Folding assembly and double-station clothing dispensing processing equipment
By designing an adsorption and rotational flipping structure for the folding components, the problem of inaccurate material flipping in the dispensing-hot pressing process of new clothing materials was solved, achieving efficient material docking and processing, and improving production efficiency and equipment compatibility.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- FOSHAN SPONTANEOUS EQUIPMENT CO LTD
- Filing Date
- 2025-05-13
- Publication Date
- 2026-04-17
AI Technical Summary
In traditional garment manufacturing, the sewing technology for new garment materials is difficult, and the material flipping and folding during the glue-hot pressing process is not precise, resulting in weak connections, low production efficiency, and high costs.
Design a folding component including a first adsorption section, a second adsorption section, an eccentric motion section, and a moving section. Through negative pressure adsorption and eccentric rotational motion, it achieves precise docking and flipping of materials. Combined with the synergistic effect of the power section and the moving section, it improves material compatibility and production efficiency.
It improves the accuracy and efficiency of material processing, reduces production costs, and enhances the overall efficiency of dual-station garment gluing equipment.
Smart Images

Figure CN224125324U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of garment processing, and in particular to a folding component and a dual-station garment gluing processing equipment. Background Technology
[0002] In traditional garment manufacturing, stitching is commonly used to connect and assemble materials. For example, stitching is used to form the legs of trousers, and to form sleeves. However, with technological advancements, the materials used in garment manufacturing are no longer limited to traditional materials. New garment materials present certain technical challenges when using stitching techniques, thus necessitating a non-stitching method for material processing.
[0003] When using garment processing equipment to process materials through methods such as gluing, it is often necessary to flip and fold the materials. During this process, the two ends of the materials need to be precisely aligned so that the edges of the garment can be fully bonded, avoiding any loose connections.
[0004] Therefore, based on the current strong demand for garment adhesive bonding equipment in the dispensing-heat pressing garment processing technology, there is an urgent need for a more efficient folding component and dual-station garment adhesive dispensing equipment to improve production efficiency and reduce production costs. Utility Model Content
[0005] This utility model aims to solve at least one of the technical problems existing in the prior art.
[0006] First, this utility model provides a folding component, including a first adsorption part, a second adsorption part, an eccentric movement part, and a moving part;
[0007] The bottom end of the eccentric motion part is fixed to the mounting plane, and the output end of the eccentric motion part is rotatably connected to the first adsorption part.
[0008] The second adsorption part is fixedly connected to the output end of the moving part, and the mounting plane of the moving part is fixedly connected. The moving part causes the second adsorption part to move along the longitudinal direction of the mounting plane, so that the second adsorption part moves closer to or further away from the first adsorption part.
[0009] The first adsorption part is located on one side of the second adsorption part, and the first adsorption part and the second adsorption part are parallel to each other. The first adsorption part and the second adsorption part are used to adsorb materials. The eccentric motion part is used to drive the first adsorption part to rotate so that the upper surface of the first adsorption part contacts the upper surface of the second adsorption part.
[0010] As some sub-solutions of the above technical solution, the top of the first adsorption part is provided with multiple through holes, the first adsorption part has a cavity, the through holes are connected to the cavity, the first adsorption part is also provided with several first connection holes, the first connection holes are connected to the first negative pressure component; the first negative pressure component provides negative pressure, which is connected to the first adsorption part through a pipeline, so that the first adsorption part generates suction force, so that when the first adsorption part is flipped, it can drive the material above to flip together.
[0011] As some sub-solutions of the above technical solution, the top of the second adsorption part is provided with multiple through holes, the second adsorption part has a cavity, the through holes are connected to the cavity, the second adsorption part is also provided with several second connection holes, the second connection holes are connected to the second negative pressure component; the second negative pressure component provides negative pressure, which is connected to the second adsorption part through a pipeline, so that the second adsorption part generates suction force and adsorbs the material onto the second adsorption part.
[0012] As some sub-solutions of the above technical solution, the moving part includes a second adsorption stage connector and a second adsorption stage vertical movement part;
[0013] The upper end of the second adsorption stage connector is detachably connected to the second adsorption part, and the lower end is slidably connected to the vertical movement part of the second adsorption stage; the vertical movement part of the second adsorption stage drives the second adsorption part to move linearly along the vertical direction of the mounting plane.
[0014] As some sub-solutions of the above technical solution, the moving part also includes a second adsorption table longitudinal moving part, the second adsorption table vertical moving part is fixedly connected to the moving end of the second adsorption table longitudinal moving part, and the fixed end of the second adsorption table longitudinal moving part is fixedly connected to the mounting plane through the first connector; the second adsorption table longitudinal moving part drives the second adsorption table vertical moving part to move linearly along the longitudinal direction of the mounting plane.
[0015] As some sub-solutions of the above technical solution, it also includes a power unit, which includes a power source, a power source fixing component, and a coupling;
[0016] The power source is fixedly connected to the power source fixing component, the bottom end of the power source fixing component is fixedly connected to the mounting plane, and the power source fixing component is provided with a through hole for accommodating the coupling;
[0017] The output of the power source drives the eccentric moving part to rotate through a coupling.
[0018] As some sub-solutions of the above technical solution, the eccentric motion part includes an eccentric component, a rotating shaft, a bearing seat, and a bearing seat connecting plate;
[0019] The output end of the eccentric component is fixedly connected to the second adsorption part, and the input end of the eccentric component is eccentrically connected to the output end of the rotating shaft.
[0020] The input end of the rotating shaft is connected to the coupling, the rotating shaft is slidably connected to the shaft seat, the bottom end of the shaft seat is fixedly connected to the shaft seat connecting plate, and the shaft seat connecting plate is fixedly connected to the mounting plane.
[0021] As some sub-solutions of the above technical solution, the vertical motion part of the second adsorption stage includes a vertical linear motion component and a vertical linear motion component connector;
[0022] The output end of the vertical linear motion component is fixedly connected to the second adsorption stage connector, and the fixed end of the vertical linear motion component is fixedly connected to the side of the vertical linear motion component connector.
[0023] The bottom end of the vertical linear motion component connector is fixedly connected to the moving end of the longitudinal motion part of the second adsorption stage, and a reinforcing rib structure is provided between the vertical linear motion component connector and the vertical linear motion component.
[0024] As some sub-solutions of the above technical solution, a sunken connecting frame is also included;
[0025] The sinking connecting frame includes two lateral connecting plates and a bottom bearing plate. The lower ends of the two lateral connecting plates are fixedly connected to the two ends of the bottom bearing plate along its length. The top ends of the two lateral connecting plates are fixedly connected to the mounting plane. The projection position of the bottom bearing plate in the direction of gravity is located below the projection position of the first adsorption part in the direction of gravity.
[0026] Secondly, this utility model also provides a dual-station garment dispensing processing equipment that includes two sets of the above-mentioned folding components.
[0027] The folding assembly provided by this utility model has at least the following beneficial effects: the folding assembly provided by this utility model improves the compatibility of the folding assembly with materials by adjusting the distance between the second adsorption part and the first adsorption part through the use of the moving part. At the same time, the moving part can also adjust the position of the second adsorption part during the loading and unloading process, making loading and unloading more convenient, thereby improving production efficiency and material compatibility, and making the production efficiency of the dual-station garment dispensing processing equipment using two sets of this folding assembly higher.
[0028] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description
[0029] The above and / or additional aspects and advantages of this utility model will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which:
[0030] Figure 1 This is an isometric view of the material overturning structure under one working condition in a specific implementation embodiment;
[0031] Figure 2 This is an isometric view of the material overturning structure under another working condition in a specific implementation.
[0032] Figure 3 This is a partial isometric view of the structure in the specific implementation method;
[0033] Figure 4 This is an isometric view of another part of the structure in the specific implementation method;
[0034] Figure 5 This is an isometric view of another part of the structure in the specific implementation method;
[0035] Figure 6 This is an isometric drawing of a dual-station garment dispensing equipment at one angle in a specific embodiment.
[0036] Figure 7 This is an isometric view of a dual-station garment adhesive application equipment from another angle in a specific implementation embodiment;
[0037] Figure 8 This is an exploded view of the dual-station garment adhesive application equipment in a specific implementation.
[0038] In the attached diagram: 200 - Folding assembly; 201 - First adsorption part; 202 - Second adsorption part; 203 - Eccentric movement part; 204 - Second adsorption stage connector; 205 - Second adsorption stage vertical movement part; 206 - Second adsorption stage longitudinal movement part; 207 - Power unit;
[0039] 2031 - Eccentric component; 2032 - Rotating shaft; 2033 - Shaft seat; 2034 - Shaft seat connecting plate;
[0040] 2051 - Vertical linear motion component; 2052 - Vertical linear motion component connector;
[0041] 2071 - Power source; 2072 - Power source fixture; 2073 - Coupling;
[0042] 100-Hot pressing assembly; 300-Dispensing assembly; 400-Mounting bracket; 501-Recessed connecting bracket. Detailed Implementation
[0043] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this utility model, and should not be construed as limiting this utility model.
[0044] In the description of this utility model, it should be understood that the directional descriptions, such as up, down, front, back, left, right, etc., indicate the directional or positional relationship based on the directional or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0045] In the description of this utility model, unless otherwise explicitly defined, terms such as "setting," "installation," and "connection" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this utility model in conjunction with the specific content of the technical solution.
[0046] The following is combined Figures 1 to 8 The embodiments of this utility model are described below.
[0047] First, this utility model provides a folding assembly, including a first adsorption part 201, a second adsorption part 202, an eccentric movement part 203, and a moving part;
[0048] The bottom end of the eccentric motion part 203 is fixed to the mounting plane, and the output end of the eccentric motion part 203 is rotatably connected to the first adsorption part 201.
[0049] The second adsorption part 202 is fixedly connected to the output end of the moving part, and the mounting plane of the moving part is fixedly connected. The moving part causes the second adsorption part 202 to move along the longitudinal direction of the mounting plane, so that the second adsorption part 202 moves closer to or further away from the first adsorption part 202.
[0050] The first adsorption part 201 is located on one side of the second adsorption part 202, and the first adsorption part 201 and the second adsorption part 202 are parallel to each other. The first adsorption part 201 and the second adsorption part 202 are used to adsorb materials. The eccentric motion part 203 is used to drive the first adsorption part 201 to rotate so that the upper surface of the first adsorption part 201 contacts the upper surface of the second adsorption part 202.
[0051] The eccentric motion unit 203 is fixed to the mounting plane and drives the first adsorption unit 201, which adsorbs material, to flip, folding the material onto the upper surface of the second adsorption unit 202, which also adsorbs material, so that the material adsorbed by the first adsorption unit 201 and the material adsorbed by the second adsorption unit 202 are aligned. In some specific implementations, the first adsorption unit 201 adsorbs one end of a piece of material, and the second adsorption unit 202 adsorbs the other end of the material that has been coated with adhesive. After folding, the two ends of the material are aligned, forming an adhesive bond and improving processing efficiency. The moving part can drive the second adsorption unit 202 to move closer to or further away from the first adsorption unit 201, facilitating loading and unloading during the processing.
[0052] In some specific embodiments, the top of the first adsorption part 201 is provided with multiple through holes, and the first adsorption part has a cavity. The through holes are connected to the cavity. The first adsorption part 201 is also provided with several first connection holes, which are connected to the first negative pressure component. The first negative pressure component provides negative pressure and is connected to the first adsorption part 201 through a pipeline, so that the first adsorption part 201 generates suction force, and when the first adsorption part 201 flips, it can drive the material above it to flip together.
[0053] The porous structure on the surface of the first adsorption section 201 can generate negative pressure, thereby adsorbing the material, and releasing the material by releasing the pressure at the appropriate time.
[0054] In some specific embodiments, the top of the second adsorption part 202 is provided with multiple through holes, the second adsorption part 202 has a cavity, the through holes are connected to the cavity, the second adsorption part 202 is also provided with several second connection holes, the second connection holes are connected to the second negative pressure component; the second negative pressure component provides negative pressure, which is connected to the second adsorption part 202 through a pipeline, so that the second adsorption part 202 generates suction force and adsorbs the material onto the second adsorption part 202.
[0055] The negative pressure generated by the porous structure on the surface of the second adsorption part 202 can keep the other end of the material in a fixed state when the first adsorption part 201 folds one end of the material, thus avoiding processing errors.
[0056] In some specific embodiments, the moving part includes a second adsorption table connector 204 and a second adsorption table vertical movement part 205.
[0057] The upper end of the second adsorption stage connector 204 is detachably connected to the second adsorption part 202, and the lower end is slidably connected to the vertical movement part 205 of the second adsorption stage; the vertical movement part 205 of the second adsorption stage drives the second adsorption part 202 to move linearly along the vertical direction of the mounting plane.
[0058] Since the second adsorption unit 202 is detachable, after processing, the processed material can be removed by lifting one end of the second adsorption unit 202.
[0059] In some specific embodiments, the moving part further includes a second adsorption table longitudinal movement part 206, a second adsorption table vertical movement part 205 is fixedly connected to the moving end of the second adsorption table longitudinal movement part 206, and the fixed end of the second adsorption table longitudinal movement part 206 is fixedly connected to the mounting plane through a first connector; the second adsorption table longitudinal movement part 206 drives the second adsorption table vertical movement part 205 to move linearly along the longitudinal direction of the mounting plane.
[0060] The longitudinal motion section 206 of the second adsorption stage is used to drive the second adsorption section 202 to move longitudinally, thereby adjusting the distance between the second adsorption section 202 and the adsorption section 202.
[0061] In some specific embodiments, a power unit 207 is also included, which includes a power source 2071, a power source fixing member 2072, and a coupling 2073;
[0062] The power source 2071 is fixedly connected to the power source fixing part 2072. The bottom end of the power source fixing part 2072 is fixedly connected to the mounting plane. The power source fixing part 2072 is provided with a through hole for accommodating the coupling 2073.
[0063] The output end of the power source 2071 drives the eccentric motion part 203 to rotate through the coupling 2073.
[0064] The power source 207 can provide mechanical power, making it easy to work with other mechanical structures in rapid production, improving efficiency and avoiding errors caused by manual flipping by workers.
[0065] In some specific embodiments, the cardiac motion unit 203 includes an eccentric member 2031, a rotating shaft 2032, a bearing seat 2033, and a bearing seat connecting plate 2034;
[0066] The output end of the eccentric component 2031 is fixedly connected to the second adsorption part 202, and the input end of the eccentric component 2031 is eccentrically connected to the output end of the rotating shaft 2032.
[0067] The input end of the rotating shaft 2032 is connected to the coupling 2073. The rotating shaft 2032 is slidably connected to the bearing seat 2033. The bottom end of the bearing seat 2033 is fixedly connected to the bearing seat connecting plate 2034. The bearing seat connecting plate 2034 is fixedly connected to the mounting plane.
[0068] The eccentric motion unit 203 and the power unit 207 are connected by a coupling 2073 to obtain power output.
[0069] In some specific embodiments, the vertical motion part 205 of the second adsorption stage includes a vertical linear motion component 2051 and a vertical linear motion component connector 2052;
[0070] The output end of the vertical linear motion component 2051 is fixedly connected to the second adsorption stage connector 204, and the fixed end of the vertical linear motion component 2051 is fixedly connected to the side of the vertical linear motion component connector 2052.
[0071] The bottom end of the vertical linear motion connector 2052 is fixedly connected to the moving end of the longitudinal motion part 206 of the second adsorption table, and a reinforcing rib structure is provided between the vertical linear motion connector 2052 and the vertical linear motion part 2051.
[0072] The vertical linear motion connector 2052 and the vertical linear motion component 2051 are used to adjust the installation direction of the vertical linear motion connector 2052, and at the same time, the reinforcing rib structure increases and improves the stability of the equipment.
[0073] In some specific embodiments, a sunken connecting frame 501 is also included;
[0074] The sinking connecting frame 501 includes two lateral connecting plates and a bottom bearing plate. The lower ends of the two lateral connecting plates are fixedly connected to the two ends of the bottom bearing plate along its length. The top ends of the two lateral connecting plates are fixedly connected to the mounting plane. The projection position of the bottom bearing plate in the direction of gravity is located below the projection position of the first adsorption part 201 in the direction of gravity.
[0075] The recessed connecting bracket 501 is used to lower the installation position of the movable part, making it easier for the second adsorption part 202 to align with the first adsorption part 201.
[0076] Secondly, this utility model also provides a dual-station garment dispensing processing equipment that includes two sets of the above-mentioned folding components.
[0077] In some specific implementations, the dual-station garment dispensing equipment also includes a hot pressing assembly 100, a dispensing assembly 300, and a mounting frame 400.
Claims
1. A folding assembly, characterized by It includes a first adsorption section, a second adsorption section, an eccentric motion section, and a moving section; The bottom end of the eccentric motion part is fixed to the mounting plane, and the output end of the eccentric motion part is rotatably connected to the first adsorption part. The second adsorption part is fixedly connected to the output end of the moving part, and the mounting plane of the moving part is fixedly connected. The moving part causes the second adsorption part to move along the longitudinal direction of the mounting plane, so that the second adsorption part moves closer to or further away from the first adsorption part. The first adsorption part is located on one side of the second adsorption part, and the first adsorption part and the second adsorption part are parallel to each other. The first adsorption part and the second adsorption part are used to adsorb materials. The eccentric motion part is used to drive the first adsorption part to rotate so that the upper surface of the first adsorption part contacts the upper surface of the second adsorption part.
2. The folding assembly of claim 1, wherein, The top of the first adsorption part is provided with multiple through holes, and there is a cavity inside the first adsorption part. The through holes are connected to the cavity. The first adsorption part is also provided with several first connection holes, which are connected to the first negative pressure component. The first negative pressure component provides negative pressure and is connected to the first adsorption part through a pipeline, so that the first adsorption part generates suction force, and when the first adsorption part is flipped, it can drive the material above it to flip as well.
3. A folding assembly according to claim 2, wherein, The top of the second adsorption part is provided with multiple through holes, and there is a cavity inside the second adsorption part. The through holes are connected to the cavity. The second adsorption part is also provided with several second connection holes, which are connected to the second negative pressure component. The second negative pressure component provides negative pressure and is connected to the second adsorption part through a pipeline, so that the second adsorption part generates suction and adsorbs the material onto the second adsorption part.
4. A folding assembly according to claim 3, wherein The moving part includes a second adsorption table connector and a second adsorption table vertical moving part; The upper end of the second adsorption stage connector is detachably connected to the second adsorption part, and the lower end is rotatably connected to the vertical movement part of the second adsorption stage; the vertical movement part of the second adsorption stage drives the second adsorption part to move linearly along the vertical direction of the mounting plane.
5. A folding assembly according to claim 4, wherein The moving part further includes a second adsorption table longitudinal moving part, the second adsorption table vertical moving part is fixedly connected to the moving end of the second adsorption table longitudinal moving part, and the fixed end of the second adsorption table longitudinal moving part is fixedly connected to the mounting plane through a first connector; the second adsorption table longitudinal moving part drives the second adsorption table vertical moving part to move linearly along the longitudinal direction of the mounting plane.
6. A folding assembly according to claim 5, wherein It also includes a power unit, which includes a power source, a power source fixing component, and a coupling; The power source is fixedly connected to the power source fixing component, the bottom end of the power source fixing component is fixedly connected to the mounting plane, and the power source fixing component is provided with a through hole for accommodating the coupling; The output end of the power source drives the eccentric moving part to rotate through the coupling.
7. A folding assembly according to claim 6, wherein The eccentric moving part includes an eccentric component, a rotating shaft, a bearing seat, and a bearing seat connecting plate; The output end of the eccentric component is fixedly connected to the second adsorption part, and the input end of the eccentric component is eccentrically connected to the output end of the rotating shaft. The input end of the rotating shaft is connected to the coupling, the rotating shaft is rotatably connected to the shaft seat, the bottom end of the shaft seat is fixedly connected to the shaft seat connecting plate, and the shaft seat connecting plate is fixedly connected to the mounting plane.
8. A folding assembly according to claim 7, wherein The vertical motion section of the second adsorption stage includes a vertical linear motion component and a vertical linear motion component connector; The output end of the vertical linear motion component is fixedly connected to the second adsorption stage connector, and the fixed end of the vertical linear motion component is fixedly connected to the side of the vertical linear motion component connector. The bottom end of the vertical linear motion component connector is fixedly connected to the moving end of the longitudinal motion part of the second adsorption stage, and a reinforcing rib structure is provided between the vertical linear motion component connector and the vertical linear motion component.
9. A folding assembly according to claim 8, wherein, It also includes a sunken connecting frame; The sinking connecting frame includes two lateral connecting plates and a bottom bearing plate. The lower ends of the two lateral connecting plates are fixedly connected to the two ends of the bottom bearing plate along its length. The top ends of the two lateral connecting plates are fixedly connected to the mounting plane. The projection position of the bottom bearing plate in the direction of gravity is located below the projection position of the first adsorption part in the direction of gravity.
10. A double station garment dispensing apparatus characterized by, It includes two sets of folding components as described in any one of claims 1-9.