An antibacterial and wear-resistant casual shoe production device and method
By designing an automated antibacterial wear-resistant casual shoes production device, the problems of poor antibacterial effects and time-consuming and labor-intensive manual operation in traditional casual shoes are solved, automated production is achieved, and production efficiency and material transport stability are improved.
Patent Information
- Application Number
- CN202510473132.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-16
- Publication Date
- 2025-07-11
- Estimated Expiration
- 2045-04-16
AI Technical Summary
During the production process of traditional casual shoes, the antibacterial and wear-resistant effect of the sole is poor, and the traditional pressing device requires manual operation to be time-consuming and labor-intensive, making it difficult to mold and transport materials.
An antibacterial wear-resistant casual shoe production device is designed, including a workbench, loading assembly, loading area, glue coating area, pressing area and cutting area. It adopts a motor-driven turntable and mold frame, combining mold assembly, cutting assembly and transport assembly to realize automated material transportation and processing.
It realizes automatic continuous conveying and processing of casual shoes production, reduces labor volume, improves production efficiency, reduces labor intensity, and ensures accurate loading and stable transportation of materials.
Smart Images

Figure CN119969695B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of casual shoe production, and particularly to an antibacterial and wear-resistant casual shoe production device and method. Background Art
[0002] Casual shoes are a type of shoes for daily wear, which integrate comfort, fashion, and versatility, and are suitable for various casual occasions;
[0003] The sole of traditional casual shoes is integrally formed, and the sole only has wear-resistant effect, with poor antibacterial effect. Moreover, if the antibacterial and wear-resistant effect of casual shoes is to be ensured, the TPU upper sole with antibacterial agent needs to be pressed with a rubber lower sole with high hardness and high wear resistance. Traditional sole pressing devices often use manual labor to apply glue to the bottom sole and then put it into the mold, and then put the upper sole into the mold for pressing. In the above process, workers need to work back and forth, which is time-consuming and laborious, and there are also difficulties in demolding and transporting materials. Summary of the Invention
[0004] (I) Technical Problems to be Solved
[0005] In view of the deficiencies of the prior art, the present invention provides an antibacterial and wear-resistant casual shoe production device and method.
[0006] (II) Technical Solutions
[0007] To achieve the above object, the present invention provides the following technical solutions: An antibacterial and wear-resistant casual shoe production device, including a workbench, a bearing assembly, and legs. The legs are arranged at the four corners below the workbench, and the bearing assembly is arranged at the center of the workbench. A first feeding area, a glue coating area, a second feeding area, a pressing area, a blanking area, and an observation area are sequentially arranged on the workbench;
[0008] The bearing assembly includes a motor, a rotating shaft, a turntable, a mold frame, a fixed sleeve, and a demolding assembly. The motor and the fixed sleeve are respectively arranged on the upper and lower sides of the center of the workbench. The output end of the motor penetrates through the workbench and is connected to the rotating shaft. A through hole adapted to the rotating shaft is arranged at the center of the fixed sleeve. The turntable is further arranged above the rotating shaft. A plurality of groups of mold frames are arranged on the turntable. A demolding assembly adapted to the mold frame is further arranged on the turntable. A blanking assembly adapted to the mold frame is further arranged on the turntable, and the blanking assembly is arranged on the periphery of the mold frame;
[0009] Feeding assemblies are arranged on both the first feeding area and the second feeding area;
[0010] A glue coating assembly is arranged on the glue coating area;
[0011] A pressing assembly is arranged on the pressing area;
[0012] A transfer component is arranged on the blanking area.
[0013] To facilitate blanking after mold removal, the present invention is improved in that the mold removal component includes a mold removal plate, an elastic member, a lifting plate, an arc-shaped block and a connecting rod. The mold removal plate is slidably arranged in the mold frame. The elastic member is arranged below the turntable. The upper and lower ends of the elastic member are respectively connected to the turntable and the lifting plate. Connecting rods are arranged on both sides of the lifting plate, passing through the turntable and the bottom wall of the mold frame and connected to the mold removal plate. An arc-shaped block is also arranged at the center below the lifting plate.
[0014] To facilitate blanking, the present invention is improved in that the blanking component includes a first U-shaped frame, a second U-shaped frame, an auxiliary rod and a first spring. Auxiliary holes passing through the turntable are arranged on both sides of the mold frame. Auxiliary rods are arranged on the front and rear side walls of the auxiliary holes. The first U-shaped frame is arranged with a downward opening. The two free ends of the first U-shaped frame are connected to the two free ends of the horizontally arranged second U-shaped frame. The auxiliary rod passes through the free ends of the first U-shaped frame. The first spring is sleeved on the auxiliary rod. The two ends of the first spring are respectively connected to the side wall of the auxiliary hole far from the rotating shaft and the first U-shaped frame. The top wall of the first U-shaped frame is higher than the top wall of the mold frame below. The opening of the second U-shaped frame is adapted to the mold removal component.
[0015] To facilitate feeding, the present invention is improved in that the front view section of the fixed sleeve is T-shaped with a central hole. The feeding component includes a first support, a first lifter, a first pressing plate and a feeding frame. Inverted L-shaped first supports are arranged on both the first feeding area and the second feeding area. The first lifter passes through the top wall of the first support and is connected to the first pressing plate. A feeding frame is also arranged on the side wall of the first support close to the turntable end. The feeding frame is vertically penetrated. A T-shaped feeding observation hole is arranged on the side of the feeding frame close to the gluing area. The bottom wall of the feeding frame is flush with the top wall of the mold frame. A total support block with a top wall flush with the mold frame is also arranged on the turntable. A notch adapted to the blanking component is arranged on the total support block.
[0016] To facilitate sequential feeding and material removal, the present invention is improved in that the elastic member includes a second spring and a telescopic rod. The second spring is sleeved on the telescopic rod. First convex blocks for supporting the arc-shaped block are also arranged above the bottom wall of the fixed sleeve at the first feeding area and the gluing area. The rising height of the first convex blocks supporting the arc-shaped block is the same as the thickness of the material fed in the first feeding area. Second convex blocks for supporting the demolding of the mold removal component are arranged above the bottom wall of the fixed sleeve at the blanking area. The top wall of the first convex blocks is lower than the bottom wall of the second convex blocks.
[0017] Preferably, the pressing assembly includes a second support, a second lifter, and a second pressing plate. An inverted L-shaped second support is provided on the pressing area. The output end of the second lifter penetrates through the top wall of the second support and is connected to the second pressing plate, and the second pressing plate is adapted to the mold cavity of the mold frame.
[0018] To prevent the materials in the feeding frame from accidentally falling, the present invention is improved in that one end of the mold frame away from the rotating shaft protrudes from the notch. A front support block connected to the mold frame is further provided at one end of the total support block away from the rotating shaft. Rear support blocks adapted to the rear part of the mold frame are further provided at the two free ends of the first U-shaped frame away from the rotating shaft. The top walls of the front support block and the rear support block are flush with the total support block.
[0019] To facilitate the transfer of materials, the present invention is improved in that the material transfer assembly includes a pusher, a push plate, and a conveyor. The pusher is provided on the side wall of the fixed sleeve. The output end of the pusher is provided with a push plate in contact with the second U-shaped frame. A conveyor is further provided on the discharging area. The input end of the conveyor is flush with the top wall of the mold frame, and a groove adapted to the materials is provided on the top wall of the first U-shaped frame.
[0020] Preferably, the motor uses a servo motor, the first lifter and the pusher both use air cylinders, and the second lifter uses a hydraulic cylinder.
[0021] The present invention further provides a method for an antibacterial and wear-resistant casual shoe production device, including the above-mentioned antibacterial and wear-resistant casual shoe production device. The specific operations include the following steps:
[0022] Step 1. During the initial feeding, first batch-feed the feeding assembly in the first feeding area. Subsequently, intermittently start the first lifter in the first feeding area to press the first material into the mold frame.
[0023] Step 2. Start the motor, and the turntable drives the mold frame to move below the output end of the gluing assembly for gluing.
[0024] Step 3. Start the motor, move the glued first material to the second feeding area, start the first lifter in the second feeding area, and press the second material into the mold frame to complete the preliminary bonding of the first material and the second material.
[0025] Step 4. Start the motor, move the preliminarily bonded materials below the pressing plate, start the second lifter, and the pressing plate compresses the first material and the second material to make them fully connected, and the second lifter resets.
[0026] Step 5: Start the motor. The turntable moves to the blanking area. At this time, the mold lifting assembly completely ejects the material from the mold frame. Start the conveyor and the pusher. The pusher drives the push plate to push the second U-shaped frame, and the first U-shaped frame pushes the material towards the conveyor. The conveyor transfers the material, and then the conveyor stops and the pusher resets.
[0027] Step 6: Continue to start the motor. The staff observes the reset of the blanking assembly and the mold lifting assembly, and the equipment runs again.
[0028] (III) Beneficial Effects
[0029] Compared with the prior art, the present invention provides an antibacterial and wear-resistant casual shoe production device and method, which have the following beneficial effects:
[0030] For the antibacterial and wear-resistant casual shoe production device and method, through the setting of multiple functional areas (the first feeding area, the glue coating area, the second feeding area, the pressing area, the blanking area and the observation area) and the rotation of the bearing assembly, the continuous transportation and processing of materials are realized, avoiding manual reciprocating labor, reducing the production time, and improving the production efficiency. During the whole production process, except for the initial batch feeding and the subsequent regular batch replenishment of materials, the rest of the operations are basically automatically completed by the equipment, reducing the labor volume of the staff and lowering the labor intensity;
[0031] In the mold lifting assembly, the cooperation of the mold lifting plate, the elastic member, the lifting plate, the arc-shaped block and the connecting rod. When the arc-shaped block is supported and lifted by the second convex block above the bottom wall of the fixed sleeve, the mold lifting plate is driven to rise through the connecting rod, and the material is ejected from the mold frame, facilitating mold lifting. Cooperating with the mold lifting assembly and the transfer assembly, the pressed materials can be transferred;
[0032] In the design of the first support, the first lifter, the first pressing plate and the feeding frame of the feeding assembly, the bottom wall of the feeding frame is flush with the top wall of the mold frame, and the total support block is provided with a notch adapted to the blanking assembly. Cooperating with the first convex block above the bottom wall of the fixed sleeve, it can ensure that the first material and the second material are accurately pressed into the mold frame, realizing sequential feeding, and at the same time preventing the materials in the feeding frame from accidentally falling. BRIEF DESCRIPTION OF THE DRAWINGS
[0033] Figure 1 It is the front view schematic diagram of the structure of the present invention;
[0034] Figure 2 It is the bottom view schematic diagram of the structure of the present invention;
[0035] Figure 3 It is the top view schematic diagram of the structure of the present invention;
[0036] Figure 4 It is the rear view schematic diagram of the structure of the present invention;
[0037] Figure 5The structure of the present invention Figure 4 The partial enlarged schematic view at position A in the figure;
[0038] Figure 6 The structure of the present invention Figure 4 The partial enlarged schematic view at position B in the figure;
[0039] Figure 7 The front view schematic of the structure of the present invention after assembling materials, excluding the feeding component, glue - applying component, pressing component and mold frame;
[0040] Figure 8 The partial front view schematic of the structure of the present invention;
[0041] Figure 9 The structure of the present invention Figure 8 The top - view schematic.
[0042] In the figure: 1. Workbench; 2. Leg; 3. Motor; 4. Rotating shaft; 5. Turntable; 6. Mold frame; 7. Fixed sleeve; 8. Glue - applying component; 9. Lifting template; 10. Lifting plate; 11. Arc - shaped block; 12. Connecting rod; 13. First U - shaped frame; 14. Second U - shaped frame; 15. Auxiliary rod; 16. First spring; 17. First bracket; 18. First lifter; 19. First pressing plate; 20. Feeding frame; 21. Total support block; 22. Second spring; 23. Telescopic rod; 24. First convex block; 25. Second convex block; 26. Second bracket; 27. Second lifter; 28. Second pressing plate; 29. Front support block; 30. Rear support block; 31. Thruster; 32. Pushing plate; 33. Conveyor. Specific embodiments
[0043] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without making creative efforts belong to the protection scope of the present invention.
[0044] Please refer to Figures 1-9 , an antibacterial and wear - resistant casual shoe production device, including a workbench 1, a loading component and legs 2. Legs 2 are arranged at the four corners under the workbench 1, a loading component is arranged at the center of the workbench 1, and a first feeding area, a glue - applying area, a second feeding area, a pressing area, a blanking area and an observation area are sequentially arranged on the workbench 1;
[0045] The bearing component includes a motor 3, a rotating shaft 4, a turntable 5, a mold frame 6, a fixed sleeve 7 and a mold lifting component. The motor 3 and the fixed sleeve 7 are respectively arranged on the upper and lower sides of the center of the workbench 1. The output end of the motor 3 penetrates through the workbench 1 and is connected to the rotating shaft 4. A through hole adapted to the rotating shaft 4 is arranged in the center of the fixed sleeve 7. The turntable 5 is further arranged above the rotating shaft 4. A plurality of groups of mold frames 6 are arranged on the turntable 5. A mold lifting component adapted to the mold frame 6 is arranged on the turntable 5. A blanking component adapted to the mold frame 6 is arranged on the turntable 5. The blanking component is arranged on the periphery of the mold frame 6;
[0046] After the motor 3 (a servo motor 3 is adopted, and the rotation speed and rotation angle can be precisely controlled) is started, its output end drives the rotating shaft 4 to rotate. Since the rotating shaft 4 is connected to the turntable 5, the turntable 5 rotates accordingly. The through hole in the center of the fixed sleeve 7 is adapted to the rotating shaft 4, playing a role of support and guidance to ensure the stable rotation of the turntable 5. The plurality of groups of mold frames 6 arranged on the turntable 5 rotate together with the turntable 5 and pass through each functional area on the workbench 1 in sequence, realizing the conveying of materials in different processing stages;
[0047] Feeding components are arranged on both the first feeding area and the second feeding area. The front view section of the fixed sleeve 7 is T-shaped with a central hole. The feeding component includes a first support 17, a first lifter 18, a first pressing plate 19 and a feeding frame 20. Inverted L-shaped first supports 17 are arranged on both the first feeding area and the second feeding area. The first lifter 18 penetrates through the top wall of the first support 17 and is connected to the first pressing plate 19. The feeding frame 20 is further arranged at one end of the side wall of the first support 17 close to the turntable 5. The feeding frame 20 is vertically through. A feeding observation hole in the shape of a T is arranged on one side of the feeding frame 20 close to the gluing area. The bottom wall of the feeding frame 20 is flush with the top wall of the mold frame 6. A total support block 21 with a top wall flush with the mold frame 6 is arranged on the turntable 5. A notch adapted to the blanking component is arranged on the total support block 21;
[0048] During the initial feeding, the feeding frame 20 in the first feeding area is batch-fed. Subsequently, the first lifter 18 (using a cylinder that can provide stable power) in the first feeding area is intermittently started. The first lifter 18 drives the first pressing plate 19 to move downward, pressing the first material into the mold frame 6. The mold lifting assembly includes a mold lifting plate 9, an elastic member, a lifting plate 10, an arc-shaped block 11, and a connecting rod 12. The mold lifting plate 9 is slidably arranged in the mold frame 6. The elastic member is arranged below the turntable 5. The upper and lower ends of the elastic member are respectively connected to the turntable 5 and the lifting plate 10. Connecting rods 12 that penetrate the turntable 5 and the bottom wall of the mold frame 6 and are connected to the mold lifting plate 9 are arranged on both sides of the lifting plate 10. An arc-shaped block 11 is also arranged at the center below the lifting plate 10. The elastic member includes a second spring 22 and a telescopic rod 23. The second spring 22 is sleeved on the telescopic rod 23. Above the bottom wall of the fixed sleeve 7, a first convex block 24 that supports the arc-shaped block 11 is also arranged at the first feeding area and the glue application area. The height at which the first convex block 24 supports the arc-shaped block 11 to rise is consistent with the thickness of the material fed in the first feeding area. Above the bottom wall of the fixed sleeve 7, a second convex block 25 that supports the demolding of the mold lifting assembly is also arranged at the blanking area. The top wall of the first convex block 24 is lower than the bottom wall of the second convex block 25. It should be noted that in the first feeding area and the glue application area, the first convex block 24 pushes the arc-shaped block 11 to move upward. At this time, the lifting plate 10 squeezes the second spring 22, the telescopic rod 23 contracts, the lifting plate 10 drives the connecting rod 12 to move upward, and thus the distance between the mold lifting plate 9 and the top wall of the mold frame 6 is the thickness of the first material in the first feeding area;
[0049] A glue application assembly 8 is arranged in the glue application area. The glue application assembly 8 includes a lifter, a mounting frame, an auxiliary frame, a glue tank, a glue supply pump, a shunt pipe, and a connecting pipe. The mounting frame is fixed on the workbench 1 in an inverted L shape. The output end of the lifter penetrates the top wall of the mounting frame and is connected to the auxiliary frame. A shunt pipe is arranged below the auxiliary frame. One end of the glue supply pump is connected to the glue tank on the workbench 1. One end of the connecting pipe is connected to the other end of the glue supply pump. The other end of the connecting pipe is connected to the input end of the shunt pipe. The glue application assembly 8 can stably apply glue to the first material;
[0050] When the material is about to enter the second feeding area from the glue application area, the elastic member drives the mold lifting plate 9 to reset to ensure stable feeding in the second feeding area. When the first material after glue application moves to the second feeding area along with the turntable 5, the first lifter 18 in the second feeding area is started, which also drives the first pressing plate 19 to press the second material into the mold frame 6, completing the preliminary bonding of the first material and the second material. The feeding process in the second feeding area is similar to that in the first feeding area. Through the cooperation of the feeding frame 20, the first lifter 18, and the first pressing plate 19, accurate feeding is achieved;
[0051] A pressing component is arranged on the pressing area. After the material is coated with glue, it rotates with the turntable 5 to the pressing area. The second lifter 27 (using a hydraulic cylinder, which can provide a large pressure) is started, and the second lifter 27 drives the second pressing plate 28 to move downward to press the first material and the second material, so that the two are fully connected. The second pressing plate 28 is adapted to the mold cavity of the mold frame 6 to ensure uniform force on the material during the pressing process. After the pressing is completed, the second lifter 27 resets;
[0052] When the mold frame 6 rotates to the blanking area, the second convex block 25 located above the bottom wall of the fixed sleeve 7 in the blanking area supports the arc block 11 to rise. The rise of the arc block 11 drives the lifting plate 10 to rise, and the lifting plate 10 drives the template 9 to rise through the connecting rod 12. Since the template 9 is slidably arranged in the mold frame 6, the template 9 completely ejects the material out of the mold frame 6 to complete the mold lifting operation. The elastic member (composed of the second spring 22 and the telescopic rod 23) plays a role of buffering and resetting during the rise and fall of the arc block 11. When in the second feeding area, the elastic member is in a fully extended state. At this time, there is a cavity in the mold cavity with the same thickness as the second material fed in the second feeding area. The bottom wall of the feeding frame 20 can be higher than the total support block 21, and the height from the bottom wall of the feeding frame 20 to the top wall of the mold frame 6 is lower than the thickness of the corresponding material to ensure stable feeding of the material;
[0053] After the mold is lifted, the material is ejected out of the mold frame 6. At this time, under the action of the first spring 16, since the two ends of the first spring 16 are respectively connected to the side wall of the auxiliary hole far from the rotating shaft 4 and the first U-shaped frame 13, the first U-shaped frame 13 will move towards the mold frame 6 to push the material. The bottom wall of the top of the first U-shaped frame 13 is higher than the top wall of the mold frame 6, and the top wall is provided with a groove adapted to the material, which can stably push the material. The opening of the second U-shaped frame 14 is adapted to the mold lifting component, and when the material is ejected out of the mold frame 6, it can assist in receiving and guiding the material;
[0054] A material transfer component is arranged on the blanking area. The pusher 31 (using a cylinder) is started, and the pusher 31 drives the push plate 32 to push the second U-shaped frame 14, and further pushes the first U-shaped frame 13 and the material towards the conveyor 33 for feeding. The upper part of the input end of the conveyor 33 is flush with the top wall of the mold frame 6, which can smoothly receive the material and transfer it. After the transfer is completed, the conveyor 33 stops, and the pusher 31 resets, waiting for the next blanking operation.
[0055] When the turntable 5 drives the corresponding mold frame 6 to move to the observation area, the mold removing assembly and the blanking assembly are reset. At this time, after the turntable 5 continues to rotate, the first U-shaped frame 13 will not interfere with the feeding frame 20 during movement. During the rotation of the turntable 5, although the distance between the side wall of the notch and the mold frame 6 is less than the width of the material, to prevent the material to be blanked from being ground into the gap between the total support block 21 and the feeding frame 20 due to the side tilt of the material, affecting the stable feeding of the material. In this embodiment, the end of the mold frame 6 away from the rotating shaft 4 protrudes from the notch. A front support block 29 connected to the mold frame 6 is further provided at the end of the total support block 21 away from the rotating shaft 4. Rear support blocks 30 adapted to the rear part of the mold frame 6 are further provided at the ends of the two free ends of the first U-shaped frame 13 away from the rotating shaft 4. The top walls of the front support block 29 and the rear support block 30 are flush with the total support block 21. When the first U-shaped frame 13 with the rear support block 30 pushes the material for blanking, the rear support block 30 can send the material onto the conveyor 33 without contacting the front support block 29, completing the transfer of the material.
[0056] The present invention further provides a method for producing an antibacterial and wear-resistant casual shoe production device, including the above-mentioned antibacterial and wear-resistant casual shoe production device. The specific operations include the following steps:
[0057] Step 1: During the initial feeding, first perform batch feeding on the feeding assembly in the first feeding area. Subsequently, intermittently start the first lifter 18 in the first feeding area to press the first material into the mold frame 6.
[0058] The initial feeding prepares the basic material for subsequent production. The feeding assembly consists of a first bracket 17, a first lifter 18, a first pressing plate 19, and a feeding frame 20. The first bracket 17 is fixed to the workbench 1 in an inverted L shape to provide installation support for other components.
[0059] Intermittently start the first lifter 18. The first lifter 18 drives the first pressing plate 19 to move downward, pressing the first material in the feeding frame 20 into the mold frame 6. During this process, the first convex block 24 above the bottom wall of the fixed sleeve 7 in the first feeding area supports the arc-shaped block 11 to rise, and the rising height is the same as the thickness of the material fed in the first feeding area, making the bottom walls of the mold frame 6 and the feeding frame 20 flush, ensuring that the first material can accurately and smoothly fall into the mold frame 6;
[0060] Step 2: Start the motor 3, and the turntable 5 drives the mold frame 6 to move below the output end of the gluing assembly 8 for gluing;
[0061] Step 3: Start the motor 3, move the glued first material to the second feeding area, start the first lifter 18 in the second feeding area, and press the second material into the mold frame 6 to complete the preliminary bonding of the first material and the second material.
[0062] The loading component in the second loading area has the same structure as that in the first loading area, and is also composed of a first support 17, a first lifter 18, a first pressing plate 19, and a loading frame 20. Start the first lifter 18 in the second loading area, which drives the first pressing plate 19 to press the second material into the mold frame 6.
[0063] When the material is about to enter the second loading area from the gluing area, the elastic member drives the lifting template 9 to reset to ensure stable loading in the second loading area. After the second material is pressed into the mold frame 6, it contacts the first material after gluing to complete preliminary bonding, making the two initially combined together;
[0064] Step 4: Start the motor 3, and the turntable 5 rotates to move the preliminarily bonded material under the pressing plate in the pressing area.
[0065] The pressing component includes a second support 26, a second lifter 27, and a second pressing plate 28. The second support 26 is fixedly arranged on the workbench 1 in an inverted L shape. The second lifter 27 uses a hydraulic cylinder and can provide a large pressure. Start the second lifter 27, which drives the second pressing plate 28 to move downward to press the first material and the second material preliminarily bonded in the mold frame 6.
[0066] The second pressing plate 28 is adapted to the mold cavity of the mold frame 6 to ensure uniform force on the material during the pressing process, enabling the first material and the second material to be fully connected to form a firm whole. After the pressing is completed, the second lifter 27 resets and waits for the next pressing operation;
[0067] Step 5: Start the motor 3, and the turntable 5 rotates to the unloading area. The mold lifting component includes a lifting template 9, an elastic member, a lifting plate 10, an arc-shaped block 11, and a connecting rod 12. The second convex block 25 above the bottom wall of the fixed sleeve 7 in the unloading area supports the arc-shaped block 11 to rise. The rising of the arc-shaped block 11 drives the lifting plate 10 to rise, and the lifting plate 10 drives the lifting template 9 to rise through the connecting rod 12. Since the lifting template 9 is slidably arranged in the mold frame 6, the lifting template 9 completely ejects the material out of the mold frame 6 to complete the mold lifting operation. The elastic member (composed of a second spring 22 and a telescopic rod 23) plays a buffering and resetting role during the rising and falling of the arc-shaped block 11.
[0068] After the mold is lifted, the material is ejected out of the mold frame 6. At this time, the first U-shaped frame 13 moves towards the mold frame 6 under the action of the first spring 16 (the two ends of the first spring 16 are respectively connected to the side wall of the auxiliary hole far from one end of the rotating shaft 4 and the first U-shaped frame 13), pushing the material. The bottom wall of the top of the first U-shaped frame 13 is higher than the top wall of the mold frame 6, and the top wall is provided with a groove adapted to the material, which can stably push the material. The opening of the second U-shaped frame 14 is adapted to the mold lifting component, and can assist in receiving and guiding the material when the material is ejected out of the mold frame 6.
[0069] Start the thruster 31 (using a cylinder). The thruster 31 drives the push plate 32 to push the second U-shaped frame 14, and further pushes the first U-shaped frame 13 and the material to feed towards the conveyor 33. The upper part of the input end of the conveyor 33 is flush with the top wall of the mold frame 6, and it can smoothly receive the material and transfer it. After the transfer is completed, the conveyor 33 stops, and the thruster 31 resets, waiting for the next feeding operation;
[0070] Step 6: Continue to start the motor 3, and the turntable 5 continues to rotate. When the turntable 5 drives the corresponding mold frame 6 to move to the observation area, the staff observes whether the feeding component and the mold lifting component are reset to the initial state to ensure that all components can work normally;
[0071] During the pressing operation, the turntable 5 can provide stable support to ensure that the upper and lower groups of materials are stably pressed together.
[0072] As used herein, the term "embodiment" means that the specific features, structures, or characteristics described in connection with the embodiment may be included in at least one embodiment of the present application. The term "embodiment" that appears in various positions in the specification does not necessarily refer to the same embodiment, nor does it particularly limit its independence or relevance to other embodiments. In principle, in the present application, as long as there is no technical contradiction or conflict, the technical features mentioned in each embodiment can be combined in any way to form corresponding implementable technical solutions.
[0073] Unless otherwise defined, the meanings of the technical terms used herein are the same as those commonly understood by those skilled in the technical field to which the present application belongs; the use of the relevant terms herein is only for describing specific embodiments and is not intended to limit the present application.
[0074] Although the embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention.
Claims
1. An antibacterial and wear-resistant casual shoe production device, comprising a workbench, a bearing assembly and legs. The legs are arranged at the four corners below the workbench, and the bearing assembly is arranged at the center of the workbench. It is characterized in that, A first loading area, a glue coating area, a second loading area, a pressing area, a unloading area and an observation area are sequentially arranged on the workbench; The carrying component includes a motor, a rotating shaft, a turntable, a mold frame, a fixed sleeve and a mold lifting component. The motor and the fixed sleeve are respectively arranged on the upper and lower sides of the center of the workbench. The output end of the motor penetrates through the workbench and is connected to the rotating shaft. A through hole adapted to the rotating shaft is arranged in the center of the fixed sleeve. The turntable is further arranged above the rotating shaft. A plurality of groups of mold frames are arranged on the turntable. A mold lifting component adapted to the mold frame is further arranged on the turntable. A blanking component adapted to the mold frame is further arranged on the turntable. The blanking component is arranged on the periphery of the mold frame; The mold lifting component includes a mold lifting plate, an elastic member, a lifting plate, an arc-shaped block and a connecting rod. The mold lifting plate is slidably arranged in the mold frame. The elastic member is arranged below the turntable. The upper and lower ends of the elastic member are respectively connected to the turntable and the lifting plate. Connecting rods penetrating through the turntable and the bottom wall of the mold frame and connected to the mold lifting plate are arranged on both sides of the lifting plate. An arc-shaped block is further arranged at the center below the lifting plate; The blanking component includes a first U-shaped frame, a second U-shaped frame, an auxiliary rod and a first spring. Auxiliary holes penetrating through the turntable are arranged on both sides of the mold frame. Auxiliary rods are arranged on the front and rear side walls of the auxiliary holes. The first U-shaped frame is arranged with a lower opening. The two free ends of the first U-shaped frame are connected to the two free ends of the horizontally arranged second U-shaped frame. The auxiliary rod penetrates through the free ends of the first U-shaped frame. The first spring is sleeved on the auxiliary rod. The two ends of the first spring are respectively connected to the side wall of the auxiliary hole far from the rotating shaft end and the first U-shaped frame. The top wall of the first U-shaped frame is higher than the top wall of the mold frame below. The opening of the second U-shaped frame is adapted to the mold lifting component; Above the bottom wall of the fixed sleeve, a first convex block for supporting the arc-shaped block is further arranged at the positions of the first loading area and the glue coating area. The rising height of the first convex block for supporting the arc-shaped block is the same as the thickness of the material loaded in the first loading area. Above the bottom wall of the fixed sleeve, a second convex block for supporting the mold release of the mold lifting component is further arranged at the position of the unloading area. The top wall of the first convex block is lower than the bottom wall of the second convex block; A total support block with a top wall flush with the mold frame is further arranged on the turntable. A notch adapted to the blanking component is arranged on the total support block; Loading components are arranged on both the first loading area and the second loading area; A glue coating component is arranged on the glue coating area; A pressing component is arranged on the pressing area; A material transfer component is arranged on the unloading area.
2. The production device of an antibacterial and wear-resistant casual shoe according to claim 1, wherein, The front view cross-section of the fixed sleeve is T-shaped with a central hole. The loading component includes a first support, a first lifter, a first pressing plate and a loading frame. Inverted L-shaped first supports are arranged on both the first loading area and the second loading area. The first lifter penetrates through the top wall of the first support and is connected to the first pressing plate. A loading frame is further arranged on the side wall of the first support close to the turntable end. The loading frame is vertically penetrated. A loading observation hole in the shape of a T is arranged on the side of the loading frame close to the glue coating area. The bottom wall of the loading frame is flush with the top wall of the mold frame.
3. An antibacterial and wear-resistant casual shoe production device according to claim 2, characterized in that, The elastic member includes a second spring and a telescopic rod, and the second spring is sleeved on the telescopic rod.
4. An antibacterial and wear-resistant casual shoe production device according to claim 3, characterized in that, The pressing component includes a second bracket, a second lifter and a second pressing plate. An L-shaped second bracket is arranged on the pressing area. The output end of the second lifter penetrates through the top wall of the second bracket and is connected to the second pressing plate, and the second pressing plate is adapted to the mold cavity of the mold frame.
5. The production device of an antibacterial and wear-resistant casual shoe according to claim 4, characterized in that, One end of the mold frame away from the rotating shaft protrudes from the notch. A front support block connected to the mold frame is further arranged at one end of the total support block away from the rotating shaft. Rear support blocks adapted to the rear part of the mold frame are further arranged at the two free ends of the first U-shaped frame away from the rotating shaft. The top walls of the front support block and the rear support block are flush with the total support block.
6. The production device of an antibacterial and wear-resistant casual shoe according to claim 5, characterized in that, The material transfer component includes a pusher, a push plate and a conveyor. The pusher is arranged on the side wall of the fixed sleeve. The output end of the pusher is provided with a push plate that contacts the second U-shaped frame. A conveyor is further arranged on the blanking area. The input end of the conveyor is flush with the top wall of the mold frame. A groove adapted to the material is arranged on the top wall of the first U-shaped frame.
7. The production device of an antibacterial and wear-resistant casual shoe according to claim 6, characterized in that, The motor uses a servo motor. The first lifter and the pusher both use air cylinders, and the second lifter uses a hydraulic cylinder.
8. A method for manufacturing an antibacterial and wear-resistant casual shoe production device, including an antibacterial and wear-resistant casual shoe production device according to any one of claims 1-7, characterized in that, It includes the following steps: Step 1: During the initial feeding, first batch-feed the feeding component in the first feeding area. Subsequently, intermittently start the first lifter in the first feeding area to press the first material into the mold frame. Step 2: Start the motor, and the turntable drives the mold frame to move below the output end of the gluing component for gluing. Step 3: Start the motor, move the glued first material to the second feeding area, start the first lifter in the second feeding area, and press the second material into the mold frame to complete the preliminary bonding of the first material and the second material. Step 4: Start the motor, move the preliminarily bonded material below the pressing plate, start the second lifter, and the pressing plate compresses the first material and the second material to make them fully connected, and the second lifter resets. Step 5: Start the motor, the turntable moves to the blanking area. At this time, the mold lifting component completely ejects the material from the mold frame. Start the conveyor and the pusher. The pusher drives the push plate to push the second U-shaped frame, and the first U-shaped frame pushes the material towards the conveyor for feeding. The conveyor transfers the material, then the conveyor stops, and the pusher resets. Step 6: Continue to start the motor, and the staff observes the reset of the blanking component and the mold lifting component, and the equipment runs again.
Citation Information
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