A tooling plate for use in industrial shoe making equipment

By incorporating a rotating structure, a guiding structure, and a protective structure into the tooling plate, the problem of inconvenient tooling plate rotation is solved, enabling angle adjustment, reducing friction and noise, extending service life, and improving applicability and work efficiency.

CN224539586UActive Publication Date: 2026-07-24张天宝
View PDF 1 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
张天宝
Filing Date
2025-06-18
Publication Date
2026-07-24

AI Technical Summary

Technical Problem

The tooling plates of existing industrial shoemaking equipment are not easy to rotate, resulting in poor applicability during use.

Method used

A rotating structure, including a driving gear and a driven gear, is set on the tooling plate. The gear teeth are driven to move in the groove by an electric push rod, which causes the angle of the tooling plate to change. The movement and buffering performance are optimized by a guide structure and a protective structure.

Benefits of technology

It enables the tooling plate to be adjusted in angle, reducing friction and noise, extending service life, and improving applicability and work efficiency.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224539586U_ABST
    Figure CN224539586U_ABST
Patent Text Reader

Abstract

The utility model relates to tooling plate technical field provides a tooling plate for industrial shoemaking equipment, including first tooling plate, the edge position department in first tooling plate inside is all installed with guide structure, the both sides of first tooling plate are provided with protection structure. The utility model discloses is provided with rotation structure, when the tooth moves to the inside of recess, rotates second tooling plate at the time, second tooling plate will drive first rotation lever to rotate in the inside of built -in chamber, will drive the rotation of ball in the inside of support seat simultaneously, under the action of ball, plays the role of support, first rotation lever will drive driven gear rotation through driving gear, and then makes the angle of second tooling plate change, when the tooth moves to the outside of recess and is in contact with driven gear, the angle of second tooling plate is fixed conveniently, realizes the function that the device is convenient for adjusting angle to improve the applicability of the tooling plate for industrial shoemaking equipment when using.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of tooling plate technology, and in particular to a tooling plate used in industrial shoemaking equipment. Background Technology

[0002] A tooling board is an auxiliary tool or material used in industrial production or building decoration. In the industrial shoe manufacturing process, it provides a stable operating platform for subsequent processes to support shoe parts being processed, semi-finished shoes, or assembled shoe lasts. Therefore, a tooling board used in industrial shoe manufacturing equipment is used.

[0003] To address this, patent CN207041087U discloses a tooling plate for industrial shoemaking equipment, comprising a tooling plate base, at least one shoe support bracket, and a tray. The shoe support bracket is installed above the tooling plate base. A support rod is installed on at least one side of the tooling plate base, and at least one tray is installed on the support rod. The tray is located above the tooling plate base or above the shoe support bracket. This invention features a lighter and more compact structure, eliminating mutual interference and influence between the upper and lower shoe materials during shoemaking, improving processing efficiency, and offering high versatility. This invention can be used in various automated and modular industrial shoemaking production lines and equipment, reducing manual identification operations and automatically executing corresponding processing operations, thereby improving efficiency.

[0004] Although the tooling plates used in industrial shoemaking equipment mentioned above reduce manual identification work and automatically perform corresponding processing operations, thus improving efficiency, their applicability is low because they are inconvenient to rotate and adjust the angle of the worktable to adapt to different work requirements. Utility Model Content

[0005] The purpose of this invention is to provide a tooling plate for use in industrial shoemaking equipment, in order to solve the defect of existing tooling plates for industrial shoemaking equipment being inconvenient to rotate.

[0006] To solve the above-mentioned technical problems, this utility model provides the following technical solution: a tooling plate for use in industrial shoemaking equipment, including a first tooling plate;

[0007] Guide structures are installed at the edges inside the first tooling plate, and protective structures are provided on both sides of the first tooling plate.

[0008] A rotating structure is fixed to the top of the first tooling plate. The rotating structure includes a fixed seat fixed to the top of the first tooling plate. The fixed seat has an internal cavity. A drive gear is provided on one side of the internal cavity. A driven gear is meshed on one side of the drive gear. Teeth are meshed on one side of the driven gear.

[0009] The top of the first tooling plate on one side of the rotating structure is uniformly fixed with a support base, and the top of each support base is rotatably connected with a ball bearing.

[0010] When using this device, the rotating structure enables easy angle adjustment, thereby improving the applicability of the tooling plate used in industrial shoemaking equipment; the guiding structure reduces noise and friction, thus improving the working efficiency of the tooling plate; and the protective structure provides cushioning, enhancing the ease of use.

[0011] Preferably, the guide structure includes a first mounting groove, a second mounting groove, a guide wheel, a fixing plate, and fixing bolts. The first mounting groove is located at the edge of the first tooling plate. The interior of the first tooling plate at both ends of the first mounting groove is provided with a second mounting groove. The interior of the first mounting groove is provided with a guide wheel. The interior of the second mounting groove at both ends of the guide wheel is provided with a fixing plate. Fixing bolts are provided on both sides of the interior of the fixing plate.

[0012] Preferably, both ends of the guide wheel extend into the interior of the fixed plate and form a rotating structure with the fixed plate. The fixed plate and the first tooling plate are fixedly connected by fixing bolts. When the first tooling plate needs to move, the guide wheel rotates inside the fixed plate. Under the action of the guide wheel, the friction between the first tooling plate and the fixed frame can be reduced, while noise can be reduced and the moving efficiency can be improved.

[0013] Preferably, the protective structure includes a push groove, a rubber block, and rubber strips. The push groove is located on both sides of the first tooling plate, and a rubber block is installed inside each push groove. Rubber strips are fixed to both ends of one side of each rubber block. The rubber strips and the placement grooves facilitate the replacement of the rubber block, and the rubber block provides cushioning and shock absorption.

[0014] Preferably, a placement groove extends through the interior of the first tooling plate on one side of the rubber strip, and the rubber strip and the first tooling plate form a sliding structure through the placement groove. When the pushing groove is subjected to a large impact force, it can effectively reduce the damage to the first tooling plate caused by these impacts, thereby extending the service life of the first tooling plate.

[0015] Preferably, the top end of the ball is in contact with the bottom end of the second tooling plate.

[0016] Preferably, a first rotating rod passes through the interior of the driving gear, a second rotating rod passes through the interior of the driven gear, and a groove is formed on one side of the fixed seat. An electric push rod passes through the interior of the fixed seat on the side of the groove. When the gear teeth move into the groove, the second tooling plate is rotated, which drives the first rotating rod to rotate inside the internal cavity, and simultaneously drives the ball bearings to rotate inside the support seat.

[0017] Preferably, the top end of the first rotating rod extends to the outside of the fixed base and is fixedly connected to the bottom end of the second tooling plate. The bottom end of the first rotating rod extends to the inside of the fixed base and forms a rotating structure with the fixed base. Both ends of the second rotating rod extend to the inside of the fixed base and form a rotating structure with the fixed base. One end of the electric push rod is fixedly connected to one side of the tooth. Under the action of the ball bearings, a supporting function is provided. The first rotating rod drives the driven gear to rotate through the driving gear, thereby changing the angle of the second tooling plate. When the tooth moves to the outside of the groove and abuts against the driven gear, it is convenient to fix the angle of the second tooling plate.

[0018] The tooling plate provided by this utility model for use in industrial shoemaking equipment has the following advantages:

[0019] By incorporating a rotating structure, when the teeth move into the interior of the groove, the second tooling plate is rotated. This causes the first rotating rod to rotate within the internal cavity, simultaneously rotating the ball bearings within the support base. The ball bearings provide support. The first rotating rod, through the drive gear, drives the driven gear to rotate, thereby changing the angle of the second tooling plate. When the teeth move to the outside of the groove and abut against the driven gear, the angle of the second tooling plate can be easily fixed. This device facilitates angle adjustment and improves the applicability of the tooling plate used in industrial shoemaking equipment.

[0020] By setting a guide structure, when the first tooling plate needs to be moved, the guide wheel rotates inside the fixed plate. Under the action of the guide wheel, the friction between the first tooling plate and the fixed frame can be reduced, and noise can be reduced and the moving efficiency can be improved. This device realizes the function of reducing noise and friction, thereby improving the working efficiency of the tooling plate used in industrial shoemaking equipment.

[0021] With the protective structure, the rubber blocks can be easily replaced thanks to the rubber strips and placement grooves. The rubber blocks also act as buffers and shock absorbers. When the pushing groove is subjected to a large impact, the damage to the first tooling plate can be effectively reduced, thereby extending the service life of the first tooling plate. This device achieves the function of easy buffering, thus improving the convenience of using the tooling plate in industrial shoemaking equipment. Attached Figure Description

[0022] Figure 1 This is a three-dimensional structural schematic diagram of the present invention;

[0023] Figure 2 This is a three-dimensional structural schematic diagram of the main cross-section of this utility model;

[0024] Figure 3 This is a three-dimensional structural schematic diagram of the main cross-section of the rotating structure of this utility model;

[0025] Figure 4 This is a three-dimensional structural schematic diagram of the guide structure of this utility model from a front cross-sectional view.

[0026] Figure 5 This is a top-view cross-sectional three-dimensional structural diagram of the present invention.

[0027] The reference numerals in the figure are explained as follows: 1. First tooling plate; 2. Guide structure; 201. First mounting groove; 202. Second mounting groove; 203. Guide wheel; 204. Fixing plate; 205. Fixing bolt; 3. Protective structure; 301. Pushing groove; 302. Rubber block; 303. Rubber strip; 4. Second tooling plate; 5. Support seat; 6. Ball bearing; 7. Rotating structure; 701. Fixing seat; 702. Internal cavity; 703. First rotating rod; 704. Driving gear; 705. Second rotating rod; 706. Driven gear; 707. Groove; 708. Electric push rod; 709. Tooth. Detailed Implementation

[0028] 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.

[0029] Please see Figures 1-5This utility model provides a tooling plate for use in industrial shoemaking equipment, including a first tooling plate 1. Guide structures 2 are installed at the edges of the first tooling plate 1. The guide structures 2 include a first mounting groove 201, a second mounting groove 202, guide wheels 203, a fixing plate 204, and fixing bolts 205. The first mounting groove 201 is opened at the edge of the first tooling plate 1. The interior of the first tooling plate 1 at both ends of the first mounting groove 201 is penetrated by the second mounting groove 202. The interior of the first mounting groove 201 is provided with guide wheels 203. The interior of the second mounting groove 202 at both ends of the guide wheels 203 is provided with fixing plates 204. Fixing bolts 205 penetrate both sides of the interior of the fixing plate 204. The two ends of the guide wheels 203 extend into the interior of the fixing plate 204 and form a rotating structure with the fixing plate 204. The fixing plate 204 and the first tooling plate 1 are fixedly connected by fixing bolts 205.

[0030] Reference Figure 1 and Figure 4 As shown, the first tooling plate 1 is placed between the fixed frames, so that one side of the guide wheel 203 contacts the inner side of the fixed frame. When the first tooling plate 1 needs to move, the guide wheel 203 rotates inside the fixed plate 204. Under the action of the guide wheel 203, the friction between the first tooling plate 1 and the fixed frame can be reduced, and noise can be reduced and the moving efficiency can be improved.

[0031] Both sides of the first tooling plate 1 are provided with protective structures 3. The protective structures 3 include push grooves 301, rubber blocks 302 and rubber strips 303. Push grooves 301 are opened on both sides of the first tooling plate 1. Rubber blocks 302 are provided inside the push grooves 301. Rubber strips 303 are fixed at both ends on one side of the rubber blocks 302. A placement groove runs through the interior of the first tooling plate 1 on one side of the rubber strips 303. The rubber strips 303 and the first tooling plate 1 form a sliding structure through the placement groove.

[0032] Reference Figure 1 and Figure 4 As shown, the movable rubber block 302 moves the rubber strip 303 into the placement groove. With the action of the rubber strip 303 and the placement groove, it is convenient to replace the rubber block 302. Under the action of the rubber block 302, it can play a role in buffering and shock absorption. When the push groove 301 is subjected to a large impact force, it can effectively reduce the damage of these impacts to the first tooling plate 1, thereby extending the service life of the first tooling plate 1.

[0033] A rotating structure 7 is fixed to the top of the first tooling plate 1. The rotating structure 7 includes a fixed seat 701 fixed to the top of the first tooling plate 1. The fixed seat 701 has an internal cavity 702. A drive gear 704 is arranged on one side of the internal cavity 702. A driven gear 706 is meshed on one side of the drive gear 704. A tooth 709 is meshed on one side of the driven gear 706. A first rotating rod 703 passes through the inside of the drive gear 704. A second rotating rod 705 passes through the inside of the driven gear 706. A groove 707 is formed on one side of the inside of the fixed seat 701. The inside of the fixed seat 701 passes through the groove 707. There is an electric push rod 708. The top end of the first rotating rod 703 extends to the outside of the fixed base 701 and is fixedly connected to the bottom end of the second tooling plate 4. The bottom end of the first rotating rod 703 extends to the inside of the fixed base 701 and forms a rotating structure with the fixed base 701. Both ends of the second rotating rod 705 extend to the inside of the fixed base 701 and form a rotating structure with the fixed base 701. One end of the electric push rod 708 is fixedly connected to one side of the tooth 709. Support seats 5 are evenly fixed on the top end of the first tooling plate 1 on one side of the rotating structure 7. The top of the support seats 5 is rotatably connected to the ball bearings 6. The top end of the ball bearings 6 is in contact with the bottom end of the second tooling plate 4.

[0034] Reference Figure 3 and Figure 5 As shown, when the electric push rod 708 is activated, it drives the tooth 709 to move. When the electric push rod 708 drives the tooth 709 to move into the inside of the groove 707, the second tooling plate 4 is rotated. The second tooling plate 4 will drive the first rotating rod 703 to rotate inside the inner cavity 702, and at the same time drive the ball 6 to rotate inside the support seat 5. Under the action of the ball 6, a supporting function is provided. The first rotating rod 703 will drive the driven gear 706 to rotate through the driving gear 704, thereby changing the angle of the second tooling plate 4. When the tooth 709 moves to the outside of the groove 707 and abuts against the driven gear 706, it is convenient to fix the angle of the second tooling plate 4.

[0035] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A tooling plate for use in industrial shoemaking equipment, comprising a first tooling plate (1); Its features are: Guide structures (2) are installed at the edges inside the first tooling plate (1), and protective structures (3) are provided on both sides of the first tooling plate (1). A rotating structure (7) is fixed to the top of the first tooling plate (1). The rotating structure (7) includes a fixed seat (701) fixed to the top of the first tooling plate (1). The fixed seat (701) has an internal cavity (702). A drive gear (704) is provided on one side of the internal cavity (702). A driven gear (706) is meshed on one side of the drive gear (704). A tooth (709) is meshed on one side of the driven gear (706). The top of the first tooling plate (1) on one side of the rotating structure (7) is uniformly fixed with a support seat (5), and the top of the support seat (5) is rotatably connected with a ball bearing (6).

2. A tooling plate for use in industrial shoemaking equipment according to claim 1, characterized in that: The guide structure (2) includes a first mounting groove (201), a second mounting groove (202), a guide wheel (203), a fixing plate (204), and fixing bolts (205). The first mounting groove (201) is located at the edge of the first tooling plate (1). The first mounting groove (201) has a second mounting groove (202) penetrating through the interior of the first tooling plate (1) at both ends. The first mounting groove (201) is provided with a guide wheel (203). The second mounting groove (202) at both ends of the guide wheel (203) is provided with a fixing plate (204). Fixing bolts (205) penetrate through both sides of the interior of the fixing plate (204).

3. A tooling plate for use in industrial shoemaking equipment according to claim 2, characterized in that: Both ends of the guide wheel (203) extend into the interior of the fixed plate (204) and form a rotating structure with the fixed plate (204). The fixed plate (204) and the first tooling plate (1) are fixedly connected by fixing bolts (205).

4. A tooling plate for use in industrial shoemaking equipment according to claim 1, characterized in that: The protective structure (3) includes a push groove (301), a rubber block (302) and a rubber strip (303). The push groove (301) is opened on both sides of the first tooling plate (1). The push groove (301) is provided with a rubber block (302) inside each of the push grooves (301). A rubber strip (303) is fixed at both ends of one side of the rubber block (302).

5. A tooling plate for use in industrial shoemaking equipment according to claim 4, characterized in that: The first tooling plate (1) on one side of the rubber strip (303) has a through groove, and the rubber strip (303) and the first tooling plate (1) form a sliding structure through the groove.

6. A tooling plate for use in industrial shoemaking equipment according to claim 1, characterized in that: The top of the ball (6) is in contact with the bottom of the second tooling plate (4).

7. A tooling plate for use in industrial shoemaking equipment according to claim 1, characterized in that: The drive gear (704) has a first rotating rod (703) passing through its interior, the driven gear (706) has a second rotating rod (705) passing through its interior, a groove (707) is provided on one side of the fixed seat (701), and an electric push rod (708) passes through the interior of the fixed seat (701) on one side of the groove (707).

8. A tooling plate for use in industrial shoemaking equipment according to claim 7, characterized in that: The top end of the first rotating rod (703) extends to the outside of the fixed seat (701) and is fixedly connected to the bottom end of the second tooling plate (4). The bottom end of the first rotating rod (703) extends to the inside of the fixed seat (701) and forms a rotating structure with the fixed seat (701). Both ends of the second rotating rod (705) extend to the inside of the fixed seat (701) and form a rotating structure with the fixed seat (701). One end of the electric push rod (708) is fixedly connected to one side of the tooth (709).