Molding press for sports equipment filler

By designing a press press for sports equipment fillings, the combination of rotating components and multiple mechanisms is used to solve the problems of low processing efficiency and difficult to control the quality of traditional sports equipment fillings, and efficient and stable production is achieved, meeting the accuracy and reliability requirements of professional athletes.

CN120116534AInactive Publication Date: 2025-06-10LUOHE VOCATIONAL TECH COLLEGE
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202510559730.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-30
Publication Date
2025-06-10
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The processing of traditional sports equipment fillers has problems such as inefficiency and difficulty in controlling quality, resulting in unstable product performance and unable to meet the accuracy and reliability requirements of professional athletes.

Method used

A mold press for filling materials is designed. The rotating components are used to drive the rotation of the processing disc, and combined with the cooperation of the processing mechanism, the material guide mechanism and the mold assembly, the full filling and pressing molding of the materials in the punching hole are achieved.

Benefits of technology

Through the design of this press, continuous processing is achieved, production efficiency and press quality are improved, product performance stability is ensured, and high standards are met for professional athletes.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120116534A_ABST
    Figure CN120116534A_ABST
Patent Text Reader

Abstract

The invention is applicable to the related technical field of molding presses, and provides a molding press for sports equipment fillers, the molding press comprises a processing table and a processing disc rotatably mounted on the processing table, a plurality of punching holes are formed in the processing disc, and a supporting plate is slidably mounted in each punching hole; the machining table is further provided with a rotating assembly used for driving the machining disc to rotate. The processing mechanism is used for controlling the working state of the supporting plate and is arranged in the processing table; the material guiding mechanism is used for adding a filling material into the punching hole and comprises a feeding module and a material guiding module; through cooperative arrangement of the machining disc, the processing mechanism, the material guiding mechanism and the pressing die assembly, the problems that an existing machining mode is low in efficiency, the quality is difficult to control, the product performance is unstable, the machining efficiency is low, the machining cost is low, and the like are solved. The strict requirements of professional athletes on the precision and the reliability of the equipment cannot be met.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of die - pressing machines, and more specifically, to a die - pressing machine for fillers of sports equipment. Background Art

[0002] In the field of production and manufacturing of sports equipment, fillers play a crucial role in the performance, user experience, and safety of the equipment. Take the common boxing sandbag as an example. The characteristics of its filler directly affect the hitting feedback and physical endurance of athletes during training. Another example is the filler of gymnastic mats, which is related to the buffering and protection effect of users during exercise.

[0003] In the processing of traditional sports equipment fillers, there are many limitations in the production process. Take the forming process of fillers as an example. In the past, relatively simple manual or semi - manual methods were mostly used. When manually pressing some granular fillers, workers operate based on experience and physical strength, which not only has low efficiency but also makes it difficult to ensure the consistency of key indicators such as density and hardness for each batch of products. This inconsistency may lead to unstable product performance for high - end sports equipment and cannot meet the strict requirements of professional athletes for the accuracy and reliability of equipment.

[0004] Therefore, in view of the above - mentioned current situation, there is an urgent need to provide a die - pressing machine for fillers of sports equipment to overcome the deficiencies in current practical applications. Summary of the Invention

[0005] The purpose of the present invention is to provide a die - pressing machine for fillers of sports equipment, aiming to solve the problems in the above - mentioned background art.

[0006] The present invention is realized as follows. A die - pressing machine for fillers of sports equipment includes:

[0007] A processing table and a processing disk rotatably installed on the processing table. A plurality of punching holes are provided on the processing disk. A support plate is slidably installed in each punching hole. And a rotating assembly for driving the processing disk to rotate is also provided on the processing table. A through - hole concentric with the punching holes is provided at the bottom of the processing disk, and the diameter of the through - hole is smaller than the inner diameter of the punching holes.

[0008] A processing mechanism for controlling the working state of the support plate, which is arranged inside the processing table;

[0009] A feeding mechanism for adding filling materials into the punching holes, which includes a feeding module and a guiding module for following the movement of the processing disk and replenishing materials;

[0010] And a die - pressing assembly for pressing the filling materials in the punching holes at a fixed position, which is arranged on the processing table.

[0011] As a further solution of the present invention: The rotating assembly includes:

[0012] An outer gear ring I, which is fixedly installed on the side wall of the processing disk;

[0013] And a driving gear I meshing with the outer gear ring I, and a motor I for driving the driving gear I to rotate is arranged in the processing table.

[0014] As a further solution of the present invention: The processing mechanism includes a telescopic member II for pushing the pallet to move in the stamping hole to realize blanking, and the telescopic member II is arranged in the processing table.

[0015] As a further solution of the present invention: The processing mechanism further includes:

[0016] A compression box fixedly installed in the processing table, a piston is also slidably installed in the compression box, and an air guide pipe is arranged at the bottom of the compression box;

[0017] A spring I for elastically pulling the piston, and the spring I is arranged in the compression box;

[0018] A lifting rod slidably installed on the top of the compression box, one end of the lifting rod is fixedly connected to the piston, the other end of the lifting rod is rotatably installed with a lifting frame, and the lifting frame can move up and down following the lifting rod;

[0019] A bottom plate fixedly installed on the lifting rod, and a reset torsion spring is further arranged between the bottom plate and the lifting frame;

[0020] And a knocking type material leveling assembly for cooperating with the lifting frame.

[0021] As a further solution of the present invention: The knocking type material leveling assembly includes:

[0022] A linkage pipe, which is fixedly installed on the lifting frame, and a push rod is also slidably installed in the linkage pipe. Knock blocks and a magnet I are respectively fixedly installed at both ends of the push rod, and a circular hole for accommodating the linkage pipe is opened at the bottom of the pallet;

[0023] A spring II for elastically supporting the knock block, and the spring II is located in the linkage pipe and sleeved on the push rod;

[0024] A guide box fixedly installed in the processing table, a plurality of groups of magnet II are arranged at intervals on the inner bottom of the guide box, and the magnet II and the magnet I are opposite with opposite magnetic poles;

[0025] And a protection wheel arranged on the linkage pipe, and the protection wheel is made of rubber material.

[0026] As a further solution of the present invention: The feeding module includes a hopper, an L-shaped support plate for fixing the hopper is arranged on the processing table, and a valve is built in the discharge port at the bottom of the hopper.

[0027] As a further solution of the present invention: The material guiding module includes:

[0028] A support ring rotatably installed on the processing disk, and the support ring can move up and down on the processing disk;

[0029] A limiting groove, multiple groups of limiting grooves are opened on the processing table, and a guide wheel is slidably installed in the limiting groove, and a third telescopic member for controlling the working height of the support ring is arranged on the guide wheel;

[0030] A support rod arranged on the processing table, and an elastic member for pulling the support ring to reset is arranged on the support rod;

[0031] A material guiding pipe fixedly installed on the support ring, and a material cutting assembly is arranged at the bottom of the material guiding pipe;

[0032] And a linkage hole opened on the processing disk, and a convex block for inserting into the linkage hole is opened at the bottom of the material guiding pipe.

[0033] As a further solution of the present invention: The material cutting assembly includes:

[0034] An outer gear ring two rotatably installed in the material guiding pipe, a driving gear two meshing with the outer gear ring two is also arranged in the material guiding pipe, and a motor two for driving the driving gear two to rotate is arranged in the material guiding pipe;

[0035] A cutting knife, the cutting knife is rotatably connected to the material guiding pipe through a second rotating shaft, and five groups of cutting knives are arranged;

[0036] And a control rod, both ends of the control rod are provided with a first rotating shaft, and one of the first rotating shafts is rotatably installed on the material guiding pipe, and the other first rotating shaft is rotatably connected to the cutting knife.

[0037] As a further solution of the present invention: The elastic member is an elastic band.

[0038] As a further solution of the present invention: The pressing die module includes:

[0039] A support frame, the support frame is fixedly installed on the processing table, and the support frame is of an L-shaped structure;

[0040] A first telescopic member arranged on the support frame, a punching block for pressing the filling material is arranged on the telescopic end of the first telescopic member, and the punching block is of a cylindrical structure.

[0041] Compared with the prior art, the beneficial effects of the present invention are as follows: The rotation component drives the processing disk to rotate, realizing the switching of the working positions of the punching holes. After one of the punching holes moves below the feeding module, with the coordinated setting of the feeding module and the material guiding module, the filling material can be introduced into the punching hole. After the initial feeding, some materials will remain in the material guiding module. At this time, the processing disk continues to rotate. Before the punching hole filled with materials moves below the pressing die assembly, during the rotation of the processing disk, the material guiding module and the processing mechanism can cooperate to continuously supplement materials into the punching hole, enabling the materials to fully fill the punching hole and avoiding the problem of the finished product being unstable after pressing. The pressing die assembly can press the materials in the punching hole to form them. After the pressing die is completed, the processing disk continues to rotate, and the processing mechanism can drive the supporting plate to move, thereby pushing the formed finished product out of the punching hole to complete the blanking. Repeating the above steps can achieve continuous processing, effectively improving production efficiency and the quality of the pressing die at the same time.

[0042] Through the coordinated setting of the processing disk, the processing mechanism, the material guiding mechanism, and the pressing die assembly, the present invention avoids the problems of low efficiency, difficult quality control, unstable product performance, and inability to meet the strict requirements of professional athletes for the accuracy and reliability of equipment in the existing processing methods. BRIEF DESCRIPTION OF THE DRAWINGS

[0043] In order to more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the following will briefly introduce the drawings required for use in the description of the specific embodiments or the prior art. Obviously, the drawings in the following description are some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.

[0044] Figure 1 It is a schematic structural diagram of the present invention.

[0045] Figure 2 is Figure 1 the rear view structural diagram of.

[0046] Figure 3 It is a schematic structural diagram of the processing disk and the processing mechanism in the present invention.

[0047] Figure 4 is Figure 3 the upward view structural diagram of.

[0048] Figure 5 It is a schematic structural diagram of the processing disk and the supporting plate in the present invention.

[0049] Figure 6 It is a partial structural diagram of the processing mechanism in the present invention.

[0050] Figure 7 Schematic diagram of the internal structure of the compression box in the present invention.

[0051] Figure 8 Schematic diagram of the internal structure of the linkage pipe in the present invention.

[0052] Figure 9 Schematic diagram of the structure of the material guiding mechanism in the present invention.

[0053] Figure 10 Bottom view schematic diagram of the material cutting assembly in the present invention.

[0054] In the drawings: 1 - processing table, 2 - processing disk, 3 - support ring, 4 - first external tooth ring, 5 - limiting groove, 6 - first driving gear, 7 - support frame, 8 - first telescopic member, 9 - stamping block, 10 - hopper, 11 - material guiding pipe, 12 - elastic member, 13 - support rod, 14 - L-shaped support plate, 15 - linkage hole, 16 - stamping hole, 17 - compression box, 18 - air guiding pipe, 19 - second telescopic member, 20 - guiding box, 21 - linkage pipe, 22 - lifting frame, 23 - support plate, 24 - bottom plate, 25 - reset torsion spring, 26 - lifting rod, 27 - protection wheel, 28 - knocking block, 29 - piston, 30 - first spring, 31 - push rod, 32 - second spring, 33 - first magnet, 34 - third telescopic member, 35 - guide wheel, 36 - second driving gear, 37 - second external tooth ring, 38 - cutting knife, 39 - control rod, 40 - first rotating shaft, 41 - second rotating shaft, 42 - second magnet. Detailed implementation manners

[0055] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are some but not all of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art without making creative efforts based on the embodiments of the present invention belong to the scope of protection of the present invention.

[0056] In the description of the present invention, it should be noted that the orientation or positional relationship indicated by the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the present invention. In addition, the terms "first", "second", "third" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance.

[0057] In the description of the present invention, it should be noted that unless otherwise clearly specified and defined, the terms "installation", "connection", and "coupling" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium, and it can be the communication inside two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.

[0058] The following further explains and illustrates the present invention in combination with specific embodiments.

[0059] Please refer to Figures 1-10 , a molding machine for the filler of sports equipment provided by an embodiment of the present invention. The molding machine for the filler of sports equipment includes:

[0060] A processing table 1 and a processing disk 2 rotatably installed on the processing table 1. A plurality of punching holes 16 are formed in the processing disk 2. A support plate 23 is slidably installed in each punching hole 16. A rotating assembly for driving the processing disk 2 to rotate is further provided on the processing table 1. A through hole concentric with the punching holes 16 is formed at the bottom of the processing disk 2, and the diameter of the through hole is smaller than the inner diameter of the punching holes 16. Among them, the punching holes 16 are preferably three.

[0061] A processing mechanism for controlling the working state of the support plate 23, and the processing mechanism is arranged inside the processing table 1.

[0062] A feeding mechanism for adding filling materials into the punching holes 16. The feeding mechanism includes a feeding module and a feeding guiding module for following the movement of the processing disk 2 and replenishing materials.

[0063] And a molding assembly for pressing the filling materials in the punching holes 16 at a fixed position, and the molding assembly is arranged on the processing table 1.

[0064] In an embodiment of the present invention, the die press for the filler of sports equipment is preferably applicable to the die pressing of circular structure fillers. For example, inside some yoga columns, in order to enhance the support and elasticity, fillers made of cylindrical sponges or foams are used. During use, the rotating assembly drives the processing disk 2 to rotate, realizing the switching of the working positions of the punching holes 16. After one of the punching holes 16 moves below the feeding module, with the coordinated setting of the feeding module and the material guiding module, the filling material can be introduced into the punching hole 16. After the initial feeding, some materials will remain in the material guiding module. At this time, the processing disk 2 continues to rotate. Before the punching hole 16 filled with materials moves below the die pressing assembly, during the rotation of the processing disk 2, the material guiding module and the processing mechanism cooperate to continue to supply materials to the punching hole 16, so that the materials can fully fill the punching hole 16, avoiding the problem of the finished product being not firm after die pressing. The die pressing assembly can press the materials in the punching hole 16 to make them form. After the die pressing is completed, the processing disk 2 continues to rotate, and the processing mechanism drives the supporting plate 23 to move, thereby pushing the formed finished product out of the punching hole 16 to complete the blanking. By repeating the above steps, continuous processing can be realized, effectively improving the production efficiency and at the same time improving the die pressing quality. Compared with the prior art, through the coordinated setting of the processing disk 2, the processing mechanism, the material guiding mechanism and the die pressing assembly, the present invention avoids the problems of low efficiency, difficult quality control in the existing processing methods, resulting in unstable product performance and inability to meet the strict requirements of professional athletes for the accuracy and reliability of equipment.

[0065] In an embodiment of the present invention, please refer to Figures 1-10 , the rotating assembly includes:

[0066] The outer gear ring one 4 is fixedly installed on the side wall of the processing disk 2;

[0067] And the driving gear one 6 meshing with the outer gear ring one 4, and a motor one for driving the driving gear one 6 to rotate is arranged in the processing table 1.

[0068] In this embodiment, the motor one is arranged inside the processing table 1, and the existing public technology can be adopted. With the coordinated setting of the motor one, the driving gear one 6 and the outer gear ring one 4, the processing disk 2 can be driven to rotate on the processing table 1, thereby realizing the switching of the working positions of the punching holes 16.

[0069] In an embodiment of the present invention, please refer to Figures 1-10 , the processing mechanism includes a telescopic member two 19 for pushing the supporting plate 23 to move in the punching hole 16 to realize blanking, and the telescopic member two 19 is arranged in the processing table 1; the telescopic member two 19 can adopt a hydraulic cylinder or a pneumatic cylinder;

[0070] The processing mechanism further includes:

[0071] A compression box 17 fixedly installed in the processing table 1, a piston 29 is also slidably installed in the compression box 17, and an air guide pipe 18 is arranged at the bottom of the compression box 17;

[0072] A first spring 30 for elastically pulling the piston 29, the first spring 30 is arranged in the compression box 17;

[0073] A lifting rod 26 slidably installed at the top of the compression box 17, one end of the lifting rod 26 is fixedly connected to the piston 29, the other end of the lifting rod 26 is rotatably installed with a lifting frame 22, and the lifting frame 22 can move up and down following the lifting rod 26;

[0074] A bottom plate 24 fixedly installed on the lifting rod 26, a reset torsion spring 25 is also arranged between the bottom plate 24 and the lifting frame 22;

[0075] And a knocking type material leveling assembly for cooperating with the lifting frame 22;

[0076] The knocking type material leveling assembly includes:

[0077] A linkage pipe 21, the linkage pipe 21 is fixedly installed on the lifting frame 22, and a push rod 31 is also slidably installed in the linkage pipe 21. Knock blocks 28 and a first magnet 33 are respectively fixedly installed at both ends of the push rod 31. A circular hole for accommodating the linkage pipe 21 is opened at the bottom of the support plate 23;

[0078] A second spring 32 for elastically supporting the knock block 28, the second spring 32 is located in the linkage pipe 21, and the second spring 32 is sleeved on the push rod 31;

[0079] A guide box 20 fixedly installed in the processing table 1, a plurality of groups of second magnets 42 are arranged at intervals at the bottom inside the guide box 20, and the second magnets 42 are opposite to the first magnet 33 with opposite magnetic poles; both ends of the guide box 20 are provided with second magnets 42;

[0080] And a protection wheel 27 arranged on the linkage pipe 21, the protection wheel 27 is made of rubber material;

[0081] The feeding module includes a hopper 10, an L-shaped support plate 14 for fixing the hopper 10 is arranged on the processing table 1, and a valve is arranged at the discharge port at the bottom of the hopper 10; the valve can be an electromagnetic valve;

[0082] The material guiding module includes:

[0083] A support ring 3 rotatably installed on the processing disk 2, the support ring 3 can move up and down on the processing disk 2;

[0084] The limiting groove 5 is provided with multiple groups on the processing table 1, and a guide wheel 35 is slidably installed in the limiting groove 5. A third telescopic member 34 for controlling the working height of the support ring 3 is arranged on the guide wheel 35. The third telescopic member 34 can be a hydraulic cylinder or a pneumatic cylinder.

[0085] A support rod 13 arranged on the processing table 1, and an elastic member 12 for pulling the support ring 3 to reset is arranged on the support rod 13. The elastic member 12 is an elastic band.

[0086] A material guide pipe 11 fixedly installed on the support ring 3, and a material cutting assembly is arranged at the bottom of the material guide pipe 11.

[0087] And a linkage hole 15 opened on the processing disk 2, and a convex block for inserting into the linkage hole 15 is opened at the bottom of the material guide pipe 11.

[0088] The material cutting assembly includes:

[0089] An outer gear ring two 37 rotatably installed in the material guide pipe 11. A second driving gear 36 meshing with the outer gear ring two 37 is further arranged in the material guide pipe 11, and a second motor for driving the second driving gear 36 to rotate is arranged in the material guide pipe 11.

[0090] A cutting knife 38, the cutting knife 38 is rotatably connected to the material guide pipe 11 through a second rotating shaft 41, and five groups of cutting knives 38 are arranged. The cutting knife 38 is a triangular-like structure, each side is an arc structure, and at least one side is subjected to edge cutting treatment.

[0091] And a control rod 39, both ends of the control rod 39 are provided with a first rotating shaft 40, and one of the first rotating shafts 40 is rotatably installed on the material guide pipe 11, and the other first rotating shaft 40 is rotatably connected to the cutting knife 38.

[0092] In this embodiment, the telescopic member II 19 can be used to push the pallet 23 to move, so as to push the finished product out of the punching hole 16. After the telescopic member II 19 is reset, the pallet 23 will move downward and reset under the action of gravity; when feeding, an external feeding device is used in cooperation with the hopper 10, and the filling material is intermittently introduced into the hopper 10 by the external feeding device. The external feeding device can adopt the existing publicly known technology. The material in the hopper 10 will flow into the guide pipe 11 under the action of gravity and enter the punching hole 16 through the guide pipe 11. During the loading process, the finished product unloading operation is carried out synchronously. After the initial loading and unloading are completed, the processing disk 2 will continue to rotate, and the telescopic member III 34 will drive the support ring 3 to move downward, so that the convex block at the bottom of the guide pipe 11 is inserted into the linkage hole 15. At this time, the valve at the bottom of the hopper 10 is closed, and the guide pipe 11 can follow the movement of the processing disk 2 by using the linkage hole 15. At this time, there is still some material in the guide pipe 11. At the same time, gas is pumped into the compression box 17 by the air guide pipe 18 (the air guide pipe 18 is connected to an external air source in advance). The gas entering the compression box 17 will push the piston 29 upward, and the lifting rod 26 and the lifting frame 22 will drive the linkage pipe 21 to move upward, so that the bottom of the linkage pipe 21 is inserted into the round hole at the bottom of the pallet 23, so that the linkage pipe 21 can move with the processing disk 2 and the linkage pipe 21 rotates around the lifting rod 26. During the movement process, the magnet I 33 intermittently corresponds to multiple groups of magnets II 42, and with the supporting action of the spring II 32, the push rod 31 can reciprocally lift and lower in the linkage pipe 21, and the impact block 28 is used to impact the pallet 23, so that the material in the punching hole 16 is more compact, and the material in the guide pipe 11 can further enter the punching hole 16 for replenishment. Before the punching hole 16 filled with material is about to move below the die assembly, the gas in the compression box 17 is pumped out by the air guide pipe 18, and the telescopic member III 34 drives the support ring 3 to reset. Under the action of the reset torsion spring 25, the lifting frame 22 can be reset, and under the action of the elastic member 12, the support ring 3 can be pulled to rotate to reset the guide pipe 11, which is convenient for subsequent operations. Before resetting, the motor II will drive the external gear ring II 37 to rotate by using the driving gear II 36, so that the external gear ring II 37 drives the control rod 39 to push the cutting knife 38 to rotate around the rotating shaft II 41, and the circular block is spliced to block the bottom of the guide pipe 11, and the cutting edge on the side of the cutting knife 38 can cut the material protruding from the surface of the processing disk 2, reducing the material stuck between the guide pipe 11 and the processing disk 2.

[0093] In an embodiment of the present invention, please refer to Figures 1-10 , the die assembly includes:

[0094] A support frame 7, the support frame 7 is fixedly installed on the processing table 1, and the support frame 7 is an L-shaped structure;

[0095] The first telescopic member 8 is arranged on the support frame 7, and a stamping block 9 for pressing the filling material is arranged on the telescopic end of the first telescopic member 8, and the stamping block 9 is of a cylindrical structure; wherein the first telescopic member 8 can be a hydraulic cylinder or a pneumatic cylinder. When the stamping block 9 enters the stamping hole 16, the outer wall of the stamping block 9 is in sliding contact with the inner wall of the stamping hole 16.

[0096] In this embodiment, after the stamping hole 16 full of the filling material moves below the stamping block 9, the first telescopic member 8 drives the stamping block 9 to move downward, and the filling material in the stamping hole 16 is pressed by the stamping block 9 to complete the die pressing operation.

[0097] In summary, the working principle of the present invention is as follows: During use, the rotation assembly drives the processing disk 2 to rotate, realizing the switching of the working positions of the punching holes 16. After one of the punching holes 16 moves below the feeding module, with the cooperative setting of the feeding module and the material guiding module, the filling material can be introduced into the punching hole 16. After the initial feeding, part of the material will remain in the material guiding module. At this time, the processing disk 2 continues to rotate. Before the punching hole 16 filled with material moves below the die pressing assembly, during the rotation of the processing disk 2, the material guiding module and the processing mechanism can cooperate to continue to supplement the material into the punching hole 16, so that the material can fully fill the punching hole 16, avoiding the problem of the finished product being not firm after die pressing. The die pressing assembly can press the material in the punching hole 16 to make it take shape. After the die pressing is completed, the processing disk 2 continues to rotate, and the processing mechanism can drive the support plate 23 to move, thereby pushing the formed finished product out of the punching hole 16 to complete the blanking. Repeating the above steps can achieve continuous processing, effectively improving the production efficiency and at the same time improving the die pressing quality. Specifically: The telescopic member II 19 can push the support plate 23 to move, thereby pushing the finished product out of the punching hole 16. After the telescopic member II 19 resets, the support plate 23 will move downward and reset under the action of gravity;During feeding, an external feeding device is used in cooperation with the hopper 10. The filling material is intermittently introduced into the hopper 10 by the external feeding device. The external feeding device can adopt the existing publicly known technology. The material in the hopper 10 will flow into the guide pipe 11 under the action of gravity and enter the stamping hole 16 through the guide pipe 11. During the loading process, the finished product unloading operation is carried out synchronously. After the initial loading and unloading are completed, the processing disk 2 will continue to rotate, and the support ring 3 will be driven down by the telescopic member three 34, so that the convex block at the bottom of the guide pipe 11 is inserted into the linkage hole 15. At this time, the valve at the bottom of the hopper 10 is closed. The guide pipe 11 can move with the processing disk 2 by using the linkage hole 15. At this time, there is still some material in the guide pipe 11. At the same time, gas is pumped into the compression box 17 by the air guide pipe 18 (the air guide pipe 18 is connected to an external air source in advance). The gas entering the compression box 17 will push the piston 29 upward. The lifting rod 26 and the lifting frame 22 will drive the linkage pipe 21 upward, so that the bottom of the linkage pipe 21 is inserted into the round hole at the bottom of the support plate 23, enabling the linkage pipe 21 to move with the processing disk 2 and rotate around the lifting rod 26. During the movement, the first magnet 33 intermittently corresponds to multiple second magnets 42, and with the support of the second spring 32, the push rod 31 can reciprocally lift and lower in the linkage pipe 21. The impact block 28 is used to impact the support plate 23, making the material in the stamping hole 16 more compact and enabling the material in the guide pipe 11 to further enter the stamping hole 16 for supplementation. Before the stamping hole 16 filled with material is about to move below the die assembly, the gas in the compression box 17 is pumped out by the air guide pipe 18, and the telescopic member three 34 drives the support ring 3 to reset. Under the action of the reset torsion spring 25, the lifting frame 22 can be reset. Under the action of the elastic member 12, the support ring 3 can be pulled to rotate to reset the guide pipe 11, facilitating subsequent operations. Before resetting, the second motor will drive the second driving gear 36 to rotate the second external gear ring 37 through the driving gear two 36, so that the second external gear ring 37 drives the control rod 39 to push the cutting knife 38 to rotate around the second rotating shaft 41, and the circular block is spliced to block the bottom of the guide pipe 11. The cutting edge on the side of the cutting knife 38 can cut the material protruding from the surface of the processing disk 2, reducing the material stuck between the guide pipe 11 and the processing disk 2. After the stamping hole 16 fully loaded with the filling material moves below the stamping block 9, the telescopic member one 8 will drive the stamping block 9 downward, and the filling material in the stamping hole 16 is pressed by the stamping block 9 to complete the die pressing operation.;

[0098] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements on some or all of the technical features; and these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention.

Claims

1. A molding machine for sports equipment fillings, comprising a processing table (1) and a processing disk (2) rotatably mounted on the processing table (1), wherein the processing disk (2) is provided with a plurality of punching holes (16), a support plate (23) is slidably mounted in each punching hole (16), and a rotating assembly for driving the processing disk (2) to rotate is also provided on the processing table (1), a through hole cocentric with the punching hole (16) is provided at the bottom of the processing disk (2), and the diameter of the through hole is smaller than the inner diameter of the punching hole (16), characterized in that: Also includes: A processing mechanism for controlling the working state of the support plate (23), wherein the processing mechanism is arranged in the processing table (1); A material guiding mechanism for adding filling material into the punching hole (16), the material guiding mechanism comprising a material feeding module and a material guiding module for following the movement of the processing disk (2) and performing material replenishment; And a die assembly for pressing the filling material in the punching hole (16) at a fixed position, wherein the die assembly is arranged on the processing table (1).

2. The compression molding machine for sports equipment fillings according to claim 1, characterized in that: The rotating assembly comprises: An outer gear ring 1 (4), wherein the outer gear ring 1 (4) is fixedly mounted on a side wall of the processing disc (2); and a driving gear (6) meshing with the outer gear ring (4); a motor (1) is provided in the processing table (1) for driving the driving gear (6) to rotate.

3. The compression molding machine for sports equipment fillings according to claim 1, characterized in that: The processing mechanism comprises a second telescopic member (19) for pushing the support plate (23) to move in the punching hole (16) to achieve material unloading, and the second telescopic member (19) is arranged in the processing table (1).

4. The compression molding machine for sports equipment fillings according to claim 3, characterized in that: The processing mechanism also includes: A compression box (17) fixedly mounted in the processing table (1), a piston (29) being slidably mounted in the compression box (17), and an air guide tube (18) being arranged at the bottom of the compression box (17); A spring 1 (30) for elastically pulling the piston (29), wherein the spring 1 (30) is disposed in the compression box (17); A lifting rod (26) is slidably mounted on the top of the compression box (17), one end of the lifting rod (26) is fixedly connected to the piston (29), and the other end of the lifting rod (26) is rotatably mounted with a lifting frame (22), and the lifting frame (22) can follow the lifting rod (26) in lifting and lowering movements; A bottom plate (24) fixedly mounted on the lifting rod (26), wherein a return torsion spring (25) is provided between the bottom plate (24) and the lifting frame (22); And a knocking type material leveling component used in conjunction with the lifting frame (22).

5. The compression molding machine for sports equipment fillings according to claim 4, characterized in that: The knocking type screed assembly comprises: A linkage tube (21), wherein the linkage tube (21) is fixedly mounted on the lifting frame (22), and a push rod (31) is slidably mounted in the linkage tube (21), and a knocking block (28) and a magnet (33) are respectively fixedly mounted on both ends of the push rod (31), and a circular hole for accommodating the linkage tube (21) is provided at the bottom of the support plate (23); A second spring (32) for elastically supporting the striking block (28), wherein the second spring (32) is located in the linkage tube (21), and the second spring (32) is sleeved on the push rod (31); A guide box (20) fixedly mounted in the processing table (1), wherein a plurality of groups of second magnets (42) are arranged at intervals at the bottom of the guide box (20), and the second magnets (42) and the first magnet (33) have opposite magnetic poles facing each other; and a protection wheel (27) arranged on the linkage pipe (21), wherein the protection wheel (27) is made of rubber material.

6. The compression molding machine for sports equipment fillings according to claim 1, characterized in that: The feed module comprises a hopper (10); an L-shaped support plate (14) for fixing the hopper (10) is provided on the processing table (1); and a valve is built into the discharge port at the bottom of the hopper (10).

7. The compression molding machine for sports equipment fillings according to claim 6, characterized in that: The material guiding module comprises: A support ring (3) rotatably mounted on the processing disk (2), wherein the support ring (3) is capable of moving up and down on the processing disk (2); Limiting grooves (5), wherein a plurality of limiting grooves (5) are provided on the processing table (1), and guide wheels (35) are slidably mounted in the limiting grooves (5), and a telescopic member (34) for controlling the working height of the support ring (3) is provided on the guide wheel (35); A support rod (13) disposed on the processing table (1), wherein the support rod (13) is provided with an elastic member (12) for pulling the support ring (3) to reset; A material guide pipe (11) fixedly mounted on the support ring (3), wherein a material cutting assembly is provided at the bottom of the material guide pipe (11); and a linkage hole (15) formed on the processing disk (2); a protrusion for being inserted into the linkage hole (15) is formed at the bottom of the material guide tube (11).

8. The compression molding machine for sports equipment fillings according to claim 7, characterized in that: The cutting component comprises: A second outer gear ring (37) is rotatably mounted in the material guide tube (11), wherein a second driving gear (36) meshing with the second outer gear ring (37) is also disposed in the material guide tube (11), and a second motor for driving the second driving gear (36) to rotate is disposed in the material guide tube (11); A cutting knife (38), wherein the cutting knife (38) is rotatably connected to the material guide tube (11) via a second rotating shaft (41), and five groups of the cutting knives (38) are provided; and a control rod (39), wherein both ends of the control rod (39) are provided with a rotating shaft (40), and one of the rotating shafts (40) is rotatably mounted on the material guide tube (11), and the other rotating shaft (40) is rotatably connected to the cutting knife (38).

9. The compression molding machine for sports equipment fillings according to claim 7, characterized in that: The elastic member (12) is an elastic band.

10. The compression molding machine for sports equipment fillings according to claim 1, characterized in that: The die assembly comprises: A support frame (7), wherein the support frame (7) is fixedly mounted on the processing table (1), and the support frame (7) is an L-shaped structure; A telescopic member (8) is arranged on the support frame (7), and a punching block (9) for applying pressure to the filling material is arranged on the telescopic end of the telescopic member (8), and the punching block (9) is a cylindrical structure.