Single-bead formwork capable of synchronous assembly and pressing
By using a single-stop template that can be pressed synchronously, and by using a pressing and positioning mechanism to assist in pressing the fabric and lace together, the problems of thread bending and uneven stop caused by manual operation are solved, thus improving the quality and efficiency of garment sewing.
Patent Information
- Application Number
- CN202522179300.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-15
- Publication Date
- 2026-08-25
- Estimated Expiration
- 2035-10-15
AI Technical Summary
In the garment manufacturing process, quality defects such as bent seams and uneven width of seams caused by manual operation affect the production efficiency and economic benefits of garment sewing.
A single-stop template that can be pressed synchronously is used. The pressing mechanism assists in pressing the fabric and lace together, and the positioning mechanism ensures that the seam extends along the preset trajectory, eliminating quality defects caused by manual operation.
Significantly reduces the rework rate, increases the finished product qualification rate, improves garment sewing production efficiency and economic benefits, and ensures consistent edge width.
Smart Images

Figure CN224678285U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of garment template technology, specifically to a single-stop template that can be synchronously assembled and pressed. Background Technology
[0002] In garment manufacturing, a single-edge design is a special design method typically used for openings or seams in clothing, such as pockets, cuffs, collars, and chest areas. A single-edge design ensures that the edges of garment openings are clear, smooth, and symmetrical. For example, when making pockets, a single-edge template helps ensure the pocket opening is the right shape and smooth, avoiding asymmetry or excessive size, thus making the entire garment more professional and aesthetically pleasing. In the process of splicing lace and fabric in garment manufacturing, the lace and fabric must first be spliced together using a flatbed sewing machine. After splicing, the fabric is turned over, and a single-edge sewing operation is performed on the spliced area. This process of splicing lace and then performing single-edge sewing needs to be repeated according to the number of lace pieces spliced onto the fabric until the entire garment splicing and sewing operation is completed. However, when the above process is completed manually, the precision deviation of manual operation is prone to causing quality defects such as bent seams and uneven edge width in the finished product. These quality defects directly lead to an increased rework rate, further increasing the overall workload and production cost of the process, and affecting the production efficiency and economic benefits of garment sewing. Therefore, we propose a single-edge template that can be spliced and pressed simultaneously. Utility Model Content
[0003] To address the aforementioned issues, a single-stop template that can be synchronously pressed is provided. Through a pressing mechanism, the fabric is folded and pressed together with the lace, ensuring that the seam extends along a preset trajectory during single-stop sewing. This effectively eliminates quality defects such as bent seams and uneven stop widths that are prone to occur during manual operation, significantly reducing the rework rate. It solves the technical problem that in the splicing and sewing process of garment lace and fabric, quality defects such as bent seams and uneven stop widths are easily caused by deviations in the precision of manual operation, affecting the production efficiency and economic benefits of garment sewing.
[0004] To address the problems of existing technologies, this utility model provides a single-stop template that can be synchronously pressed, applied to the splicing and sewing of garment lace and fabric. It includes a template body A, a template body B rotatably mounted on one side of the template body A, and a first pressure plate A rotatably mounted on the side of the template body A near the template body B. A positioning mechanism is provided between the first pressure plate A and the template body A to prevent the sewing area of the garment lace from shifting from the positioning reference of the first pressure plate A. A pressing mechanism for controlling the folding width of the fabric is provided on the template body A and the template body B.
[0005] Preferably, a sewing groove A is provided on the template body A, and the sewing groove A runs through the upper and lower sides of the template body A. A sewing groove B is provided on the template body B at the corresponding part of the sewing groove A, and the sewing groove B runs through the upper and lower sides of the template body B.
[0006] Preferably, the positioning mechanism includes a first magnetic block A and a first magnetic block B; the first magnetic block A is fixedly connected to the surface of the template body A; and the first magnetic block B is fixedly connected to the surface of the first pressure plate A.
[0007] Preferably, the seam pressing mechanism includes two first pressure plates B and a second magnetic block C; the two first pressure plates B are rotatably disposed on both sides of the first pressure plate A; the second magnetic block C is fixedly connected to the surface of the first pressure plate B.
[0008] Preferably, the seam pressing mechanism further includes a first pressing plate C and a second magnetic block D; the first pressing plate C is rotatably disposed on the side of the template body A near the sewing groove A; the second magnetic block D is fixedly connected to the surface of the first pressing plate C.
[0009] Preferably, the pressing mechanism further includes a continuous pressing assembly, which is used to maintain a fixed fold width by continuously folding the fabric. The continuous pressing assembly includes a second pressing plate A and a second pressing plate B; the second pressing plate A is rotatably mounted on the template body B; and the second pressing plate B is rotatably mounted on the second pressing plate A.
[0010] Preferably, the continuous pressing assembly further includes a second magnetic block A and a second magnetic block B; the second magnetic block A is fixedly connected to the side of the template body B near the second pressure plate B; the second magnetic block B is fixedly connected to the side of the second pressure plate B near the second magnetic block A.
[0011] The advantages of this utility model compared to the prior art are: 1. By using a pressing mechanism to assist in folding the fabric and pressing it together with the lace, it ensures that the seam extends along the preset track when sewing a single stop, effectively eliminating quality defects such as bent seam and uneven stop width that are prone to occur during manual operation. This significantly reduces the rework rate and solves the technical problem that in the splicing and sewing process of garment lace and fabric, quality defects such as bent seam and uneven stop width are easily caused by the precision deviation of manual operation, which affects the production efficiency and economic benefits of garment sewing.
[0012] 2. The positioning mechanism ensures reliable positioning of the first pressure plate A and the template body A, ensuring that the lace of the garment does not shift randomly within the sewing groove A. This effectively avoids relative offset between the lace and the fabric, and prevents the lace from shifting due to the tension of the flatbed sewing. It solves the technical problem that manual positioning requires repeated adjustments to the lace position, resulting in low adaptation efficiency and failing to meet the requirements of positioning consistency and stability for large-scale garment production. Attached Figure Description
[0013] Figure 1 This is a three-dimensional schematic diagram of template body A and template body B and their connection structure of a single-stop template that can be synchronously assembled.
[0014] Figure 2 This is a three-dimensional schematic diagram of the first pressure plate A and the first pressure plate B of a single-stop template that can be synchronously assembled and pressed, and their connection structure.
[0015] Figure 3 This is a three-dimensional schematic diagram of the sewing groove A and sewing groove B and their connection structure of a single stop template that can be synchronously pressed.
[0016] Figure 4 This is a three-dimensional schematic diagram of the first pressure plate A and the second pressure plate A, and their connection structure, of a single-stop template that can be synchronously assembled and pressed.
[0017] Figure 5 This is a three-dimensional schematic diagram of the second pressure plate A and the second pressure plate B, and their connection structure, of a single-stop template that can be synchronously assembled and pressed.
[0018] Figure 6 It is a single-stop template that can be synchronously assembled. Figure 4 Enlarged diagram of point A in the middle.
[0019] Figure 7 It is a single-stop template that can be synchronously assembled. Figure 4 Enlarged diagram of point B in the middle.
[0020] The diagram is labeled as follows: 1. Template body A; 11. Template body B; 2. First pressing plate A; 21. Sewing groove A; 22. Sewing groove B; 23. First magnetic block A; 24. First magnetic block B; 25. First pressing plate B; 26. Second magnetic block C; 27. First pressing plate C; 28. Second magnetic block D; 29. Second pressing plate A; 210. Second pressing plate B; 211. Second magnetic block A; 212. Second magnetic block B; 3. Lace body; 301. Fabric body A; 302. Fabric body B. Detailed Implementation
[0021] To further understand the features, technical means, and specific objectives and functions achieved by this utility model, the following detailed description of this utility model is provided in conjunction with the accompanying drawings and specific embodiments.
[0022] See Figures 1-3As shown, a single-stop template for synchronous stitching, used for stitching garment lace and fabric, includes a template body A1, a template body B11 rotatably mounted on one side of the template body A1, and a first pressure plate A2 rotatably mounted on the side of the template body A1 near the template body B11; a positioning mechanism is provided between the first pressure plate A2 and the template body A1 to prevent the stitching area of the garment lace from shifting from the positioning reference of the first pressure plate A2; and template bodies A1 and B11 are equipped with... There is a pressing mechanism for controlling the width of fabric folding; a sewing groove A21 is provided on the template body A1, the sewing groove A21 runs through the upper and lower sides of the template body A1, and a sewing groove B22 is provided on the template body B11 at the corresponding part of the sewing groove A21, the sewing groove B22 runs through the upper and lower sides of the template body B11; the positioning mechanism includes a first magnetic block A23 and a first magnetic block B24; the first magnetic block A23 is fixedly connected to the surface of the template body A1; the first magnetic block B24 is fixedly connected to the surface of the first pressure plate A2.
[0023] Specifically, the first magnetic block A23 is magnetically attracted to the first magnetic block B24 and the second magnetic block C26.
[0024] When the single-stop template is put into use, the template body A1 and template body B11 are first laid flat on the workbench surface to build a flat and fixed working reference surface; then the lace body 3 is laid flat in the sewing groove A21, and the structural contour of the sewing groove A21 is used to achieve the initial positioning of the lace body 3.
[0025] Rotating the first pressure plate A2 causes the first magnetic block B24 to magnetically engage with the first magnetic block A23 on the template body A1, achieving reliable positioning of the first pressure plate A2 and the template body A1 through magnetic attraction. At this time, the first pressure plate A2 simultaneously presses and adheres to one side of the lace body 3, forming a dual fixation of structural positioning and pressure constraint. This ensures that the garment lace body 3 is positioned within the sewing groove A21 without arbitrary displacement, effectively avoiding relative displacement between the lace body 3 and the fabric caused by visual judgment errors or hand tremors during manual operation. It also prevents the lace body 3 from shifting position due to the tension of the flatbed sewing machine during the sewing process, ensuring that the lace body 3 is always in the preset sewing position within the sewing groove A21, providing a basic guarantee for the accuracy of subsequent single-stop sewing.
[0026] After the lace body 3 is positioned, the fabric is folded using a pressing mechanism. This mechanism performs standardized pressing operations on the joint between the folded fabric and the lace body 3. This pressing action ensures that the seam thread extends precisely along a preset trajectory during single-stop sewing, effectively eliminating quality defects such as thread bending and uneven stop width that are easily caused by manual operation, improving the finished product qualification rate and significantly reducing the process rework rate.
[0027] See Figures 3-7 As shown, the seam pressing mechanism includes two first pressure plates B25 and a second magnetic block C26; the two first pressure plates B25 are rotatably disposed on both sides of the first pressure plate A2; the second magnetic block C26 is fixedly connected to the surface of the first pressure plate B25; the seam pressing mechanism also includes a first pressure plate C27 and a second magnetic block D28; the first pressure plate C27 is rotatably disposed on the side of the template body A1 near the sewing groove A21; the second magnetic block D28 is fixedly connected to the surface of the first pressure plate C27; the seam pressing mechanism also includes a connecting pressure assembly, which is used to cooperate with the fabric. The continuous folding maintains a fixed folding width. The continuous pressing assembly includes a second pressing plate A29 and a second pressing plate B210. The second pressing plate A29 is rotatably mounted on the template body B11. The second pressing plate B210 is rotatably mounted on the second pressing plate A29. The continuous pressing assembly also includes a second magnetic block A211 and a second magnetic block B212. The second magnetic block A211 is fixedly connected to the side of the template body B11 near the second pressing plate B210. The second magnetic block B212 is fixedly connected to the side of the second pressing plate B210 near the second magnetic block A211.
[0028] Specifically, the first magnetic block A23 and the second magnetic block D28 are magnetically attracted to each other. The second magnetic block A211 and the second magnetic block B212 are magnetically attracted to each other.
[0029] After the first pressure plate A2 and the template body A1 are positioned and the lace body 3 is confined within the sewing groove A21, fold the two first pressure plates B25 and place them on the outside of the first pressure plate A2. Lay the fabric body A301 flat on the surface of the outermost first pressure plate B25, so that one side of the fabric body A301 is tightly attached to the side of the lace body 3 away from the first pressure plate A2. Then rotate the first pressure plate C27 on one side of the template body A1, causing the second magnetic block D28 on the first pressure plate C27 to magnetically attract the first magnetic block A23 on the template body A1. The magnetic attraction fixes the first pressure plate C27 to the template body A1, and simultaneously confines one side of the fabric body A301 and one side of the lace body 3 together between the first pressure plate C27 and the template body A1, completing the initial clamping.
[0030] Next, flip the outermost first pressure plate B25, causing it to fold the fabric body A301 along the edge until the second magnet C26 on the first pressure plate B25 magnetically engages with the first magnet A23. At this point, the folded portion of the fabric body A301 is reliably confined between the first pressure plate B25 and the first pressure plate C27. Following the same procedure, lay the other fabric bodies A301 flat on the surface of another first pressure plate B25 and perform folding and magnetic fixing operations. After the operation is completed, unfold the two first pressure plates B25 to the sides of the first pressure plate A2, exposing the sewn part of the fabric body A301 in the gap between the first pressure plate B25 and the first pressure plate A2, forming a single-stop sewing area between the fabric body A301 and the lace body 3, and this gap is precisely aligned with the preset sewing position of the sewing groove A21.
[0031] After positioning the fabric body A301 and the lace body 3, lay the fabric body B302 flat on the sewing groove B22, covering the second pressure plate A29 and the second pressure plate B210. Rotate the second pressure plate B210 so that it and the second pressure plate A29 together clamp the edge of the fabric body B302. Simultaneously rotate the second pressure plate A29 and the second pressure plate B210 until the second magnetic block B212 on the second pressure plate B210 and the second magnetic block A211 on the template body B11 are magnetically attracted. The magnetic attraction keeps the fabric body B302 in a folded state and confined to the template body B11, while exposing the sewing part of the fabric body B302 to the sewing groove B22.
[0032] At this point, the worker can push the single-stop template along the flatbed sewing direction. The needle and thread pass through the gap between the first pressure plate B25 and the first pressure plate A2, aligning with the preset sewing position of the sewing groove A21 to complete the sewing of the lace body 3 and the fabric body A301, and simultaneously forming a single-stop structure during the sewing process. Then, the template body B11 is flipped over, moving the fabric body B302 above the fabric body A301, so that the sewing groove B22 and the sewing groove A21 are precisely aligned; the needle and thread pass through the sewing groove B22 and the sewing groove A21 to sew the fabric body B302 with the already sewn lace body 3 and the fabric body A301 as a whole, and simultaneously forming a single-stop structure.
[0033] The entire process achieves standardized pressing and sewing of the lace body 3, fabric body A301 and fabric body B302, which can ensure that the width of the finished product's edge is uniform and consistent. The operation process is simple and standardized, significantly improving the production efficiency of garment sewing. While increasing production capacity, it effectively guarantees the sewing quality of the finished product and reduces quality defects caused by operational deviations.
[0034] Working principle: Lay the lace body 3 flat in the sewing groove A21. Rotate the first pressure plate A2 to press the lace body 3. Lay the fabric body A301 flat on the surface of the first pressure plate B25. Rotate the first pressure plate C27 to press the fabric body A301. Then flip the outermost first pressure plate B25, so that the first pressure plate B25 drives the fabric body A301 to fold along the edge. Then lay the fabric body B302 flat on the sewing groove B22. Rotate the second pressure plate B210 and then... Rotate the second pressure plate A29 and the second pressure plate B210 to expose the sewing part of the fabric body B302 in the sewing groove B22. The needle and thread pass through the gap between the first pressure plate B25 and the first pressure plate A2 to complete the sewing of the lace body 3 and the fabric body A301. Then flip the template body B11 and the needle and thread pass through the sewing groove B22 and the sewing groove A21 to sew the fabric body B302 with the sewn lace body 3 and the fabric body A301 as a whole, and simultaneously form a single stop.
[0035] The above embodiments only illustrate one or more implementations of this utility model, and their descriptions are relatively specific and detailed, but they should not be construed as limiting the scope of this utility model. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model should be determined by the appended claims.
Claims
1. A single-stop template for synchronous stitching, used for stitching lace and fabric in clothing, comprising a template body A (1), and a template body B (11) rotatably mounted on one side of the template body A (1), characterized in that, A first pressure plate A (2) is rotatably provided on the side of the template body A (1) near the template body B (11); A positioning mechanism is provided between the first pressure plate A (2) and the template body A (1) to prevent the sewing area of the garment lace from deviating from the positioning reference of the first pressure plate A (2); The template body A (1) and template body B (11) are equipped with a pressing mechanism for controlling the folding width of the fabric.
2. The single-stop template capable of synchronous assembly according to claim 1, characterized in that, A sewing groove A (21) is provided on the template body A (1), and the sewing groove A (21) runs through the upper and lower sides of the template body A (1). A sewing groove B (22) is provided on the template body B (11) at the corresponding part of the sewing groove A (21), and the sewing groove B (22) runs through the upper and lower sides of the template body B (11).
3. The single-stop template capable of synchronous assembly according to claim 1, characterized in that, The positioning mechanism includes a first magnetic block A (23) and a first magnetic block B (24); The first magnetic block A (23) is fixedly connected to the surface of the template body A (1); The first magnetic block B (24) is fixedly connected to the surface of the first pressure plate A (2).
4. A single-stop template capable of synchronous assembly and pressing according to claim 1, characterized in that, The seam pressing mechanism includes two first pressing plates B (25) and a second magnetic block C (26); Two first pressure plates B (25) are rotatably disposed on both sides of the first pressure plate A (2); The second magnetic block C (26) is fixedly connected to the surface of the first pressure plate B (25).
5. A single-stop template capable of synchronous assembly and pressing according to claim 1, characterized in that, The seam pressing mechanism also includes a first pressing plate C (27) and a second magnetic block D (28); The first pressure plate C (27) is rotatably mounted on the side of the template body A (1) near the sewing groove A (21); The second magnetic block D (28) is fixedly connected to the surface of the first pressure plate C (27).
6. A single-stop template capable of synchronous assembly and pressing according to claim 5, characterized in that, The seam pressing mechanism also includes a continuous pressing assembly, which is used to maintain a fixed fold width by continuously folding the fabric. The continuous pressing assembly includes a second pressing plate A (29) and a second pressing plate B (210). The second pressure plate A (29) can be rotatably mounted on the template body B (11); The second pressure plate B (210) is rotatably mounted on the second pressure plate A (29).
7. A single-stop template capable of synchronous assembly according to claim 6, characterized in that, The pressure assembly also includes a second magnetic block A (211) and a second magnetic block B (212); The second magnetic block A (211) is fixedly connected to the side of the template body B (11) near the second pressure plate B (210); The second magnetic block B (212) is fixedly connected to the side of the second pressure plate B (210) near the second magnetic block A (211).