Green silicon carbide finished product charging device
By designing a transport hammering and adjustment mechanism, the problem of accumulation and blockage of green silicon carbide materials during transportation was solved, achieving smooth material transportation and stable equipment operation, and improving production efficiency and equipment flexibility.
Patent Information
- Application Number
- CN202520651503.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-09
- Publication Date
- 2026-02-17
- Estimated Expiration
- 2035-04-09
AI Technical Summary
Green silicon carbide materials are prone to blockage during transportation due to accumulation or adhesion, which affects the smoothness of transportation and the stability of equipment, increases the complexity of operation and the risk of failure, and reduces production efficiency.
A green silicon carbide finished product loading device was designed, comprising a transport bucket assembly, a transport hammering mechanism, a hammering adjustment mechanism, and an adjustment auxiliary mechanism. Through the cooperation of components such as telescopic cylinders, reciprocating blocks, and hammering blocks, the material is hammered evenly to avoid accumulation and blockage. Through the cooperation of components such as clamping rods and adjustment holes, real-time adjustment and stable hammering effect are achieved.
It effectively prevents materials from piling up and getting stuck during transportation, ensures material flow, improves transportation efficiency and equipment stability, reduces equipment failures, and enhances production continuity and equipment adaptability.
Smart Images

Figure CN223920591U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of material loading technology, and more specifically, to a green silicon carbide finished product loading device. Background Technology
[0002] In existing technologies, materials may become clogged due to accumulation or adhesion during transportation, leading to poor transport. This is especially true for materials like green silicon carbide, which may not flow easily due to the high friction between particles. The hammering mechanism helps to break up the adhesion between materials and ensure smooth transport.
[0003] Operators will need more time and effort for physical adjustments and maintenance, increasing operational complexity and potentially leading to untimely adjustments. This can affect the normal operation of the equipment and the stable transport of materials. Vibration or instability during prolonged operation, especially under heavy loads, can cause malfunctions, impacting production efficiency. In practical applications, the equipment cannot flexibly adapt to different working conditions, increasing the risk of equipment failure and reducing production efficiency. For example, uneven material accumulation or slow material flow can affect the overall production schedule, directly impacting the equipment's working efficiency, the smoothness of material transport, equipment stability, and ease of maintenance. This can ultimately lead to unreliable equipment operation and reduced production capacity. Utility Model Content
[0004] (a) Technical problems to be solved
[0005] In view of the problems existing in the prior art, this utility model provides a green silicon carbide finished product loading device to solve the technical problems mentioned in the background art, such as blockage caused by accumulation or adhesion and easy waste of materials.
[0006] (II) Technical Solution
[0007] To achieve the above objectives, this utility model provides the following technical solution: a green silicon carbide finished product loading device, comprising a transport bucket assembly, a transport hammering mechanism, a hammering adjustment mechanism, and an adjustment auxiliary mechanism. The transport bucket assembly is an inclined spiral transport device. The transport hammering mechanism includes a telescopic cylinder, a reciprocating block, a hammering frame, and hammering blocks. The reciprocating blocks are symmetrically installed at both ends of the telescopic cylinder and are slidably guided on both sides of the telescopic cylinder. The hammering frame is installed on the reciprocating block, and multiple sets of hammering blocks are installed inside the hammering frame. The hammering blocks are in contact with the outer wall of the transport bucket assembly. The hammering adjustment mechanism includes a mounting frame, adjustment holes, side plates, clamping pipes, and clamping rods. The mounting frame is installed at the bottom end of the transport bucket assembly, the side plates are installed on both sides of the telescopic cylinder, the telescopic cylinder is slidably guided within the mounting frame, multiple sets of clamping pipes are fixedly installed on the outer wall of the mounting frame, multiple sets of adjustment holes are provided on the mounting frame, and the clamping rods can pass through the side plates and quickly engage with the adjustment holes and clamping pipes.
[0008] The present invention is further configured such that the adjustment auxiliary mechanism includes a slot, a locking frame, a rotating ring, a rotating block, a clamping plate, and an upper top ring. The slot is disposed on the side wall of the locking rod. The locking frame is laterally slidably disposed through the side wall of the locking tube. The rotating ring is rotatably mounted on the outer surface of the locking tube. The rotating block is mounted on the top end of the rotating ring. The clamping plate is mounted on the side of the rotating block. The clamping plate pushes the locking frame, causing the locking frame to extend into or away from the slot. The upper top ring is longitudinally slidably mounted on the outer wall of the locking tube. The top end of the upper top ring presses against the bottom end of the rotating ring, so that the rotating ring is fixed on the outer wall of the locking tube.
[0009] The present invention is further configured such that a base is installed at the bottom of one end of the transport bucket assembly, and a bracket is installed at the bottom of the other end of the transport bucket assembly. The design of the base and the bracket effectively enhances the stability of the transport bucket assembly, enabling it to operate under large load and vibration conditions, avoiding failures caused by shaking or imbalance, and ensuring the long-term stability and safety of the equipment.
[0010] The present invention is further configured such that an adding hopper is installed at the top of one end of the transport hopper assembly, and a discharging hopper is installed at the bottom of the other end of the transport hopper assembly. The arrangement of the adding hopper and the discharging hopper effectively controls the flow direction and transport efficiency of the material.
[0011] The present invention is further configured such that an installation block is installed on one end face of the telescopic cylinder, and the installation block is slidably guided within the mounting frame, and side plates are installed on both sides of the installation block. The installation block facilitates the stable installation of the telescopic cylinder.
[0012] The present invention is further configured such that a connecting plate is installed at the bottom of the side wall of the clamping tube, and the connecting plate is fixedly installed on the outer wall of the mounting frame, and each set of adjustment holes is connected to a set of clamping tubes. The setting of the connecting plate facilitates the stable installation of the clamping tubes.
[0013] The present invention is further configured such that a threaded ring is installed on the outer wall of the clamping tube, and the bottom of the upper top ring is in contact with the top of the threaded ring. The threaded ring facilitates the upward pushing of the upper top ring.
[0014] The present invention is further provided that an inspection cover is installed on the top of the outer wall of the transport bucket assembly. The inspection cover provides a convenient way for inspection and maintenance, helps operators to quickly find and solve possible faults, reduces equipment downtime and improves production efficiency.
[0015] (III) Beneficial Effects
[0016] Compared with the prior art, this utility model provides a green silicon carbide finished product loading device, which has the following beneficial effects:
[0017] This utility model is equipped with a transport and pounding mechanism. Through the coordinated use of components such as telescopic cylinders, reciprocating blocks, pounding frames, and pounding blocks, it effectively achieves uniform pounding of materials, helping materials to flow smoothly in the transport hopper. The contact between the pounding blocks and the outer wall of the transport hopper components prevents the materials from being obstructed during transport due to accumulation or blockage, ensuring continuity and efficiency. The design of the pounding blocks can also reduce excessive compaction of materials, prevent materials from adhering to the inner wall of the transport equipment, and reduce the workload of cleaning and maintenance.
[0018] This utility model features a hammering adjustment mechanism, which includes a mounting frame, adjustment hole, clamping pipe, clamping rod, etc. The clamping rod and adjustment hole work together to provide a quick adjustment mechanism, allowing the hammering effect to be adjusted in real time according to the characteristics of different materials or working environment. Through the sliding guide of the telescopic cylinder, the movement range and force of the hammering block can be precisely controlled to optimize the hammering effect and ensure the efficiency and quality of material conveying. In addition, the design of the clamping pipe enhances the stability of the hammering adjustment mechanism, enabling it to operate stably under different working conditions.
[0019] This utility model is equipped with an adjustment auxiliary mechanism. Through the combined use of components such as the slot, locking frame, rotating ring, and rotating block, it provides additional adjustment and locking functions, which can precisely adjust the position and force of the hammering adjustment mechanism. The combined use of the rotating block and the clamping plate can more easily adjust the degree of insertion or removal of the locking frame from the slot, thereby affecting the adjustment speed and force of the hammering mechanism, so that the equipment can flexibly adapt to different working conditions. The design of the top ring and the threaded ring makes the adjustment more stable and reliable, avoiding loosening or instability that may occur during the adjustment process. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the overall structure of the device in the unused state of this utility model;
[0021] Figure 2 This is a schematic diagram of the internal structure of the hammering adjustment mechanism and the transport bucket assembly in this utility model;
[0022] Figure 3 This is a schematic diagram of the hammering adjustment mechanism in this utility model;
[0023] Figure 4 This is a schematic diagram of the adjustment auxiliary mechanism in this utility model;
[0024] Figure 5 This is a schematic diagram of the internal structure of the adjustment auxiliary mechanism in this utility model.
[0025] In the diagram: 1. Transport bucket assembly; 2. Telescopic cylinder; 3. Reciprocating block; 4. Hammering frame; 5. Hammering block; 6. Mounting frame; 7. Adjustment hole; 8. Side plate; 9. Clip-on pipe; 10. Clip-on rod; 11. Clip groove; 12. Locking frame; 13. Rotating ring; 14. Rotating block; 15. Slope plate; 16. Top ring; 17. Base; 18. Bracket; 19. Adding bucket; 20. Discharge bucket; 21. Mounting block; 22. Connecting plate; 23. Threaded ring; 24. Inspection cover. Detailed Implementation
[0026] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.
[0027] It should be noted that, unless otherwise specified, all technical and scientific terms used in this application have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains.
[0028] In this utility model, unless otherwise stated, the orientations used, such as "up" and "down", usually refer to the direction shown in the accompanying drawings, or to the vertical, perpendicular, or gravitational direction; similarly, for ease of understanding and description, "left" and "right" usually refer to the left and right shown in the accompanying drawings; "inner" and "outer" refer to the inner and outer contours of each component itself, but the above directional terms are not used to limit this utility model.
[0029] Please see Figures 1-5A green silicon carbide finished product loading device includes a transport bucket assembly 1, a transport hammering mechanism, a hammering adjustment mechanism, and an adjustment auxiliary mechanism. The transport bucket assembly 1 is an inclined spiral transport device. The transport hammering mechanism includes a telescopic cylinder 2, a reciprocating block 3, a hammering frame 4, and hammering blocks 5. The reciprocating blocks 3 are symmetrically installed at both ends of the telescopic cylinder 2, and the reciprocating blocks 3 are slidably guided on both sides of the telescopic cylinder 2. The hammering frame 4 is installed on the reciprocating block 3, and multiple sets of hammering blocks 5 are installed inside the hammering frame. The hammering blocks are in contact with the outer wall of the transport bucket assembly 1. The hammering adjustment mechanism includes a mounting frame 6, adjustment holes 7, a side plate 8, a clamping pipe 9, and a clamping rod 10. The mounting frame 6 is installed at the bottom end of the transport bucket assembly 1, the side plate 8 is installed on both sides of the telescopic cylinder 2, the telescopic cylinder 2 is slidably guided inside the mounting frame 6, multiple sets of clamping pipes 9 are fixedly installed on the outer wall of the mounting frame 6, multiple sets of adjustment holes 7 are provided on the mounting frame 6, and the clamping rod 10 can pass through the side plate 8 and quickly clamp with the adjustment holes 7 and clamping pipes 9.
[0030] In this embodiment, firstly, the two ends of the telescopic cylinder 2 are driven to extend and retract by pneumatic or hydraulic pressure, causing the reciprocating blocks 3 to reciprocate. The telescopic cylinder 2 is slidably guided within the mounting frame 6, allowing for smooth extension and retraction. The reciprocating blocks 3 mounted at both ends of the telescopic cylinder 2 slide back and forth under the drive of the telescopic cylinder 2. As the reciprocating blocks 3 move, the hammering blocks 5 contact the outer wall of the transport bucket assembly 1, performing a hammering action. The hammering blocks 5 continuously strike the outer wall of the transport bucket assembly 1, reducing material accumulation and agglomeration, ensuring material flowability, and preventing blockages caused by adhesion or accumulation during transportation. The joint hole 7 is located on the mounting bracket 6. The locking tube 9, through its cooperation with the adjustment hole 7, can quickly adjust the position of the hammer block 5. The locking rod 10 can quickly engage and disengage with the adjustment hole 7 and the locking tube 9 through the side plate 8. By adjusting the position of the locking rod 10, the operator can make the locking tube 9 slide back and forth within the adjustment hole 7. By adjusting the position of the locking rod 10, the position of the hammer frame 4 can be precisely controlled, thereby adjusting the hammering effect. The design of the side plate 8 and the locking tube 9 ensures the stability of the hammer frame 4 and the hammer block 5 during operation, avoiding uneven vibration caused by positional deviation and improper operation.
[0031] The adjustment auxiliary mechanism includes a slot 11, a locking frame 12, a rotating ring 13, a rotating block 14, a clamping plate 15, and an upper top ring 16. The slot 11 is located on the side wall of the locking rod 10. The locking frame 12 is laterally slidably installed through the side wall of the locking tube 9. The rotating ring 13 is rotatably mounted on the outer surface of the locking tube 9. The rotating block 14 is mounted on the top end of the rotating ring 13. The clamping plate 15 is mounted on the side of the rotating block 14. The clamping plate 15 pushes the locking frame 12, causing the locking frame 12 to extend into or away from the slot 11. The upper top ring 16 is longitudinally slidably mounted on the outer wall of the locking tube 9. The top end of the upper top ring 16 presses against the bottom end of the rotating ring 13, fixing the rotating ring 13 to the outer wall of the locking tube 9.
[0032] In this embodiment, when the locking rod 10 extends into the locking tube 9, the user operates the rotating slide to make the rotating block 14 rotate. At this time, the clamping plate 15 pushes the locking frame 12, so that the locking frame 12 can extend into or away from the locking groove 11 to achieve position fixing or unlocking. At this time, the user operates the threaded ring 23 to push the upper top ring 16 to move upward. When the upper top ring 16 is pressed against the bottom of the rotating ring 13, the rotating ring 13 is fixed on the outer wall of the locking tube 9 to prevent the locking tube 9 from loosening or changing position during operation.
[0033] Please see Figures 1-5 As a supplementary embodiment of a green silicon carbide finished product loading device for the transport hammering mechanism, hammering adjustment mechanism and adjustment auxiliary mechanism: A base 17 is installed at the bottom of one end of the transport bucket assembly 1, a bracket 18 is installed at the bottom of the other end of the transport bucket assembly 1, an adding bucket 19 is installed at the top of one end of the transport bucket assembly 1, a discharge bucket 20 is installed at the bottom of the other end of the transport bucket assembly 1, an installation block 21 is installed on one end face of the telescopic cylinder 2, and the installation block 21 is slidably guided in the mounting frame 6, and a side plate 8 is installed on both sides of the installation block 21. A connecting plate 22 is installed at the bottom of the side wall of the clamping pipe 9, and the connecting plate 22 is fixedly installed on the outer wall of the mounting frame 6. Each set of adjustment holes 7 is connected to a set of clamping pipes 9. A threaded ring 23 is installed on the outer wall of the clamping pipe 9, and the bottom of the top ring 16 is in contact with the top of the threaded ring 23. An inspection cover 24 is installed at the top of the outer wall of the transport bucket assembly 1.
[0034] More specifically, the material enters the transport bucket assembly 1 through the addition bucket 19. The transport bucket assembly 1, as a spiral transport device, uses the rotation of the spiral blades to propel the material forward. During the material transport process, one end of the transport bucket assembly 1 is supported by the base 17, and the other end is stabilized by the bracket 18 to ensure stability during transport. When the material passes through the transport bucket assembly 1, the telescopic cylinder 2 drives the reciprocating block 3 to pound it. The pounding block 5 contacts the outer wall of the transport bucket assembly 1 to prevent the material from clumping. During this process, the pounding adjustment mechanism controls the striking force and frequency of the pounding block 5 by adjusting the position of the clamping rod 10 and the clamping pipe 9 to ensure smooth material transport. After the material passes through the pounding mechanism, it reaches the discharge bucket 20, through which the finished product is discharged.
[0035] In summary, when the overall equipment is in use or operation: When the transport hammering mechanism is in operation, it is used to vibrate and hammer materials during transportation to ensure uniform material delivery and prevent blockage. First, the two ends of the telescopic cylinder 2 are driven to extend and retract by air or hydraulic pressure, which drives the reciprocating block 3 to reciprocate. The telescopic cylinder 2 is slidably guided in the mounting frame 6, which can smoothly extend and retract. The reciprocating blocks 3 installed at both ends of the telescopic cylinder 2 will slide back and forth under the drive of the telescopic cylinder 2. As the reciprocating block 3 moves, the hammering block 5 contacts the outer wall of the transport bucket assembly 1 and performs a hammering action. The hammering block 5 continuously strikes the outer wall of the transport bucket assembly 1, reducing the accumulation and agglomeration of materials, ensuring the flowability of materials, and avoiding blockage caused by adhesion or accumulation of materials during transportation.
[0036] When the hammering adjustment mechanism is in operation, the adjustment hole 7 is located on the mounting bracket 6. The locking tube 9, through its cooperation with the adjustment hole 7, can quickly adjust the position of the hammering block 5. The locking rod 10 can quickly engage and disengage with the adjustment hole 7 and the locking tube 9 through the side plate 8. By adjusting the position of the locking rod 10, the operator can make the locking tube 9 slide back and forth within the adjustment hole 7. By adjusting the position of the locking rod 10, the position of the hammering frame 4 can be precisely controlled, thereby adjusting the hammering effect. The design of the side plate 8 and the locking tube 9 ensures the stability of the position of the hammering frame 4 and the hammering block 5 during operation, avoiding uneven vibration caused by positional deviation and improper operation.
[0037] When the auxiliary mechanism needs to be adjusted, when the locking rod 10 extends into the locking tube 9, the user operates the rotating slide to make the rotating block 14 rotate. At this time, the clamping plate 15 pushes the locking frame 12, so that the locking frame 12 can extend into or away from the locking groove 11 to achieve position fixing or unlocking. At this time, the user operates the threaded ring 23 to push the upper top ring 16 to move upward. When the upper top ring 16 is pressed against the bottom of the rotating ring 13, the rotating ring 13 is fixed on the outer wall of the locking tube 9 to prevent the locking tube 9 from loosening or changing position during operation.
[0038] Material enters the conveying bucket assembly 1 through the adding bucket 19. The conveying bucket assembly 1, as a spiral conveying device, uses the rotation of the spiral blades to propel the material forward. During the material conveying process, one end of the conveying bucket assembly 1 is supported by the base 17, and the other end is stabilized by the bracket 18 to ensure stability during the conveying process. When the material passes through the conveying bucket assembly 1, the telescopic cylinder 2 drives the reciprocating block 3 to pound it. The pounding block 5 contacts the outer wall of the conveying bucket assembly 1 to prevent the material from clumping. During this process, the pounding adjustment mechanism controls the striking force and frequency of the pounding block 5 by adjusting the position of the clamping rod 10 and the clamping pipe 9 to ensure smooth material conveying. After the material passes through the pounding mechanism, it reaches the discharge bucket 20, through which the finished product is discharged.
[0039] Of all the solutions mentioned above, those involving the connection between two components can be selected according to the actual situation, such as welding, bolt and nut connection, bolt or screw connection, or other known connection methods, which will not be elaborated here. For all the fixed connections mentioned above, welding is preferred. Although embodiments of this utility model have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of this utility model. The scope of this utility model is defined by the appended claims and their equivalents.
Claims
1. A device for loading finished green silicon carbide, comprising a transport hopper assembly (1), a transport hammering mechanism, a hammering adjusting mechanism and an adjusting auxiliary mechanism, the transport hopper assembly (1) being a helical transport device arranged obliquely, characterized in that: The transportation hammering mechanism comprises telescopic cylinders (2), reciprocating blocks (3), hammering frames (4) and hammering blocks (5), the reciprocating blocks (3) are symmetrically installed at two ends of the telescopic cylinders (2), the reciprocating blocks (3) are slidingly guided at two sides of the telescopic cylinders (2), the hammering frames (4) are installed on the reciprocating blocks (3), a plurality of groups of the hammering blocks (5) are installed inside the hammering frames, the hammering blocks are in contact with the outer wall of the transportation bucket assembly (1), the hammering adjusting mechanism comprises mounting frames (6), adjusting holes (7), lateral plates (8), clamping pipes (9) and clamping rods (10), the mounting frame (6) is installed at the bottom end of the transportation bucket assembly (1), the lateral plates (8) are installed at two sides of the telescopic cylinders (2), the telescopic cylinders (2) are slidingly guided in the mounting frame (6), a plurality of groups of the clamping pipes (9) are fixedly installed on the outer wall of the mounting frame (6), and a plurality of groups of the adjusting holes (7) are arranged on the mounting frame (6).
2. A green silicon carbide finished product charging device according to claim 1, characterized in that: The adjusting auxiliary mechanism comprises clamping grooves (11), locking frames (12), rotating rings (13), rotating blocks (14), clamping slope plates (15) and upper top rings (16), the clamping grooves (11) are arranged on the side walls of the clamping rods (10), the locking frames (12) are transversely slidingly arranged on the side walls of the clamping pipes (9), the rotating rings (13) are limitingly and rotatably installed on the outer surfaces of the clamping pipes (9), the rotating blocks (14) are installed at the top ends of the rotating rings (13), the clamping slope plates (15) are installed at the sides of the rotating blocks (14), the clamping slope plates (15) push the locking frames (12), so that the locking frames (12) are inserted into or away from the clamping grooves (11), the upper top rings (16) are longitudinally slidingly installed on the outer walls of the clamping pipes (9), and the top ends of the upper top rings (16) are pressed towards the bottom ends of the rotating rings (13), so that the rotating rings (13) are fixed on the outer walls of the clamping pipes (9).
3. A green silicon carbide finished product charging device according to claim 1, characterized in that: One end of the transportation bucket assembly (1) is provided with a base (17), and the other end of the transportation bucket assembly (1) is provided with a support (18).
4. A green silicon carbide finished charge material device as claimed in claim 1, wherein: One end of the transportation bucket assembly (1) is provided with an adding bucket (19), and the other end of the transportation bucket assembly (1) is provided with a discharging bucket (20).
5. A green silicon carbide finished charge material device as claimed in claim 1, wherein: One end of the telescopic cylinder (2) is provided with a mounting block (21), and the mounting block (21) is slidingly guided in the mounting frame (6), and the lateral plates (8) are installed at two sides of the mounting block (21).
6. A green silicon carbide finished charge material device as defined in claim 1, wherein: The side wall bottom end of the clamping pipe (9) is provided with a connecting plate (22), the connecting plate (22) is fixedly installed on the outer wall of the mounting frame (6), and each group of the adjusting holes (7) is in communication with a group of the clamping pipes (9).
7. A green silicon carbide product loading device as claimed in claim 2, wherein: The outer wall of the clamping pipe (9) is provided with a threaded ring (23), and the bottom of the upper top ring (16) is in contact with the top of the threaded ring (23).
8. A green silicon carbide finished charge material device as defined in claim 1, wherein: The outer wall top end of the transportation bucket assembly (1) is provided with an inspection cover (24).