High-temperature alloy material filling and shunting device

By designing a high-temperature alloy material filling and diversion device that integrates two specifications of output columns, the problem of low efficiency in replacing output devices was solved, enabling flexible collection of containers of various specifications, improving ease of use and reducing costs.

CN121609117APending Publication Date: 2026-03-06JIANGSU XINHUA ALLOY ELECTRIC
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Patent Information

Application Number
CN202511918704.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-18
Publication Date
2026-03-06

AI Technical Summary

Technical Problem

In the current production process of high-temperature alloy materials, the output device has low replacement efficiency, cannot meet the collection needs of containers of different sizes, and has poor ease of use.

Method used

A high-temperature alloy material filling and diversion device is designed, which integrates two specifications of output matching columns and sets three sizes of fastening structures on each output matching column to meet the collection needs of various containers and realize flexible and convenient collection operation.

Benefits of technology

This technology enables the collection of containers of different sizes without changing the output head, improving flexibility and convenience while reducing costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of high-temperature alloy material production and processing, in particular to a high-temperature alloy material filling and shunting device. According to the technical scheme, the device comprises a cylindrical main body matching conveying base, a cylindrical conveying main body matching groove is formed in the upper end of the main body matching conveying base, and an integrally-formed cylindrical reinforcing stop matching plate is arranged at the lower end of the main body matching conveying base; a first output matching column and a second output matching column are arranged at the lower end of the reinforcing stop matching plate, the first output matching column and the second output matching column are distributed from right to left, the sizes of the first output matching column and the second output matching column are sequentially reduced, and main body sealing matching columns are arranged at the upper end of the first output matching column and the upper end of the second output matching column respectively. The device has the advantages that the output matching columns of two specifications are integrated together at the position of the output port, and the fastening matching structures of three sizes are arranged on each output matching column, so that the matching use requirements of containers of different specifications during collection can be met.
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Description

Technical Field

[0001] This invention relates to the field of high-temperature alloy material production and processing technology, and in particular to a high-temperature alloy material filling and diversion device. Background Technology

[0002] When producing and processing high-temperature alloy materials, powdered or granular high-temperature alloy materials are usually collected using conveying pipe structures and then collected in containers. The outlet size of the existing output position is fixed. When collecting with containers of different sizes, different output devices (output heads) need to be used. The efficiency of changing output devices is relatively low, and the convenience of use is relatively poor, which cannot meet the needs of collecting and conveying containers of different sizes at the same time. Summary of the Invention

[0003] The purpose of this invention is to provide a high-temperature alloy material filling and diversion device. It adopts a completely new structural design and can be used in conjunction with the pipe at the material output end. The output port position integrates two specifications of output fitting columns, and by setting three sizes of fastening fitting structures on each output fitting column, it can meet the needs of collecting containers of various sizes. It is more flexible in use and can simultaneously collect two different sizes of containers without replacing the output head structure at the output port position. It has lower operating costs and greater convenience in use.

[0004] The technical solution of the present invention is as follows: A high-temperature alloy material filling and diversion device, characterized in that: it includes a cylindrical main body mating with a conveying seat, the upper end of which is provided with a cylindrical conveying main body mating groove, and the lower end of which is provided with an integrally formed cylindrical reinforcing stop mating plate. The diameter of the main body mating with the conveying seat is smaller than the diameter of the reinforcing stop mating plate. The lower end of the reinforcing stop mating plate is provided with two first output mating columns and second output mating columns distributed from right to left and decreasing in size sequentially. The upper ends of the first output mating columns and the second output mating columns are respectively provided with main body sealing mating columns. The main body of the first output mating column is composed of a cylindrical first output stabilizing column and a cylindrical first output auxiliary column located at the lower end of the first output stabilizing column. The diameter of the first output stabilizing column is larger than the diameter of the first output auxiliary column. An integrally formed inverted conical first fastening mating column is provided at the lower middle position of the upper and lower part of the outer cylindrical surface of the first output stabilizing column. The outer cylindrical surface of the first output auxiliary column is provided with inverted conical third output mating columns evenly distributed in the upper and lower parts. The position of the first output stabilizing post between the post and the third output mating post forms a second output mating structure. The second output mating post consists of a cylindrical second output stabilizing post and a fourth output mating post located below the second output stabilizing post. The diameter of the second output stabilizing post is larger than the diameter of the fourth output mating post. An integrally formed inverted conical second fastening mating post is provided at the lower middle position of the outer cylindrical surface of the second output stabilizing post. An inverted conical sixth output mating post is provided evenly distributed on the outer cylindrical surface of the fourth output mating post. The second fastening mating post and the fifth output mating post form a fifth output mating structure. The diameter of the upper end of the sixth output mating post is smaller than the diameter of the second output stabilizing post. The diameter of the upper end of the third output mating post is smaller than the diameter of the first output stabilizing post. A first output mating channel communicating with the conveying body mating groove is provided at the lower center of the first output auxiliary post. A second output mating channel communicating with the conveying body mating groove is provided at the lower center of the fourth output mating post.

[0005] Furthermore, the outer side of the cross-section of the main sealing and mating column has an arc-shaped structure.

[0006] Furthermore, the lower end face of the fourth output mating post is on the same plane as the lower end face of the first output auxiliary post.

[0007] Furthermore, an integrally formed inverted oiling cone-shaped sealing and stabilizing post is provided at the connection position between the upper end of the first output mating post and the second output mating post and the main body sealing mating post.

[0008] Furthermore, the upper ends of the second output mating channel and the first output mating channel are provided with output guide mating smooth grooves.

[0009] Furthermore, the output guide and flow groove have an inverted conical structure.

[0010] The beneficial effects of this invention are: This invention adopts a completely new structural design, which can be used in conjunction with the pipe at the material output end. The output port position integrates two specifications of output mating columns, and by setting three sizes of fastening mating structures on each output mating column, it can meet the needs of collecting containers of various sizes. It is more flexible in use and can simultaneously collect two different sizes of containers without replacing the output head structure at the output port position. It has lower operating costs and greater convenience in use. Attached Figure Description

[0011] Figure 1 This is a three-dimensional structural diagram of the present invention; Figure 2 This is a front view of the present invention; Figure 3 This is a schematic diagram of the left side of the present invention; Figure 4 This is a schematic diagram on the right side of the present invention; Figure 5 This is a top view of the present invention; Figure 6 This is a bottom view diagram of the present invention; Figure 7 This is a three-dimensional structural diagram of the second direction of the present invention; In the diagram: 1. Main body mating with conveyor seat; 2. Conveying main body mating groove; 3. Reinforcing stop mating plate; 4. First output mating column; 5. Second output mating column; 6. Main body sealing mating column; 7. First output mating channel; 8. Second output mating channel; 9. First output stabilizing column; 10. First output auxiliary column; 11. First fastening mating column; 12. Third output mating column; 13. Second output stabilizing column; 14. Fourth output mating column; 15. Second fastening mating column; 16. Sixth output mating column. Detailed Implementation

[0012] like Figures 1 to 7As shown, a high-temperature alloy material filling and diversion device includes a cylindrical main body mating conveyor seat 1. The upper end of the main body mating conveyor seat 1 has a cylindrical conveyor main body mating groove 2, which can be mated and connected with pipeline-type conveying components during installation. A combined threaded groove can be provided inside the upper part of the conveyor main body mating groove 2, allowing for direct fastening and ensuring easier connection. The lower end of the main body mating conveyor seat 1 has an integrally formed cylindrical reinforcing stop mating plate 3, ensuring better structural strength at the bottom. The diameter of the main body mating conveyor seat 1 is smaller than the diameter of the reinforcing stop mating plate 3, providing reliable safety protection for the upper structure. The lower end of the reinforcing stop mating plate 3 has two first output mating posts 4 and second output mating posts 5, distributed from right to left and decreasing in size. These are the main mating structures during output, serving the same function as the output head structure at the output port in existing technologies. The upper ends of the first output mating post 4 and the second output mating post 5 are respectively provided with main body sealing mating posts 6, which increases the structural strength of the mating position and ensures stronger combined load-bearing capacity during mating. Simultaneously, it can also play a role in heat resistance under certain conditions, providing auxiliary heat dissipation. The main body of the first output mating post 4 consists of a cylindrical first output stabilizing post 9 and a cylindrical first output auxiliary post 10 located at the lower end of the first output stabilizing post 9. The diameter of the first output stabilizing post 9 is larger than the diameter of the first output auxiliary post 10. An integrally formed inverted conical first fastening mating post 11 is provided at the lower center of the outer cylindrical surface of the first output stabilizing post 9. Inverted conical third output mating posts 12 are evenly distributed on the outer cylindrical surface of the first output auxiliary post 10. The positions of the first output stabilizing post 9 between the first fastening mating post 11 and the third output mating post 12 form a second output mating structure. These three output mating structures can be mated with the input ports of three different sizes of collection containers, enhancing ease of use. The second output mating post 5 consists of a cylindrical second output stabilizing post 13 and a fourth output mating post 14 located below the second output stabilizing post 13. The diameter of the second output stabilizing post 13 is larger than the diameter of the fourth output mating post 14. An integrally formed inverted conical second fastening mating post 15 is provided at the lower middle position of the upper and lower part of the outer cylindrical surface of the second output stabilizing post 13. An inverted conical sixth output mating post 16 is provided on the outer cylindrical surface of the fourth output mating post 14. The second fastening mating post 15 and the fifth output mating post 16 form a fifth output mating structure. This position can accommodate the input ports of three smaller-sized collection containers for use together.The diameter of the upper end of the sixth output mating column 16 is smaller than the diameter of the second output stabilizing column 13, and the diameter of the upper end of the third output mating column 12 is smaller than the diameter of the first output stabilizing column 9. The lower center of the first output auxiliary column 10 has a first output mating channel 7 communicating with the conveying body mating groove 2, and the lower center of the fourth output mating column 14 has a second output mating channel 8 communicating with the conveying body mating groove 2. Material output and collection are performed through these channels. It adopts a completely new structural design, allowing it to mate with the pipe at the material output end. The output port integrates two specifications of output mating columns, and by setting three sizes of fastening structures on each output mating column, it can meet the needs of collecting containers of various sizes, offering greater flexibility in use. It can simultaneously collect two different sizes of containers without requiring replacement of the output head structure at the output port, resulting in lower costs and greater convenience in use.

[0013] Preferably, the outer side of the cross-section of the main sealing and fitting column 6 is an arc-shaped structure, which can improve the safety of the outer side during fitting and improve the tightness of the combination when fitting with the sealing ring structure on the collection container.

[0014] Preferably, the lower end face of the fourth output mating post 14 is on the same plane as the lower end face of the first output auxiliary post 10, which makes the flatness of the lower end of the overall structure better and the space occupied by the overall structure is relatively small.

[0015] Preferably, the upper ends of the first output mating post 4 and the second output mating post 5 are provided with an integrally formed inverted oil-filling cone-shaped sealing mating stabilizing post at the connection position with the main body sealing mating post 6, which can further improve the tightness of the combination during mating and increase the contact area of ​​the sealing position during mating.

[0016] Preferably, the upper ends of the second output matching channel 8 and the first output matching channel 7 are provided with output guide matching smooth grooves, which improves the smoothness of the collection and output of high-temperature alloy materials.

[0017] Preferably, the output guide and flow channel have an inverted conical structure, which is more convenient to manufacture and more reliable in terms of smoothness during transport.

[0018] The above description represents the preferred embodiments of the present invention. It should be noted that those skilled in the art can make various improvements or substitutions without departing from the principles of the present invention, and these improvements or substitutions should also be considered within the scope of protection of the present invention.

Claims

1. A high temperature alloy material filling and diverting device, characterized in that: The utility model relates to a kind of cylindrical main body cooperation conveying seat (1), the upper end of the main body cooperation conveying seat (1) is equipped with cylindrical conveying main body cooperation groove (2), the lower end of the main body cooperation conveying seat (1) is equipped with the cylindrical reinforcing stop cooperation board (3) of integrated molding, the diameter of the main body cooperation conveying seat (1) is less than the diameter of the reinforcing stop cooperation board (3), the lower end of the reinforcing stop cooperation board (3) is equipped with two first output cooperation column (4) and second output cooperation column (5) from right to left distribution and size sequentially decreasing, the upper end of the first output cooperation column (4) and the second output cooperation column (5) is equipped with main body sealing cooperation column (6) respectively, the first output cooperation column (4) is composed of cylindrical first output stabilizing column (9) and cylindrical first output auxiliary column (10) located in the lower end of the first output stabilizing column (9), the diameter of the first output stabilizing column (9) is greater than the diameter of the first output auxiliary column (10), the outer cylindrical surface of the first output stabilizing column (9) is equipped with integrated inverted conical first fastening cooperation column (11) in the middle lower position of upper and lower directions, the outer cylindrical surface of the first output auxiliary column (10) is equipped with inverted conical third output cooperation column (12) evenly distributed in upper and lower directions, the position of the first output stabilizing column (9) between the first fastening cooperation column (11) and the third output cooperation column (12) forms second output cooperation structure, the second output cooperation column (5) is composed of cylindrical second output stabilizing column (13) and fourth output cooperation column (14) located below the second output stabilizing column (13), the diameter of the second output stabilizing column (13) is greater than the diameter of the fourth output cooperation column (14), the outer cylindrical surface of the second output stabilizing column (13) is equipped with integrated inverted conical second fastening cooperation column (15) in the middle lower position of upper and lower directions, the outer cylindrical surface of the fourth output cooperation column (14) is equipped with inverted conical sixth output cooperation column (16) evenly distributed in upper and lower directions, the second fastening cooperation column (15) and the fifth output cooperation column (16) form fifth output cooperation structure, the diameter of the sixth output cooperation column (16) upper end position is less than the diameter of the second output stabilizing column (13), the diameter of the third output cooperation column (12) upper end position is less than the diameter of the first output stabilizing column (9), the lower end central position of the first output auxiliary column (10) is equipped with first output cooperation channel (7) communicated with the conveying main body cooperation groove (2), the lower end central position of the fourth output cooperation column (14) is equipped with second output cooperation channel (8) communicated with the conveying main body cooperation groove (2).

2. The high temperature alloy material filling and diverting device according to claim 1, characterized in that: The outer side position of the section of the main body sealing cooperation column (6) is circular arc structure.

3. The high temperature alloy material filling and diverting device according to claim 1, characterized in that: The lower end surface of the fourth output cooperation column (14) and the lower end surface of the first output auxiliary column (10) are on the same plane.

4. The high temperature alloy material filling and diverting device according to claim 1, characterized in that: The upper end of the first output matching column (4) and the second output matching column (5) is provided with an integrally formed inverted oiling cone-shaped sealing matching stable column at the connecting position of the main body sealing matching column (6).

5. The high temperature alloy material filling and diverting device according to claim 1, characterized in that: The upper end of the second output matching channel (8) and the first output matching channel (7) is provided with an output guiding matching smooth groove.

6. A high temperature alloy material filling and diverting device according to claim 5, characterized in that: The output guiding matching smooth groove is a reverse conical structure.