Antibacterial wear-resistant leisure shoe production device and method
By designing an antibacterial wear-resistant casual shoe production device with multifunctional zones and bearing components, the problem of time-consuming and labor-intensive manual labor in the traditional production process is solved, efficient material processing and transportation is achieved, and production efficiency is improved.
Patent Information
- Application Number
- CN202510473132.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-16
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2045-04-16
AI Technical Summary
In the antibacterial and wear-resistant production process of traditional casual shoes, there is a problem of time-consuming and labor-intensive labor, and it is difficult to achieve efficient material transportation and processing.
An antibacterial wear-resistant casual shoe production device is designed, including multiple functional areas (loading area, glue coating area, pressing area, cutting area, etc.) and load-bearing components. The rotor drives the mold frame to move through the motor to realize the continuous conveying and processing of materials and reduce manual operations.
Through automated production processes, the device reduces manual labor, improves production efficiency, shortens production time, and realizes efficient transportation and processing of materials.
Smart Images

Figure CN119969695A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of casual shoe production, and in particular to an antibacterial and wear-resistant casual shoe production device and method. Background Art
[0002] Casual shoes are shoes for daily wear that combine comfort, style and versatility to suit a variety of casual occasions. The soles of traditional casual shoes are one-piece molded, and the soles only have wear-resistant effects, but poor antibacterial effects. In addition, if the antibacterial and wear-resistant effects of casual shoes are to be ensured, the TPU upper sole with antibacterial agent needs to be pressed with the high-hardness, high-wear-resistant rubber lower sole. Traditional sole pressing devices often use manual glue coating on the bottom sole and put it into a mold, and then the upper sole is put into the mold for pressing. The above process requires workers to work back and forth, which is time-consuming and labor-intensive, and there are also difficulties in demolding and transporting materials. Summary of the invention
[0003] 1. Technical issues to be resolved In view of the deficiencies in the prior art, the present invention provides an antibacterial and wear-resistant leisure shoe production device and method.
[0004] (II) Technical solution To achieve the above-mentioned purpose, the present invention provides the following technical solutions: an antibacterial and wear-resistant leisure shoe production device, comprising a workbench, a bearing assembly and legs, legs are arranged at the four corners below the workbench, a bearing assembly is arranged at the center of the workbench, and a first loading area, a gluing area, a second loading area, a pressing area, a unloading area and an observation area are arranged on the workbench in sequence; The bearing assembly includes a motor, a rotating shaft, a rotating disk, 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 passes through the workbench and is connected to the rotating shaft. The center of the fixed sleeve is provided with a through hole adapted to the rotating shaft. The rotating disk is also arranged above the rotating shaft. Several groups of mold frames are also arranged on the rotating disk. The demolding assembly adapted to the mold frame is also arranged on the rotating disk. The blanking assembly adapted to the mold frame is also arranged on the rotating disk. The blanking assembly is arranged on the periphery of the mold frame. The first loading area and the second loading area are both provided with loading components; The gluing area is provided with a gluing component; The pressing area is provided with a pressing component; A material transfer component is arranged on the material unloading area.
[0005] In order to facilitate the unloading after demolding, the present invention has been improved in that the demolding assembly includes a demolding plate, an elastic member, a lifting plate, an arc block and a connecting rod; the demolding 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 that penetrate the turntable and the bottom wall of the mold frame and are connected to the demolding plate are arranged on both sides of the lifting plate, and an arc block is also arranged at the center below the lifting plate.
[0006] To facilitate blanking, the present invention has been improved in that the blanking assembly includes a first U-shaped frame, a second U-shaped frame, an auxiliary rod and a first spring, auxiliary holes penetrating the turntable are provided on both sides of the mold frame, and auxiliary rods are provided 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 passes through the free end of the first U-shaped frame, the first spring is sleeved on the auxiliary rod, and the two ends of the first spring are respectively connected to the side wall of the auxiliary hole away from the rotating shaft and the first U-shaped frame, the bottom of the top wall of the first U-shaped frame is higher than the top wall of the mold frame, and the opening of the second U-shaped frame is adapted to the demolding assembly.
[0007] In order to facilitate loading, the present invention has been improved in that the front view cross-section of the fixed sleeve is T-shaped with a center hole, the loading assembly includes a first bracket, a first lifter, a first pressure plate and a loading frame, the first loading area and the second loading area are both provided with an inverted L-shaped first bracket, the first lifter passes through the top wall of the first bracket and is connected to the first pressure plate, the loading frame is also provided on the side wall of the first bracket near the end of the turntable, the loading frame is passed through from top to bottom, a T-shaped loading observation hole is provided on the side of the loading frame near the glue coating area, the bottom wall of the loading frame is flush with the top wall of the mold frame, the turntable is also provided with a general support block with a top wall flush with the mold frame, and the general support block is provided with a notch matched with the unloading assembly.
[0008] In order to facilitate sequential loading and unloading of materials, the present invention has been improved in that the elastic member comprises a second spring and a telescopic rod, the second spring is sleeved on the telescopic rod, a first protrusion supporting the arc block is further provided above the bottom wall of the fixed sleeve at the first loading area and the glue coating area, the rising height of the arc block supported by the first protrusion is consistent with the thickness of the material loaded in the first loading area, a second protrusion supporting the demolding of the demolding assembly is further provided above the bottom wall of the fixed sleeve at the unloading area, and the top wall of the first protrusion is lower than the bottom wall of the second protrusion.
[0009] Preferably, the pressing assembly includes a second bracket, a second lifter and a second pressure plate, and a second bracket in an inverted L shape is provided on the pressing area. The output end of the second lifter passes through the top wall of the second bracket and is connected to the second pressure plate, and the second pressure plate is adapted to the mold cavity of the mold frame.
[0010] In order to prevent the material in the loading frame from accidentally falling, the present invention has improvements in that the mold frame protrudes from the notch at one end away from the rotating shaft, and the main support block is further provided with a front support block connected to the mold frame at one end away from the rotating shaft, and the two free ends of the first U-shaped frame are further provided with rear support blocks adapted to the rear of the mold frame at one end away from the rotating shaft, and the top walls of the front support block and the rear support block are flush with the main support block.
[0011] In order to facilitate the transfer of materials, the present invention has been improved in that the material transfer assembly 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 in contact with the second U-shaped frame, and a conveyor is also provided on the unloading area, the upper part of the conveyor input end is flush with the top wall of the mold frame, and the top wall of the first U-shaped frame is provided with a groove adapted to the material.
[0012] Preferably, the motor is a servo motor, the first lifter and the thruster are both cylinders, and the second lifter is a hydraulic cylinder.
[0013] The present invention further provides a method for producing an antibacterial and wear-resistant casual shoe device, comprising the above-mentioned antibacterial and wear-resistant casual shoe production device, and the specific operation comprises the following steps: Step 1: During the initial loading, the loading assembly of the first loading area is first loaded with batches of materials, and then the first lifter of the first loading area is started intermittently to press the first material down into the mold frame; Step 2: Start the motor, and the turntable drives the mold frame to move to the bottom of the output end of the glue coating component for glue coating; Step 3, start the motor to move the first material after glue coating to the second loading area, start the first lifter of the second loading area, press the second material down into the mold frame, and complete the preliminary bonding of the first material and the second material; Step 4, start the motor, move the preliminarily bonded materials to the bottom of the pressing plate, start the second lifter, the pressing plate compacts the first material and the second material to fully connect them, and the second lifter resets; Step 5, start the motor, the turntable moves to the unloading area, at this time, the mold-lifting assembly completely pushes the material out of the mold frame, the conveyor and the pusher are started, the pusher drives the push plate to push the second U-shaped frame, the first U-shaped frame pushes the material to feed toward the conveyor, the conveyor transfers the material, and then the conveyor stops and the pusher resets; Step 6: Continue to start the motor, the staff observes the reset of the unloading assembly and the demoulding assembly, and the equipment runs again.
[0014] (III) Beneficial effects Compared with the prior art, the present invention provides an antibacterial and wear-resistant leisure shoe production device and method, which has the following beneficial effects: The antibacterial and wear-resistant leisure shoe production device and method realize continuous material transportation and processing by setting multiple functional areas (a first loading area, a gluing area, a second loading area, a pressing area, a unloading area and an observation area) and rotating the bearing assembly, thereby avoiding manual reciprocating labor, reducing production time and improving production efficiency. During the entire production process, except for the initial batch loading and subsequent scheduled batch replenishment of materials, the remaining operations are basically completed automatically by the equipment, reducing the workload of the staff and reducing the labor intensity; The cooperation of the demoulding plate, elastic member, lifting plate, arc block and connecting rod in the demoulding assembly, when the arc block is supported and lifted by the second protrusion above the bottom wall of the fixed sleeve, the demoulding plate is driven to rise through the connecting rod, and the material is pushed out of the mold frame, which is convenient for demoulding. The demoulding assembly and the transfer assembly can be used to transfer the pressed material. The first bracket, the first lifter, the first pressure plate and the loading frame of the loading assembly are designed so that the bottom wall of the loading frame is flush with the top wall of the mold frame, and the main support block is provided with a notch that is compatible with the unloading assembly, which cooperates with the first protrusion above the bottom wall of the fixed sleeve to ensure that the first material and the second material are accurately pressed down into the mold frame, thereby realizing sequential loading and preventing the material in the loading frame from falling accidentally. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 It is a schematic diagram of the main structure of the present invention; Figure 2 It is a bottom view schematic diagram of the structure of the present invention; Figure 3 It is a schematic top view of the structure of the present invention; Figure 4 It is a back view schematic diagram of the structure of the present invention; Figure 5 The structure of the present invention Figure 4 A partial enlarged schematic diagram in the middle; Figure 6 The structure of the present invention Figure 4 A partial enlarged schematic diagram of point B in the middle; Figure 7 This is a schematic diagram of the main view of the structure of the present invention after assembling materials without the feeding assembly, the gluing assembly, the pressing assembly and the mold frame; Figure 8 It is a partial front view schematic diagram of the structure of the present invention; Fig. 9 The structure of the present invention Figure 8 Schematic top view of .
[0016] In the figure: 1. workbench; 2. outrigger; 3. motor; 4. rotating shaft; 5. turntable; 6. mold frame; 7. fixing sleeve; 8. glue coating assembly; 9. lifting plate; 10. lifting plate; 11. arc 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 pressure plate; 20. feeding frame; 21. total support block; 22. second spring; 23. telescopic rod; 24. first protrusion; 25. second protrusion; 26. second bracket; 27. second lifter; 28. second pressure plate; 29. front support block; 30. rear support block; 31. pusher; 32. push plate; 33. conveyor. DETAILED DESCRIPTION
[0017] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0018] See also Figure 1-Figure 9 , an antibacterial and wear-resistant leisure shoe production device, comprising a workbench 1, a bearing assembly and a leg 2, wherein the legs 2 are arranged at the four corners below the workbench 1, the bearing assembly is arranged at the center of the workbench 1, and the workbench 1 is sequentially provided with a first loading area, a gluing area, a second loading area, a pressing area, a unloading area and an observation area; The bearing assembly includes a motor 3, a rotating shaft 4, a rotating disk 5, a mold frame 6, a fixing sleeve 7 and a demoulding assembly. The motor 3 and the fixing 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 passes through the workbench 1 and is connected to the rotating shaft 4. The center of the fixing sleeve 7 is provided with a through hole adapted to the rotating shaft 4. The rotating disk 5 is also arranged above the rotating shaft 4. A plurality of groups of mold frames 6 are also arranged on the rotating disk 5. A demoulding assembly adapted to the mold frame 6 is also arranged on the rotating disk 5. A blanking assembly adapted to the mold frame 6 is also arranged on the rotating disk 5. The blanking assembly is arranged on the periphery of the mold frame 6. After the motor 3 (servo motor 3 is used, the speed and rotation angle can be precisely controlled) is started, its output end drives the shaft 4 to rotate, and since the 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 shaft 4, playing a supporting and guiding role to ensure the stable rotation of the turntable 5. Several groups of mold frames 6 set on the turntable 5 rotate together with the turntable 5, passing through various functional areas on the workbench 1 in turn, realizing the transportation of materials at different processing stages; The first loading area and the second loading area are both provided with a loading assembly, the front cross section of the fixing sleeve 7 is a T-shape with a center hole, the loading assembly includes a first bracket 17, a first lifter 18, a first pressing plate 19 and a loading frame 20, the first loading area and the second loading area are both provided with an inverted L-shaped first bracket 17, the first lifter 18 passes through the top wall of the first bracket 17 and is connected to the first pressing plate 19, the side wall of the first bracket 17 near the end of the turntable 5 is also provided with the loading frame 20, the loading frame 20 is passed through from top to bottom, and a T-shaped loading observation hole is provided on the side of the loading frame 20 near the glue coating area, the bottom wall of the loading frame 20 is flush with the top wall of the mold frame 6, the turntable 5 is also provided with a general support block 21 with a top wall flush with the mold frame 6, and the general support block 21 is provided with a notch adapted to the blanking assembly; During the initial loading, batch loading is performed on the loading frame 20 of the first loading area. Subsequently, the first lifter 18 of the first loading area is intermittently started (using a cylinder to provide stable power), and the first lifter 18 drives the first pressing plate 19 to move downward to press the first material into the mold frame 6. The demolding assembly includes a demolding plate 9, an elastic member, a lifting plate 10, an arc block 11 and a connecting rod 12. The demolding plate 9 is slidably arranged in the mold frame 6, and 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 demolding plate 9 are arranged on both sides of the lifting plate 10. An arc 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 On the telescopic rod 23, a first protrusion 24 supporting the arc block 11 is also provided above the bottom wall of the fixed sleeve 7 at the first loading area and the gluing area. The first protrusion 24 supports the arc block 11 to rise to a height that is consistent with the material thickness of the material loaded in the first loading area. A second protrusion 25 supporting the demoulding of the demoulding assembly is also provided above the bottom wall of the fixed sleeve 7 at the unloading area. The top wall of the first protrusion 24 is lower than the bottom wall of the second protrusion 25. It should be noted that in the first loading area and the gluing area, the first protrusion 24 pushes the arc block 11 to move upward. At this time, the lifting plate 10 squeezes the second spring 22, the telescopic rod 23 contracts, and the lifting plate 10 drives the connecting rod 12 to move upward, so that the distance between the demoulding plate 9 and the top wall of the mold frame 6 is the first material thickness of the first loading area. The glue coating area is provided with a glue coating component 8, which includes a lifter, a mounting frame, an auxiliary frame, a glue box, 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 passes through the top wall of the mounting frame and is connected to the auxiliary frame. A shunt pipe is provided under the auxiliary frame. One end of the glue supply pump is connected to the glue box on the workbench 1, one end of the connecting pipe is connected to the other end of the glue supply pump, and the other end of the connecting pipe is connected to the input end of the shunt pipe. The glue coating component 8 can stably coat the first material with glue; When the material is about to enter the second loading area from the glue coating area, the elastic member drives the template 9 to reset to ensure that the second loading area can load the material stably. When the first material after glue coating moves to the second loading area with the turntable 5, the first lifter 18 of the second loading area is started, and the first pressing plate 19 is also driven to press the second material into the mold frame 6 to complete the preliminary bonding of the first material and the second material. The loading process of the second loading area is similar to that of the first loading area. Accurate loading is achieved through the cooperation of the loading frame 20, the first lifter 18 and the first pressing plate 19. The laminating area is provided with a laminating assembly. The material after being coated with glue rotates to the laminating area with the turntable 5, and the second lifter 27 (using a hydraulic cylinder to provide a large pressure) is started. The second lifter 27 drives the second pressing plate 28 to move downward to compact 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 that the material is evenly stressed during the laminating process. After the laminating is completed, the second lifter 27 is reset; When the mold frame 6 rotates to the unloading area, the second protrusion 25 located above the bottom wall of the fixed sleeve 7 at the unloading area supports the arc block 11 to rise. The arc block 11 rises and drives the lifting plate 10 to rise. The lifting plate 10 drives the lifting plate 9 to rise through the connecting rod 12. Since the lifting plate 9 is slidingly arranged in the mold frame 6, the lifting plate 9 completely pushes the material out of the mold frame 6 to complete the demolding operation. The elastic member (composed of the second spring 22 and the telescopic rod 23) plays a role of buffering and resetting during the rising and falling process of the arc block 11. When it is located in the second loading area, the elastic member is in a fully extended state. At this time, a cavity with the same thickness as the second material loaded in the second loading area is also provided in the mold cavity. The bottom wall of the loading frame 20 can be higher than the total support block 21. The height of the bottom wall of the loading frame 20 from the top wall of the mold frame 6 is lower than the thickness of the corresponding material, ensuring stable loading of the material. After demolding, the material is ejected out of the mold frame 6. At this time, under the action of the first spring 16, the first U-shaped frame 13 will move toward the mold frame 6 to push the material because the two ends of the first spring 16 are respectively connected to the side wall of the auxiliary hole away from the rotating shaft 4 and the first U-shaped frame 13. The bottom of the top wall 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 demolding assembly, and can assist in receiving and guiding the material when the material is ejected out of the mold frame 6; The material transfer assembly is provided on the unloading 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 to feed toward 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 can smoothly receive the material and transfer it. After the transfer is completed, the conveyor 33 stops, and the pusher 31 is reset to wait for the next unloading operation.
[0019] When the turntable 5 drives the corresponding mold frame 6 to move to the observation area, the mold removal assembly and the material discharge assembly are observed to be reset. At this time, after the turntable 5 continues to rotate, the first U-shaped frame 13 will not interfere with the movement of the loading frame 20. During the rotation of the turntable 5, although the distance between the side wall of the notch and the mold frame 6 is smaller than the width of the material, in order to avoid the material to be discharged being ground into the gap between the total support block 21 and the loading frame 20 due to the tilt of the material, affecting the stable feeding of the material, in this embodiment, the mold frame 6 protrudes from the notch at one end away from the rotating shaft 4. The end of the total support block 21 away from the rotating shaft 4 is also provided with a front support block 29 connected to the mold frame 6, and the two free ends of the first U-shaped frame 13 away from the rotating shaft 4 are also provided with rear support blocks 30 adapted to the rear of the mold frame 6. 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 to be discharged, the rear support block 30 can send the material to the conveyor 33 without contacting the front support block 29, thereby completing the material transfer.
[0020] The present invention further provides a method for producing an antibacterial and wear-resistant casual shoe device, comprising the above-mentioned antibacterial and wear-resistant casual shoe production device, and the specific operation comprises the following steps: Step 1: During the initial loading, batch loading is first performed on the loading components of the first loading area, and then the first lifter 18 of the first loading area is started intermittently to press the first material downward into the mold frame 6.
[0021] The first loading is to prepare basic materials for subsequent production. The loading assembly consists of a first bracket 17, a first lifter 18, a first pressing plate 19 and a loading frame 20. The first bracket 17 is fixed on the workbench 1 in an inverted L shape to provide installation support for other components.
[0022] The first lifter 18 is started intermittently, and the first lifter 18 drives the first pressing plate 19 to move downward, and presses the first material in the loading frame 20 downward into the mold frame 6. In this process, the first protrusion 24 located at the first loading area above the bottom wall of the fixed sleeve 7 supports the arc block 11 to rise, and the rising height is consistent with the thickness of the material loaded in the first loading area, so that the mold frame 6 is flush with the bottom wall of the loading frame 20, ensuring that the first material can fall into the mold frame 6 accurately and stably; Step 2, start the motor 3, and the turntable 5 drives the mold frame 6 to move to the bottom of the output end of the glue coating component 8 to coat the glue; Step 3, start the motor 3, move the first material coated with glue to the second loading area, start the first lifter 18 of the second loading area, press the second material down into the mold frame 6, and complete the preliminary bonding of the first material and the second material.
[0023] The loading assembly of the second loading area has the same structure as the first loading area, and is also composed of a first bracket 17, a first lifter 18, a first pressing plate 19 and a loading frame 20. The first lifter 18 of the second loading area is started to drive the first pressing plate 19 to press the second material down into the mold frame 6.
[0024] When the material is about to enter the second feeding area from the glue coating area, the elastic member drives the template 9 to reset to ensure that the second feeding area can stably load the material. After the second material is pressed down into the mold frame 6, it contacts the glue coated first material to complete the initial bonding, so that the two are initially combined together; Step 4, start the motor 3, the turntable 5 rotates, and the preliminarily bonded materials are moved under the pressing plate in the pressing area.
[0025] The pressing assembly includes a second bracket 26, a second lifter 27 and a second pressing plate 28. The second bracket 26 is fixed on the workbench 1 in an inverted L shape. The second lifter 27 uses a hydraulic cylinder and can provide a relatively large pressure. When the second lifter 27 is started, it drives the second pressing plate 28 to move downward, and compacts the first material and the second material that are initially bonded in the mold frame 6.
[0026] The second pressing plate 28 is adapted to the mold cavity of the mold frame 6 to ensure that the materials are evenly stressed during the pressing process, so that the first material and the second material are fully connected to form a solid whole. After the pressing is completed, the second lifter 27 is reset to wait for the next pressing operation; Step 5, start the motor 3, and the turntable 5 rotates to the unloading area. The demolding assembly includes a demolding plate 9, an elastic member, a lifting plate 10, an arc block 11 and a connecting rod 12. The second protrusion 25 located above the bottom wall of the fixed sleeve 7 in the unloading area supports the arc block 11 to rise, and the arc block 11 rises and drives the lifting plate 10 to rise. The lifting plate 10 drives the demolding plate 9 to rise through the connecting rod 12. Since the demolding plate 9 is slidably arranged in the mold frame 6, the demolding plate 9 completely pushes the material out of the mold frame 6 to complete the demolding operation. The elastic member (composed of the second spring 22 and the telescopic rod 23) plays a role of buffering and resetting during the rising and falling process of the arc block 11.
[0027] After demolding, the material is ejected from the mold frame 6. At this time, the first U-shaped frame 13 moves toward the mold frame 6 to push the material 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 away from the rotating shaft 4 and the first U-shaped frame 13). The bottom of the top wall 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 demolding assembly, and can assist in receiving and guiding the material when the material is ejected from the mold frame 6.
[0028] Start the pusher 31 (using a cylinder), which 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 toward 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 can smoothly receive the material and transfer it. After the transfer is completed, the conveyor 33 stops, and the pusher 31 is reset to wait for the next unloading operation; Step 6, continue to start the motor 3, 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 blanking assembly and the mold removal assembly are reset to the initial state to ensure that all components can work normally; During the pressing operation, the turntable 5 can provide stable support to ensure that the upper and lower groups of materials are pressed stably.
[0029] Reference to "embodiment" herein means that the specific features, structures or characteristics described in conjunction with the embodiment may be included in at least one embodiment of the present application. The term "embodiment" appearing in various places in the specification does not necessarily refer to the same embodiment, nor does it particularly limit its independence or association with other embodiments. In principle, in the present application, as long as there is no technical contradiction or conflict, the various technical features mentioned in the embodiments can be combined in any way to form a corresponding implementable technical solution.
[0030] Unless otherwise defined, the technical terms used in this document have the same meanings as those generally understood by those skilled in the art to which this application belongs; the use of relevant terms in this document is only for describing specific embodiments and is not intended to limit this application.
[0031] While the embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that many changes, modifications, substitutions and variations can be made to the embodiments without departing from the principles and spirit of the invention.
Claims
1. An antibacterial and wear-resistant leisure shoe production device, comprising a workbench, a bearing assembly and legs, wherein the legs are arranged at the four corners below the workbench, and the bearing assembly is arranged at the center of the workbench, characterized in that: The workbench is provided with a first loading area, a gluing area, a second loading area, a pressing area, a unloading area and an observation area in sequence; The bearing assembly includes a motor, a rotating shaft, a rotating disk, 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 passes through the workbench and is connected to the rotating shaft. The center of the fixed sleeve is provided with a through hole adapted to the rotating shaft. The rotating disk is also arranged above the rotating shaft. Several groups of mold frames are also arranged on the rotating disk. The demolding assembly adapted to the mold frame is also arranged on the rotating disk. The blanking assembly adapted to the mold frame is also arranged on the rotating disk. The blanking assembly is arranged on the periphery of the mold frame. The first loading area and the second loading area are both provided with loading components; The gluing area is provided with a gluing component; The pressing area is provided with a pressing component; A material transfer component is arranged on the material unloading area.
2. The antibacterial and wear-resistant leisure shoe production device according to claim 1, characterized in that: The demolding assembly includes a demolding plate, an elastic member, a lifting plate, an arc block and a connecting rod. The demolding 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 that penetrate the turntable and the bottom wall of the mold frame and are connected to the demolding plate are arranged on both sides of the lifting plate, and an arc block is also arranged at the center below the lifting plate.
3. The antibacterial and wear-resistant leisure shoe production device according to claim 2, characterized in that: The blanking assembly includes a first U-shaped frame, a second U-shaped frame, an auxiliary rod and a first spring. Auxiliary holes penetrating the turntable are provided on both sides of the mold frame, and auxiliary rods are provided on the front and rear side walls of the auxiliary holes. The first U-shaped frame is arranged with a lower opening, and 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 end of the first U-shaped frame, and 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 away from the rotating shaft and the first U-shaped frame. The bottom of the top wall of the first U-shaped frame is higher than the top wall of the mold frame, and the opening of the second U-shaped frame is adapted to the demolding assembly.
4. The antibacterial and wear-resistant leisure shoe production device according to claim 3, characterized in that: The front cross-section of the fixing sleeve is T-shaped with a center hole, and the loading assembly includes a first bracket, a first lifter, a first pressure plate and a loading frame. The first loading area and the second loading area are both provided with an inverted L-shaped first bracket, the first lifter passes through the top wall of the first bracket and is connected to the first pressure plate, and the loading frame is also provided on the side wall of the first bracket near the turntable. The loading frame passes through from top to bottom, and a T-shaped loading observation hole is provided on the side of the loading frame near the glue coating area, and the bottom wall of the loading frame is flush with the top wall of the mold frame. The turntable is also provided with a general support block with a top wall flush with the mold frame, and the general support block is provided with a notch adapted to the blanking assembly.
5. The antibacterial and wear-resistant leisure shoe production device according to claim 4, characterized in that: The elastic member includes a second spring and a telescopic rod, the second spring is sleeved on the telescopic rod, a first protrusion supporting the arc block is also arranged above the bottom wall of the fixed sleeve at the first loading area and the glue coating area, the first protrusion supports the arc block to rise to a height that is consistent with the material thickness loaded in the first loading area, a second protrusion supporting the demolding of the demolding assembly is also arranged above the bottom wall of the fixed sleeve at the unloading area, and the top wall of the first protrusion is lower than the bottom wall of the second protrusion.
6. The antibacterial and wear-resistant leisure shoe production device according to claim 5, characterized in that: The pressing assembly includes a second bracket, a second lifter and a second pressing plate. An inverted L-shaped second bracket is provided on the pressing area. The output end of the second lifter passes through the top wall of the second bracket and is connected to the second pressing plate. The second pressing plate is adapted to the mold cavity of the mold frame.
7. The antibacterial and wear-resistant leisure shoe production device according to claim 6, characterized in that: The mold frame protrudes from the notch at one end away from the rotating shaft, and the total support block is further provided with a front support block connected to the mold frame at one end away from the rotating shaft. The two free ends of the first U-shaped frame are further provided with rear support blocks adapted to the rear of the mold frame at one end away from the rotating shaft, and the top walls of the front support block and the rear support block are flush with the total support block.
8. The antibacterial and wear-resistant leisure shoe production device according to claim 7, characterized in that: The material transfer assembly 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 in contact with the second U-shaped frame. A conveyor is also provided on the unloading area. The upper part of the conveyor input end is flush with the top wall of the mold frame. The top wall of the first U-shaped frame is provided with a groove adapted to the material.
9. The antibacterial and wear-resistant leisure shoe production device according to claim 8, characterized in that: The motor is a servo motor, the first lifter and the propeller are both cylinders, and the second lifter is a hydraulic cylinder.
10. A method for producing an antibacterial and wear-resistant casual shoe device, comprising the antibacterial and wear-resistant casual shoe production device according to any one of claims 1 to 9, characterized in that: The steps include: Step 1: During the initial loading, the loading assembly of the first loading area is first loaded with batches of materials, and then the first lifter of the first loading area is started intermittently to press the first material down into the mold frame; Step 2: Start the motor, and the turntable drives the mold frame to move to the bottom of the output end of the glue coating component for glue coating; Step 3, start the motor to move the first material after glue coating to the second loading area, start the first lifter of the second loading area, press the second material down into the mold frame, and complete the preliminary bonding of the first material and the second material; Step 4, start the motor, move the preliminarily bonded materials to the bottom of the pressing plate, start the second lifter, the pressing plate compacts the first material and the second material to fully connect them, and the second lifter resets; Step 5, start the motor, the turntable moves to the unloading area, at this time, the mold-lifting assembly completely pushes the material out of the mold frame, the conveyor and the pusher are started, the pusher drives the push plate to push the second U-shaped frame, the first U-shaped frame pushes the material to feed toward the conveyor, the conveyor transfers the material, and then the conveyor stops and the pusher resets; Step 6: Continue to start the motor, the staff observes the reset of the unloading assembly and the demoulding assembly, and the equipment runs again.
Citation Information
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