Embedded foot fork efficient splicing and positioning mechanical template
By designing splicing limit components and convenient positioning components on the mechanical template, the problem of the inconvenience of quick assembly and disassembly of the existing mechanical template fork is solved, realizing the rapid and accurate positioning of the fork body and improving processing efficiency and stability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHENZHENFENLANYICHU APPAREL CO LTD
- Filing Date
- 2025-04-11
- Publication Date
- 2026-05-19
AI Technical Summary
The existing mechanical template's forks are not convenient for quick disassembly, assembly, and positioning according to usage requirements. When processing different materials, workers need to spend a lot of time adjusting them, which is extremely inconvenient, slows down the processing progress, and reduces the effectiveness of use.
Design a high-efficiency splicing and positioning mechanical template for recessed fork positions. It adopts splicing limit components and convenient positioning components, including limit grooves, springs, positioning iron blocks, strong magnetic blocks, hydraulic cylinders, etc., to achieve rapid and accurate positioning of the fork body. Through the elastic force of the spring and the attraction and fixation of the strong magnetic block, combined with the push of the hydraulic cylinder, the stable positioning and convenient assembly and disassembly of the fork body are achieved.
This technology enables rapid and accurate positioning of the fork body, improving assembly efficiency and precision, reducing worker adjustment time, and ensuring processing stability and product quality.
Smart Images

Figure CN224258946U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of mechanical template technology, specifically a high-efficiency splicing and positioning mechanical template for embedded foot forks. Background Technology
[0002] A scaffold template is an auxiliary tool used in the garment processing industry when performing scaffolding processes on clothing. It is usually composed of components such as a mounting plate and a pressure plate. This template can improve the convenience of processing, reduce subsequent processing steps, eliminate the need to repeatedly take out and arrange the fabric during processing, reduce the time for clothes to enter and leave the station, shorten the production time of each process, and ensure processing quality. It also allows new employees to operate the equipment and achieve consistent and standardized results.
[0003] For example, a novel foot fork template device with publication number CN216639876U includes a mounting plate. The mounting plate has a mounting groove in the middle of its top, a pressure plate on one side of its top, a recess in the middle of the inner side of the mounting groove, three sets of magnet blocks A on one side of the inner side of the mounting groove, a positioning plate at the top of the inner side of the recess, a positioning block on one side of the positioning plate, and limit strips at both ends of the top of the mounting groove. This invention, through the mutual cooperation of magnet blocks A, limit strips, positioning plate, recess, limit groove, positioning block, pressure plate, magnet blocks B, foot fork groove, and barring groove, allows the device to directly complete the foot fork and barring of the fabric in one go after embedding the fabric into the groove and preparing it for sewing. This reduces subsequent processing steps, eliminates the need to repeatedly remove and prepare the fabric during processing, reduces the time for garments to enter and exit the station, and shortens the production time of the process.
[0004] Based on the search of patent numbers, and combined with the shortcomings of existing technologies, the following findings were made;
[0005] The existing mechanical template legs are not convenient for quick assembly, disassembly, and positioning according to usage requirements. When processing different materials, workers need to spend a lot of time adjusting them, which is extremely inconvenient. This not only slows down the processing progress but also reduces the effectiveness of the mechanical template legs. Utility Model Content
[0006] To address the problems mentioned in the background art, the purpose of this utility model is to provide a high-efficiency splicing and positioning mechanical template with embedded fork positions. It has the advantages of splicing and positioning, and solves the problem that the forks of existing mechanical templates are not convenient to be quickly disassembled and spliced according to usage requirements. When processing different materials, workers need to spend a lot of time adjusting, which is extremely inconvenient. This not only slows down the processing progress, but also reduces the effectiveness of the mechanical template forks.
[0007] To achieve the above objectives, this utility model provides the following technical solution: a high-efficiency splicing and positioning mechanical template for embedded foot fork positions, comprising a mechanical template body, a foot fork body, and a pressure plate. The pressure plate is installed on the rear side of the top of the mechanical template body, the foot fork body is disposed on the top of the pressure plate, a splicing limiting component is provided on the top of the pressure plate, and a convenient positioning component is installed on the rear side of the top of the pressure plate.
[0008] As a preferred embodiment of this utility model, the splicing limiting component includes a limiting groove, with springs installed on both sides of the front side of the inner wall of the limiting groove, and a positioning iron block installed on the other end of the spring. An mounting plate is installed on the outer side of the foot fork body, with a positioning groove on the front side of the mounting plate and a strong magnetic block installed on the back side of the inner wall of the positioning groove.
[0009] As a preferred embodiment of this utility model, the convenient positioning component includes a hydraulic cylinder, a movable plate is installed at the output end of the hydraulic cylinder, a connecting block is installed on the rear side of the top of the mounting plate, a movable groove is opened on the back of the connecting block, a movable block is movably connected inside the movable groove, and the back of the movable block is installed with the front of the movable plate.
[0010] As a preferred embodiment of this utility model, a moving rod is installed on the outer side of the bottom of the moving plate, a moving block is installed on the inner side of the moving rod, a connecting groove is provided on the outer side of the bottom of the mounting plate, and the surface of the moving block is located inside the connecting groove.
[0011] As a preferred embodiment of this invention, a buffer plate is installed on the top of the mounting plate, and a movable semi-groove is formed on the outer side of the top of the mounting plate.
[0012] As a preferred embodiment of this utility model, a fixing rod is installed on the top of the positioning iron block, and a moving groove is opened on the front of the positioning iron block, with a limiting rod movably connected inside the moving groove.
[0013] As a preferred embodiment of this utility model, a protective plate is installed on the outer side of the hydraulic cylinder, a connecting groove is provided on the outer side of the inner wall of the limiting groove, and the surface of the moving block is located inside the connecting groove.
[0014] As a preferred embodiment of this invention, a movable rod is installed on the front side of the movable block, and an anti-slip ring is installed on the surface of the movable rod.
[0015] Compared with the prior art, the beneficial effects of this utility model are as follows:
[0016] 1. This utility model solves the problem that the forks of existing mechanical templates are not easy to quickly disassemble, assemble, and position according to usage requirements. When processing different materials, workers need to spend a lot of time adjusting, which is extremely inconvenient. This not only slows down the processing progress but also reduces the effectiveness of the mechanical template forks. The new model achieves the effect of splicing and positioning.
[0017] 2. This utility model, by setting up a splicing limiting component, has a spring on the front side of the inner wall of the limiting groove cooperating with the positioning iron block, and the positioning groove on the mounting plate of the foot fork body interacting with the strong magnetic block. During splicing, the positioning iron block can be quickly embedded into the positioning groove under the elastic force of the spring, and the strong magnetic block further enhances the adsorption and fixing effect, so that the foot fork body can be quickly and accurately positioned on the pressure plate, without the need for workers to repeatedly calibrate the position, which greatly improves the efficiency and accuracy of splicing.
[0018] 3. By setting up a convenient positioning component, after the mounting plate moves into the limiting groove during use, the hydraulic cylinder can be activated to push the moving plate. The movement of the moving plate can push the movable block to move. The movable block can enter the interior of the movable groove, so that the movable block can conveniently push and position the top of the mounting plate through the movable groove and the connecting block. Attached Figure Description
[0019] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0020] Figure 2 This is a schematic diagram of the three-dimensional disassembled structure of this utility model;
[0021] Figure 3 This utility model Figure 2 Enlarged structural diagram at point A in the middle.
[0022] In the diagram: 1. Mechanical template body; 2. Foot fork body; 3. Pressure plate; 4. Splicing limit assembly; 41. Limiting groove; 42. Spring; 43. Positioning iron block; 44. Mounting plate; 45. Positioning groove; 46. Strong magnetic block; 5. Convenient positioning assembly; 51. Hydraulic cylinder; 52. Moving plate; 53. Connecting block; 54. Movable groove; 55. Movable block; 6. Moving rod; 7. Moving block; 8. Connecting groove; 9. Buffer plate; 10. Moving half groove; 11. Moving rod; 12. Moving groove; 13. Limiting rod; 14. Protective plate; 15. Connecting groove; 16. Movable rod; 17. Anti-slip ring. Detailed Implementation
[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0024] like Figures 1 to 3 As shown, the present invention provides a high-efficiency splicing and positioning mechanical template for embedded foot fork positions, including a mechanical template body 1, a foot fork body 2 and a pressure plate 3. The pressure plate 3 is installed on the rear side of the top of the mechanical template body 1, the foot fork body 2 is set on the top of the pressure plate 3, a splicing limiting component 4 is provided on the top of the pressure plate 3, and a convenient positioning component 5 is installed on the rear side of the top of the pressure plate 3.
[0025] refer to Figure 2 The splicing limiting component 4 includes a limiting groove 41. Springs 42 are installed on both sides of the front side of the inner wall of the limiting groove 41. A positioning iron block 43 is installed on the other end of the spring 42. An installation plate 44 is installed on the outer side of the foot fork body 2. A positioning groove 45 is opened on the front side of the installation plate 44. A strong magnetic block 46 is installed on the back side of the inner wall of the positioning groove 45.
[0026] As a technical optimization of this utility model, by setting up a splicing limiting component 4, the spring 42 on the front side of the inner wall of the limiting groove 41 cooperates with the positioning iron block 43, and the positioning groove 45 on the mounting plate 44 of the foot fork body 2 interacts with the strong magnetic block 46. During splicing, the positioning iron block 43 can be quickly embedded into the positioning groove 45 under the elastic force of the spring 42. The strong magnetic block 46 further enhances the adsorption and fixing effect, so that the foot fork body 2 can be quickly and accurately positioned on the pressure plate 3 without the need for workers to repeatedly calibrate the position, which greatly improves the efficiency and accuracy of splicing.
[0027] refer to Figure 2 The convenient positioning component 5 includes a hydraulic cylinder 51, a movable plate 52 is installed at the output end of the hydraulic cylinder 51, a connecting block 53 is installed on the rear side of the top of the mounting plate 44, a movable groove 54 is opened on the back of the connecting block 53, a movable block 55 is movably connected inside the movable groove 54, and the back of the movable block 55 is installed with the front of the movable plate 52.
[0028] As a technical optimization of this utility model, by setting up a convenient positioning component 5, after the mounting plate 44 moves into the limiting groove 41 during use, the hydraulic cylinder 51 can be activated to push the moving plate 52. The movement of the moving plate 52 can push the movable block 55 to move. The movement of the movable block 55 can enter the interior of the movable groove 54, so that the movable block 55 can conveniently push and position the top of the mounting plate 44 through the movable groove 54 and the connecting block 53.
[0029] refer to Figure 3 A moving rod 6 is installed on the outer side of the bottom of the moving plate 52, and a moving block 7 is installed on the inner side of the moving rod 6. A connecting groove 8 is opened on the outer side of the bottom of the mounting plate 44, and the surface of the moving block 7 is located inside the connecting groove 8.
[0030] As a technical optimization of this utility model, by setting a moving rod 6, a moving block 7, and a connecting groove 8, when the hydraulic cylinder 51 pushes the moving plate 52 to move, the moving plate 52 can push the moving rod 6 to move. The movement of the moving rod 6 can push the moving block 7 to move, so that the moving block 7 can move into the connecting groove 8, providing a stable positioning function for the movement of the mounting plate 44, ensuring the positioning stability of the mounting plate 44, avoiding deviation or shaking, thereby further ensuring the accuracy of the splicing and positioning of the fork body 2, and improving the stability of processing and product quality.
[0031] refer to Figure 2 A buffer plate 9 is installed on the top of the mounting plate 44, and a movable semi-groove 10 is opened on the outer side of the top of the mounting plate 44.
[0032] As a technical optimization of this utility model, by setting a buffer plate 9 and a movable half-groove 10, the buffer plate 9 can play a buffering and protective role when the fork body 2 is installed or subjected to external impact, avoiding direct collision between the fork body 2 and the mounting plate 44 and causing damage. The movable half-groove 10 can facilitate the user to move the mounting plate 44, enhancing the convenience of replacement and splicing during use.
[0033] refer to Figure 3 A fixing rod 11 is installed on the top of the positioning iron block 43, and a moving groove 12 is opened on the front of the positioning iron block 43. A limiting rod 13 is movably connected inside the moving groove 12. The limiting rod 13 is installed on the top of the positioning iron block 43.
[0034] As a technical optimization of this utility model, by setting a fixed rod 11, a moving groove 12 and a limiting rod 13, the fixed rod 11 can facilitate the user to move the positioning block iron block, and the limiting rod 13 restricts the movement direction of the positioning block iron block 43 through the moving groove 12, so that it can only move along the limiting rod 13 within a specified range. In this way, when the splicing limiting component 4 is working, it can ensure that the positioning block iron block 43 always accurately matches the positioning groove 45, further improving the splicing positioning accuracy and preventing the positioning block iron block 43 from shifting and affecting the installation effect of the foot fork body 2.
[0035] refer to Figure 2 A protective plate 14 is installed on the outside of the hydraulic cylinder 51, and a connecting groove 15 is opened on the outside of the inner wall of the limiting groove 41. The surface of the moving block 7 is located inside the connecting groove 15.
[0036] As a technical optimization of this utility model, by setting a protective plate 14 and a connecting groove 15, the protective plate 14 is installed on the outside of the hydraulic cylinder 51, which can protect the hydraulic cylinder 51 from the influence of the external environment, such as dust and debris, reduce the wear and failure probability of the hydraulic cylinder 51, and extend its service life. The connecting groove 15 cooperates with the moving block 7, which not only provides space for the movement of the moving block 7, but also plays a certain limiting role, ensuring that the moving block 7 moves on the specified trajectory.
[0037] refer to Figure 3 A movable rod 16 is installed on the front side of the movable block 7, and an anti-slip ring 17 is installed on the surface of the movable rod 6.
[0038] As a technical optimization of this utility model, by setting the movable rod 16 and the anti-slip ring 17, the movable rod 16 can facilitate the user to adjust the position of the positioning iron blocks 43 on both sides at the same time, which enhances the ease of movement during use, and the anti-slip ring 17 can prevent slippage when using the movable rod 16.
[0039] The working principle and usage process of this utility model are as follows: First, move the positioning block 43 forward. Then, the user can place the fork body 2 on top of the pressure plate 3. The positioning groove 41 limits the movement of the fork body 2. Then, by releasing the limiting position on the positioning block 43, the spring 42 on the front side of the inner wall of the limiting groove 41 will push the positioning block 43 outward. When the positioning groove 45 on the mounting plate 44 of the fork body 2 approaches the positioning block 43, under the elastic force of the spring 42, the positioning block 43 can quickly embed into the positioning groove 45. The strong magnetic block 46 on the back of the inner wall of the positioning groove 45 further enhances the adsorption and fixing effect between the two, thereby achieving the initial rapid positioning of the fork body 2, greatly improving the splicing efficiency, and eliminating the need for workers to repeatedly calibrate the position. After the fork body 2 is initially positioned, the hydraulic cylinder 51 can be activated. The output end of the hydraulic cylinder 51 pushes the moving plate 52 to move. When the moving plate 52 moves, it will drive the movable block 55 installed on its front to move. Since the connecting block 53 on the rear side of the top of the mounting plate 44 has a movable groove 54, the movable block 55 will enter the movable groove 54 and push the top of the mounting plate 44 through the movable groove 54 and the connecting block 53, thereby achieving stable positioning of the fork body 2. During this process, the moving rod 6 installed on the outer side of the bottom of the moving plate 52 will move together with the moving plate 52. The moving block 7 on the inner side of the moving rod 6 will slide in the connecting groove 8 opened on the outer side of the bottom of the mounting plate 44, providing stable guidance and positioning for the movement of the mounting plate 44, ensuring that the mounting plate 44 will not shift or shake during the movement, and further ensuring the accuracy of the splicing and positioning of the fork body 2. This improves processing stability and product quality. When the fork body 2 needs to be replaced, the operation is reversed. The positioning block 43 is manually pushed inward by the moving rod 6 to overcome the elastic force of the spring 42 and move it out of the positioning groove 45. Then, the hydraulic cylinder 51 is activated to reset, so that the moving block 55 is separated from the moving groove 54 and the moving block 7 is separated from the connecting groove 8. The fork body 2 can then be easily removed. To install a new fork body 2, the above installation and positioning steps are repeated. This achieves the effect of easy disassembly, assembly, and positioning, and enhances the use effect of the mechanical template fork.
[0040] In summary, this high-efficiency splicing and positioning mechanical template for embedded forks allows for easy disassembly and replacement of the fork body 2 by setting up a splicing limit component 4 in conjunction with a convenient positioning component 5. This solves the problem that the forks of existing mechanical templates are not easy to quickly disassemble, assemble, and position according to usage requirements. When processing different materials, workers need to spend a lot of time adjusting, which is extremely inconvenient and not only slows down the processing progress but also reduces the effectiveness of the mechanical template forks.
[0041] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A high-efficiency splicing and positioning mechanical template for embedded fork positions, comprising a mechanical template body (1), a fork body (2), and a pressure plate (3), characterized in that: The pressure plate (3) is installed on the rear side of the top of the mechanical template body (1), the foot fork body (2) is set on the top of the pressure plate (3), the top of the pressure plate (3) is provided with a splicing limiting component (4), and the rear side of the top of the pressure plate (3) is provided with a convenient positioning component (5).
2. The efficient splicing and positioning mechanical template for embedded fork positions according to claim 1, characterized in that: The splicing limiting component (4) includes a limiting groove (41). Springs (42) are installed on both sides of the front side of the inner wall of the limiting groove (41). A positioning iron block (43) is installed on the other end of the spring (42). An installation plate (44) is installed on the outer side of the foot fork body (2). A positioning groove (45) is opened on the front side of the installation plate (44). A strong magnetic block (46) is installed on the back side of the inner wall of the positioning groove (45).
3. The efficient splicing and positioning mechanical template for embedded fork positions according to claim 2, characterized in that: The convenient positioning component (5) includes a hydraulic cylinder (51), a movable plate (52) is installed at the output end of the hydraulic cylinder (51), a connecting block (53) is installed on the rear side of the top of the mounting plate (44), a movable groove (54) is provided on the back of the connecting block (53), a movable block (55) is movably connected inside the movable groove (54), and the back of the movable block (55) is installed on the front of the movable plate (52).
4. The efficient splicing and positioning mechanical template for embedded fork positions according to claim 3, characterized in that: A moving rod (6) is installed on the outer side of the bottom of the moving plate (52), and a moving block (7) is installed on the inner side of the moving rod (6). A connecting groove (8) is opened on the outer side of the bottom of the mounting plate (44), and the surface of the moving block (7) is located inside the connecting groove (8).
5. The efficient splicing and positioning mechanical template for embedded fork positions according to claim 2, characterized in that: A buffer plate (9) is installed on the top of the mounting plate (44), and a movable half-groove (10) is opened on the outer side of the top of the mounting plate (44).
6. The efficient splicing and positioning mechanical template for embedded fork positions according to claim 2, characterized in that: A fixing rod (11) is installed on the top of the positioning iron block (43), and a moving groove (12) is opened on the front of the positioning iron block (43). A limit rod (13) is movably connected inside the moving groove (12).
7. The high-efficiency splicing and positioning mechanical template for embedded fork positions according to claim 4, characterized in that: A protective plate (14) is installed on the outside of the hydraulic cylinder (51), and a connecting groove (15) is opened on the outside of the inner wall of the limiting groove (41). The surface of the moving block (7) is located inside the connecting groove (15).
8. The efficient splicing and positioning mechanical template for embedded fork positions according to claim 4, characterized in that: A movable rod (16) is installed on the front side of the movable block (7), and an anti-slip ring (17) is installed on the surface of the movable rod (6).