Press type slipper manufacturing mold

Through the combined design of the material injection assembly and the drive structure, the problem of uneven material injection in the slipper manufacturing mold is solved, quantitative and efficient material distribution is achieved, and the production efficiency and quality stability of slippers are improved.

CN120461686AInactive Publication Date: 2025-08-12SHENZHEN ZHONGLV SHOES CO LTD
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Patent Information

Application Number
CN202510693274.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-27
Publication Date
2025-08-12
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing slipper manufacturing molds are difficult to achieve quantitative and efficient material distribution during the material injection process, resulting in inefficient production efficiency.

Method used

The combination design of the injection assembly and the drive structure is adopted to convey the premixed foam material through the twisted dragon, and the guide assembly and anti-dislocation assembly are used to ensure that the material is quantitatively and quantitatively injected into multiple injection pressure tanks. Combined with the hydraulic system to control the lifting and lowering of the upper mold, it achieves rapid and stable material injection.

Benefits of technology

The material injection amount of each slipper is achieved consistently, which improves the efficiency and quality stability of slipper manufacturing, reduces raw material waste, and improves production efficiency.

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Abstract

The invention relates to the technical field of high polymer material forming, and particularly discloses a pressing type slipper manufacturing mold which comprises a lower mold body, guide assemblies and a driving structure, a plurality of material injection pressing grooves are formed in the top end of the lower mold body, the guide assemblies are symmetrically arranged above the two sides of the lower mold body and used for guiding material injection assemblies, and the driving structure is used for driving the material injection pressing grooves to move. The driving structure is arranged at the top end of the guiding assembly and used for driving the auger to convey premixed foaming materials, the material injection assembly is arranged, and a discharging nozzle in the material injection assembly is pressed downwards, so that the blocking block can leave the discharging nozzle, and therefore materials in the telescopic material bin can automatically fall into a material injection pressing groove to be filled; due to the fact that the number of turns of rotation of the auger each time is the same, the mass of materials in the telescopic stock bin is equal to the manufacturing amount of each slipper, the quantitative materials can be rapidly injected into the multiple injection pressing grooves, and the slipper manufacturing efficiency is improved.
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Description

Technical Field

[0001] The present application relates to the technical field of polymer material molding, and in particular to a mold for manufacturing press-type slippers. Background Art

[0002] Polymer foam slippers are crafted using advanced EVA (ethylene vinyl acetate) or PU (polyurethane) foaming technology. Their closed-cell microporous structure achieves extreme lightness while also providing excellent cushioning and resilience. They have become an ideal choice for home, outdoor, and sports rehabilitation use. The mold, as the core carrier, features a multi-cavity design and high-precision cavities that not only ensure consistent size and a smooth, defect-free surface for each pair of slippers, but also reduces material waste through optimized flow and exhaust systems. Intelligent temperature control and rapid cooling significantly improve production efficiency. Furthermore, the collaborative operation of the mold and multi-bin loading system further enhances production efficiency. Summary of the Invention

[0003] The present application provides a mold for manufacturing press-type slippers, comprising: A lower die, wherein a plurality of injection grooves are provided on the top of the lower die; Guide components, which are symmetrically arranged above both sides of the lower mold and are used to guide the injection component; A driving structure, the driving structure being disposed at the top end of the guide assembly and being used to drive the auger to convey the premixed foaming material; An injection assembly is provided above the injection groove, and the number of the injection assembly is the same as the number of the injection grooves opened laterally; The injection assembly includes a hanging frame, a telescopic material bin is fixedly provided on the top of the hanging frame, a discharge nozzle is fixedly provided on the bottom end of the telescopic material bin, a feed bin is fixedly provided on the top of the telescopic material bin, a telescopic feeding channel is fixedly provided on the other end of the feed bin, a blocking block is slidingly provided on the inner side of the discharge nozzle, the blocking block is rotatably connected to the auger through a connecting rod, the auger is fixedly connected to the driven pulley through a power rod, the driven pulleys are connected by a belt transmission, and the power rod passes through and is rotatably provided at the connection between the feed bin and the telescopic feeding channel.

[0004] Furthermore, the guide assembly includes a guide member, and a long straight slide groove, a vertical slide groove and a return slide groove are opened on one side of the guide member. The long straight slide groove, the vertical slide groove and the return slide groove are in a connected state, and the vertical slide groove and the return slide groove are provided in multiple locations. Two brackets are fixedly provided at the bottom end of the guide member, and a fixed sleeve is passed through and fixedly provided on one side of the bracket. A sliding rod is slidingly provided inside the fixed sleeve, and a reset spring is fixedly provided between the fixed sleeve and the sliding rod.

[0005] Furthermore, the driving structure includes a traveling gear, the outer side of the traveling gear is meshed with a fixed tooth plate, the fixed tooth plate is fixedly arranged on the top of the guide member, the traveling gear is fixedly connected to the main drive bevel gear through a short rod, the outer side of the main drive bevel gear is meshed with a linkage bevel gear, one end of the linkage bevel gear passes through and is fixedly provided with a transmission rod, the other end of the transmission rod is provided with a one-way shaft assembly, the outer side of the fixed tooth plate is slidingly provided with a connecting frame, the connecting frame is fixedly arranged on the outer side of the feed bin, the outer side of the transmission rod is rotatably provided with a vertical frame, the vertical frame is fixedly arranged on the top of the connecting frame, and the transmission rod and the short rod are rotatably arranged on the top of the connecting frame.

[0006] Furthermore, the connecting frame arranged in the middle has a different appearance from the connecting frames on both sides, the connecting frames are detachably connected to each other, and the connecting frames are arranged at the same level.

[0007] Furthermore, the one-way shaft assembly includes a fixed outer cylinder, which is fixedly arranged on the outside of the transmission rod, and a receiving groove is opened on the outside of the fixed outer cylinder, and a push wheel plate is slidably arranged on the inside of the receiving groove, and a push spring is fixedly arranged on one side of the push wheel plate, and the push spring is fixedly arranged on the inside of the receiving groove, and a driving pulley is arranged on the outside of the fixed outer cylinder, and a plurality of contact teeth are fixedly arranged on the inside of the driving pulley, and the contact teeth are all inclined on the side close to the push wheel plate, and the driving pulley is rotatably arranged on the top end of the adapter cylinder through the adapter cylinder, and the driving pulley is connected to the driven pulley through a belt.

[0008] Furthermore, a return spring is fixedly provided between the hanging frame and the connecting frame, a lower pressure frame is fixedly provided on one side of the top of the hanging frame, the lower pressure frame is slidably provided on the inner side of the bottom end of the connecting frame, and the lower pressure frames are fixedly connected through a supporting frame, a side support rod is fixedly provided on one side of the lower pressure frame, a sliding column is fixedly provided on the other end of the side support rod, a baffle is fixedly provided on the other end of the sliding column, the sliding column is slidably provided on the inner side of the long straight slide groove, the telescopic feeding channel is connected to the storage box, and a stabilizing frame is rotatably provided on the outer side of the driven pulley, and the stabilizing frame is fixedly provided on the top of the connecting frame.

[0009] Furthermore, an anti-dislocation assembly is provided on the other side of the guide assembly, and the anti-dislocation assembly includes a block, a fixed slide rod is penetrated and slidably provided on one side of the block, a rebound spring is fixedly provided on the bottom end of the block, and a fixed seat is fixedly provided on the other end of the rebound spring and the fixed slide rod, and a vertical frame is fixedly provided on one side of the fixed seat, and the vertical frame is fixedly provided on the outer side of the guide member, and the other side of the block is provided with an inclined surface.

[0010] Furthermore, an upper mold is provided above the lower mold, a hydraulic rod is provided at the top of the upper mold, the hydraulic rod is externally connected to a hydraulic cylinder, a workbench is fixedly provided at the bottom end of the lower mold, and the workbench is fixedly connected to the vertical frame.

[0011] The technical solution provided by this application has at least the following technical effects or advantages: 1. The present application sets up an injection assembly and presses down the discharge nozzle in the injection assembly so that the blocking block can leave the discharge nozzle, so that the material in the telescopic hopper can automatically fall into the injection groove for filling. Moreover, since the number of revolutions of the auger is the same each time, the mass of the material in the telescopic hopper is the production amount of each slipper, so that a certain amount of material can be quickly injected into multiple injection grooves, thereby improving the manufacturing efficiency of slippers.

[0012] 2. In this application, the travel gear in the drive structure can rotate when traveling through the setting of the guide component and the drive structure, thereby driving the driven pulley to rotate through the one-way shaft component, so that the auger can transport the material into the telescopic silo, and the distance of the travel gear when traveling horizontally is consistent to achieve the effect of quantitative unloading. BRIEF DESCRIPTION OF THE DRAWINGS

[0013] Figure 1 It is a schematic diagram of the three-dimensional structure of an embodiment of the present application.

[0014] Figure 2 It is a partial three-dimensional structural schematic diagram of an embodiment of the present application.

[0015] Figure 3 This is a schematic diagram of the disassembled structure of the guide assembly and the side support rods, sliding columns and baffles in the embodiment of the present application.

[0016] Figure 4 Schematic diagram of the driving structure in the embodiment of the present application.

[0017] Figure 5 This is a schematic diagram of the disassembled structure of the one-way shaft assembly in the embodiment of the present application.

[0018] Figure 6 This is a schematic diagram of the disassembled structure of the injection assembly in the embodiment of the present application.

[0019] Figure 7 This is a schematic diagram of the combined structure of the driven pulley, power rod, auger, connecting rod and blocking block in the embodiment of the present application.

[0020] Figure 8 This is a schematic diagram of the split structure of the connecting frame and the lower pressure frame in the embodiment of the present application.

[0021] Figure 9 Schematic diagram of the combined structure of the guide member and the anti-dislocation component in the embodiment of the present application.

[0022] In the figure: 1. Lower mold; 101. Injection groove; 102. Workbench; 2. Upper mold; 201. Hydraulic rod; 3. Guide assembly; 301. Guide member; 302. Long straight slide; 303. Vertical slide; 304. Return slide; 305. Fixed sleeve; 306. Sliding rod; 307. Return spring; 308. Bracket; 4. Driving structure; 401. Traveling gear; 4011. Fixed tooth plate; 402. Main drive bevel gear; 403. Linkage bevel gear; 404. Transmission rod; 405. One-way shaft assembly; 4051. Fixed outer cylinder; 4052. Receiving groove; 4053. Push-out spring; 4054. Push wheel plate; 4055. Active belt Wheel; 4056, contact tooth; 406, vertical frame; 4061, adapter cylinder; 407, connecting frame; 5, injection assembly; 501, hanging frame; 502, telescopic hopper; 503, discharge nozzle; 504, feed hopper; 505, telescopic feeding channel; 506, lower pressure frame; 5061, receiving frame; 507, return spring; 508, driven pulley; 509, power rod; 510, auger; 511, connecting rod; 512, blocking block; 513, side support rod; 514, sliding column; 515, baffle; 6, anti-dislocation assembly; 601, block; 602, rebound spring; 603, fixing seat; 604, fixed slide rod; 605, vertical frame. DETAILED DESCRIPTION

[0023] The embodiment of the present application discloses a press-type slipper manufacturing mold. Through the setting of the injection component 5, the discharge nozzle 503 in the injection component 5 is pressed down, so that the blocking block 512 can leave the discharge nozzle 503, so that the material in the telescopic silo 502 can automatically fall into the injection groove 101 for filling. Moreover, since the number of revolutions of the auger 510 each time is the same, the mass of the material in the telescopic silo 502 is the production amount of each slipper, so that a certain amount of material can be quickly injected into multiple injection grooves 101, thereby improving the efficiency of slipper manufacturing.

[0024] In order to better understand the above technical solution, the above technical solution will be described in detail below with reference to the accompanying drawings and specific implementation methods.

[0025] Example 1: Reference Figure 1 、 Figure 2 、 Figure 6 、 Figure 7 and Figure 8The embodiment of the present application discloses a press-type slipper manufacturing mold, including an injection component 5, which is arranged above the injection groove 101, and the number of the injection component 5 is consistent with the number of the laterally opened injection grooves 101. The injection component 5 includes a hanging frame 501, and a telescopic material bin 502 is fixedly provided on the top of the hanging frame 501, and a discharge nozzle 503 is fixedly provided on the bottom end of the telescopic material bin 502. A feed bin 504 is fixedly provided on the top of the telescopic material bin 502, and a telescopic feeding channel 505 is fixedly provided on the other end of the feed bin 504. A blocking block 512 is slidingly provided on the inner side of the discharge nozzle 503, and the blocking block 512 is rotatably connected to the auger 510 through a connecting rod 511. The auger 510 is fixedly connected to the driven pulley 508 through a power rod 509, and the driven pulleys 508 are connected by belt transmission. The power rod 509 passes through and is rotatably provided at the connection between the feed bin 504 and the telescopic feeding channel 505.

[0026] Under the movement of the injection assembly 5, the sliding column 514 will slide on the inner side of the long straight slide groove 302. When the sliding column 514 slides to the vertical slide groove 303, the lower pressing frame 506 is pressed down, so that the hanging frame 501 drives the discharge nozzle 503 to descend, and the discharge nozzle 503 will be close to the injection groove 101, and the telescopic material bin 502 and the return spring 507 will extend. At this time, the blocking block 512 will enter the telescopic material bin 502, so that the premixed foaming material can fall freely into the injection groove 101. In order to ensure that the premixed foaming material can be distributed in the injection groove 101, the handle can be pulled back during this process so that the injection assembly 5 can move back, so that the discharge nozzle 503 can move parallel to the top of the injection groove 101, thereby achieving the effect of distributing the premixed foaming material.

[0027] The rotation of the driven pulley 508 drives the power rod 509 and the auger 510 to rotate, and the rotation of the auger 510 can make the premixed foaming material in the feeding bin 504 enter the telescopic bin 502 for temporary storage. When the discharge nozzle 503 descends, the premixed foaming material will leak out, thereby achieving the effect of automatic discharging.

[0028] It should be noted that the blocking block 512 slides in the discharge nozzle 503, so a corresponding slide rail is provided, and part of the slide rail is located in the telescopic hopper 502, so that the blocking block 512 does not rotate and can only move up and down, that is, it can only block the discharge nozzle 503 or open the discharge nozzle 503.

[0029] Further, refer to Figure 6 and Figure 7A return spring 507 is fixedly provided between the hanging frame 501 and the connecting frame 407, and a lower pressure frame 506 is fixedly provided on one side of the top of the hanging frame 501, and the lower pressure frame 506 is slidably provided on the inner side of the bottom end of the connecting frame 407, and the lower pressure frames 506 are fixedly connected through the supporting frame 5061. A side support rod 513 is fixedly provided on one side of the lower pressure frame 506, and a sliding column 514 is fixedly provided on the other end of the side support rod 513, and a baffle 515 is fixedly provided on the other end of the sliding column 514, and the sliding column 514 is slidably provided on the inner side of the long straight slide groove 302, and the telescopic feeding channel 505 is connected to the external storage box, and a stabilizing frame is rotatably provided on the outer side of the driven pulley 508, and the stabilizing frame is fixedly provided on the top of the connecting frame 407.

[0030] The connecting frame 407 can be used to connect multiple injection components 5 for synchronous movement, and the connecting frame 407 is slidably connected to the lower pressure frame 506, so that the lower pressure frame 506 can move up and down stably. The receiving frame 5061 is used to connect the lower pressure frame 506 so that the lower pressure frame 506 can move synchronously. The sliding column 514 slides along the path on the inner side of the long straight slide groove 302, so that the injection component 5 can perform the discharge work. The setting of the stabilizing frame is to facilitate the driven pulley 508 to be more stable during rotation.

[0031] Reference Figure 1 、 Figure 2 、 Figure 4 and Figure 5 , also includes a driving structure 4, which is arranged at the top of the guide assembly 3, and the driving structure 4 is used to drive the auger 510 to transport the premixed foaming material. The driving structure 4 includes a traveling gear 401, and the outer side of the traveling gear 401 is meshed with a fixed tooth plate 4011, and the fixed tooth plate 4011 is fixedly arranged at the top of the guide member 301. The traveling gear 401 is fixedly connected to the main drive bevel gear 402 through a short rod, and the outer side of the main drive bevel gear 402 is meshed with a linkage bevel gear 403, one end of the linkage bevel gear 403 passes through and is fixedly provided with a transmission rod 404, and the other end of the transmission rod 404 is provided with a one-way shaft assembly 405, and a connecting frame 407 is slidingly provided on the outer side of the fixed tooth plate 4011, and the connecting frame 407 is fixedly provided on the outer side of the feeding bin 504, and a vertical frame 406 is rotatably provided on the outer side of the transmission rod 404, and the vertical frame 406 is fixedly provided at the top of the connecting frame 407, and the transmission rod 404 and the short rod are rotatably provided at the top of the connecting frame 407.

[0032] During the movement of the injection assembly 5, the traveling gear 401 in the driving structure 4 will cooperate with the fixed tooth plate 4011, and the traveling gear 401 will rotate during the movement, so that the traveling gear 401 can drive the main drive bevel gear 402 to rotate through the short rod, and the rotation of the main drive bevel gear 402 drives the linkage bevel gear 403 and the transmission rod 404 to rotate, and the transmission rod 404 can drive the driven pulley 508 to rotate through the one-way shaft assembly 405 and the belt, so that the material can be driven to be discharged.

[0033] It should be noted that the connecting frame 407 arranged in the middle has a different appearance from the connecting frames 407 on both sides, the connecting frames 407 are detachably connected to each other, and the connecting frames 407 are arranged at the same level.

[0034] The injection assembly 5 in the middle and the injection assembly 5 on the other side are not provided with other parts of the guide assembly 3 and the driving structure 4, so the multiple injection assemblies 5 can be connected by the connecting frame 407 and move together.

[0035] Among them, reference Figure 2 、 Figure 4 and Figure 5 The one-way shaft assembly 405 includes a fixed outer cylinder 4051, which is fixedly arranged on the outer side of the transmission rod 404. A receiving groove 4052 is opened on the outer side of the fixed outer cylinder 4051, and a push wheel plate 4054 is slidably arranged on the inner side of the receiving groove 4052. A push spring 4053 is fixedly arranged on one side of the push wheel plate 4054, and the push spring 4053 is fixedly arranged on the inner side of the receiving groove 4052. A driving pulley 4055 is arranged on the outer side of the fixed outer cylinder 4051, and a plurality of contact teeth 4056 are fixedly arranged on the inner side of the driving pulley 4055. The side of the contact teeth 4056 close to the push wheel plate 4054 is all inclined. The driving pulley 4055 is rotatably arranged on the top end of the adapter cylinder 4061 through the adapter cylinder 4061, and the driving pulley 4055 is connected to the driven pulley 508 through a belt.

[0036] When the injection assembly 5 moves back, the traveling gear 401 also moves back, so that the main drive bevel gear 402, the linkage bevel gear 403 and the transmission rod 404 rotate in the opposite direction, and the fixed outer cylinder 4051 in the one-way shaft assembly 405 also rotates in the opposite direction. Due to the arrangement of the inclined surfaces of the push wheel plate 4054 and the contact teeth 4056, when the push wheel plate 4054 contacts the contact teeth 4056, the push wheel plate 4054 enters the receiving groove 4052 and pushes out the spring 405. 3 is compressed so that the push wheel plate 4054 can be engaged with the next contact tooth 4056, so that the active pulley 4055 will not be driven to rotate, and the auger 510 will not rotate in the opposite direction, preventing material from returning. When the fixed outer cylinder 4051 rotates forward, the push wheel plate 4054 will contact and press against the contact tooth 4056, so that the fixed outer cylinder 4051 can drive the active pulley 4055 to rotate when rotating, thereby achieving the effect of power transmission.

[0037] Reference Figure 1 、 Figure 2 and Figure 3 , also includes a guide assembly 3, the guide assembly 3 is symmetrically arranged above both sides of the lower mold 1, the guide assembly 3 is used to guide the injection assembly 5, the guide assembly 3 includes a guide member 301, and a long straight slide groove 302, a vertical slide groove 303 and a return slide groove 304 are provided on one side of the guide member 301, the long straight slide groove 302, the vertical slide groove 303 and the return slide groove 304 are in a connected state, the vertical slide groove 303 and the return slide groove 304 are provided in multiple places, and two brackets 308 are fixedly provided at the bottom end of the guide member 301, and a fixed sleeve 305 is passed through and fixedly provided on one side of the bracket 308, and a sliding rod 306 is slidingly provided inside the fixed sleeve 305, and a return spring 307 is fixedly provided between the fixed sleeve 305 and the sliding rod 306.

[0038] Among them, the long straight chute 302 is the normal walking path of the injection component 5, the vertical chute 303 is the path for the injection component 5 to control the falling of the premixed foaming material, and the return chute 304 allows the premixed foaming material to be spread flat in the injection trough 101, and the number of vertical chutes 303 and return chutes 304 is the same as the number of injection troughs 101 opened horizontally, so that the injection component 5 can simultaneously perform injection work on one row of injection troughs 101.

[0039] When the baffle 515 moves on the inner side of the return slide groove 304, it will contact one end of the sliding rod 306 and compress the return spring 307, while the length between the fixed sleeve 305 and the sliding rod 306 will become shorter. In this way, the rebound force of the return spring 307 allows the sliding column 514 to smoothly return to the vertical slide groove 303, making it easier for the sliding column 514 to rise back to its original position.

[0040] Reference Figure 1 An upper mold 2 is arranged above the lower mold 1, a hydraulic rod 201 is arranged on the top of the upper mold 2, the hydraulic rod 201 is connected to the hydraulic cylinder, and a workbench 102 is fixedly arranged at the bottom end of the lower mold 1, and the workbench 102 is fixedly connected to the vertical frame 605.

[0041] There are two vertical frames 605 , which are symmetrically arranged on the outside of the guide component 301 , so as to achieve a supporting effect on the guide component 3 . Since the positions of the two vertical frames 605 are different, their appearances are also different.

[0042] Example 2: Reference Figure 1 、 Figure 2 and Figure 9 , an anti-dislocation component 6 is provided on the other side of the guide component 3, and the anti-dislocation component 6 includes a stopper 601, and a fixed slide rod 604 is slidably provided on one side of the stopper 601, and a rebound spring 602 is fixedly provided on the bottom end of the stopper 601, and a fixed seat 603 is fixedly provided on the other end of the rebound spring 602 and the fixed slide rod 604, and a vertical frame 605 is fixedly provided on one side of the fixed seat 603. The vertical frame 605 is fixedly provided on the outer side of the guide member 301, and the other side of the stopper 601 is provided with an inclined surface.

[0043] When the injection assembly 5 moves close to the anti-dislocation assembly 6, the baffle 515 in the injection assembly 5 contacts the block 601 in the anti-dislocation assembly 6, and the block 601 will drop. At this time, the rebound spring 602 is in a compressed state. When the baffle 515 reaches the other side of the block 601, the block 601 is rebounded by the elastic force of the rebound spring 602, so that the baffle 515 cannot move to the other side, and the driving structure 4 and the injection assembly 5 cannot be moved. When unlocked, the driving structure 4 and the injection assembly 5 can be freely moved by directly pressing down the block 601, so that the injection assembly 5 will not move at will and interfere with the lifting and lowering of the upper mold 2.

[0044] Working principle: When the slippers are being molded, the driving structure 4 and the injection assembly 5 are located on the upper side of the lower mold 1, so as not to affect the descent of the upper mold 2. When the baffle 515 in the injection assembly 5 contacts the stopper 601 in the anti-dislocation assembly 6, the stopper 601 will descend. At this time, the rebound spring 602 is in a compressed state. When the baffle 515 reaches the other side of the stopper 601, the stopper 601 is rebounded by the elastic force of the rebound spring 602, so that the baffle 515 cannot move to the other side, so that the driving structure 4 and the injection assembly 5 cannot be moved. When unlocked, the drive structure 4 and the injection assembly 5 can be freely moved by directly pressing down the stopper 601. Among them, the telescopic feeding channel 505 can change the length according to the movement amount, so as to adapt to the position change of the injection assembly 5 and facilitate the work of conveying materials. After the slippers are manufactured, the slippers are taken out to facilitate the injection of premixed foaming material. A handle is provided on one side of the bottom end of the lower pressing frame 506, and the handle can be used to move multiple injection components 5 at the same time. During the movement, the traveling gear 401 in the driving structure 4 will cooperate with the fixed tooth plate 4011, and the traveling gear 401 will rotate during the movement, so that the traveling gear 401 can drive the main driving bevel gear 402 to rotate through the short rod, and the rotation of the main driving bevel gear 402 drives the linkage bevel gear 403 and the transmission rod 404 to rotate, and the transmission rod 404 can be driven by the short rod. The one-way shaft assembly 405 and the belt drive the driven pulley 508 to rotate, and the rotation of the driven pulley 508 drives the power rod 509 and the auger 510 to rotate. It should be noted that the blocking block 512 slides in the discharge nozzle 503, so a corresponding slide rail is provided, and part of the slide rail is located in the telescopic silo 502, so that the blocking block 512 does not rotate, and the rotation of the auger 510 can make the premixed foaming material in the feeding silo 504 enter the telescopic silo 502 for temporary storage. At this time, the blocking block 512 is still in a blocked state, so the premixed foaming material will not leak out; When the cam 503 is in the downward direction, the ejector 503 is moved downwards, and the ejector 503 is moved downwards, so that the ejector 503 is moved downwards, and the ejector 503 is moved downwards, so that the ejector 503 is moved downwards, and the ejector 503 is moved downwards, so that the ejector 503 is moved downwards, so that the ejector 503 is moved downwards, and the ejector 503 is moved downwards, so that the ejector 503 is moved downwards, so that the ejector 503 is moved downwards, so that the ejector 503 is moved downwards, so that the ejector 503 is moved downwards, so that the ejector 503 is moved downwards, so that the ejector 503 is moved downwards, so that the ejector 503 is moved downwards, so that the ejector 503 is moved downwards, It should be noted that when the injection assembly 5 moves back, the traveling gear 401 will also move back, so that the main drive bevel gear 402, the linkage bevel gear 403 and the transmission rod 404 rotate in the opposite direction, and the fixed outer cylinder 4051 in the one-way shaft assembly 405 will also rotate in the opposite direction. Due to the setting of the inclined surfaces of the push wheel plate 4054 and the contact teeth 4056, when the push wheel plate 4054 contacts the contact teeth 4056, the push wheel plate 4054 will enter the receiving groove 4052 and The push-out spring 4053 is compressed, so that the push wheel plate 4054 can be engaged with the next contact tooth 4056. Therefore, the driving pulley 4055 will not be driven to rotate, and the auger 510 will not rotate in the reverse direction, preventing the material from returning. When the fixed outer cylinder 4051 rotates forward, the push wheel plate 4054 will contact and press against the contact tooth 4056, so that the fixed outer cylinder 4051 can drive the driving pulley 4055 to rotate when rotating. When the sliding column 514 moves forward inside the return chute 304, the traveling gear 401 resumes forward rotation, thereby allowing the one-way shaft assembly 405 to drive the driven pulley 508 to rotate, and the auger 510 also rotates, so that the premixed foam material can continue to be transported and partially spread in the injection groove 101, thereby ensuring that the premixed foam material in the injection groove 101 is sufficient, thereby ensuring the quality of the slippers; Through the return force of the return spring 507, when the sliding column 514 reaches the vertical slide groove 303, the discharge nozzle 503 can also automatically return to its original height, and then continue to push the injection assembly 5 so that the discharge nozzle 503 can reach the top of the next injection groove 101, so that the premixed foaming material can be injected into multiple injection grooves 101 at the same time, and the walking length of the walking gear 401 is the number of rotations of the auger 510, so that the premixed foaming material can be quantitatively transported without the need for further metering, saving injection time and improving the efficiency of slipper manufacturing.

[0045] Obviously, those skilled in the art may make various changes and modifications to the present invention without departing from the spirit and scope of the present invention. Thus, if such changes and modifications fall within the scope of the claims and their equivalents, the present invention is intended to include such changes and modifications.

[0046] The above is only a preferred specific implementation method of the embodiment of the present application, but the scope of protection of the present application is not limited thereto. Any technician familiar with the technical field can make equivalent replacements or changes based on the technical solution and concept of the present application within the technical scope disclosed in the present application, and they should be covered by the scope of protection of the present application.

Claims

1. A mold for manufacturing press-type slippers, characterized by: include: A lower mold (1), wherein a top end of the lower mold (1) is provided with a plurality of injection grooves (101); A guide assembly (3), the guide assembly (3) being symmetrically arranged above both sides of the lower mold (1), and the guide assembly (3) being used to guide the injection assembly (5); A driving structure (4), the driving structure (4) being arranged at the top end of the guide assembly (3), the driving structure (4) being used to drive the auger (510) to transport the premixed foaming material; An injection assembly (5), the injection assembly (5) being arranged above the injection pressing groove (101), and the number of the injection assembly (5) is the same as the number of the injection pressing grooves (101) opened transversely; The injection assembly (5) includes a hanging frame (501), a telescopic silo (502) is fixedly provided on the top end of the hanging frame (501), a discharge nozzle (503) is fixedly provided on the bottom end of the telescopic silo (502), a feed silo (504) is fixedly provided on the top end of the telescopic silo (502), a telescopic feeding channel (505) is fixedly provided on the other end of the feed silo (504), a blocking block (512) is slidably provided on the inner side of the discharge nozzle (503), the blocking block (512) is rotatably connected to the auger (510) through a connecting rod (511), the auger (510) is fixedly connected to the driven pulley (508) through a power rod (509), the driven pulleys (508) are connected by a belt transmission, and the power rod (509) is rotatably provided at the connection between the feed silo (504) and the telescopic feeding channel (505).

2. A press-type slipper manufacturing mold according to claim 1, characterized in that: The guide assembly (3) includes a guide member (301), and a long straight slide groove (302), a vertical slide groove (303) and a return slide groove (304) are provided on one side of the guide member (301). The long straight slide groove (302), the vertical slide groove (303) and the return slide groove (304) are in a connected state. The vertical slide groove (303) and the return slide groove (304) are provided in multiple locations. Two brackets (308) are fixedly provided at the bottom end of the guide member (301), and a fixed sleeve (305) is passed through and fixedly provided on one side of the bracket (308). A sliding rod (306) is slidably provided inside the fixed sleeve (305), and a return spring (307) is fixedly provided between the fixed sleeve (305) and the sliding rod (306).

3. The mold for manufacturing press-type slippers according to claim 1, characterized in that: The driving structure (4) comprises a traveling gear (401), the outer side of the traveling gear (401) is meshed with a fixed tooth plate (4011), the fixed tooth plate (4011) is fixedly arranged on the top end of the guide member (301), the traveling gear (401) is fixedly connected to the main driving bevel gear (402) via a short rod, the outer side of the main driving bevel gear (402) is meshed with a linkage bevel gear (403), one end of the linkage bevel gear (403) is penetrated and fixedly provided with a transmission rod ( 404), a one-way shaft assembly (405) is provided at the other end of the transmission rod (404), a connecting frame (407) is slidably provided on the outer side of the fixed tooth plate (4011), the connecting frame (407) is fixedly provided on the outer side of the feeding bin (504), a vertical frame (406) is rotatably provided on the outer side of the transmission rod (404), the vertical frame (406) is fixedly provided on the top end of the connecting frame (407), and the transmission rod (404) and the short rod are rotatably provided on the top end of the connecting frame (407).

4. A press-type slipper manufacturing mold according to claim 3, characterized in that: The connecting frame (407) arranged in the middle has a different appearance from the connecting frames (407) on both sides. The connecting frames (407) are detachably connected to each other, and the connecting frames (407) are arranged at the same level.

5. The mold for manufacturing press-type slippers according to claim 3, characterized in that: The one-way shaft assembly (405) includes a fixed outer cylinder (4051), the fixed outer cylinder (4051) is fixedly arranged on the outside of the transmission rod (404), a receiving groove (4052) is provided on the outside of the fixed outer cylinder (4051), a push wheel plate (4054) is slidably arranged on the inside of the receiving groove (4052), and a push spring (4053) is fixedly arranged on one side of the push wheel plate (4054), and the push spring (4053) is fixedly arranged on the inside of the receiving groove (4052). A driving pulley (4055) is provided on the outer side of the fixed outer cylinder (4051), and a plurality of contact teeth (4056) are fixedly provided on the inner side of the driving pulley (4055), and the contact teeth (4056) are all provided with an inclined surface on the side close to the push wheel plate (4054). The driving pulley (4055) is rotatably provided on the top end of the adapter cylinder (4061) through the adapter cylinder (4061), and the driving pulley (4055) is connected to the driven pulley (508) through a belt.

6. The mold for manufacturing press-type slippers according to claim 1, characterized in that: A return spring (507) is fixedly provided between the hanging frame (501) and the connecting frame (407); a lower pressure frame (506) is fixedly provided on one side of the top end of the hanging frame (501); the lower pressure frame (506) is slidably provided on the inner side of the bottom end of the connecting frame (407); the lower pressure frames (506) are fixedly connected via a receiving frame (5061); a side support rod (513) is fixedly provided on one side of the lower pressure frame (506); a sliding column (514) is fixedly provided on the other end of the side support rod (513); a baffle (515) is fixedly provided on the other end of the sliding column (514); the sliding column (514) is slidably provided on the inner side of the long straight slide groove (302); the telescopic feeding channel (505) is externally connected to the storage box; a stabilizing frame is rotatably provided on the outer side of the driven pulley (508); and the stabilizing frame is fixedly provided on the top end of the connecting frame (407).

7. The mold for manufacturing press-type slippers according to claim 1, characterized in that: An anti-dislocation component (6) is provided on the other side of the guide component (3), and the anti-dislocation component (6) includes a stopper (601), a fixed slide rod (604) is slidably provided through one side of the stopper (601), a rebound spring (602) is fixedly provided at the bottom end of the stopper (601), and a fixed seat (603) is fixedly provided at the other end of the rebound spring (602) and the fixed slide rod (604), and a vertical frame (605) is fixedly provided on one side of the fixed seat (603), and the vertical frame (605) is fixedly provided on the outer side of the guide component (301), and the other side of the stopper (601) is provided with an inclined surface.

8. The mold for manufacturing press-type slippers according to claim 1, characterized in that: An upper die (2) is provided above the lower die (1), a hydraulic rod (201) is provided at the top end of the upper die (2), the hydraulic rod (201) is externally connected to a hydraulic cylinder, and a workbench (102) is fixedly provided at the bottom end of the lower die (1), the workbench (102) is fixedly connected to the vertical frame (605).