Practical crystallizer sewage drainage rack

By designing a wastewater drainage platform for the crystallizer and utilizing clamping and rotating mechanisms, the problem of fire-fighting water not being able to drain was solved, ensuring the smooth operation of continuous casting production and product quality.

CN223932553UActive Publication Date: 2026-02-24YANGCHUN NEW STEEL CO LTD
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Patent Information

Application Number
CN202520523709.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-25
Publication Date
2026-02-24
Estimated Expiration
2035-03-25

AI Technical Summary

Technical Problem

In existing technology, fire-fighting water cannot be drained from the crystallizer, leading to soft water pollution, scale buildup and blackening of the copper tubes in the crystallizer, which affects continuous casting production and quality.

Method used

A wastewater drainage platform for crystallizers was designed, including an assembly plate, support legs, reinforcing rods, a rotating mechanism, and a clamping mechanism. The crystallizer is clamped by a cylinder-driven clamping block, and the self-locking motor drives the tilting table to rotate, thereby realizing the discharge of fire-fighting water.

Benefits of technology

Effectively draining fire-fighting water from the crystallizer prevents soft water contamination, avoids scale buildup in the copper tubes of the crystallizer, and ensures normal continuous casting production and product quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a practical crystallizer sewage drainage rack, and relates to the technical field of steelmaking continuous casting, the practical crystallizer sewage drainage rack comprises an assembly plate, a support leg and a reinforcing rod, the top of the assembly plate is provided with a rotating mechanism, one end of the rotating mechanism is connected with a turnover table, the turnover table is internally provided with a mounting hole, and the mounting hole is connected with the support leg. Clamping mechanisms are arranged on the top of the overturning table in a central symmetry mode. The output end of the air cylinder drives the clamping blocks to rotate clockwise around the rotating rod, so that one ends of the clamping blocks are attached to the outer wall of the crystallizer, the outer wall of the crystallizer is clamped through the two clamping blocks, the crystallizer and the overturning table are fixed into a whole, and the output end of the self-locking motor is connected with the rotating shaft into a whole through the coupler. The rotating shaft is connected with the overturning table through the connecting plate, the crystallizer is fixed to the overturning table, the self-locking motor can drive the overturning table to rotate around the rotating shaft as the center, and when the self-locking motor drives the overturning table to rotate downwards, fire fighting water in an inner cavity of the crystallizer is completely discharged.
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Description

Technical Field

[0001] This utility model relates to the field of steelmaking continuous casting technology, and in particular to a practical crystallizer wastewater drainage platform. Background Technology

[0002] A crystallizer is a device used for crystallization operations. It mainly utilizes the difference in solubility of substances in a solution or melt to precipitate substances into solid particles through heating or cooling. It is widely used in the chemical industry, metal smelting, and waste liquid treatment of large steel plants. There are various types of crystallizers, including evaporation crystallizers and cooling crystallizers, which can be selected according to specific needs. In addition, the crystallizer is one of the most critical components of a continuous casting machine, playing a decisive role in the quality of the cast billet and the production capacity of the casting machine.

[0003] The existing technology involves pressure testing with fire-fighting water after the crystallizer is repaired. However, the fire-fighting water cannot be drained from the crystallizer after pressure testing. Soft water is used for cooling during steel casting, and the inability to drain the fire-fighting water will cause soft water pollution, resulting in scale and blackening of the copper tubes in the crystallizer, which in turn affects continuous casting production and quality. Therefore, this utility model proposes a practical crystallizer wastewater drainage platform to solve the above problems. Utility Model Content

[0004] To address the aforementioned problems, this utility model proposes a practical crystallizer wastewater drainage platform to solve the issues in the prior art where soft water is used for cooling in the crystallizer during steel casting, and the inability to drain fire-fighting water causes soft water pollution, scale buildup and blackening of the copper tubes in the crystallizer, thus affecting continuous casting production and quality.

[0005] To achieve the purpose of this utility model, the utility model is implemented through the following technical solution: a practical crystallizer wastewater drainage platform, including an assembly plate, support legs and reinforcing rods, the top of the assembly plate is fixedly connected to the support legs, the top of the assembly plate is provided with a rotating mechanism, one end of the rotating mechanism is connected to a flipping table, the interior of the flipping table is provided with mounting holes, and the top of the flipping table is symmetrically provided with clamping mechanisms.

[0006] A further improvement is that the clamping mechanism includes a cylinder, a rotating rod, and a clamping block. The top of the tilting table is symmetrically hinged to the cylinder via a hinge seat. The outside of the mounting hole is symmetrically hinged to the clamping block via a rotating rod. The output end of the cylinder is fixedly connected to a connecting arm, and the connecting arm is hinged to one end of the clamping block via a pin.

[0007] A further improvement is that one end of the clamping block is designed as an arc-shaped structure, and one end of the clamping block is fitted and connected to the outside of the mounting hole.

[0008] A further improvement is that the rotating mechanism includes a connecting plate, a self-locking motor, and a rotating shaft. The self-locking motor is fixedly installed on the top of the assembly plate, the connecting plates are symmetrically fixedly connected to both sides of the tilting table, and the rotating shaft is fixedly connected to one side of the connecting plate.

[0009] A further improvement is that the output end of the self-locking motor is fixedly connected to a coupling, and the output end of the self-locking motor is fixedly connected to one end of the rotating shaft through the coupling.

[0010] A further improvement is that: the top of the assembly plate is provided with a protective shell, the inside of which is wrapped with a self-locking motor, and anti-collision posts are symmetrically provided on the outside of the self-locking motor.

[0011] A further improvement is that a reinforcing rod is provided inside the support leg, and the two ends of the reinforcing rod are fixedly connected to the two sides of the support leg, forming a triangular structure with the support leg and the reinforcing rod.

[0012] The beneficial effects of this utility model are as follows: the output end of the cylinder drives the clamping block to rotate clockwise around the rotating rod, so that one end of the clamping block is in contact with the outer wall of the crystallizer, and then the outer wall of the crystallizer is clamped by the two clamping blocks to fix the crystallizer and the rotating table as one unit. The output end of the self-locking motor is connected to the rotating shaft through the coupling, and the rotating shaft is connected to the rotating table through the connecting plate. The crystallizer is fixed on the rotating table, and the self-locking motor can drive the rotating table to rotate around the rotating shaft. When the self-locking motor drives the rotating table to rotate downward, all the fire water in the inner cavity of the crystallizer is discharged. Attached Figure Description

[0013] Figure 1 This is the front view of the present invention;

[0014] Figure 2 This is a front view of the present invention;

[0015] Figure 3 This is a top view of the present invention.

[0016] The components are: 1. Assembly plate; 2. Support leg; 3. Reinforcing rod; 4. Tilting table; 5. Mounting hole; 6. Hinge seat; 7. Cylinder; 8. Rotating rod; 9. Clamping block; 10. Connecting arm; 11. Pin; 12. Connecting plate; 13. Self-locking motor; 14. Coupling; 15. Rotating shaft. Detailed Implementation

[0017] To deepen the understanding of this utility model, the following detailed description will be provided in conjunction with embodiments. These embodiments are only used to explain this utility model and do not constitute a limitation on the scope of protection of this utility model.

[0018] according to Figure 1 , 2As shown in Figure 3, this embodiment proposes a practical crystallizer wastewater drainage platform, including an assembly plate 1, support legs 2, and reinforcing rods 3. The support legs 2 are fixedly connected to the top of the assembly plate 1, and a rotating mechanism is provided on the top of the assembly plate 1. One end of the rotating mechanism is connected to a flipping platform 4, and the interior of the flipping platform 4 is provided with mounting holes 5. A clamping mechanism is symmetrically provided at the top center of the flipping platform 4. The crystallizer is placed into the interior of the flipping platform 4 from top to bottom through the mounting holes 5, and the clamping mechanism fixes the crystallizer and the flipping platform 4 together. The rotating mechanism can drive the flipping platform 4 to rotate on one side of the assembly plate 1 to drive the crystallizer to flip downwards and drain all the fire water in the crystallizer cavity. Then, the rotating mechanism drives the crystallizer to flip upwards and reset.

[0019] The clamping mechanism includes a cylinder 7, a rotating rod 8, and a clamping block 9. The top of the flipping table 4 is symmetrically hinged to the cylinder 7 via a hinge seat 6. The outer side of the mounting hole 5 is symmetrically hinged to the clamping block 9 via the rotating rod 8. The output end of the cylinder 7 is fixedly connected to a connecting arm 10. The connecting arm 10 is hinged to one end of the clamping block 9 via a pin 11. One end of the clamping block 9 is designed with an arc shape. One end of the clamping block 9 is fitted to the outer side of the mounting hole 5. After the crystallizer is placed inside the mounting hole 5, the output end of the cylinder 7 drives the clamping block 9 to rotate clockwise around the rotating rod 8, thereby making one end of the clamping block 9 fit against the outer wall of the crystallizer. Then, the outer wall of the crystallizer is clamped by the two clamping blocks 9 to fix the crystallizer and the flipping table 4 as one unit.

[0020] The rotating mechanism includes a connecting plate 12, a self-locking motor 13, and a rotating shaft 15. The self-locking motor 13 is fixedly installed on the top of the assembly plate 1. The connecting plates 12 are symmetrically fixedly connected to both sides of the tilting table 4. The rotating shaft 15 is fixedly connected to one side of the connecting plate 12. The output end of the self-locking motor 13 is fixedly connected to a coupling 14. The output end of the self-locking motor 13 is fixedly connected to one end of the rotating shaft 15 through the coupling 14.

[0021] The output end of the self-locking motor 13 is connected to the rotating shaft 15 via the coupling 14. The rotating shaft 15 is connected to the tilting table 4 via the connecting plate 12. The crystallizer is fixed on the tilting table 4. The self-locking motor 13 can drive the tilting table 4 to rotate around the rotating shaft 15. When the self-locking motor 13 drives the tilting table 4 to rotate downward, all the fire water in the crystallizer cavity is discharged. Then the self-locking motor 13 drives the tilting table 4 to rotate upward, and the crystallizer flips upward and resets.

[0022] The top of the assembly plate 1 is provided with a protective shell, and the self-locking motor 13 is wrapped inside the protective shell. Anti-collision posts are symmetrically provided on the outside of the self-locking motor 13. The protective shell and anti-collision posts can isolate the self-locking motor 13 from external objects, prevent external objects from directly contacting the self-locking motor 13, and play a protective role for the self-locking motor 13.

[0023] The support leg 2 is equipped with a reinforcing rod 3 inside. The two ends of the reinforcing rod 3 are fixedly connected to the two sides of the support leg 2 respectively. The support leg 2 and the reinforcing rod 3 form a triangular structure. The support leg 2 plays a supporting role for the entire device. The triangular structure formed by the support leg 2 and the reinforcing rod 3 is stable and enhances the supporting capacity of the support leg 2.

[0024] This practical crystallizer wastewater drainage platform uses a cylinder 7 to drive a clamping block 9 to rotate clockwise around a rotating rod 8, thereby making one end of the clamping block 9 fit against the outer wall of the crystallizer. The two clamping blocks 9 then clamp the outer wall of the crystallizer, fixing the crystallizer and the tilting table 4 together. The output end of the self-locking motor 13 is connected to the rotating shaft 15 via a coupling 14. The rotating shaft 15 is connected to the tilting table 4 via a connecting plate 12. The crystallizer is fixed on the tilting table 4. The self-locking motor 13 can drive the tilting table 4 to rotate around the rotating shaft 15. When the self-locking motor 13 drives the tilting table 4 to rotate downward, all the fire-fighting water in the crystallizer cavity is discharged.

[0025] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.

Claims

1. A practical crystallizer wastewater drainage platform, comprising an assembly plate (1), support legs (2), and reinforcing rods (3), characterized in that: The top of the assembly plate (1) is fixedly connected to a support leg (2), the top of the assembly plate (1) is provided with a rotating mechanism, one end of the rotating mechanism is connected to a flipping table (4), the interior of the flipping table (4) is provided with an installation hole (5), and the top of the flipping table (4) is symmetrically provided with a clamping mechanism. The clamping mechanism includes a cylinder (7), a rotating rod (8), and a clamping block (9). The top of the flipping table (4) is symmetrically hinged to the cylinder (7) through a hinge seat (6). The outside of the mounting hole (5) is symmetrically hinged to the clamping block (9) through the rotating rod (8). The output end of the cylinder (7) is fixedly connected to a connecting arm (10). The connecting arm (10) is hinged to one end of the clamping block (9) through a pin (11).

2. A practical crystallizer wastewater drainage platform according to claim 1, characterized in that: One end of the clamping block (9) is designed with an arc shape, and one end of the clamping block (9) is fitted and connected to the outside of the mounting hole (5).

3. A practical crystallizer wastewater drainage platform according to claim 1, characterized in that: The rotating mechanism includes a connecting plate (12), a self-locking motor (13), and a rotating shaft (15). The self-locking motor (13) is fixedly installed on the top of the assembly plate (1). The connecting plates (12) are symmetrically fixedly connected to both sides of the flipping table (4). The rotating shaft (15) is fixedly connected to one side of the connecting plate (12).

4. A practical crystallizer wastewater drainage platform according to claim 3, characterized in that: The output end of the self-locking motor (13) is fixedly connected to a coupling (14), and the output end of the self-locking motor (13) is fixedly connected to one end of the rotating shaft (15) through the coupling (14).

5. A practical crystallizer wastewater drainage platform according to claim 1, characterized in that: The top of the assembly plate (1) is provided with a protective shell, and the self-locking motor (13) is wrapped inside the protective shell. Anti-collision posts are symmetrically provided on the outside of the self-locking motor (13).

6. A practical crystallizer wastewater drainage platform according to claim 1, characterized in that: The support leg (2) is provided with a reinforcing rod (3) inside. The two ends of the reinforcing rod (3) are fixedly connected to the two sides of the support leg (2) respectively. The support leg (2) and the reinforcing rod (3) form a triangular structure.