Aluminum silicon carbide carbon brick regenerative material mixing and forming device

The aluminum silicon carbide carbon brick recycled material mixing and molding device, which integrates crushing and grading functions, solves the problem of low efficiency in recycled material grading and processing, achieves efficient grading and mixing, and reduces energy consumption and production costs.

CN224541940UActive Publication Date: 2026-07-24HENAN ZHULIN QINGZHOU REFRACTORY CO LTD
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Patent Information

Application Number
CN202521747133.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-15
Publication Date
2026-07-24
Estimated Expiration
2035-08-15

AI Technical Summary

Technical Problem

Existing technologies struggle to achieve efficient grading of recycled materials, resulting in uneven particle size and insufficient mixing, which affects the performance of finished bricks. Meanwhile, external screening equipment increases energy consumption and costs.

Method used

A mixed molding device for recycled aluminum silicon carbide carbon bricks was designed, which integrates crushing and grading functions. The raw materials are initially crushed through the crushing shell structure, and the particles are separated by the synergistic effect of centrifugal force and spiral fan blades. The device integrates crushing, conveying and grading.

Benefits of technology

It significantly improves the processing efficiency and grading accuracy of recycled materials, reduces the use of additional screening equipment, and lowers energy consumption and production costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the mixed forming field, concretely relates to a kind of aluminium silicon carbide carbon brick regenerated material mixed forming device, including storage bottom box, the top of storage bottom box is provided with processing box, the top of processing box is provided with the shell of comminution, the top of shell of comminution is provided with cover, the side of shell of comminution is provided with transmission part.The utility model is by being provided with shell structure, aluminium silicon carbide carbon brick regenerated material can be preliminarily comminuted, so that raw material reaches the granularity range of suitable subsequent processing.Raw material after comminution falls into support inner cylinder, and is driven to rotate processing shell under the drive of separation motor, utilizes the synergistic effect of centrifugal force and helical fan blade, material is transported to outside side.In this process, smaller particle is discharged by discharging hole on processing shell, larger particle is intercepted by convex cover and continues to participate in cyclic processing, and finally the effective separation of large and small particles is realized through material passage formed by shielding plate and convex cylinder.
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Description

Technical Field

[0001] This utility model relates to the field of mixed molding, specifically to a mixed molding device for recycled aluminum silicon carbide carbon bricks. Background Technology

[0002] A Chinese patent proposes a precast component molding device for recycled asphalt mixture (application number: CN202411902180.2), comprising a turntable mechanism with a turntable support column. A bearing turntable is rotatably mounted on the upper end of the turntable support column, and at least six lower molds are arranged in a circumferential array on the bearing turntable. A support frame is provided on the outer side of the turntable mechanism, and along the circumference of the bearing turntable on the support frame are sequentially arranged a material feeding mechanism, a pressing molding mechanism, an air cooling mechanism, a material unloading and conveying mechanism, a lower mold cleaning mechanism, and a release agent application mechanism, each corresponding to one of the lower molds. This invention enables multi-station simultaneous processing, improving processing efficiency.

[0003] Traditional processing equipment typically employs a single crushing or screening structure, making it difficult to achieve efficient grading of recycled materials. This leads to problems such as uneven particle size and insufficient mixing in subsequent molding processes, ultimately affecting the performance of the finished bricks. Furthermore, traditional equipment often relies on external devices such as vibrating screens to separate recycled materials of different particle sizes, which not only increases energy consumption and equipment costs but also reduces overall processing efficiency.

[0004] Therefore, there is a need for a mixing and molding device for recycled aluminum silicon carbide carbon bricks that integrates crushing and grading functions to improve the automation level and production efficiency of recycled material processing. Summary of the Invention

[0005] To address the shortcomings of existing technologies, this utility model provides a device for mixing and molding recycled aluminum silicon carbide carbon bricks.

[0006] The technical solution of this utility model is as follows:

[0007] This utility model provides a mixing and molding device for recycled aluminum silicon carbide carbon bricks, including a storage base box, a processing box on the top of the storage base box, a crushing shell on the top of the processing box, a cover plate on the top of the crushing shell, a transmission component on one side of the crushing shell, a transmission wheel at the output end of the transmission component extending into the crushing shell, a support ring on the top of the storage base box, a separation motor on the top of the support ring, a processing shell on the top of the separation motor, a support inner cylinder inside the processing shell, a spiral fan blade between the processing shell and the support inner cylinder, a baffle plate inside the processing box, and a protruding cylinder on the top of the baffle plate.

[0008] Optionally, the storage base box and the processing box are connected, and the support ring is fixedly connected between the storage base box and the processing box. A pull-out box is provided through one side of the storage base box, and a pull-out handle is provided on one side of the pull-out box.

[0009] Optionally, a discharge port is provided on one side of the processing box, and a crushing shell plate is provided on the top of the processing box. The crushing shell is fixedly connected to the crushing shell plate by screws, and the bottom of the crushing shell is connected to the crushing shell plate. The height of the discharge port corresponds to the position of the baffle plate.

[0010] Optionally, the cover plate is rotatably connected to the crushing shell, and the top of the crushing shell is provided with a feed inlet.

[0011] Optionally, the transmission component is fixedly connected to the crushing shell, and crushing blades are evenly arranged on the outside of the transmission wheel.

[0012] Optionally, the support ring is fixedly connected to the storage base box, and support rods are evenly arranged at equal intervals inside the support ring. The separation motor is fixedly connected to the top of the support rods, and a support shaft is provided at the output end of the separation motor. The support shaft is fixedly connected to the processing shell.

[0013] Optionally, the processing shell and the supporting inner cylinder are semi-cylindrical in shape, the spiral fan blades are distributed along the inner wall between the processing shell and the supporting inner cylinder, the processing shell is provided with a uniformly circumferential discharge hole, the supporting inner cylinder is provided with a material passage hole at the bottom, and the supporting inner cylinder is provided with a protruding cover that covers the processing shell at the top.

[0014] The beneficial effects achieved by this utility model are as follows:

[0015] This invention, through its pulverizing shell structure, enables the preliminary pulverization of recycled aluminum silicon carbide carbon bricks, bringing the raw material to a suitable particle size range for subsequent processing. The pulverized material falls into the supporting inner cylinder, where a separating motor drives the processing shell to rotate. Utilizing centrifugal force and the synergistic effect of the spiral fan blades, the material is conveyed outwards. During this process, smaller particles are discharged through the outlet holes on the processing shell, while larger particles are intercepted by the protruding cover and continue to participate in the recycling process. Finally, the material channel formed by the baffle plate and the protruding cylinder achieves effective separation of particles of different sizes. This structural design is reasonable, integrating pulverization, conveying, and grading, significantly improving the processing efficiency and grading accuracy of recycled materials, reducing the use of additional screening equipment, and lowering energy consumption and production costs. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0017] Figure 2This is a structural schematic diagram of the entire utility model from another perspective;

[0018] Figure 3 This is a partial structural schematic diagram of the present invention;

[0019] Figure 4 This is a schematic diagram of the internal structure of this utility model;

[0020] Figure 5 Figure 4 A partial structural diagram.

[0021] In the diagram, 1 is the storage base box; 101 is the pull-out box; 102 is the pull-out handle; 2 is the processing box; 201 is the discharge port; 3 is the crushing shell; 4 is the cover plate; 401 is the feed port; 5 is the transmission component; 501 is the transmission wheel; 6 is the support ring; 7 is the separation motor; 701 is the support shaft; 8 is the processing shell; 801 is the discharge hole; 9 is the inner support cylinder; 901 is the protruding cover; 10 is the spiral fan blade; 11 is the baffle plate; and 1101 is the protruding cylinder. Detailed Implementation

[0022] To facilitate understanding of this utility model by those skilled in the art, the specific embodiments of this utility model are described below with reference to the accompanying drawings.

[0023] Example 1

[0024] like Figure 1-5 As shown, this utility model provides a mixing and molding device for recycled aluminum silicon carbide carbon bricks, including a storage base box 1, a processing box 2 on the top of the storage base box 1, a crushing shell 3 on the top of the processing box 2, a cover plate 4 on the top of the crushing shell 3, a transmission component 5 on one side of the crushing shell 3, a transmission wheel 501 extending through the output end of the transmission component 5 into the crushing shell 3, a support ring 6 on the top of the storage base box 1, a separation motor 7 on the top of the support ring 6, a processing shell 8 on the top of the separation motor 7, a support inner cylinder 9 inside the processing shell 8, a spiral fan blade 10 between the processing shell 8 and the support inner cylinder 9, a baffle plate 11 inside the processing box 2, and a protruding cylinder 1101 on the top of the baffle plate 11.

[0025] This invention, through the design of the crushing shell 3, enables the preliminary crushing of recycled aluminum silicon carbide carbon bricks, bringing the raw material to a suitable particle size range for subsequent processing. The crushed material falls into the supporting inner cylinder 9 and, driven by the separating motor 7, rotates the processing shell 8. Utilizing centrifugal force and the synergistic effect of the spiral fan blades 10, the material is conveyed outwards. During this process, smaller particles are discharged through the discharge hole 801 on the processing shell 8, while larger particles are intercepted by the protruding cover 901 and continue to participate in the recycling process. Finally, the material channel formed by the baffle plate 11 and the protruding cylinder 1101 achieves effective separation of large and small particles. This structural design is reasonable, integrating crushing, conveying, and grading, significantly improving the processing efficiency and grading accuracy of recycled materials, reducing the use of additional screening equipment, and lowering energy consumption and production costs.

[0026] Example 2

[0027] like Figure 1-3 As shown, the storage base box 1 and the processing box 2 are connected, and the support ring 6 is fixedly connected between the storage base box 1 and the processing box 2. A pull-out box 101 is provided through one side of the storage base box 1, and a pull-out handle 102 is provided on one side of the pull-out box 101.

[0028] Specifically, the storage base box 1 is used to store materials. After the materials fall into the storage base box 1, they fall into the pull-out box 101 for storage. The pull-out handle 102 is used to easily control the pull-out box 101 to be moved out.

[0029] In this embodiment, a discharge port 201 is provided on one side of the processing box 2, and a crushing shell 3 plate is provided on the top of the processing box 2. The crushing shell 3 is fixedly connected to the crushing shell 3 plate by screws. The bottom of the crushing shell 3 is connected to the crushing shell 3 plate. The height of the discharge port 201 corresponds to the position of the baffle plate 11.

[0030] Specifically, the discharge port 201 is set up to assist in controlling the discharge of materials.

[0031] In this embodiment, the cover plate 4 is rotatably connected to the crushing shell 3, and the top of the crushing shell 3 is provided with a feed inlet 401.

[0032] Specifically, the feed inlet 401 can be connected to external materials through a pipeline to achieve a stable connection of controlled materials.

[0033] In this embodiment, the transmission component 5 is fixedly connected to the crushing shell 3, and crushing blades are uniformly arranged on the outside of the transmission wheel 501.

[0034] Specifically, the transmission component 5 can be controlled to rotate via a transmission belt or directly controlled by a motor. The transmission wheel 501 works in conjunction with the external crushing blades to achieve the cutting function. The space between the crushing shell 3 and the cover plate 4 corresponds to the transmission wheel 501.

[0035] Example 3

[0036] like Figure 3-5 As shown, the support ring 6 is fixedly connected to the storage base box 1. Support rods are evenly arranged at equal intervals inside the support ring 6. The separation motor 7 is fixedly connected to the top of the support rods. The output end of the separation motor 7 is provided with a support shaft 701, which is fixedly connected to the processing shell 8.

[0037] In this embodiment, the processing shell 8 and the supporting inner cylinder 9 are semi-cylindrical in shape. The spiral fan blades 10 are distributed along the inner wall between the processing shell 8 and the supporting inner cylinder 9. The processing shell 8 is provided with a uniformly circumferential discharge hole 801 on the outside. The supporting inner cylinder 9 is provided with a material passage hole at the bottom. The supporting inner cylinder 9 is provided with a protruding cover 901 that covers the processing shell 8 at the top.

[0038] During use, after the material processed by the crushing shell 3 falls into the supporting inner cylinder 9, it enters the processing shell 8 through the material passage at the bottom of the supporting inner cylinder 9. At this time, the processing shell 8 rotates under the drive of the separation motor 7 via the support shaft 701. When the processing shell 8 rotates, the material runs outward according to centrifugal force. The material runs inside the spiral fan blade 10. The spiral fan blade 10 is designed to prevent larger materials from falling off too quickly. Smaller materials are discharged through the discharge hole 801, and larger materials are intercepted by the protruding cover 901.

[0039] In this embodiment, the baffle plate 11 is fixedly connected to the processing box 2. The top of the baffle plate 11 is fixedly connected to the protruding cylinder 1101, and a material channel is formed between the baffle plate 11 and the protruding cylinder 1101. The top of the baffle plate 11 is curved, and the baffle plate 11 is located at the lowest point of the discharge port 201. The protruding cylinder 1101 wraps around the processing shell 8.

[0040] Specifically, the material discharged from the processing shell 8 through the discharge hole 801 is located inside the protruding cylinder 1101, while the larger material discharged from the protruding cover 901 is located outside the protruding cylinder 1101. This allows for the separation of larger and smaller materials, making the processing more convenient and faster.

[0041] In summary, this application uses the structure of the crushing shell 3 to crush recycled aluminum silicon carbide carbon bricks. The crushed recycled aluminum silicon carbide carbon brick raw material falls to the inner support cylinder 9. The separation motor 7 drives the processing shell 8 to rotate. With the cooperation of centrifugal force and spiral fan blades 10, the recycled aluminum silicon carbide carbon brick raw material can be transmitted to the outside. Smaller raw materials are discharged through the discharge hole 801 opened in the processing shell 8, while larger raw materials are intercepted by the protruding cover 901. Finally, the material of different sizes is separated through the material channel of the baffle plate 11 and the protruding cylinder 1101, thereby improving the processing efficiency.

[0042] The embodiments of this utility model described above do not constitute a limitation on the scope of protection of this utility model. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this utility model should be included within the scope of protection of the claims of this utility model.

Claims

1. A device for mixing and molding recycled aluminum silicon carbide carbon bricks, characterized in that: The system includes a storage base box (1), a processing box (2) on top of the storage base box (1), a crushing shell (3) on top of the processing box (2), a cover plate (4) on top of the crushing shell (3), a transmission component (5) on one side of the crushing shell (3), a transmission wheel (501) extending through the output end of the transmission component (5) into the crushing shell (3), a support ring (6) on top of the storage base box (1), a separation motor (7) on top of the support ring (6), a processing shell (8) on top of the separation motor (7), a support inner cylinder (9) inside the processing shell (8), a spiral fan blade (10) between the processing shell (8) and the support inner cylinder (9), a baffle plate (11) inside the processing box (2), and a protruding cylinder (1101) on top of the baffle plate (11).

2. The aluminum silicon carbide carbon brick recycled material mixing and molding device according to claim 1, characterized in that: The storage base box (1) and the processing box (2) are connected. The support ring (6) is fixedly connected between the storage base box (1) and the processing box (2). A pull-out box (101) is provided through one side of the storage base box (1), and a pull-out handle (102) is provided on one side of the pull-out box (101).

3. The aluminum silicon carbide carbon brick recycled material mixing and molding device according to claim 1, characterized in that: The processing box (2) has a discharge port (201) on one side and a crushing shell (3) plate on the top of the processing box (2). The crushing shell (3) is fixedly connected to the crushing shell (3) plate by screws. The bottom of the crushing shell (3) is connected to the crushing shell (3) plate. The height of the discharge port (201) corresponds to the position of the baffle plate (11).

4. The aluminum silicon carbide carbon brick recycled material mixing and molding device according to claim 1, characterized in that: The cover plate (4) is rotatably connected to the crushing shell (3), and the top of the crushing shell (3) is provided with a feed inlet (401).

5. The aluminum silicon carbide carbon brick recycled material mixing and molding device according to claim 1, characterized in that: The transmission component (5) is fixedly connected to the crushing shell (3), and crushing blades are uniformly arranged on the outside of the transmission wheel (501).

6. The aluminum silicon carbide carbon brick recycled material mixing and molding device according to claim 1, characterized in that: The support ring (6) is fixedly connected to the storage base box (1). Support rods are evenly arranged at equal intervals inside the support ring (6). The separation motor (7) is fixedly connected to the top of the support rods. The output end of the separation motor (7) is provided with a support shaft (701). The support shaft (701) is fixedly connected to the processing shell (8).

7. The aluminum silicon carbide carbon brick recycled material mixing and molding device according to claim 1, characterized in that: The processing shell (8) and the supporting inner cylinder (9) are semi-cylindrical in shape. The spiral fan blades (10) are distributed along the inner wall between the processing shell (8) and the supporting inner cylinder (9). The processing shell (8) has a uniformly circumferential discharge hole (801) on its outer side. The supporting inner cylinder (9) has a material passage hole at its bottom. The supporting inner cylinder (9) has a protruding cover (901) at its top that covers the processing shell (8).

Citation Information

Patent Citations

  • Recycled asphalt mixture preform forming device

    CN119348031B