Automatic folding and setting device for clothing pocket

By designing an automatic folding and shaping device for garment pockets with automatic feeding, positioning and folding mechanisms, and efficient folding mechanisms, the problems of insufficient automatic feeding, inconvenient positioning, and low efficiency of existing devices are solved, and efficient and automated folding and shaping of garment pockets is achieved.

CN224350908UActive Publication Date: 2026-06-12SICHUAN WEIHU GARMENT CO LTD
View PDF 1 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SICHUAN WEIHU GARMENT CO LTD
Filing Date
2025-06-12
Publication Date
2026-06-12

AI Technical Summary

Technical Problem

Existing garment pocket folding and shaping devices lack automatic feeding functions, and positioning and folding are inconvenient and inefficient.

Method used

An automatic folding and shaping device for garment pockets was designed, comprising an automatic feeding mechanism, a positioning and folding mechanism, and a high-efficiency folding mechanism. The device achieves automatic feeding, precise positioning, and high-efficiency folding through components such as electric push rods, servo motors, and vacuum suction cups.

Benefits of technology

It achieves a high degree of automation, precise positioning, and efficient folding, saving labor costs and providing better folding results.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224350908U_ABST
    Figure CN224350908U_ABST
Patent Text Reader

Abstract

The utility model discloses a kind of clothing pocket automatic folding setting device, belong to clothing pocket processing field.A kind of clothing pocket automatic folding setting device, including device base, the inside of operating platform and the surface of folding plate are provided with efficient folding mechanism, the inner wall of operating platform and the surface of clothing fabric are provided with positioning flanging mechanism, the inside of feeding rack and feeding plate is provided with automatic feeding mechanism.The utility model not only makes folding setting device when using save the cost of manual feeding, so that the automation degree of folding setting device is higher, so that folding setting device when using can be accurately folded and set to clothing fabric, so that folding setting device is more comprehensive when folding clothing fabric, folding effect is better, and so that folding setting device when using can be folded into required size according to the size difference of pocket-like thin presser plate to clothing fabric, so that folding setting device is more efficient when folding clothing fabric.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of garment pocket processing technology, and in particular to an automatic folding and shaping device for garment pockets. Background Technology

[0002] A pocket is a bag-shaped part sewn onto clothing for carrying things. In garment processing, some garments need to have pockets attached. Pockets are usually first hemmed and shaped before being sewn onto the surface of the garment. Currently, the shaping of pocket fabric requires manually folding the fabric to the mold surface and then using ironing and shaping equipment to shape it. This hemming method is inefficient. In order to meet market needs, an automatic folding and shaping device for garment pockets is required.

[0003] A search revealed Chinese patent authorization number 202421192973.5, which discloses a garment folding device for garment processing. The device includes a folding worktable with a steam-setting groove at its top. The inner cavity of the steam-setting groove houses a folding mechanism, which includes a pocket-shaped sliding plate. The aforementioned garment folding device has the following shortcomings: Firstly, existing folding and setting devices typically lack automatic feeding functionality, resulting in wasted manual feeding costs and reduced automation. Secondly, existing folding and setting devices are inconvenient for precise positioning and folding, preventing accurate fabric folding and setting, leading to incomplete folding and poor folding results. Utility Model Content

[0004] The purpose of this invention is to solve the problems that existing folding and shaping devices usually do not have automatic feeding function, are inconvenient for positioning and folding, and are not efficient enough during folding. Therefore, an automatic folding and shaping device for clothing pockets is proposed.

[0005] To achieve the above objectives, the present invention adopts the following technical solution:

[0006] An automatic folding and shaping device for garment pockets includes a base, an operating table on the top surface of the base, a U-shaped frame mounted on the base, a shaping groove at the center of the operating table, garment fabric on the operating table, folding plates on the surface of the operating table, a feeding rack mounted on one side of the base, a second electric push rod on the inner wall of the feeding rack, a feeding plate mounted on the output end of the second electric push rod, a high-efficiency folding mechanism inside the operating table and on the surface of the folding plates, a positioning and folding mechanism on the inner wall of the operating table and on the surface of the garment fabric, and an automatic feeding mechanism inside the feeding rack and feeding plate.

[0007] As a preferred technical solution of this application, a first electric push rod is installed on the inner wall at the center of the U-shaped frame. A steam pressing component is installed at the output end of the first electric push rod. Guide posts are installed on the inner wall of the U-shaped frame. The guide posts slide in contact with the surface of the steam pressing component. A pocket-shaped thin pressure plate is installed on the bottom surface of the steam pressing component by screws. The diameter of the shaping groove is larger than the diameter of the pocket-shaped thin pressure plate. The bottom end of the folding plate extends into the interior of the operating table and slides in contact with the inner wall of the operating table. The folding plates are located on both sides of the garment fabric. A connecting pipe is installed on the surface of the steam pressing component. Each device base has a screw installed inside, which rotates with the inner wall of the device base. A screw cylinder is threaded onto the surface of the screw, and the screw cylinder slides with the inner wall of the device base. The surface of the screw cylinder is fixed to the surface at the center of the bottom of the operating table. A first servo motor is installed on the inner wall of each device base. The output end of the first servo motor is connected to a rotating shaft via a coupling, and one end of the rotating shaft is fixed to the surface of the screw. A material holding box is provided on one side of the device base, which is located between the device base and the feeding rack. Photoelectric sensors are installed on the surfaces of the steam pressing component and the feeding plate.

[0008] As a preferred technical solution of this application, the high-efficiency folding mechanism is composed of a guide groove, a holding cavity, a gear, a support frame, a rotating motor, and a rack. The inside of the operating table is provided with a holding cavity, and a rack is provided inside the holding cavity. The rack slides and engages with the inner wall of the holding cavity. The surface of the rack is fixed to the surface at the bottom of the folding plate. The surface of the operating table is provided with a guide groove, and the guide groove slides and engages with the surface of the folding plate. A support frame is installed inside the holding cavity.

[0009] As a preferred technical solution of this application, the inner wall of the support frame is provided with a gear, the gear rotates and engages with the inner wall of the support frame, the gear meshes with the rack, a rotating motor is mounted on the surface of the support frame, and a rotating rod is mounted on the output end of the rotating motor through a coupling, and one end of the rotating rod passes through the support frame and is fixed to the surface at the center position of the gear.

[0010] As a preferred technical solution of this application, the positioning and folding mechanism is composed of a positioning pressure plate, a third electric push rod, a groove and a holding slot. The inner wall of the operating table is provided with a holding slot. The third electric push rod is installed inside the holding slot, and the output end of the third electric push rod extends into the interior of the shaping slot.

[0011] As a preferred technical solution of this application, the surface of the garment fabric is provided with a positioning pressure plate, the bottom end of the positioning pressure plate extends into the interior of the shaping groove and is fixed to the surface of the third electric push rod, the inner wall of the positioning pressure plate is in contact with the surface of the garment fabric, and the inner wall of the operating table is provided with grooves, and the grooves slide and cooperate with the surface of the positioning pressure plate.

[0012] As a preferred technical solution of this application, the automatic feeding mechanism consists of a second servo motor, a lead screw body, a lead screw nut, an air pump, and a vacuum suction cup. The lead screw body is installed inside the feeding rack, and the lead screw body rotates and engages with the inner wall of the feeding rack. The lead screw nut is threaded onto the surface of the lead screw body, and the lead screw nut slides and engages with the inner wall of the feeding rack. The second servo motor is installed on the inner wall of the feeding rack. The output end of the second servo motor is mounted with a shaft through a coupling, and one end of the shaft is fixed to the surface of the lead screw body. The surface of the lead screw nut is fixed to the surface at the top position of the second electric push rod.

[0013] As a preferred technical solution of this application, a vacuum suction cup is installed inside the feeding plate, and an air pump is installed on the surface at the top of the feeding plate. The input end of the air pump passes through the feeding plate and is connected to the inside of the vacuum suction cup.

[0014] Compared with the prior art, this utility model provides an automatic folding and shaping device for clothing pockets, which has the following beneficial effects:

[0015] 1. This automatic folding and shaping device for garment pockets, through its automatic feeding mechanism, achieves the function of saving the cost of manual feeding and making the folding and shaping device more automated, thus solving the problem that existing technologies usually do not have the function of automatic feeding.

[0016] 2. This automatic folding and shaping device for garment pockets, through its positioning and folding mechanism, enables precise folding and shaping of garment fabrics. This makes the folding and shaping device more comprehensive and achieves better folding results, solving the problem of inconvenient positioning and folding in existing technologies.

[0017] 3. This automatic folding and shaping device for garment pockets, through its efficient folding mechanism, enables the garment fabric to be folded to the required size according to the different dimensions of the pocket-shaped thin pressure plate. This makes the folding and shaping device more efficient in folding garment fabrics, solving the problem of insufficient efficiency in the existing technology. Attached Figure Description

[0018] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0019] Figure 2 This is a schematic diagram of the front cross-sectional structure of this utility model;

[0020] Figure 3 This is an enlarged side view sectional diagram of the present invention;

[0021] Figure 4 This is a top view enlarged cross-sectional structural schematic diagram of the present invention;

[0022] Figure 5 For the present utility model Figure 2 Enlarged structural diagram of a medium- and high-efficiency folding mechanism;

[0023] Figure 6 For the present utility model Figure 3 Enlarged structural diagram of the center positioning folding mechanism;

[0024] Figure 7 For the present utility model Figure 3 Enlarged schematic diagram of the automatic feeding mechanism.

[0025] In the picture:

[0026] 1. Device base; 101. Controller; 102. Operating table; 103. U-shaped frame; 104. Folding plate; 105. Steam ironing assembly; 106. Guide column; 107. First electric push rod; 108. Connecting pipe; 109. Photoelectric sensor; 110. Pocket-shaped thin pressure plate; 111. Shaping groove; 112. Garment fabric; 113. Screw barrel; 114. First servo motor; 115. Screw; 116. Feeding rack; 117. Material holding box; 11 8. Second electric push rod; 119. Feeding plate; 2. High-efficiency folding mechanism; 21. Guide groove; 22. Holding cavity; 23. Gear; 24. Support frame; 25. Rotary motor; 26. Strip rack; 3. Positioning and folding mechanism; 31. Positioning pressure plate; 32. Third electric push rod; 33. Groove; 34. Holding groove; 4. Automatic feeding mechanism; 41. Second servo motor; 42. Lead screw body; 43. Lead screw nut; 44. Air pump; 45. Vacuum suction cup. Detailed Implementation

[0027] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the protection scope of the present utility model. Example

[0028] Reference Figures 1 to 4An automatic folding and shaping device for garment pockets includes a base 1, a controller 101 (e.g., LA series) mounted on the surface of the base 1, an operating table 102 at the top of the base 1, a U-shaped frame 103 mounted on the surface of the base 1, a first electric push rod 107 (e.g., DG series) mounted on the inner wall of the center of the U-shaped frame 103, an input end of the first electric push rod 107 electrically connected to the output end of the controller 101, and a steam pressing assembly 105 mounted on the output end of the first electric push rod 107. The input end of the steam pressing assembly 105 is electrically connected to the output end of the controller 101. Guide posts 106 are installed on the inner walls of the frame 103. The guide posts 106 slide against the surface of the steam pressing assembly 105. A pocket-shaped thin pressure plate 110 is installed on the bottom surface of the steam pressing assembly 105 by screws. A shaping groove 111 is opened on the surface of the center of the operating table 102. The diameter of the shaping groove 111 is larger than the diameter of the pocket-shaped thin pressure plate 110. Garment fabric 112 is placed on the surface of the operating table 102. Folding plates 104 are provided on the surface of the operating table 102. The bottom end of the folding plates 104 extends into the interior of the operating table 102 and slides against the inner wall of the operating table 102. The folding plates 104 are located on both sides of the garment fabric 112. The steam pressing assembly 105... The surface of the device base 1 is equipped with a connecting pipe 108. Each device base 1 has a screw 115 inside, which rotates with the inner wall of the device base 1. A screw cylinder 113 is threaded onto the surface of the screw 115, and slides with the inner wall of the device base 1. The surface of the screw cylinder 113 is fixed to the surface at the center of the bottom of the operating table 102. Each device base 1 has a first servo motor 114 mounted on its inner wall. The first servo motor 114 can be of the HF series. The input end of the first servo motor 114 is electrically connected to the output end of the controller 101. The output end of the first servo motor 114 is mounted with a rotating shaft via a coupling, and one end of the rotating shaft is fixed to the surface of the screw 115. A feeding rack 116 is installed on one side of the device base 1, and a holding box 117 is provided on one side of the device base 1. The holding box 117 is located between the device base 1 and the feeding rack 116. A second electric push rod 118 is provided on the inner wall of the feeding rack 116. The model of the second electric push rod 118 can be DG series. The input end of the second electric push rod 118 is electrically connected to the output end of the controller 101. A feeding plate 119 is installed on the output end of the second electric push rod 118. A photoelectric sensor 109 is installed on the surface of both the steam heating assembly 105 and the feeding plate 119. The model of the photoelectric sensor 109 can be E series. The input end of the photoelectric sensor 109 is electrically connected to the output end of the controller 101.

[0029] Reference Figure 2 and Figure 5Furthermore, the system also includes a high-efficiency folding mechanism 2 installed inside the operating table 102 and on the surface of the folding plate 104. The high-efficiency folding mechanism 2 consists of a guide groove 21, a holding cavity 22, a gear 23, a support frame 24, a rotating motor 25, and a rack 26. The operating table 102 has a holding cavity 22 inside each cavity, and a rack 26 is installed inside each cavity. The rack 26 slides against the inner wall of the cavity 22. The surface of the rack 26 is fixed to the surface at the bottom of the folding plate 104. The surface of the operating table 102 has a guide groove 21, which slides against the folding plate 104. The surfaces of the folding plates 104 slide against each other. A support frame 24 is installed inside the holding cavity 22. A gear 23 is installed on the inner wall of the support frame 24, rotating with it. The gear 23 meshes with the rack 26. A rotary motor 25 (e.g., JO series) is mounted on the surface of the support frame 24. The input of the rotary motor 25 is electrically connected to the output of the controller 101. A rotating rod is mounted on the output of the rotary motor 25 via a coupling, with one end of the rod passing through the support frame 24 and fixed to the surface at the center of the gear 23. By setting up a high-efficiency folding mechanism, the garment fabric 112 can be folded to the required size according to the different dimensions of the pocket-shaped thin pressure plate 110, making the folding and shaping device more efficient when folding the garment fabric 112.

[0030] Reference Figure 3 and Figure 6 Furthermore, the inner wall of the operating table 102 and the surface of the garment fabric 112 are provided with a positioning and folding mechanism 3. The positioning and folding mechanism 3 consists of a positioning pressure plate 31, a third electric push rod 32, a groove 33, and a holding groove 34. The inner wall of the operating table 102 is provided with a holding groove 34. The third electric push rod 32 is installed inside the holding groove 34. The model of the third electric push rod 32 can be selected from the DG series. The input end of the third electric push rod 32 is electrically connected to the output end of the controller 101. The output end of the third electric push rod 32 extends into the interior of the shaping groove 111. The surface of the garment fabric 112 is provided with a positioning pressure plate 31. The bottom end of the positioning pressure plate 31 extends into the interior of the shaping groove 111 and is fixed to the surface of the third electric push rod 32. The inner wall of the positioning pressure plate 31 is in contact with the surface of the garment fabric 112. The inner wall of the operating table 102 is provided with a groove 33. The groove 33 and the surface of the positioning pressure plate 31 slide against each other. By setting up a positioning and folding mechanism, the garment fabric 112 can be precisely folded and shaped, making the folding and shaping device more comprehensive and achieving a better folding effect when folding the garment fabric 112.

[0031] Reference Figure 3 and Figure 7Furthermore, the feeding rack 116 and feeding plate 119 are internally equipped with an automatic feeding mechanism 4. The automatic feeding mechanism 4 consists of a second servo motor 41, a lead screw body 42, a lead screw nut 43, an air pump 44, and a vacuum suction cup 45. The lead screw body 42 is internally installed in the feeding rack 116, and the lead screw body 42 rotates with the inner wall of the feeding rack 116. The lead screw nut 43 is threaded onto the surface of the lead screw body 42, and the lead screw nut 43 slides with the inner wall of the feeding rack 116. The second servo motor 41 is installed on the inner wall of the feeding rack 116. The model of the second servo motor 41 can be selected from the HF series. The input end of the servo motor 41 is electrically connected to the output end of the controller 101. The output end of the second servo motor 41 is mounted with a shaft via a coupling, and one end of the shaft is fixed to the surface of the lead screw body 42. The surface of the lead screw nut 43 is fixed to the surface at the top position of the second electric push rod 118. A vacuum suction cup 45 is installed inside the feeding plate 119, and an air pump 44 is installed on the surface at the top position of the feeding plate 119. The air pump 44 can be a YX series model. The input end of the air pump 44 is electrically connected to the output end of the controller 101, and the input end of the air pump 44 passes through the feeding plate 119 and communicates with the interior of the vacuum suction cup 45. By setting up an automatic feeding mechanism, the cost of manual feeding can be saved, and the automation level of the folding and shaping device can be increased.

[0032] Specifically, when this automatic pocket folding and shaping device is working: first, the device base 1 is placed in the designated position, and then the material container 117 holding the garment fabric 112 is placed in the designated position between the device base 1 and the feeding rack 116. Subsequently, the controller 101 controls the first servo motor 114 to work. Under the action of the first servo motor 114, the screw 115 is driven to rotate on the inner wall of the device base 1. Under the threaded engagement between the screw 115 and the screw barrel 113, the screw barrel 113 is driven to move left and right inside the device base 1. The screw barrel 113 drives the operating table 102 to slide on the surface of the device base 1. When the operating table 102 moves to the feeding rack 116... When the material is at the designated position below, the photoelectric sensor 109 on the surface of the feeding plate 119 senses the position of the garment fabric 112. The photoelectric sensor 109 then sends a signal to the controller 101, causing the controller 101 to activate the second servo motor 41. The second servo motor 41 drives the lead screw body 42 to rotate on the inner wall of the feeding rack 116. Under the threaded engagement of the lead screw body 42 and the lead screw nut 43, the lead screw nut 43 moves left and right inside the feeding rack 116. When the lead screw nut 43 moves, it drives the second electric push rod 118 to move left and right. The controller 101 controls the second electric push rod 118 to operate, and the second electric push rod 118 interacts with the upper... Under the combined action of the material plate 119, the garment fabric 112 to be folded and shaped inside the material box 117 is taken out. Specifically, the controller 101 controls the air pump 44 to work, and the air pump 44 extracts the air from the vacuum suction cup 45, so that a negative pressure area is formed inside the vacuum suction cup 45. This negative pressure is transmitted to the surface of the garment fabric 112 through the surrounding sealing edge, so that the vacuum suction cup 45 can firmly suck up the garment fabric 112 inside the material box 117. The second electric push rod 118 drives the loading plate 119 to move upward, and the loading plate 119 places the garment fabric 112 at the designated position on the surface of the operating table 102, and then... 2. Automatic feeding is performed. After feeding is completed, the controller 101 controls the air pump 44 to shut down, and the vacuum suction cup 45 separates from the surface of the garment fabric 112 to realize the automatic feeding function of the folding and shaping device. This saves the cost of manual feeding when using the folding and shaping device and makes the automation level of the folding and shaping device higher. Among them, the second servo motor 41 is equipped with a limiter. The function of the limiter is to limit the left and right movement distance of the lead screw nut 43. When the limiter reaches the set left and right limit position, it sends a stop command to the controller 101. The controller 101 controls the second servo motor 41 to stop working. This process is existing technology and will not be described in detail here.

[0033] Subsequently, the garment fabric 112 to be folded and shaped is placed above the shaping groove 111 on the surface of the operating table 102. The garment fabric 112 is then placed between adjacent folding plates 104. The first servo motor 114 drives the operating table 102 to move away from the loading rack 116. When the photoelectric sensor 109 senses that the garment fabric 112 has moved directly below the steam pressing assembly 105, the photoelectric sensor 109 sends a signal to the controller 101, causing the photoelectric sensor 109 to control the first servo motor 114 to turn off. Subsequently, the controller 101 controls the first electric push rod 107 on the inner wall of the U-shaped frame 103 to operate. Under the action of the first electric push rod 107, the steam pressing assembly 105 and the pocket-shaped thin pressure plate 110 move downward, causing the pocket-shaped thin pressure plate 110 to press down on the garment fabric 112. At this time, the garment fabric 112 moves towards the shaping groove 111. The internal movement of component 1, under the action of the pocket-shaped thin pressure plate 110, determines the size of the garment fabric 112. If the user needs to make pockets of different sizes, they only need to loosen the screws on the surface of the pocket-shaped thin pressure plate 110 to remove the pocket-shaped thin pressure plate 110 from the surface of the steam ironing component 105 and replace it with a pocket-shaped thin pressure plate 110 of a different size. Subsequently, under the action of the folding plate 104, the edge of the garment fabric 112 is folded and wrapped around the surface of the pocket-shaped thin pressure plate 110, and the garment fabric 112 is folded. Then, the controller 101 controls the steam ironing component 105 to work, and steam is released under the action of the steam ironing component 105 to heat the surface of the pocket-shaped thin pressure plate 110, thereby ironing and shaping the surface of the garment fabric 112. The internal structure of the steam ironing component 105 is prior art and will not be described in detail here.

[0034] Subsequently, when the garment fabric 112 is placed on the surface of the operating table 102, the controller 101 controls the third electric push rod 32 inside the holding slot 34 to work. Under the action of the third electric push rod 32, the positioning pressure plate 31 is driven to move until it contacts the surface of the garment fabric 112. When the positioning pressure plate 31 moves, it is guided by the groove 33. Under the action of the positioning pressure plate 31, the garment fabric 112 is clamped on the surface of the operating table 102, which avoids displacement of the garment fabric 112 during folding, thus preventing the garment fabric 112 from being not accurately shaped. At the same time, under the action of the positioning pressure plate 31, the other sides of the garment fabric 112 can be folded to realize the positioning and folding function of the folding and shaping device. This allows the folding and shaping device to accurately fold and shape the garment fabric 112, making the folding and shaping device more comprehensive and the folding effect better.

[0035] Subsequently, after the pocket-shaped thin pressure plate 110 moves downward into the shaping groove 111 and presses against the surface of the garment fabric 112, the controller 101 controls the rotating motor 25 on the surface of the support frame 24 to work. Under the action of the rotating motor 25, the gear 23 is driven to rotate on the inner wall of the support frame 24. Under the meshing action of the gear 23 and the rack 26, the rack 26 is driven to slide on the inner wall of the holding cavity 22. At this time, the rack 26 drives the folding plate 104 to slide inside the guide groove 21, so that the folding plate 104 is folded. The plates 104 move toward one side of the garment fabric 112. Under the action of the folding plates 104, the edges of the garment fabric 112 are folded, so that the edges of the garment fabric 112 are folded and wrapped around the surface of the pocket-shaped thin pressure plate 110, so as to realize the efficient folding function of the folding and shaping device. Thus, when the folding and shaping device is used, it can fold the garment fabric 112 to the required size according to the different sizes of the pocket-shaped thin pressure plate 110, making the folding and shaping device more efficient when folding the garment fabric 112. The controller 101 controls the first electric push rod 107, photoelectric sensor 109, first servo motor 114, second electric push rod 118, rotary motor 25, third electric push rod 32, second servo motor 41, and air pump 44. The controller 101 has sufficient processing power and interface to simultaneously monitor and control the operating status and actions of multiple electrical components, and perform centralized control to ensure the efficient operation of the entire folding and shaping device. The specific connection and control method is existing technology and will not be described in detail here. Finally, the use of the folding and shaping device is completed.

[0036] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.

Claims

1. An automatic folding and shaping device for garment pockets, comprising a device base (1), characterized in that: An operating table (102) is provided on the surface of the top position of the device base (1). A U-shaped frame (103) is installed on the surface of the device base (1). A shaping groove (111) is opened on the surface of the center position of the operating table (102). Clothing fabric (112) is placed on the surface of the operating table (102). Folding plates (104) are provided on the surface of the operating table (102). A feeding rack (116) is installed on one side of the device base (1). A second electric push rod (118) is provided on the inner wall of the feeding rack (116). A feeding plate (119) is installed at the output end of the second electric push rod (118). A high-efficiency folding mechanism (2) is provided inside the operating table (102) and on the surface of the folding plate (104). A positioning folding mechanism (3) is provided on the inner wall of the operating table (102) and on the surface of the clothing fabric (112). An automatic feeding mechanism (4) is provided inside the feeding rack (116) and the feeding plate (119).

2. The automatic folding and shaping device for clothing pockets according to claim 1, characterized in that: A first electric push rod (107) is installed on the inner wall at the center of the U-shaped frame (103). A steam ironing assembly (105) is installed at the output end of the first electric push rod (107). Guide columns (106) are installed on the inner wall of the U-shaped frame (103). The guide columns (106) slide against the surface of the steam ironing assembly (105). A pocket-shaped thin pressure plate (110) is installed on the bottom surface of the steam ironing assembly (105) by screws. The diameter of the shaping groove (111) is larger than the diameter of the pocket-shaped thin pressure plate (110). The bottom end of the folding plate (104) extends into the interior of the operating table (102) and slides against the inner wall of the operating table (102). The folding plates (104) are located on both sides of the garment fabric (112). A connecting pipe (108) is installed on the surface of the steam ironing assembly (105). The device base ( 1) Each of the components is equipped with a screw (115), which rotates with the inner wall of the device base (1). The screw (115) is threaded with a screw cylinder (113), which slides with the inner wall of the device base (1). The surface of the screw cylinder (113) is fixed to the surface at the center of the bottom of the operating table (102). The inner wall of the device base (1) is equipped with a first servo motor (114). The output end of the first servo motor (114) is connected to a rotating shaft via a coupling, and one end of the rotating shaft is fixed to the surface of the screw (115). A material holding box (117) is provided on one side of the device base (1). The material holding box (117) is located between the device base (1) and the feeding rack (116). The surface of the steam hot pressing component (105) and the feeding plate (119) is equipped with photoelectric sensors (109).

3. The automatic folding and shaping device for clothing pockets according to claim 1, characterized in that: The high-efficiency folding mechanism (2) consists of a guide groove (21), a holding cavity (22), a gear (23), a support frame (24), a rotating motor (25), and a rack (26). The operating table (102) is provided with a holding cavity (22) inside. The holding cavity (22) is provided with a rack (26) inside. The rack (26) slides and engages with the inner wall of the holding cavity (22). The surface of the rack (26) is fixed to the surface at the bottom of the folding plate (104). The surface of the operating table (102) is provided with a guide groove (21). The guide groove (21) slides and engages with the surface of the folding plate (104). The holding cavity (22) is provided with a support frame (24).

4. The automatic folding and shaping device for clothing pockets according to claim 3, characterized in that: The inner wall of the support frame (24) is provided with a gear (23), which rotates and engages with the inner wall of the support frame (24). The gear (23) meshes with the rack (26). A rotating motor (25) is installed on the surface of the support frame (24). A rotating rod is installed at the output end of the rotating motor (25) through a coupling. One end of the rotating rod passes through the support frame (24) and is fixed to the surface at the center position of the gear (23).

5. The automatic folding and shaping device for clothing pockets according to claim 1, characterized in that: The positioning and folding mechanism (3) consists of a positioning pressure plate (31), a third electric push rod (32), a groove (33) and a holding groove (34). The inner wall of the operating table (102) is provided with a holding groove (34). The third electric push rod (32) is installed inside the holding groove (34). The output end of the third electric push rod (32) extends into the interior of the shaping groove (111).

6. The automatic folding and shaping device for clothing pockets according to claim 1, characterized in that: The surface of the garment fabric (112) is provided with a positioning plate (31). The bottom end of the positioning plate (31) extends into the interior of the shaping groove (111) and is fixed to the surface of the third electric push rod (32). The inner wall of the positioning plate (31) is in contact with the surface of the garment fabric (112). The inner wall of the operating table (102) is provided with grooves (33). The grooves (33) slide and cooperate with the surface of the positioning plate (31).

7. The automatic folding and shaping device for clothing pockets according to claim 1, characterized in that: The automatic feeding mechanism (4) consists of a second servo motor (41), a lead screw body (42), a lead screw nut (43), an air pump (44), and a vacuum suction cup (45). The lead screw body (42) is installed inside the feeding rack (116). The lead screw body (42) and the inner wall of the feeding rack (116) rotate and cooperate with each other. The lead screw nut (43) is threaded on the surface of the lead screw body (42). The lead screw nut (43) and the inner wall of the feeding rack (116) slide and cooperate with each other. The second servo motor (41) is installed on the inner wall of the feeding rack (116). The output end of the second servo motor (41) is mounted with a shaft through a coupling. One end of the shaft is fixed to the surface of the lead screw body (42). The surface of the lead screw nut (43) is fixed to the surface at the top position of the second electric push rod (118).

8. The automatic folding and shaping device for clothing pockets according to claim 1, characterized in that: A vacuum suction cup (45) is installed inside the feeding plate (119), and an air pump (44) is installed on the surface of the top position of the feeding plate (119). The input end of the air pump (44) passes through the feeding plate (119) and is connected to the inside of the vacuum suction cup (45).

Citation Information

Patent Citations

  • Garment edge folding device special for garment processing

    CN222160613U