plate 27 and two second guide rods 26. The second U-shaped frame 24 is fixedly installed on the top of the base 11, and the movable plate 27 is located between the second U-shaped frame 24 and the base 11. The cylinder 25 is installed on the top of the second U-shaped frame 24, and the output end of the cylinder 25 passes through the second U-shaped frame 24 and is fixedly connected to the movable plate 27. The hot pressing plate 28 is fixedly installed at the bottom end of the movable plate 27. The two second guide rods 26 are symmetrically slidably arranged on both sides of the second U-shaped frame 24, and the bottom end of each second guide rod 26 is fixedly connected to the movable plate 27. When it is necessary to hot-press the adhesive at the connection of the fabric, the controller controls the cylinder 25 to work, and the cylinder 25 can drive the movable plate 27 to move downward. The second guide rods 26 on both sides guide the movement of the movable plate 27. When the movable plate 27 moves, it can drive the hot pressing plate 28 to move, so that the hot pressing plate 28 moves to contact the adhesive on the fabric, which can realize the pressing of the adhesive at the joint of the fabric, thereby realizing seamless hot-melt coating of the clothing fabric.

[0032] like Figure 1-Figure 10 As shown, each connecting component includes a plurality of connecting rods 30 and a plurality of springs 31, and the plurality of springs 31 are equidistantly slidably arranged on the moving plate 27, the bottom end of each connecting rod 30 is fixedly connected to a positioning plate 29, each spring 31 is sleeved on the outside of a connecting rod 30, and the two ends of each spring 31 are respectively connected to the moving plate 27 and the positioning plate 29; In the initial state, the positioning plate 29 is located below the hot pressing plate 28, and the spring 31 is in a natural state; When the movable plate 27 moves downward, the connecting rod 30 and the spring 31 can drive the positioning plate 29 to move downward synchronously. During the movement, the two positioning plates 29 first contact the cloth. As the movable plate 27 continues to move downward, the spring 31 is compressed, and the positioning plate 29 applies pressure to the cloth, thereby positioning the cloth. As the movable plate 27 continues to move, the hot pressing plate 28 can be driven to continue to move downward. During the downward movement of the hot pressing plate 28, the adhesive is first preheated so that the adhesive can be melted. When the hot pressing plate 28 moves to contact the adhesive on the cloth, the adhesive at the joints of the cloth can be pressed.

[0033] like Figure 1-Figure 10 As shown, the moving parts include a first U-shaped frame 17, a fixed frame 18, a screw rod 19, a moving block 20, a first motor 23 and two first guide rods 22. The first U-shaped frame 17 is fixed to the top of the base 11, the fixed frame 18 is installed at the bottom of the first U-shaped frame 17, the two ends of the screw rod 19 are rotatably connected with the two sides of the fixed frame 18 through bearings, the first motor 23 is installed at one end of the fixed frame 18, the output end of the first motor 23 is fixedly connected with one end of the screw rod 19, the two first guide rods 22 are symmetrically arranged on both sides of the screw rod 19, each of the first guide rods 22 is fixedly connected with the fixed frame 18, the moving block 20 is slidably arranged on the two first guide rods 22, the screw rod 19 passes through the moving block 20 and is threadedly matched with the moving block 20, and the glue coating component 21 is installed at the bottom end of the moving block 20; When the glue coating component 21 needs to be moved, the controller controls the first motor 23 to work, and the first motor 23 can drive the screw rod 19 to rotate. Due to the threaded fit between the screw rod 19 and the moving block 20, and the sliding connection between the moving block 20 and the first guide rod 22, when the screw rod 19 rotates, it can drive the moving block 20 to move along the length direction of the first guide rod 22, thereby driving the glue coating component 21 to move.

[0034] like Figure 1-Figure 10As shown, the telescopic component includes a connecting plate 32, a second electric push rod 33, a connecting shaft 34, a collecting box 36, a mounting plate 37 and a rotating seat 38. The connecting plate 32 is fixed between the first U-shaped frame 17 and the second U-shaped frame 24, the second electric push rod 33 is installed on one side of the connecting plate 32, the collecting box 36 is fixed to the top of the base 11 and is located on the side of the processing table 12 away from the connecting plate 32, the mounting plate 37 is fixed to one side of the collecting box 36, the rotating seat 38 is rotatably set on the mounting plate 37 through a bearing, one end of the connecting shaft 34 is rotatably connected to the output end of the second electric push rod 33 through a bearing, specifically, the output end of the second electric push rod 33 passes through the connecting plate 32 and is rotatably connected to one end of the connecting shaft 34 through a bearing, the other end of the connecting shaft 34 is slidably set on the rotating seat 38, and the electrostatic adsorption roller 35 is fixedly mounted on the surface of the connecting shaft 34; Specifically, the electrostatic adsorption roller 35 is located above the connection point of the cloth. The electrostatic generator inside the electrostatic adsorption roller 35 can adsorb and remove the lines and dust on the cloth. After the connection point of the cloth is adsorbed, the controller controls the second electric push rod 33 to work, and the second electric push rod 33 drives the connecting shaft 34 to slide on the rotating seat 38, thereby driving the electrostatic adsorption roller 35 to move, so that the electrostatic adsorption roller 35 can move to the top of the collection box 36, and then the electrostatic adsorption roller 35 is powered off, so that the lines avoided by the electrostatic adsorption roller 35 can fall into the inside of the collection box 36 for centralized collection.

[0035] like Figure 1-Figure 10 As shown, the rotating component includes a mounting seat 44, a rotating shaft 45, a driving wheel 42, a transmission belt 43, a driven wheel 41, a limit block 40 and a limit groove 39, the limit groove 39 is provided on the surface of the connecting shaft 34, the limit block 40 is slidably arranged inside the limit groove 39, the limit block 40 is fixedly mounted on the inner wall of the rotating seat 38, the driven wheel 41 is fixed on the outer wall of the rotating seat 38, the mounting seat 44 is fixed on the base 11, the rotating shaft 45 is rotatably arranged on the mounting seat 44, the driving wheel 42 is fixed to one end of the rotating shaft 45, and the transmission belt 43 is sleeved on the outer walls of the driven wheel 41 and the driving wheel 42; When the mounting seat 44 rotates, it can drive the driving wheel 42 to rotate, and under the action of the transmission belt 43, it can drive the driven wheel 41 to rotate. When the driven wheel 41 rotates, it can drive the rotating seat 38 to rotate on the mounting plate 37. Under the action of the limiting groove 39 and the limiting block 40, when the rotating seat 38 rotates, it can drive the connecting shaft 34 to rotate synchronously, so that the electrostatic adsorption roller 35 can rotate synchronously, that is, when the processing table 12 moves, it can drive the electrostatic adsorption roller 35 to rotate, thereby increasing the adsorption area and thus improving the adsorption effect.

[0036] like Figure 1-Figure 10As shown, the transmission component includes a gear 46 and a rack 47. The rack 47 is fixed to one side of the processing table 12. The gear 46 is located below the rack 47. The gear 46 is fixed to one end of the rotating shaft 45 away from the driving wheel 42. The gear 46 and the rack 47 are meshed with each other. When the processing table 12 moves, the rack 47 can be driven to move synchronously. Since the rack 47 and the gear 46 are meshed with each other, when the rack 47 moves, the gear 46 can be driven to rotate, so that the rotating shaft 45 can rotate on the mounting seat 44.

[0037] like Figure 1-Figure 10 As shown, the feeding component includes a storage cylinder 49, a hose 48, a push plate 50 and a push rod 51. The storage cylinder 49 is installed at the top of the base 11, one end of the hose 48 is connected to the storage cylinder 49, and the other end of the hose 48 is connected to the glue coating component 21. The push plate 50 is slidably arranged inside the storage cylinder 49, and the push rod 51 is inserted into the end of the storage cylinder 49 away from the hose 48, and one end of the push rod 51 is fixedly connected to the push plate 50; Specifically, a feed pipe is installed at the top of the storage cylinder 49, a valve is provided on the feed pipe, and a through hole is opened on the surface of one end of the storage cylinder 49 away from the hose 48; When it is necessary to transport adhesive to the glue coating component 21, the push rod 51 is driven to move by the extrusion component, and the push rod 51 can drive the push plate 50 to slide inside the storage tube 49. When the push plate 50 slides, the adhesive stored in the storage tube 49 can be squeezed out, and the adhesive is squeezed to the glue coating component 21 through the hose 48.

[0038] like Figure 1-Figure 10 As shown, the extrusion component includes a second guide rail 52, a slider 53, a second motor 56, a transmission shaft 57, two chains 55 and four sprocket wheels 54. The second guide rail 52 is located at one end of the storage barrel 49 and is fixed on the base 11. The slider 53 is slidably arranged inside the second guide rail 52. The end of the push rod 51 away from the push plate 50 is fixedly connected to the slider 53. Every two sprocket wheels 54 are located on one side of the second guide rail 52. Each sprocket wheel 54 is rotatably arranged on the base 11. Each chain 55 is sleeved on the two sprocket wheels 54 located on the same side. The two sides of the slider 53 are respectively connected to the two chains 55. The two ends of the transmission shaft 57 are fixedly connected to the two sprocket wheels 54 away from the end of the storage barrel 49. The second motor 56 is installed at the top end of the base 11, and the output end of the second motor 56 is fixedly connected to one of the sprocket wheels 54. When the push rod 51 needs to be moved, the controller controls the second motor 56 to work, and the second motor 56 can drive the sprocket 54 connected to its output end to rotate. Under the action of the transmission shaft 57 and the two chains 55, the four sprockets 54 can all rotate, and at this time, the slider 53 can be driven to move inside the second guide rail 52, thereby driving the movement of the push rod 51.

[0039] The processing method of the seamless hot-melt coating mechanism for clothing comprises the following steps: S1. Fabric feeding: Lay the fabric to be processed flat on the processing table 12 so that the position where the glue is to be applied is below the glue application component 21; S2. Fabric cleaning: The processing table 12 is driven to slide on the base 11 by the sliding component, and the cloth moves with the processing table 12, and the electrostatic adsorption roller 35 is used to adsorb the thread ends or debris on the cloth. At the same time, when the processing table 12 moves, the rotating component is driven to work by the transmission component, so that the electrostatic adsorption roller 35 can rotate during the movement of the processing table 12 to increase the adsorption area. When the adsorption of the thread ends on the cloth is completed, the processing table 12 is reset under the action of the sliding component, and the electrostatic adsorption roller 35 is driven to move to the top of the collection box 36 by the telescopic component. Then the electrostatic adsorption roller 35 is powered off, and the thread ends directly fall into the collection box 36 for collection; S3. Gluing of fabric: The controller controls the extrusion component to work, so that the feeding component can deliver the adhesive to the glue coating component 21, and the glue coating component 21 is used to apply the adhesive to the connection of the cloth. The controller controls the moving component to work, and the moving component can drive the glue coating component 21 to move along the connection of the cloth to evenly coat the connection of the cloth with glue. S4. Fabric pressing: After the gluing is completed, the processing table 12 is driven by the sliding component to move to the bottom of the hot pressing plate 28, and the controller controls the lifting component to work. The lifting component drives the hot pressing plate 28 and the two positioning plates 29 to move downward. During the downward movement, the two positioning plates 29 first contact with the cloth to achieve the positioning of the cloth. As the lifting component continues to work, the hot pressing plate 28 is driven to continue to move downward. During the downward movement of the hot pressing plate 28, the adhesive is first preheated. When the hot pressing plate 28 moves to contact with the adhesive on the cloth, the adhesive at the joints of the cloth can be pressed.

[0040] The specific working process of the present invention is as follows: Lay the fabric to be processed flat on the processing table 12 so that the position where the glue is to be applied is below the glue application component 21; The controller controls the first electric push rod 16 to work. The first electric push rod 16 can drive the processing table 12 to slide on the two first guide rails 13 through the vertical plate 14. When the processing table 12 moves, it can drive the clothing fabric above it to move. When the fabric moves to the bottom of the electrostatic adsorption roller 35, the electrostatic generator inside the electrostatic adsorption roller 35 can adsorb and remove the lines and dust on the fabric. At the same time, when the processing table 12 moves, it can drive the rack 47 to move synchronously. Since the rack 47 and the gear 46 are meshed with each other, when the rack 47 moves, it can drive the gear 46 to rotate, so that the rotating shaft 45 can rotate on the mounting seat 44. When the mounting seat 44 rotates, it can drive the driving wheel 42 to rotate. Under the action of the transmission belt 43, it can drive the driven wheel 41 to rotate. When the driven wheel 41 rotates, it can drive the rotating seat 38 to rotate on the mounting plate 37. Under the action of the limiting groove 39 and the limiting block 40, when the rotating seat 38 rotates, it can drive the connecting shaft 34 to rotate synchronously, so that the electrostatic adsorption roller 35 can rotate synchronously, that is, when the processing table 12 moves, it can drive the electrostatic adsorption roller 35 to rotate, thereby increasing the adsorption area and thus improving the adsorption effect. After the connection of the cloth is adsorbed, the controller controls the second electric push rod 33 to work, and the second electric push rod 33 drives the connecting shaft 34 to slide on the rotating seat 38, thereby driving the electrostatic adsorption roller 35 to move, so that the electrostatic adsorption roller 35 can move to the top of the collection box 36, and then the electrostatic adsorption roller 35 is powered off, so that the lines avoided by the electrostatic adsorption roller 35 can fall into the inside of the collection box 36 for centralized collection; Then, the processing table 12 is moved to the initial position by the first electric push rod 16, and the controller controls the second motor 56 to work. The second motor 56 can drive the sprocket 54 connected to the output end thereof to rotate. Under the action of the transmission shaft 57 and the two chains 55, the four sprockets 54 can all rotate, and at this time, the slider 53 can be driven to move inside the second guide rail 52, thereby driving the push rod 51 to move. The push rod 51 can drive the push plate 50 to slide inside the storage cylinder 49. When the push plate 50 slides, the adhesive stored in the storage cylinder 49 can be squeezed out. The hose 48 allows the adhesive to be squeezed out to the glue-applying component 21, and the glue-applying component 21 is used to apply the adhesive to the connection of the cloth. At the same time, the controller controls the first motor 23 to work, and the first motor 23 can drive the screw rod 19 to rotate. Since the screw rod 19 and the moving block 20 are threadedly matched, and the moving block 20 and the first guide rod 22 are slidably connected, when the screw rod 19 rotates, it can drive the moving block 20 to move along the length direction of the first guide rod 22, thereby driving the glue-applying component 21 to move along the connection of the cloth, and evenly apply glue to the connection of the cloth; After the gluing is completed, the first electric push rod 16 is used to drive the processing table 12 to move to the bottom of the hot pressing plate 28, and the controller controls the cylinder 25 to work. The cylinder 25 can drive the movable plate 27 to move downward, and the second guide rods 26 on both sides play a guiding role in the movement of the movable plate 27. The movable plate 27 can drive the hot pressing plate 28 to move when it moves. At the same time, when the movable plate 27 moves downward, the positioning plate 29 can be driven to move downward synchronously through the connecting rod 30 and the spring 31. In the process of moving, the two positioning plates 29 first contact with the cloth. As the movable plate 27 continues to move downward, the spring 31 is compressed, and the positioning plate 29 applies pressure to the cloth, thereby realizing the positioning of the cloth. As the movable plate 27 continues to move, it can drive the hot pressing plate 28 to continue to move downward. In the process of the hot pressing plate 28 moving downward, the adhesive is first preheated so that the adhesive can be melted. When the hot pressing plate 28 moves to contact with the adhesive on the cloth, the adhesive at the joint of the cloth can be pressed.

[0041] The beneficial effects of the present invention are specifically embodied in that the above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the protection scope of the present invention.

Claims

1. A seamless hot-melt coating mechanism for clothing, comprising a base (11), characterized in that: It also includes a processing table (12), a glue coating component, an adsorption component and a hot pressing component. The processing table (12) is slidably arranged on the top of the base (11), and a sliding component for driving the processing table (12) to move is arranged above the base (11); The gluing component, the adsorption component and the hot pressing component are sequentially arranged above the base (11); The hot pressing assembly comprises a hot pressing plate (28), a lifting component, two positioning plates (29) and two connecting components, the hot pressing plate (28) is located above the base (11), the two positioning plates (29) are symmetrically arranged on both sides below the hot pressing plate (28), the lifting component is located above the hot pressing plate (28), and each connecting component is located between the lifting component and a positioning plate (29); The adsorption assembly comprises an electrostatic adsorption roller (35), a telescopic component, a rotating component and a transmission component, wherein the electrostatic adsorption roller (35) is located at the top of the base (11), the telescopic component is installed at one end of the electrostatic adsorption roller (35), the rotating component is located at an end of the electrostatic adsorption roller (35) away from the telescopic component, and the transmission component is located between the processing table (12) and the rotating component; The gluing component comprises a gluing component (21), a moving component, an extruding component and a feeding component. The gluing component (21) is located on a side of the electrostatic adsorption roller (35) away from the hot pressing plate (28). The moving component is mounted on the top of the gluing component (21). The feeding component is fixed on the base (11). The extruding component is located at one end of the feeding component.

2. A seamless hot melt coating mechanism for clothing according to claim 1, characterized in that: The lifting component comprises a second U-shaped frame (24), a cylinder (25), a movable plate (27) and two second guide rods (26); the second U-shaped frame (24) is fixedly mounted on the top of the base (11); the movable plate (27) is located between the second U-shaped frame (24) and the base (11); the cylinder (25) is mounted on the top of the second U-shaped frame (24); the output end of the cylinder (25) passes through the second U-shaped frame (24) and is fixedly connected to the movable plate (27); the hot pressing plate (28) is fixedly mounted on the bottom end of the movable plate (27); the two second guide rods (26) are symmetrically slidably arranged on both sides of the second U-shaped frame (24); and the bottom end of each second guide rod (26) is fixedly connected to the movable plate (27).

3. A seamless hot-melt coating mechanism for clothing according to claim 2, characterized in that: Each connecting component comprises a plurality of connecting rods (30) and a plurality of springs (31). The plurality of springs (31) are equidistantly slidably arranged on the movable plate (27). The bottom end of each connecting rod (30) is fixedly connected to a positioning plate (29). Each spring (31) is sleeved on the outside of a connecting rod (30). The two ends of each spring (31) are respectively connected to the movable plate (27) and the positioning plate (29).

4. A seamless hot-melt coating mechanism for clothing according to claim 3, characterized in that: The moving component comprises a first U-shaped frame (17), a fixed frame (18), a screw rod (19), a moving block (20), a first motor (23) and two first guide rods (22). The first U-shaped frame (17) is fixed to the top of the base (11), the fixed frame (18) is mounted on the bottom of the first U-shaped frame (17), two ends of the screw rod (19) are rotatably connected to two sides of the fixed frame (18) through bearings, the first motor (23) is mounted on one end of the fixed frame (18), the output end of the first motor (23) is fixedly connected to one end of the screw rod (19), the two first guide rods (22) are symmetrically arranged on both sides of the screw rod (19), each of the first guide rods (22) is fixedly connected to the fixed frame (18), the moving block (20) is slidably arranged on the two first guide rods (22), the screw rod (19) passes through the moving block (20) and is threadedly matched with the moving block (20), and the glue coating component (21) is mounted on the bottom of the moving block (20).

5. A seamless hot-melt coating mechanism for clothing according to claim 4, characterized in that: The telescopic component comprises a connecting plate (32), a second electric push rod (33), a connecting shaft (34), a collecting box (36), a mounting plate (37) and a rotating seat (38); the connecting plate (32) is fixed between the first U-shaped frame (17) and the second U-shaped frame (24); the second electric push rod (33) is mounted on one side of the connecting plate (32); the collecting box (36) is fixed to the top of the base (11) and is located on the side of the processing table (12) away from the connecting plate (32); the mounting plate (37) is fixed to one side of the collecting box (36); the rotating seat (38) is rotatably arranged on the mounting plate (37) via a bearing; one end of the connecting shaft (34) is rotatably connected to the output end of the second electric push rod (33) via a bearing; the other end of the connecting shaft (34) is slidably arranged on the rotating seat (38); and the electrostatic adsorption roller (35) is fixedly mounted on the surface of the connecting shaft (34).

6. A seamless hot-melt coating mechanism for clothing according to claim 5, characterized in that: The rotating component comprises a mounting seat (44), a rotating shaft (45), a driving wheel (42), a transmission belt (43), a driven wheel (41), a limit block (40) and a limit groove (39), wherein the limit groove (39) is formed on the surface of the connecting shaft (34), the limit block (40) is slidably arranged inside the limit groove (39), the limit block (40) is fixedly mounted on the inner wall of the rotating seat (38), the driven wheel (41) is fixed on the outer wall of the rotating seat (38), the mounting seat (44) is fixed on the base (11), the rotating shaft (45) is rotatably arranged on the mounting seat (44), the driving wheel (42) is fixed to one end of the rotating shaft (45), and the transmission belt (43) is sleeved on the outer walls of the driven wheel (41) and the driving wheel (42).

7. A seamless hot-melt coating mechanism for clothing according to claim 6, characterized in that: The transmission component comprises a gear (46) and a rack (47), wherein the rack (47) is fixed to one side of the processing table (12), the gear (46) is located below the rack (47), the gear (46) is fixed to one end of the rotating shaft (45) away from the driving wheel (42), and the gear (46) and the rack (47) are meshed with each other.

8. A seamless hot-melt coating mechanism for clothing according to claim 7, characterized in that: The feeding component comprises a storage cylinder (49), a hose (48), a push plate (50) and a push rod (51); the storage cylinder (49) is mounted on the top of the base (11); one end of the hose (48) is connected to the storage cylinder (49); the other end of the hose (48) is connected to the glue coating component (21); the push plate (50) is slidably arranged inside the storage cylinder (49); the push rod (51) is plugged into one end of the storage cylinder (49) away from the hose (48); one end of the push rod (51) is fixedly connected to the push plate (50).

9. A seamless hot-melt coating mechanism for clothing according to claim 8, characterized in that: The extrusion component comprises a second guide rail (52), a slider (53), a second motor (56), a transmission shaft (57), two chains (55) and four sprocket wheels (54). The second guide rail (52) is located at one end of the storage cylinder (49) and is fixed on the base (11). The slider (53) is slidably arranged inside the second guide rail (52). One end of the push rod (51) away from the push plate (50) is fixedly connected to the slider (53). Each of the two sprocket wheels (54) is located on the second guide rail (52). On one side of the base (11), each sprocket (54) is rotatably mounted on the base (11), each chain (55) is sleeved on two sprockets (54) located on the same side, both sides of the slider (53) are respectively connected to the two chains (55), both ends of the transmission shaft (57) are fixedly connected to the two sprockets (54) at one end away from the storage cylinder (49), the second motor (56) is mounted on the top of the base (11), and the output end of the second motor (56) is fixedly connected to one of the sprockets (54).

10. The processing method of the seamless hot-melt coating mechanism for clothing according to any one of claims 1 to 9, characterized in that: The following steps are involved: S1. Fabric feeding: Laying the fabric to be processed flat on the processing table (12) so that the position to be glued is located below the glue-spreading component (21); S2. Fabric cleaning: The processing table (12) is driven to slide on the base (11) by the sliding component, and the cloth moves with the processing table (12). The electrostatic adsorption roller (35) is used to adsorb thread ends or debris on the cloth. At the same time, when the processing table (12) moves, the transmission component drives the rotating component to work, so that the electrostatic adsorption roller (35) can rotate during the movement of the processing table (12) to increase the adsorption area. When the adsorption of thread ends on the cloth is completed, the processing table (12) is reset under the action of the sliding component, and the telescopic component drives the electrostatic adsorption roller (35) to move to the top of the collection box (36). Then, the electrostatic adsorption roller (35) is powered off, and the thread ends directly fall into the collection box (36) for collection; S3. Gluing of fabric: The controller controls the operation of the extrusion component, so that the feeding component can convey the adhesive to the glue coating component (21), and the glue coating component (21) is used to coat the adhesive to the connection of the cloth. The controller controls the operation of the moving component, so that the moving component can drive the glue coating component (21) to move along the connection of the cloth, and evenly coat the connection of the cloth with adhesive. S4. Fabric pressing: After the gluing is completed, the processing table (12) is driven by the sliding component to move to the bottom of the hot pressing plate (28), and the controller controls the lifting component to work. The lifting component drives the hot pressing plate (28) and the two positioning plates (29) to move downward. During the downward movement, the two positioning plates (29) first contact the cloth to achieve the positioning of the cloth. As the lifting component continues to work, the hot pressing plate (28) is driven to continue to move downward. During the downward movement of the hot pressing plate (28), the adhesive is first preheated. When the hot pressing plate (28) moves to contact the adhesive on the cloth, the adhesive at the joint of the cloth can be pressed.

Citation Information

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