A shoe making machine

By using cylinders instead of manual operation in the shoe making machine, the automation of upper molding and shoe body synthesis is achieved, solving the problems of low production efficiency and high labor intensity in the prior art, and reducing production costs.

CN111280611BActive Publication Date: 2025-05-16ZHEJIANG LUOCHI TECH CO LTD
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202010222526.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2020-03-26
Publication Date
2025-05-16
Estimated Expiration
2040-03-26

AI Technical Summary

Technical Problem

The existing business slipper manufacturing methods are low in production efficiency and labor intensity, and require manual push of templates, pressing plates and other actions, resulting in stacking, handling and other links in the middle.

Method used

The cylinder is used instead of manual operation, and the upper molding and shoe body synthesis are completed on a machine to reduce the stacking and handling in the middle.

Benefits of technology

Improve production efficiency, reduce labor intensity and production costs, and realize automated production.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN111280611B_ABST
    Figure CN111280611B_ABST
Patent Text Reader

Abstract

The present invention discloses a shoe-making machine, comprising a vamp base, a lifting guide rail and a lifting cylinder are installed on the vamp base, the lifting guide rail is connected to a lifting bracket through a lifting slider, a micro-motion cylinder and a horizontal guide rail are installed on the lifting bracket, and the horizontal guide rail is connected to a forming base through a horizontal slider; a template and a horizontal cylinder, a rotating shaft, and a vamp forming bracket are installed on the forming base; two ends of the rotating shaft are connected to a secondary connecting rod and a connecting arm through a main connecting rod; the vamp forming bracket is connected to a forming pressing plate through a pressing plate mounting shaft; a shoe last base is also installed on the vamp base, a supporting plate, a conveying cylinder, and a conveying guide rail are installed on the shoe last base, and the conveying guide rail is connected to the shoe last through a conveying slider; the shoe last base is connected to a shoe body synthesis base and other devices. The present invention adopts a cylinder to replace manual operation, and the vamp forming and shoe body synthesis are completed on one machine, which reduces the intermediate stacking, handling and other links, and has the advantages of improving production efficiency, reducing labor intensity and production cost.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The invention relates to the field of shoe-making machines, in particular to a machine for making business slippers. Background Art

[0002] In the business slipper manufacturing industry, the current manufacturing method is: manually push the template, pressure plate and other parts to extrude the upper material into shape, remove the molded upper, stack it, and then transport a certain number of molded uppers to the shoe body synthesis machine, take out the molded uppers one by one, put them on the shoe body synthesis machine, and synthesize them with the sole; this not only has low production efficiency, but also has high labor intensity. Summary of the invention

[0003] The purpose of the present invention is to overcome the above shortcomings and provide a shoe-making machine which adopts a cylinder to replace manual operation, completes the upper forming and shoe body synthesis on one machine, reduces the intermediate stacking, transportation and other links, improves production efficiency, and reduces labor intensity and production costs.

[0004] The object of the present invention is achieved through the following technical solutions: a shoe-making machine, comprising an upper base, a lifting guide rail and a lifting cylinder are installed on the upper base, a lifting slide is installed on the lifting guide rail, a lifting bracket is installed on the lifting slide, the lifting cylinder is also connected to the lifting bracket, a micro-cylinder and a horizontal guide rail are installed on the lifting bracket, a horizontal slide is installed on the horizontal guide rail, and a molding base is installed on the horizontal slide; the micro-cylinder is also connected to the molding base; a template and a horizontal cylinder are installed on the molding base, a rotating shaft is rotatably installed, and an upper molding bracket is slidably installed; the horizontal cylinder is also connected to the upper molding The brackets are connected; main connecting rods are installed at both ends of the rotating shaft, and secondary connecting rods and connecting arms are rotatably installed on the main connecting rods; the secondary connecting rod is rotatably connected to the forming bracket; a pressure plate mounting shaft is installed on the upper forming bracket, and a forming pressure plate is rotatably installed on the pressure plate mounting shaft, and the forming pressure plate is rotatably connected to the connecting arm; a shoe last base is also installed on the upper base, a support plate, a conveying cylinder, and a conveying guide rail are installed on the shoe last base, a conveying slide block is installed on the conveying guide rail, and a shoe last is installed on the conveying slide block; the shoe last base is also connected to a synthetic base, a synthetic cylinder is installed on the synthetic base, and a sole cleat is installed on the synthetic cylinder.

[0005] Compared with the prior art, the present invention has the following advantages: a cylinder is used to replace manual operation, and the upper molding and shoe body synthesis are completed on one machine, which reduces the intermediate stacking, transportation and other links, improves production efficiency, and reduces labor intensity and production costs. BRIEF DESCRIPTION OF THE DRAWINGS

[0006] Figure 1 It is a schematic diagram of the front view of the present invention;

[0007] Figure 2 It is a schematic top view of the present invention;

[0008] Figure 3 It is a schematic diagram of a right side view of the present invention;

[0009] Figure 4 It is one of the three-dimensional diagrams of the present invention;

[0010] Figure 5 This is the second schematic diagram of the three-dimensional diagram of the present invention;

[0011] Numbers in the figure: 1-shoe upper base, 2-lifting guide rail, 3-lifting slider, 4-lifting bracket, 5-molding base, 7-rotating shaft, 9-micro-motion cylinder, 10-horizontal guide rail, 11-horizontal slider, 15-lifting cylinder, 17-template, 18-horizontal cylinder, 20-molding bracket, 28-shoe last, 29-main connecting rod, 31-secondary connecting rod, 33-molding pressure plate, 34-linking arm, 42-support plate, 43-shoe last base, 46-pressure plate mounting shaft, 48-conveying guide rail, 49-conveying slider, 51-synthetic base, 52-sole splint, 54-synthetic cylinder, 61-conveying cylinder. DETAILED DESCRIPTION

[0012] In order to deepen the understanding of the present invention, the present invention will be further described in detail below in conjunction with embodiments and drawings. The embodiments are only used to explain the present invention and do not constitute a limitation on the protection scope of the present invention.

[0013] like Figures 1 to 5As shown, the present invention provides a shoe-making machine, including a vamp base 1, a lifting guide rail 2 and a lifting cylinder 15 are installed on the vamp base 1, a lifting slide block 3 is installed on the lifting guide rail 2, a lifting bracket 4 is installed on the lifting slide block 3, the lifting cylinder 15 is also connected to the lifting bracket 4, a micro-cylinder 9 and a horizontal guide rail 10 are installed on the lifting bracket 4, a horizontal slide block 11 is installed on the horizontal guide rail 10, and a molding base 5 is installed on the horizontal slide block 11; the micro-cylinder 9 is also connected to the molding base 5; a template 17 and a horizontal cylinder bracket 23 are installed on the molding base 5, a rotating shaft 7 is rotatably installed, and a vamp molding bracket 20 is slidably installed, a horizontal cylinder 18 is installed on the horizontal cylinder bracket 23, and the horizontal cylinder 18 is also connected to the vamp molding bracket 20; the rotating shaft 7 Main connecting rods 29 are installed at both ends, and auxiliary connecting rods 31 and connecting arms 34 are rotatably installed on the main connecting rods 29; the auxiliary connecting rod 31 is rotatably connected to the forming bracket 20; a pressure plate mounting shaft 46 is installed on the upper forming bracket 20, and a forming pressure plate 33 is rotatably installed on the pressure plate mounting shaft 46, and the forming pressure plate 33 is rotatably connected to the connecting arm 34; a shoe last base 43 is also installed on the upper base 1, and a support plate 42, a conveying cylinder 61, and a conveying guide rail 48 are installed on the shoe last base 43, a conveying slide block 49 is installed on the conveying guide rail 48, and a shoe last 28 is installed on the conveying slide block 49; the conveying cylinder 61 is also connected to the shoe last 28; the shoe last base 43 is also connected to a synthetic base 51, a synthetic cylinder 54 is installed on the synthetic base 51, and a sole cleat 52 is installed on the synthetic cylinder 54.

[0014] In this embodiment, the upper material is manually placed on the support plate 42 and under the shoe last 28, and the sole is placed under the sole cleat 52; the machine is started to automatically complete the following processes: the piston rod of the lifting cylinder 15 extends, the lifting slide 3, the lifting bracket 4 and all the parts installed on the lifting bracket 4 move along the lifting guide rail 2 in the positive direction of the Y axis, and the template 17 reaches the top to complete the preliminary extrusion of the upper material; the piston rod of the micro-cylinder 9 extends, the horizontal slide 11, the molding base 5 and the template 17 installed on the molding base 5 and other parts The second extrusion of the upper material is completed by moving along the horizontal guide rail 10 in the negative direction of the Z axis; the piston rod of the horizontal cylinder 18 extends, the forming bracket 20 and the forming plate 33 installed on the forming bracket 20 move in the negative direction of the Z axis, and at the same time, the secondary connecting rod 31 installed on the forming bracket 20 drives the main connecting rod 29 to rotate around the rotating shaft 7, and the main connecting rod 29 drives the connecting arm 34 to move, and the connecting arm 34 drives the forming plate 33 to rotate around the plate mounting axis 46 to complete the extrusion molding of the upper material; the piston rod of the horizontal cylinder 18 retracts, and the forming plate 33 The parts return to their original positions; the piston rod of the micro-cylinder 9 retracts, driving the template 17 and other parts to move along the horizontal guide rail 10 in the positive direction of the Z axis; the piston rod of the lifting cylinder 15 retracts, and the lifting slide 3, the lifting bracket 4 and all the parts installed on the lifting bracket 4 move along the lifting guide rail 2 in the negative direction of the Y axis; the piston rod of the conveying cylinder 61 extends, and the conveying slide 49 and the shoe last 28 installed on the conveying slide 49 move along the conveying guide rail 48 in the positive direction of the X axis, and the shoe last 28 and the formed upper are conveyed to the bottom of the sole cleat 52; the synthesis gas The piston rod of the cylinder 54 extends out, driving the sole cleat 52 to move in the negative direction of the Y axis, completing the synthesis of the sole and the upper, thereby completing the production of the finished shoe, and the piston rod of the synthesis cylinder 54 retracts, driving the sole cleat 52 to move in the positive direction of the Y axis, and the finished shoe on the shoe last is manually removed; the piston rod of the conveying cylinder 61 retracts, the conveying slide 49 and the shoe last 28 mounted on the conveying slide 49 move along the conveying guide rail 48 to the negative direction of the X axis, and the shoe last returns to its position; then the upper material and the sole are placed in the corresponding positions manually, the machine is started, and the above actions are repeated.

[0015] The working principle of the present invention is as follows: the human beings only need to place the upper material and the sole at the corresponding positions and start the machine, and the machine will automatically complete the production of finished shoes from upper molding to the synthesis of the upper and the sole, without the need for human beings to complete the actions of pushing the template and the pressing plate, thereby reducing the labor intensity; reducing the intermediate links such as stacking and transportation of the molded uppers, thereby improving the production efficiency and reducing the production cost.

[0016] The above is only one embodiment of the present invention. It should be pointed out that a person skilled in the art can make several similar modifications and improvements without departing from the creative concept of the present invention, and these should also be regarded as within the scope of protection of the present invention.

Claims

1. A shoe-making machine, characterized in that: The invention comprises a vamp base (1), a lifting guide rail (2) and a lifting cylinder (15) are installed on the vamp base (1), a lifting slider (3) is installed on the lifting guide rail (2), a lifting bracket (4) is installed on the lifting slider (3), the lifting cylinder (15) is also connected to the lifting bracket (4), a micro-motion cylinder (9) and a horizontal guide rail (10) are installed on the lifting bracket (4), a horizontal slider (11) is installed on the horizontal guide rail (10), and the horizontal slider (11) is installed on the horizontal slider (11). 11) is mounted on a molding base (5); the micro-motion cylinder (9) is also connected to the molding base (5); the molding base (5) is mounted with a template (17) and a horizontal cylinder bracket (23), a rotating shaft (7) is rotatably mounted, and a shoe upper molding bracket (20) is slidably mounted, a horizontal cylinder (18) is mounted on the horizontal cylinder bracket (23), and the horizontal cylinder (18) is also connected to the shoe upper molding bracket (20); main connecting rods (2 9), a secondary connecting rod (31) and a connecting arm (34) are rotatably mounted on the main connecting rod (29); the secondary connecting rod (31) is rotatably connected to the forming bracket (20); a pressure plate mounting shaft (46) is mounted on the upper forming bracket (20), a forming pressure plate (33) is rotatably mounted on the pressure plate mounting shaft (46), and the forming pressure plate (33) is rotatably connected to the connecting arm (34); a shoe last base (43) is also mounted on the upper base (1), and the shoe last base (43) A support plate (42), a conveying cylinder (61), and a conveying guide rail (48) are installed on the conveying guide rail (48); a conveying slider (49) is installed on the conveying slider (49); a shoe last (28) is installed on the conveying cylinder (61); the shoe last base (43) is also connected to a synthetic base (51); a synthetic cylinder (54) is installed on the synthetic base (51); and a sole cleat (52) is installed on the synthetic cylinder (54).

Citation Information

Patent Citations

  • Shoemaking machine

    CN211984101U