A desulfurized steel block and a molten steel desulfurization method

CN117512267BActive Publication Date: 2026-08-11OUYE LIANJIN RENEWABLE RESOURCES CO LTD +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-12-07
Publication Date
2026-08-11

AI Technical Summary

Technical Problem

[0003]1、机械搅拌:有死角,需要设备投入

Benefits of technology

[0040]本发明提供了一种脱硫钢块及钢水脱硫方法。具备以下有益效果:

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Abstract

This invention discloses a desulfurized steel block and a method for desulfurizing molten steel, relating to the field of molten steel desulfurization technology. The desulfurized steel block and molten steel desulfurization method employs a circumferentially arranged spray structure, which rotates the steel block when magnesium gas is sprayed, thereby ensuring uniform diffusion of the magnesium gas in the molten steel. By setting the spray structure at the top of the steel block, this method essentially eliminates the requirement for a specific steel block density (magnesium content), and the magnesium gas sprayed from the top spray structure propels the steel block towards the bottom of the molten steel.
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Description

Technical Field

[0001] This invention relates to the field of steel desulfurization technology, specifically to a desulfurized steel block and a method for desulfurizing molten steel. Background Technology

[0002] Under scrap steel smelting conditions, fuel combustion inevitably introduces excessive sulfur. Traditional desulfurization methods have the following drawbacks:

[0003] 1. Mechanical mixing: Has dead zones and requires equipment investment.

[0004] 2. Pulsed Magnesium: Magnesium requires passivation, resulting in a large amount being introduced into the flue gas system, leading to low utilization and the introduction of gases, requiring equipment investment.

[0005] 3. Feeding wires: There are blind spots, and equipment investment is required.

[0006] Chinese invention patent application number CN202011219707.3 discloses a composite cored wire of magnesium and post-refining slag for desulfurization of molten steel.

[0007] Although this invention utilizes the structure of cored wire to feed magnesium into molten steel for desulfurization, the flow of magnesium gas in the molten steel is still not very uniform, and special wire feeding equipment is required to transport the cored wire.

[0008] Chinese invention patent application number CN200810012381.X discloses a composite sphere for desulfurization and removal of fine inclusions in ladle refining and its manufacturing method.

[0009] This invention uses magnesium encapsulated in a composite sphere for desulfurization. Since the melting of the composite sphere in the molten steel is not controllable, it is also unknown from which direction the magnesium gas will be ejected from the composite sphere. Therefore, the flow of magnesium gas in the molten steel is not sufficiently uniform.

[0010] Chinese invention patent application number CN201310044996.1 discloses a solid magnesium alloy cored wire for desulfurization in steelmaking and its manufacturing method.

[0011] This invention also uses cored wire and utilizes the reaction between magnesium and limestone to generate tiny bubbles to disturb the magnesium gas in the molten steel, but the overall control over the flow of magnesium gas is still limited. Summary of the Invention

[0012] (a) Technical problems to be solved

[0013] To address the shortcomings of existing technologies, this invention provides a desulfurized steel block and a method for desulfurizing molten steel, solving the following technical problems:

[0014] 1. The existing method of desulfurization using cored wire still has the drawbacks of wire feeding desulfurization, such as the inability to make magnesium gas diffuse evenly in molten steel.

[0015] 2. The existing desulfurization method using composite spheres makes it difficult to control the injection point of magnesium vapor, which in turn makes it impossible to make magnesium vapor diffuse evenly in molten steel.

[0016] 3. In existing desulfurization methods using composite spheres, magnesium is relatively light, so the density requirement (magnesium content) of the composite spheres is relatively high to ensure that the composite spheres can sink in molten steel.

[0017] (II) Technical Solution

[0018] To achieve the above objectives, the present invention provides the following technical solution: a desulfurized steel block for desulfurizing molten steel, wherein the steel block is provided with a spraying structure and magnesium is disposed within the spraying structure;

[0019] The magnesium, after being heated and vaporized, can push the steel block;

[0020] The gasified magnesium can desulfurize the molten steel after it enters the molten steel.

[0021] The magnesium is ejected from the injection structure after being heated and vaporized.

[0022] Preferably, the outer edge of the steel block is provided with multiple spraying structures, and the spraying direction of the spraying structures does not intersect with the center of gravity of the steel block;

[0023] When the magnesium in the spray structure is heated to vaporization, it can drive the steel block to rotate.

[0024] Preferably, the spraying structure is a nozzle, and the end of the nozzle is provided with a plug, which can be broken by the vaporized magnesium after being heated and melted by the molten steel.

[0025] Preferably, the spraying direction of the spraying structure is parallel to the plane where the steel block is located.

[0026] Preferably, the spraying direction of the spraying structure is not parallel to the plane where the steel block is located, and both are inclined upwards.

[0027] Preferably, the top of the steel block is provided with an upward spraying structure, the spraying direction of the upward spraying structure is vertically upward, and magnesium is disposed inside the upward spraying structure.

[0028] Preferably, the bottom of the steel block is provided with a spiral structure, which can drive the steel block to rotate when it sinks in molten steel.

[0029] A method for desulfurizing molten steel includes a desulfurized steel block and the following steps:

[0030] For example, the density of a steel block is greater than the density of molten steel:

[0031] S1A: When a steel block is placed on the surface of molten steel, the steel block can descend under its own weight and absorb the heat of the molten steel to heat up.

[0032] S2A: When the magnesium inside the spraying structure of the steel block is heated and vaporized, it will be sprayed out from the spraying structure. The sprayed magnesium will undergo a desulfurization reaction in the molten steel. At the same time, since the spraying of magnesium can push the steel block to change position in the molten steel, it will also change the spraying direction of the spraying structure.

[0033] If the density of the steel block is less than the density of the molten steel:

[0034] S1B: When a steel block is placed on the surface of molten steel, the steel block will absorb the temperature of the molten steel and rise in temperature.

[0035] S2B: When the magnesium inside the spraying structure of the steel block is heated and vaporized, it will be sprayed out from the spraying structure. The sprayed magnesium will undergo a desulfurization reaction in the molten steel. At the same time, since the spraying of magnesium can push the steel block to change position in the molten steel, it will also change the spraying direction of the spraying structure.

[0036] If the top of the steel block is equipped with an upward spraying structure: the vaporized magnesium in the upward spraying structure will provide a reaction force to move the steel block towards the bottom of the molten steel after it is sprayed out.

[0037] If the spraying direction of the steel block spraying structure is not parallel to the plane where the steel block is located, and both are inclined upwards: the vertical upward component force provided by the spraying structure after spraying magnesium vapor will provide a reaction force to move the steel block towards the bottom of the molten steel.

[0038] Preferably, in the desulfurization method, magnesium is added to the spray structure and the upward spray structure according to the amount of magnesium required for desulfurization.

[0039] (III) Beneficial Effects

[0040] This invention provides a desulfurized steel block and a method for desulfurizing molten steel. It has the following beneficial effects:

[0041] (1) The desulfurization method of the desulfurized steel block and molten steel adopts a circumferentially arranged spray structure, which can rotate the steel block when magnesium gas is sprayed out, thereby making the magnesium gas diffuse evenly in the molten steel.

[0042] (2) The desulfurization method of the desulfurized steel block and molten steel can basically eliminate the requirement for the density (magnesium ratio) of the steel block by setting a spray structure on the top of the steel block. The magnesium gas sprayed by the top spray structure can push the steel block to the bottom of the molten steel. Attached Figure Description

[0043] Figure 1 This is a top view of the steel block of the present invention;

[0044] Figure 2 This is a plan view of the steel block structure of the present invention;

[0045] Figure 3 This is a side view of the steel block structure of the present invention (the spraying direction of the spraying structure is parallel to the plane of the steel block);

[0046] Figure 4 This is a longitudinal sectional view of the steel block structure of the present invention;

[0047] Figure 5 This is a side view of the steel block structure of the present invention (the spraying direction of the spraying structure is not parallel to the plane of the steel block);

[0048] Figure 6 This is a side view of the steel block structure of the present invention (with a spiral structure connected to the bottom);

[0049] Figure 7 This is a schematic diagram of the rotating state of the steel block according to the present invention.

[0050] In the diagram: 1. Steel block; 2. Spraying structure; 3. Upward spraying structure; 4. Blocking; 5. Spiral structure. Detailed Implementation

[0051] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0052] Example 1: The density of steel block 1 is greater than the density of molten steel.

[0053] When the density of steel block 1 is greater than the density of molten steel, the following desulfurization method can be selected for the molten steel:

[0054] Option 1: Let steel block 1 sink in the molten steel under its own weight.

[0055] The steel block 1 can be disc-shaped (or other uniformly shaped, conducive to rotation). During manufacturing, multiple nozzle structures are formed on a cross-section of the steel block 1. Ideally, the spray direction of the nozzle structure should form a tangential circle, so that the magnesium gas can drive the steel block 1 to rotate uniformly when sprayed. An equal amount of magnesium is placed in the nozzle structure. Since the density difference between the steel block 1 and the molten steel is not significant at this point, the descent of the steel block 1 is relatively slow. It is best to seal the nozzle outlet to a certain extent after placing the magnesium to prevent the magnesium from being heated into gas prematurely (before sinking to the bottom of the molten steel) during the descent of the steel block 1, causing the steel block 1 to rotate too early and release all the magnesium gas. Sealing can delay the release time of the magnesium gas, because after the magnesium is heated into gas, it cannot be sprayed directly from the nozzle due to the presence of the seal. It is necessary to wait for the seal to be heated to the point where it can no longer withstand the pressure of the magnesium gas before breaking the seal, allowing the magnesium gas to spray out and drive the steel block 1 to rotate. This waiting time allows the steel block 1 to sink fully. The specific sinking depth at the injection point can be determined by those skilled in the art through a limited number of experiments, and the thickness of the seal 4 should be appropriate.

[0056] In addition, the sealing device can also prevent magnesium from flowing directly into the molten steel from the nozzle after melting, thus preventing magnesium vapor from forming in the nozzle.

[0057] Option 2: Accelerate the sinking of steel block 1 in molten steel.

[0058] Based on Scheme 1, an upward spraying structure 3 is set on the top of the steel block 1, and magnesium is added to the upward spraying structure. During processing, multiple nozzles can be opened on the top of the steel block 1. When in use, several nozzles are selected to add magnesium according to the required sinking speed. After adding magnesium, the nozzles on the top of the steel block 1 need to be sealed to prevent the magnesium from flowing directly into the molten steel.

[0059] During the descent of steel block 1, the magnesium vapor in the top nozzle breaks through the blockage and provides the power to accelerate the sinking of steel block 1.

[0060] Alternatively, based on scheme 1, the spraying direction of spraying structure 2 can be made non-parallel to the plane where steel block 1 is located, and both are inclined upwards (e.g., Figure 5 This allows the magnesium gas to provide a downward force to the steel block 1 when it is ejected, thereby increasing the sinking speed of the steel block 1.

[0061] In this embodiment 1, in order to improve the stability of the steel block 1 and the uniformity of heat transfer around the circumference of the steel block 1, both Scheme 1 and Scheme 2 can set a spiral structure 5 at the bottom of the steel block 1 so that the steel block 1 can rotate to a certain extent during the sinking process. In addition, setting the spiral structure 5 can shift the center of gravity of the steel block 1 downward, making the sinking of the steel block 1 in the molten steel more stable.

[0062] Example 2: The density of steel block 1 is less than the density of molten steel.

[0063] At this point, the density of steel block 1 is less than the density of molten steel, so it cannot rely on its own weight to sink in the molten steel.

[0064] Therefore, in Example 2, only an upward spraying structure 3 can be set on the top of the steel block 1, and magnesium can be added to the upward spraying structure. During processing, multiple nozzles can be opened on the top of the steel block 1. When in use, several nozzles can be selected to add magnesium according to the required sinking speed. After adding magnesium, the nozzles on the top of the steel block 1 need to be sealed to prevent the magnesium from flowing directly into the molten steel after melting.

[0065] During the descent of steel block 1, the magnesium vapor in the top nozzle breaks through the blockage and provides the power to accelerate the sinking of steel block 1.

[0066] Alternatively, the spraying direction of spraying structure 2 can be non-parallel to the plane of steel block 1, and both can be inclined upwards (e.g., Figure 5 This allows the magnesium gas to provide a downward force to the steel block 1 when it is ejected, thereby increasing the sinking speed of the steel block 1.

[0067] It should be noted that in the description of the invention, the terms "upper", "lower", "left", "right", "front", "rear", etc., indicate the orientation or positional relationship based on the description of the structure of the invention shown in the accompanying drawings. They are only for the convenience of describing the invention and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on the invention.

[0068] The terms "first" and "second" in this technical solution are merely designations for corresponding structures that are identical or similar, or that perform similar functions. They do not represent an arrangement of the importance of these structures, nor do they imply any ranking, comparison of size, or other meaning.

[0069] Furthermore, unless otherwise explicitly specified and limited, the terms "installation" and "connection" should be interpreted broadly. For example, a connection can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium; it can be a connection within two structures. Those skilled in the art can understand the specific meaning of the above terms in this invention by considering the overall concept of the invention and the specific context of the solution.

Claims

1. A desulfurized steel block for desulfurizing molten steel, characterized in that: The steel block (1) has multiple spray structures (2) arranged around its outer edge, and magnesium is arranged inside the spray structure (2); the spray direction of the spray structure (2) does not intersect with the center of gravity of the steel block (1), and the steel block (1) is disc-shaped; The spray structure (2) is a nozzle, and a plug (4) is provided at the end of the nozzle. The block (4) can be broken by the gasified magnesium after being heated and melted by the molten steel, so that the magnesium is sprayed out from the spray structure (2) after being heated and gasified, pushing the steel block to rotate, and the gasified magnesium can desulfurize the molten steel after entering the molten steel.

2. The desulfurized steel block according to claim 1, characterized in that: The spraying direction of the spraying structure (2) is parallel to the plane where the steel block (1) is located.

3. The desulfurized steel block according to claim 1, characterized in that: The spraying direction of the spraying structure (2) is not parallel to the plane where the steel block (1) is located and is inclined upward.

4. The desulfurized steel block according to claim 1, characterized in that: The top of the steel block (1) is provided with an upward spraying structure (3), the spraying direction of the upward spraying structure (3) is vertically upward, and magnesium is provided inside the upward spraying structure (3).

5. A desulfurized steel block according to claim 1, characterized in that: The bottom of the steel block (1) is provided with a spiral structure (5), which can drive the steel block (1) to rotate when the steel block (1) sinks in the molten steel.

6. A method for desulfurizing molten steel, characterized in that: Includes a desulfurized steel block as described in any one of claims 1 to 5 and the following steps: When the density of the steel block (1) is greater than the density of the molten steel: S1A: Place the steel block (1) on the surface of the molten steel. The steel block (1) can descend under its own weight and absorb the heat of the molten steel to heat up. S2A: When the magnesium in the spraying structure (2) of the steel block (1) is heated and vaporized, it is sprayed out from the spraying structure (2). The sprayed magnesium undergoes a desulfurization reaction in the molten steel. At the same time, the spraying of magnesium can push the steel block (1) to change its position in the molten steel and also change the spraying direction of the spraying structure (2). When the density of the steel block (1) is less than the density of the molten steel: S1B: Place the steel block (1) on the surface of the molten steel. The steel block (1) absorbs the heat of the molten steel and heats up. S2B: When the magnesium inside the spraying structure (2) of the steel block (1) is heated and vaporized, it is sprayed out from the spraying structure (2). The sprayed magnesium undergoes a desulfurization reaction in the molten steel. At the same time, the spraying of magnesium can push the steel block (1) to change its position in the molten steel and also change the spraying direction of the spraying structure (2). In order to push the steel block (1) to move towards the bottom of the molten steel, any of the following methods can be used: The top of the steel block (1) is provided with an upward spraying structure (3): the gasified magnesium in the upward spraying structure (3) on the top of the steel block (1) will provide a reaction force to make the steel block (1) move towards the bottom of the molten steel after being sprayed out. The spraying direction of the spraying structure (2) is not parallel to the plane where the steel block (1) is located and both are inclined upward: the vertical upward component force provided by the spraying structure (2) after spraying magnesium vapor will provide a reaction force to move the steel block (1) towards the bottom of the molten steel.

7. A method for desulfurizing molten steel according to claim 6, characterized in that: In the desulfurization method, magnesium is added to the spray structure (2) and the upward spray structure (3) according to the amount of magnesium required for desulfurization.

Citation Information

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