Feeding device for particle production
By designing a feeding device with lifting, translation, tilting, and blocking components, the problems of dust dispersion and high labor intensity during the raw material powder feeding process were solved, achieving efficient and safe automated feeding.
Patent Information
- Application Number
- CN202422976733.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-04
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2034-12-04
AI Technical Summary
Existing pellet production plants suffer from problems such as dust hazard to workers' health, high labor intensity, and low efficiency during the raw material powder feeding process.
A feeding device comprising a lifting component, a translation component, a tilting component, and a blocking component was designed. It achieves efficient feeding of raw material powder through automated equipment such as drive motors, hydraulic cylinders, and electric cylinders, and uses a pyramidal funnel to provide guidance, reducing manual operation.
It reduces the risk of workers inhaling dust, reduces labor intensity, improves feeding efficiency, ensures accurate delivery of raw materials to production equipment, and reduces raw material loss.
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Figure CN223509265U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of pellet production technology, and in particular to a feeding device for pellet production. Background Technology
[0002] Granulation production feeding refers to the process of conveying raw material powder, granules or other forms of materials to production equipment for processing.
[0003] In existing technology, factories that produce granules generally do not have production lines for producing raw material powders. The raw material powders used in their production are mostly purchased from external sources and stored in woven bags. Some small-scale factories, due to lower production cost budgets, cannot afford a complete automated feeding system for raw material powders. Therefore, when feeding raw material powders into the granulation production equipment, manual pouring is mostly used. Because the raw material powders are lightweight, some powder is released into the air during the pouring process. If workers continue pouring, they will inhale a large amount of dust, which adversely affects their health. Furthermore, the woven bags containing the raw material powders are generally heavy, making continuous pouring labor-intensive and inefficient.
[0004] To address this issue, we designed a feeding device for pellet production, providing an alternative technical solution. Utility Model Content
[0005] Therefore, it is necessary to provide a feeding device for pellet production that is easy to pour and has high feeding efficiency, in order to address the above-mentioned technical problems.
[0006] To solve the above-mentioned technical problems, the present invention adopts the following technical solution:
[0007] A feeding device for granulation production includes a granulation production device body and a feeding device body. The bottom of the feeding device body is fixedly provided with a plurality of foot brake casters for easy movement. The feeding device body includes a mounting frame one and a mounting frame two. The mounting frame two is fixedly provided on one side of the mounting frame one. The top of the mounting frame one is provided with a pyramidal funnel for guiding the raw material powder. The mounting frame two is provided with a feeding mechanism for feeding the raw material powder.
[0008] Preferably, the feeding mechanism includes a lifting component, a translation component, a tilting component, and a blocking component. The lifting component includes multiple lifting plates movably disposed on one side of the mounting frame two. Multiple rotating shafts are rotatably connected between the multiple lifting plates. Gears are fixedly disposed on both sides of the multiple rotating shafts. A rack matching the gears is fixedly disposed on the mounting frame. A movable mounting block and a strength lifting block are respectively disposed on one side of the multiple rotating shafts. The movable mounting block and the strength lifting block are slidably engaged in the mounting frame two. A synchronous pulley is connected to one side of the rotating shaft through the movable mounting block and the strength lifting block. A synchronous belt for transmission is sleeved on the synchronous pulley. A reducer is connected to the rotating shaft located at the top of the movable mounting block. A drive motor is connected to the input end of the reducer.
[0009] Preferably, the translation component includes a U-shaped mounting plate slidably mounted on the lifting plate. The lifting plate has a groove that matches the U-shaped mounting plate. A section of the U-shaped mounting plate located in the groove is threadedly connected to an adjusting screw. One end of the adjusting screw is rotatably connected to the inner wall of the groove, and the other end of the adjusting screw extends through the groove to the outside of the lifting plate. A synchronous pulley is fixedly mounted on the section of the adjusting screw located outside the lifting plate. A synchronous belt is fitted on the synchronous pulley for transmission. One end of the adjusting screw is connected to a reducer. The input end of the reducer is connected to a drive motor. A mounting block is fixedly mounted on one side of the mounting bracket to facilitate the installation of the reducer and the drive motor.
[0010] Preferably, the tilting assembly includes a connecting shaft rotatably mounted on the U-shaped mounting plate, connecting rods rotatably mounted on both sides of the connecting shaft, a connecting rod rotatably connected to the end of the connecting rod away from the connecting shaft, a connecting shaft rotatably mounted on the side of the connecting rod rotatably close to the connecting rod, a connecting shaft rotatably mounted on the connecting rod, a hydraulic cylinder fixedly mounted in the middle of the connecting shaft, the output end of the hydraulic cylinder fixedly connected to the middle of the connecting shaft rotat, and a tilting plate for tilting the raw material powder fixedly connected to the top of the connecting rod rotat.
[0011] Preferably, the blocking assembly includes a plurality of L-shaped guide baffles slidably engaged on one side of the tilting plate. The tilting plate has guide grooves that match the L-shaped guide baffles. A section of the L-shaped guide baffle located in the guide groove is threadedly connected to an adjusting screw two. One end of the adjusting screw two is rotatably connected to the inner wall of the guide groove, and the other end of the adjusting screw two passes through the guide groove and is connected to a drive motor three.
[0012] Preferably, a guide hopper is fixedly provided on the side of the tilting plate near the pyramidal funnel, and a strip-shaped mounting plate is fixedly provided at the top of the guide hopper near the pyramidal funnel. An electric cylinder is fixedly provided on the strip-shaped mounting plate, and the output end of the electric cylinder passes through the strip-shaped mounting plate and is connected to a sealing plate for sealing the raw material powder.
[0013] It is clear without a doubt that the technical solution described above in this application can solve the technical problem that this application aims to address.
[0014] At the same time, through the above technical solutions, this utility model has at least the following beneficial effects:
[0015] 1. The present invention provides a feeding device for granule production. Through the design of the lifting component, the worker only needs to place the woven bag containing the raw material powder on the tilting plate, and then start the drive motor to lift the woven bag containing the raw material powder to a position higher than the main feed inlet of the granule production device. Then, stop the drive motor, and it can cooperate with the subsequent translation component and tilting component to complete the subsequent feeding process of the raw material powder.
[0016] 2. The present invention provides a feeding device for granule production. Through the design of the translation component, the worker only needs to start the second drive motor to transport the woven bag lifted by the lifting component to the inlet of the main body of the granule production device. When the woven bag is above the granule production inlet, the second drive motor is stopped, and it can cooperate with the subsequent tilting component to complete the subsequent feeding process of the raw material powder.
[0017] 3. The feeding device for granule production provided by this utility model, through the design of the tilting component, allows the worker to tilt the tilting plate simply by activating the hydraulic cylinder, thereby causing the woven bag placed on the tilting plate to slide towards the side closer to the feed inlet of the main body of the granule production device, so that the front end of the woven bag abuts against the L-shaped guide baffle, thereby completing the tilting of the raw material powder inside the woven bag.
[0018] 4. The feeding device for granule production provided by this utility model uses an L-shaped guide baffle to guide and block the sliding woven bag through the design of the blocking component, so as to cooperate with the tilting plate to complete the pouring of the raw material powder inside the woven bag. At the same time, the design of the guide hopper, electric cylinder and sealing plate is used to seal the raw material powder that leaks out after the woven bag is broken, so as to prevent the raw material powder from directly leaking to the ground after the woven bag is broken, thus effectively improving the practical performance of the device. Attached Figure Description
[0019] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0020] Figure 1 This is a schematic diagram of the axial view structure of this utility model;
[0021] Figure 2 This is a top view of the structure of this utility model;
[0022] Figure 3 This is a schematic diagram of the lifting assembly of this utility model in the installation state on the mounting frame 2;
[0023] Figure 4 This is a structural schematic diagram of the tilting component of this utility model in the tilted state;
[0024] Figure 5 This is an axial view of the blocking component of this utility model.
[0025] In the diagram: 1. Main body of the pellet production device; 2. Main body of the feeding device; 3. Foot brake caster; 4. Mounting frame one; 5. Mounting frame two; 6. Pyramidal funnel; 7. Lifting plate; 8. Rotating shaft; 9. Gear; 10. Rack; 11. Moving mounting block; 12. Strength enhancement block; 13. Synchronous pulley one; 14. Synchronous belt one; 15. Reducer one; 16. Drive motor one; 17. U-shaped mounting plate; 18. Slide groove; 19. Adjusting screw one; 2 0. Synchronous pulley 2; 21. Synchronous belt 2; 22. Reducer 2; 23. Drive motor 2; 24. Mounting block; 25. Connecting shaft 1; 26. Connecting rod 1; 27. Connecting rod 2; 28. Connecting shaft 2; 29. Hydraulic cylinder; 30. Tilting plate; 31. L-shaped guide baffle; 32. Guide chute; 33. Adjusting screw 2; 34. Drive motor 3; 35. Guide hopper; 36. Strip mounting plate; 37. Electric cylinder; 38. Sealing plate. Detailed Implementation
[0026] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.
[0027] Example
[0028] Reference Figure 1-5A feeding device for granulation production includes a granulation production device body 1 and a feeding device body 2. The bottom of the feeding device body 2 is fixedly equipped with multiple easily movable casters 3. The feeding device body 2 includes a first mounting frame 4 and a second mounting frame 5. The second mounting frame 5 is fixedly mounted on one side of the first mounting frame 4. The top of the first mounting frame 4 is provided with a pyramidal funnel 6 for guiding raw material powder. The second mounting frame 5 is provided with a feeding mechanism for feeding the raw material powder. Specifically, in this invention, through the design of the feeding mechanism, the worker only needs to place the woven bag containing raw material powder on the tilting plate 30, then cut open the woven bag, allowing a portion of the raw material powder inside the woven bag to fall into the guide hopper 35, and then sequentially activate the drive motor. The feeding of raw material powder can be completed by the combination of machine 16, drive motor 23, hydraulic cylinder 29, and electric cylinder 37. The entire feeding process minimizes the number of steps involved by workers, thereby reducing the amount of dust inhaled by workers, effectively ensuring their health, and improving the practicality of the device. At the same time, the semi-automatic feeding method effectively improves the feeding efficiency of raw material powder, further enhancing the practicality of the device. The design of the pyramidal funnel 6 provides guidance for the raw material powder during pouring, so that the raw material powder poured out of the woven bag can be accurately transported into the main body 1 of the granulation production device under the action of the pyramidal funnel 6, thereby avoiding unnecessary loss of raw material powder during the feeding process and improving the practicality of the device.
[0029] The feeding mechanism includes a lifting assembly, a translation assembly, a tilting assembly, and a blocking assembly. The lifting assembly includes multiple lifting plates 7 movably disposed on one side of the mounting frame 2 5. Multiple rotating shafts 8 are rotatably connected between the multiple lifting plates 7. Gears 9 are fixedly disposed on both sides of the multiple rotating shafts 8. A rack 10 matching the gears 9 is fixedly disposed on the mounting frame. A movable mounting block 11 and a strength lifting block 12 are respectively disposed on one side of the multiple rotating shafts 8. The movable mounting block 11 and the strength lifting block 12 are slidably engaged within the mounting frame 2 5. A synchronous pulley 13 is connected to one side of the rotating shaft 8 through the movable mounting block 11 and the strength lifting block 12. A synchronous belt 14 for transmission is sleeved on the synchronous pulley 13. A reducer 15 is connected to the rotating shaft 8 at the top of the movable mounting block 11. The input end of the reducer 15 is connected to the drive motor 16. Specifically, in this utility model, through the design of the lifting component, the worker only needs to place the woven bag containing the raw material powder on the tilting plate 30, and then start the drive motor 16 to lift the woven bag containing the raw material powder to a position higher than the feed inlet of the main body 1 of the granulation production device. Then, the drive motor 16 is stopped, and it can cooperate with the subsequent translation component and tilting component to complete the subsequent feeding process of the raw material powder. Through the design of the strength lifting block 12, a certain support force is provided for the rotating shaft 8 to avoid unnecessary shaking of the rotating shaft 8 due to centrifugal force during rotation, thereby improving the stability of the device operation.
[0030] When it is necessary to transport the raw material powder placed on the tilting plate 30 upward, the worker only needs to start the drive motor 16, so that the output end of the drive motor 16 outputs power to the reducer 15. Through the fixed connection between the reducer 15 and the rotating shaft 8, one of the rotating shafts 8 is driven to rotate. Then, through the action of the synchronous pulley 13 and the synchronous belt 14, the other rotating shaft 8 is driven to rotate synchronously. This simultaneously drives the multiple gears 9 fixedly connected on the two rotating shafts 8 to rotate synchronously. Through the meshing between the multiple gears 9 and the rack 10, the lifting plate 7, the U-shaped mounting plate 17 and the tilting plate 30 are lifted to complete the upward transport of the raw material powder placed on the tilting plate 30.
[0031] The translation assembly includes a U-shaped mounting plate 17 slidably mounted on the lifting plate 7. The lifting plate 7 has a groove 18 that matches the U-shaped mounting plate 17. A section of the U-shaped mounting plate 17 located within the groove 18 is threadedly connected to an adjusting screw 19. One end of the adjusting screw 19 is rotatably connected to the inner wall of the groove 18, and the other end extends through the groove 18 to the outside of the lifting plate 7. A synchronous pulley 20 is fixedly mounted on the section of the adjusting screw 19 located outside the lifting plate 7. A synchronous belt 21 for transmission is fitted onto the synchronous pulley 20. One end of the adjusting screw 19 is connected to a reducer 22, and the input end of the reducer 22 is connected to a drive motor 23. A mounting block 24 is fixedly provided on one side of the mounting bracket 5 to facilitate the installation of the reducer 22 and the drive motor 23. Specifically, in this utility model, through the design of the translation component, the worker only needs to start the drive motor 23 to transport the woven bag lifted by the lifting component to the feed port of the granule production device body 1. When the woven bag is above the granule production feed port, the drive motor 23 is stopped, and it can cooperate with the subsequent tilting component to complete the subsequent feeding process of the raw material powder.
[0032] It should be noted that, in this utility model, the design of reducer 15 and reducer 22 effectively improves the output torque of drive motor 16 and drive motor 23, thereby ensuring that the lifting and translation components powered by drive motor 16 and drive motor 23 can drive the raw material powder it carries to move accordingly, thus ensuring the normal operation of the device.
[0033] When it is necessary to move the raw material powder placed on the tilting plate 30, the worker only needs to start the drive motor 23, so that the output end of the drive motor 23 outputs power to the reducer 22. Through the fixed connection between the reducer 22 and the adjusting screw 19, one of the adjusting screws 19 is driven to rotate. Then, through the action of the synchronous pulley 20 and the synchronous belt 21, the other adjusting screw 19 is driven to rotate synchronously. This simultaneously drives the U-shaped mounting plate 17 threaded on the two adjusting screws 19 to move, so that the raw material powder placed on the tilting plate 30 is moved towards the main body 1 of the granulation production device, so as to complete the subsequent tilting process of the raw material powder.
[0034] Reference Figure 1-3The tilting assembly includes a connecting shaft 25 rotatably mounted on the U-shaped mounting plate 17. Connecting rods 26 are fixedly sleeved on both sides of the connecting shaft 25. A connecting rod 27 is rotatably connected to the end of the connecting rod 26 away from the connecting shaft 25. A connecting shaft 28 is provided on the side of the connecting rod 27 near the connecting rod 26. The connecting shaft 28 is fixedly mounted on the connecting rod 27. A hydraulic cylinder 29 is fixedly mounted in the middle of the connecting shaft 25. The output end of the hydraulic cylinder 29 is fixed... Connected to the middle of the connecting shaft 28, the top end of the connecting rod 27 is fixedly connected to a tilting plate 30 for tilting the raw material powder. Specifically, in this utility model, through the design of the tilting component, the worker only needs to activate the hydraulic cylinder 29 to tilt the tilting plate 30, thereby causing the woven bag placed on the tilting plate 30 to slide towards the side closer to the feed inlet of the main body 1 of the granulation production device, so that the front end of the woven bag abuts against the L-shaped guide baffle 31, thereby completing the tilting of the raw material powder inside the woven bag.
[0035] When it is necessary to pour the raw material powder placed on the tilting plate 30, the worker only needs to activate the hydraulic cylinder 29, so that the output end of the hydraulic cylinder 29 extends forward, thereby driving the connecting rod 27 to tilt and swing upward. At this time, the connecting rod 26 will also tilt upward at a certain angle to adapt to the swing of the connecting rod 27. During the upward tilting and swinging process of the connecting rod 27, the tilting plate 30 fixedly connected to its top will tilt and push upward, so that the woven bag placed on the tilting plate 30 will slide down to the side closer to the main body 1 of the granulation production device, so that the woven bag will come into contact with the L-shaped guide baffle 31, thereby causing the raw material powder in the woven bag to flow out from the tear cut in the woven bag and be guided and transported into the main body 1 of the granulation production device by the guide hopper 35, thus completing the pouring and feeding of the raw material powder.
[0036] Reference Figure 1-4 The blocking assembly includes multiple L-shaped guide baffles 31 slidably mounted on one side of the tilting plate 30. The tilting plate 30 has guide grooves 32 that match the L-shaped guide baffles 31. A section of the L-shaped guide baffle 31 located in the guide groove 32 is threadedly connected to an adjusting screw 33. One end of the adjusting screw 33 is rotatably connected to the inner wall of the guide groove 32, and the other end of the adjusting screw 33 passes through the guide groove 32 and is connected to a drive motor 34. Specifically, in this utility model, through the design of the blocking assembly, the L-shaped guide baffles 31 are used to guide and block the woven bag after it has slid, so as to cooperate with the tilting plate 30 to complete the pouring of the raw material powder inside the woven bag. Through the design of the adjusting screw 33 and the drive motor 34, it is convenient for workers to adjust the position of the L-shaped guide baffles 31 accordingly, so that the L-shaped guide baffles 31 can guide and block woven bags of different specifications, thereby effectively reducing the limitations of the device during use and improving the practical performance of the device.
[0037] It should be noted that in this utility model, the thread on the adjusting screw 33 is a two-section positive and negative thread design with opposite directions of rotation. With this design, the blocking component only needs to be equipped with a drive motor 34 to drive the two L-shaped guide baffles 31 to move synchronously in opposite directions or towards each other. This ensures the normal operation of the blocking component while effectively controlling the production cost of the device and further improving the practical performance of the device.
[0038] When it is necessary to adjust the position of the two L-shaped guide baffles 31, the worker only needs to start the drive motor 34, so that the output end of the drive motor 34 drives the adjusting screw 2 33 to rotate, thereby causing the two L-shaped guide baffles 31 threaded on the adjusting screw 2 33 to move synchronously in opposite directions, so as to adjust the position of the L-shaped guide baffles 31.
[0039] A guide hopper 35 is fixedly installed on the side of the tilting plate 30 near the pyramidal funnel 6. A strip-shaped mounting plate 36 is fixedly installed on the top of the guide hopper 35 near the pyramidal funnel 6. An electric cylinder 37 is fixedly installed on the strip-shaped mounting plate 36. The output end of the electric cylinder 37 passes through the strip-shaped mounting plate 36 and is connected to a sealing plate 38 for sealing the raw material powder. Specifically, in this utility model, the design of the guide hopper 35, the electric cylinder 37, and the sealing plate 38 seals the raw material powder that leaks out after the woven bag is broken, preventing the raw material powder from leaking directly to the ground after the woven bag is broken, thus effectively improving the practical performance of the device.
[0040] When it is necessary to transport the raw material powder accumulated in the guide hopper 35 to the main body 1 of the granulation production device, the worker only needs to start the electric cylinder 37, so that the output end of the electric cylinder 37 extends outward, thereby driving the sealing plate 38 fixedly connected to its output end to move down and gradually separate from the guide hopper 35. When the top of the sealing plate 38 is at the bottom of the guide hopper 35, the raw material powder accumulated in the guide hopper 35 will fall into the main body 1 of the granulation production device under the action of gravity, thus completing the feeding process of the raw material powder.
[0041] The usage process of the feeding device for pellet production provided by this utility model is as follows:
[0042] When feeding the raw material powder, the worker only needs to place the woven bag containing the powder on the tilting plate 30, and then slit the bag. The raw material powder inside will spray out from the puncture at the moment the bag is slit, and slide down into the guide hopper 35 through the L-shaped guide baffle 31. At this time, the drive motor 16 is started, and the output end of the drive motor 16 outputs power to the reducer 15. Through the fixed connection between the reducer 15 and the rotating shaft 8, one of the rotating shafts 8 is driven to rotate. Then, through the action of the synchronous pulley 13 and the synchronous belt 14, the other rotating shaft 8 is driven to rotate synchronously, thus driving both shafts simultaneously. Multiple gears 9 fixedly connected to the rotating shaft 8 rotate synchronously. The meshing between the gears 9 and the rack 10 lifts the lifting plate 7, the U-shaped mounting plate 17, and the tilting plate 30. When the woven bag is lifted above the feed inlet of the main body 1 of the pellet production device, the drive motor 16 is stopped, and the drive motor 23 is started. The output of the drive motor 23 sends power to the reducer 22. Through the fixed connection between the reducer 22 and the adjusting screw 19, one of the adjusting screws 19 rotates. Then, through the action of the synchronous pulley 20 and the synchronous belt 21, the other adjusting screw 19 is rotated. 9 rotates synchronously, thereby simultaneously moving the U-shaped mounting plates 17 threaded onto the two adjusting screws 19, so that the raw material powder placed on the tilting plate 30 moves towards the main body 1 of the granulation production device. When the woven bag is above the granulation production inlet, the drive motor 23 is stopped, and the hydraulic cylinder 29 is started, causing the output end of the hydraulic cylinder 29 to extend forward, thereby driving the connecting rod 27 to tilt and swing upward. At this time, the connecting rod 26 will also tilt upward at a certain angle to adapt to the swing of the connecting rod 27. During the upward tilting and swinging process of the connecting rod 27, it will tilt and push the tilting plate 30 fixedly connected to its top upward. The woven bag placed on the tilting plate 30 slides down to the side closer to the main body 1 of the granulation device, causing the woven bag to come into contact with the L-shaped guide baffle 31. This causes a large amount of raw material powder inside the woven bag to flow out from the tear in the woven bag. Then, the electric cylinder 37 is activated, causing the output end of the electric cylinder 37 to extend outward, thereby driving the sealing plate 38, which is fixedly connected to its output end, to move down and gradually separate from the guide hopper 35. When the top of the sealing plate 38 is at the bottom of the guide hopper 35, the raw material powder accumulated in the guide hopper 35 will fall into the main body 1 of the granulation device under the action of gravity, thus completing the feeding process of the raw material powder.
[0043] The preferred embodiments of this utility model disclosed above are merely illustrative of the present utility model. These preferred embodiments do not exhaustively describe all details, nor do they limit the present utility model to specific implementations. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of the present utility model, thereby enabling those skilled in the art to better understand and utilize it. This utility model is limited only by the claims and their full scope and equivalents.
Claims
1. A feeding device for pellet production, comprising a pellet production device body (1) and a feeding device body (2), characterized in that, The bottom of the main body (2) of the feeding device is fixedly provided with a number of foot brake casters (3) for easy movement. The main body (2) of the feeding device includes a first mounting frame (4) and a second mounting frame (5). The second mounting frame (5) is fixedly provided on one side of the first mounting frame (4). The top of the first mounting frame (4) is provided with a pyramidal funnel (6) for guiding the raw material powder. The second mounting frame (5) is provided with a feeding mechanism for feeding the raw material powder. The feeding mechanism includes a lifting assembly, a translation assembly, a tilting assembly, and a blocking assembly. The lifting assembly includes multiple lifting plates (7) movably disposed on one side of the mounting frame (5). Multiple rotating shafts (8) are rotatably connected between the multiple lifting plates (7). Gears (9) are fixedly disposed on both sides of the multiple rotating shafts (8). A rack (10) matching the gears (9) is fixedly disposed on the mounting frame. A movable mounting block (11) and a strength-enhancing block (12) are respectively disposed on one side of the multiple rotating shafts (8). The movable mounting block (11) and the strength lifting block (12) are both slidably locked in the mounting frame (5). One side of the rotating shaft (8) passes through the movable mounting block (11) and the strength lifting block (12) and is connected to a synchronous pulley (13). A synchronous belt (14) for transmission is sleeved on the synchronous pulley (13). A reducer (15) is connected to the rotating shaft (8) at the top of the movable mounting block (11). The input end of the reducer (15) is connected to a drive motor (16).
2. The feeding device for pellet production according to claim 1, characterized in that, The translation component includes a U-shaped mounting plate (17) slidably mounted on the lifting plate (7). The lifting plate (7) has a groove (18) that matches the U-shaped mounting plate (17). A section of the U-shaped mounting plate (17) located in the groove (18) is threadedly connected to an adjusting screw (19). One end of the adjusting screw (19) is rotatably connected to the inner wall of the groove (18), and the other end of the adjusting screw (19) extends through the groove (18) to the outside of the lifting plate (7). A synchronous pulley (20) is fixedly installed on a section of the adjusting screw (19) located outside the lifting plate (7). A synchronous belt (21) for transmission is sleeved on the synchronous pulley (20). One end of the adjusting screw (19) is connected to a reducer (22). The input end of the reducer (22) is connected to a drive motor (23). A mounting block (24) is fixedly installed on one side of the mounting bracket (5) to facilitate the installation of the reducer (22) and the drive motor (23).
3. The feeding device for pellet production according to claim 2, characterized in that, The tilting assembly includes a connecting shaft 1 (25) rotatably mounted on the U-shaped mounting plate (17), connecting rod 1 (26) fixedly mounted on both sides of the connecting shaft 1 (25), connecting rod 2 (27) rotatably connected to the end of the connecting rod 1 (26) away from the connecting shaft 1 (25), connecting shaft 2 (28) is provided on the side of the connecting rod 2 (27) close to the connecting rod 1 (26), connecting shaft 2 (28) is fixedly mounted on the connecting rod 2 (27), hydraulic cylinder (29) is fixedly mounted in the middle of the connecting shaft 1 (25), output end of hydraulic cylinder (29) is fixedly connected to the middle of the connecting shaft 2 (28), and tilting plate (30) for tilting raw material powder is fixedly connected to the top of the connecting rod 2 (27).
4. The feeding device for pellet production according to claim 3, characterized in that, The blocking assembly includes a plurality of L-shaped guide baffles (31) slidably mounted on one side of the tilting plate (30). The tilting plate (30) is provided with guide grooves (32) that match the L-shaped guide baffles (31). A section of the L-shaped guide baffle (31) located in the guide groove (32) is threadedly connected to an adjusting screw (33). One end of the adjusting screw (33) is rotatably connected to the inner wall of the guide groove (32), and the other end of the adjusting screw (33) passes through the guide groove (32) and is connected to a drive motor (34).
5. A feeding device for pellet production according to claim 4, characterized in that, A guide hopper (35) is fixedly provided on the side of the tilting plate (30) near the pyramidal funnel (6). A strip-shaped mounting plate (36) is fixedly provided at the top of the guide hopper (35) near the pyramidal funnel (6). An electric cylinder (37) is fixedly provided on the strip-shaped mounting plate (36). The output end of the electric cylinder (37) passes through the strip-shaped mounting plate (36) and is connected to a sealing plate (38) for sealing the raw material powder.