Silicon-based alloys, methods for their manufacture, and uses of such alloys
By adding chromium and manganese sources to ferrosilicon and refining to remove silicon carbide, the method addresses high carbon content issues in silicon-based alloys, producing alloys suitable for low-carbon steel grades with enhanced properties and processing efficiency.
Patent Information
- Application Number
- JP2023010545
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2018-06-11
- Filing Date
- 2023-01-26
- Publication Date
- 2026-02-13
- Estimated Expiration
- 2039-06-07
AI Technical Summary
Existing silicon-based alloys used in steel production often contain high carbon content, which is undesirable in certain steel grades, and there is a need for a method to produce alloys with low carbon and controlled chromium and manganese contents for improved steel properties.
A method involving the addition of chromium and manganese sources to a liquid ferrosilicon alloy, followed by refining to remove silicon carbide particles, resulting in a silicon-based alloy with controlled carbon, chromium, and manganese contents, suitable for steel production.
The method produces a cost-effective alloy that reduces carbon content in steel, enabling the production of high-chromium and high-manganese steel grades with improved properties and processing efficiency.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to silicon-based alloys containing chromium, to methods for their preparation, and to uses of such alloys. The present invention also relates to silicon-based alloys containing chromium and manganese, to methods for their preparation, and to uses of such alloys. [Background technology]
[0002] Ferrosilicon (FeSi) is an alloy of silicon and iron and is an important additive in the production of steel products. Such alloys are commonly referred to as ferrosilicon alloys; however, when the silicon content and / or the content of alloying elements is high, very little iron is present in the alloy; therefore, the term "silicon (Si) alloy" is also used to describe such alloys. Silicon in the form of ferrosilicon is used to remove oxygen from steel and as an alloying element, improving the final quality of the steel. Silicon specifically improves strength and wear resistance, elasticity (spring steel), and scale resistance (heat-resistant steel), while reducing electrical conductivity and magnetostriction (electrical steel). See Table 1 for examples of prior art ferrosilicon qualities produced by Elkem. Specialty ferrosilicon, such as LA1 (low aluminum), HP / SHP (high purity / semi-high purity), and LC (low carbon) ferrosilicon, is used to produce specialty steel grades, such as electrical steel, stainless steel, bearing steel, spring steel, and tire cord steel.
[0003] TIFF0007813735000001.tif40128
[0004] Ferrochrome is an alloy of chromium and iron, with a Cr concentration typically between 50 and 70% by weight depending on the grade.
[0005] The main contaminant in ferrochrome alloys is carbon, which can range from 0.03 to a maximum of 9.5% by weight. Examples of commercially available Cr alloys are high-carbon ferrochrome (HC FeCr), typically with a maximum carbon content of 8% by weight; charge chromium (chCr), typically with a maximum carbon content of 9.5% by weight; medium-carbon ferrochrome (MC FeCr), typically with a carbon content of 1-2% by weight; and five different types of low-carbon ferrochrome (LC FeCr), ranging from a maximum carbon content of 0.1% by weight to a maximum carbon content of 0.03% by weight. Other alloys with different carbon contents up to 9.5% by weight may be available. FeSiCr is primarily used as a raw material in the production of LC FeCr, but can also be used directly by steel manufacturers as a source of silicon and chromium units. Such materials typically maintain a Cr content of over 30% by weight and a silicon content of 30-50% by weight, while ensuring a carbon content as low as 0.05%. Table 2 below lists examples of commercially available ferrochrome and FeSiCr alloys used in the steel production industry.
[0006] TIFF0007813735000002.tif65161
[0007] Ferrochrome, in the form of HC FeCr or chCr, is primarily used in the production of stainless steel, with stainless steel grades containing a minimum of 10.5% Cr by weight. This is the minimum concentration required to impart stainless steel properties. Many other steel grades contain Cr additions, primarily in the range of 0.5% to 2% by weight. This is because Cr additions help improve hardness and scale resistance. Examples of such steels include tool steels, heat-resistant steels, and high-strength steels. Because high-carbon ferrochrome grades offer the lowest price per unit of Cr, steel manufacturers aim to use high-carbon ferrochrome grades whenever possible. However, some applications, particularly those added at the final stage of the steelmaking process where precise control of carbon content is required, necessitate the use of medium- and low-carbon ferrochrome grades.
[0008] Furthermore, because manganese is an alloying element that improves the final properties of the steel, such as toughness and strength, steel grades generally contain Mn, typically in the range of 0.2-2 wt%. Thus, a wide range of steel grades, such as spring steel and tool steel, contain both Cr and Mn simultaneously as alloying elements. The 200 series stainless steel grades are another example, where the Mn content can be as high as 10 or even 15 wt%, and the Cr concentration can be up to 20 wt%.
[0009] Examples of commercially available Mn alloys used in steel production are high-carbon ferromanganese (HCFeMn), which typically has a carbon content of 6-8 wt. %, medium-carbon ferromanganese (MCFeMn), which typically has 1-2 wt. % C, and low-carbon ferromanganese (LCFeMn), which has about 0.5 wt. % C. Electrolytic manganese is also available, with carbon content down to 0.04 wt. %. Other alloys may be available with various carbon contents up to 8%. It is also worth noting that the lowest carbon content in Mn alloys is found in electrolytic manganese, whose manufacturing process is known to pose environmental issues and is very expensive to produce. Table 3 below shows examples of commercially available manganese alloys used in the steel production industry.
[0010] TIFF0007813735000003.tif48162
[0011] It is therefore an object of the present invention to provide a novel silicon-based alloy with a low carbon content for the steel production industry.
[0012] Another object is to provide a method for producing the above Si-based alloy.
[0013] A further object is to provide uses of the above Si-based alloy.
[0014] The advantages of the present invention will become apparent in the following description. Summary of the Invention
[0015] In a first aspect, the present invention provides a method for producing a medicament for the treatment of a pulmonary arthritis, comprising: 45 to 95 wt.% Si, maximum 0.05 wt% C, 0.4 to 30 wt.% Cr, 0.01 to 10 wt.% Al, 0.01 to 0.3 wt. % Ca, up to 0.10 wt% Ti, up to 25 wt.% Mn, 0.005 to 0.07 wt% P, 0.001 to 0.02 wt% S, It relates to a silicon-based alloy, the balance being Fe, and containing the usual amounts of incidental impurities.
[0016] In one embodiment, the silicon-based alloy comprises 50-80 wt% Si.
[0017] In another embodiment, the silicon-based alloy comprises 64-78 wt% Si.
[0018] In one embodiment, the silicon-based alloy comprises up to 0.03 wt.% C.
[0019] In one embodiment, the silicon-based alloy comprises 0.01 to 0.1 wt % Ca.
[0020] In one embodiment, the silicon-based alloy comprises up to 0.06 wt. % Ti.
[0021] In one embodiment, the silicon-based alloy comprises 0.04 to 0.3 wt. % Mn.
[0022] In one embodiment, the silicon-based alloy comprises 0.3 to 25 wt. % Mn.
[0023] In one embodiment, the silicon-based alloy comprises 1-20 wt % Cr.
[0024] In a second aspect, the present invention relates to a method for producing a silicon-based alloy as defined above, comprising providing a liquid-based ferrosilicon alloy, adding a Cr source and optionally a Mn source to said liquid ferrosilicon, thereby obtaining a melt, and refining said obtained melt, wherein said refining comprises removing silicon carbide particles formed before and / or during casting of said melt.
[0025] In one embodiment, the added Cr source is in the form of a high carbon ferrochrome alloy, a medium carbon ferrochrome alloy, a low carbon ferrochrome alloy, Cr metal, or a mixture thereof.
[0026] In one embodiment, the added Mn source is in the form of a high carbon ferromanganese alloy, a medium carbon ferromanganese alloy, a low carbon ferromanganese alloy, Mn metal, or a mixture thereof.
[0027] In one embodiment, the liquid based ferrosilicon alloy comprises: Si: 45~95% by weight, C: Maximum 0.5% by weight, Al: maximum 2% by weight, Ca: max. 1.5% by weight, Ti: maximum 0.1% by weight, Cr: maximum 0.4% by weight, Mn: max. 0.3% by weight, P: maximum 0.02% by weight, S: Maximum 0.005% by weight, The balance is Fe, and the usual amounts of incidental impurities.
[0028] In one embodiment, Al is added to adjust the Al content to the range of 0.1 to 10 wt %.
[0029] In another aspect, the present invention relates to the use of a silicon-based alloy as defined above as an additive in the production of steel.
[0030] In one embodiment, the present invention relates to the use of a silicon-based alloy as defined above as an additive in the production of electrical steel. DETAILED DESCRIPTION OF THE INVENTION
[0031] The present invention provides novel silicon-based alloys with low carbon and a chromium content of up to 30% by weight. The present invention also provides novel silicon-based alloys with low carbon and a chromium content of up to 30% by weight and a manganese content of up to 25% by weight.
[0032] The alloy according to the invention has the following composition: Si: 45~95% by weight, C: Maximum 0.05% by weight, Cr:0.4~30% by weight, Ca: 0.01~0.3% by weight, Ti: maximum 0.10% by weight, P:0.005~0.07% by weight, S: 0.001~0.02% by weight, Mn: max. 25% by weight, Al: 0.01~10% by weight, The balance is Fe, and the usual amounts of incidental impurities.
[0033] In this application, the terms silicon-based alloy and ferrosilicon-based alloy are used interchangeably. Si is the primary element in this alloy that is added to the steel melt. Traditionally, 75 wt. % Si or 65 wt. % Si has been used. Ferrosilicon with 75 wt. % Si increases the temperature of the steel melt when added more than 65 wt. % Si, which has almost no effect on the temperature. Currently, ferrosilicon with less than 50 wt. % Si is rarely used in the steel industry, meaning that large amounts of alloy are added to achieve the target Si content and problems arise during steelmaking. Increasing the silicon content in Si-based alloys increases the production cost per unit of silicon, so contents above 80% are rarely used today. Therefore, a preferred Si range is 50-80 wt. %. Another preferred Si range is 64-78 wt. %.
[0034] Chromium is typically an impurity in the production of silicon-based alloys. However, the present inventors have surprisingly discovered that alloying a silicon-based alloy with chromium in the range of 0.4-30%, while maintaining a low carbon content, results in an alloy with particularly excellent properties for use in the production of steels containing Si and Cr and requiring a low carbon content. Other possible Cr ranges are 1-25%, 1-20%, or 1-15%, or even 2-10%.
[0035] In some applications, increasing the Mn content in Si-based alloys containing Cr while maintaining low carbon has also been found to be a good solution. Therefore, increasing the Mn content relative to the impurity concentration may be advantageous in some applications. Manganese is typically an impurity in the production of silicon-based alloys, typically at a maximum of 0.3 wt.%, e.g., in the range of 0.04-0.3 wt.%. The silicon-based alloys of the present invention containing chromium may contain manganese as an alloying element in the range of 0.3-25 wt.% while maintaining a low carbon content. This provides an alloy with particularly excellent properties for use in the production of steels requiring low carbon contents. Other suitable Mn ranges are 1-20 wt.%, or 1-15 wt.%, or even 2-10 wt.%.
[0036] Carbon is the primary unwanted element in the steel grades targeted by this new alloy and should be minimized as much as possible in this new alloy according to the invention. The maximum carbon content in the alloy is 0.05 wt.%. A maximum C content of 0.03 wt.% is possible, or a maximum of 0.02 wt.% like the currently available low carbon ferrosilicon grades, or even a maximum of 0.01 wt.%. It is considered difficult to completely eliminate carbon, and typically 0.003 wt.% C may be present in the alloy according to the invention.
[0037] With increasing chromium in the alloy, the carbon content in the novel silicon-based alloy of the present invention can be up to 0.05 wt.%.
[0038] Similarly, the carbon content in the novel silicon-based alloys of the present invention can be up to 0.05 wt. % with increasing chromium and manganese in the alloy.
[0039] Aluminum is typically an impurity in the production of silicon-based alloys, typically about 1 wt. % ex-furnace in standard grades. For some steels requiring very low aluminum contents, the silicon alloys of the present invention can be refined to as low as 0.01 wt. %. In other steels, such as electrical steels, aluminum is also added as an alloying element. Thus, adding up to 5 wt. % or even up to 10 wt. % aluminum to the alloys of the present invention may be preferred in some cases.
[0040] Calcium is an impurity in the production of silicon-based alloys and must be kept low to avoid problems during steelmaking and casting, such as nozzle clogging. In the alloy according to the invention, the calcium range is 0.01-0.3 wt. %. Advantageously, the calcium range is 0.01-0.1 wt. %, e.g., up to 0.05 wt. %. If the calcium content in the starting materials for producing the alloy according to the invention is higher than the desired calcium content in said alloy, calcium can be removed during production by blowing / agitating with oxygen (by air and / or pure oxygen) to form calcium oxide, which can be removed as slag.
[0041] Titanium is an impurity in the production of silicon-based alloys, typically about 0.08 wt.% ex-furnace, depending on the raw material mix, for a 75 wt.% FeSi standard production. However, in some steel grades, lower titanium contents are often beneficial to avoid the formation of harmful inclusions. Thus, Ti concentrations of up to 0.06 wt.%, or up to 0.03 wt.%, or even up to 0.01 wt.% in the novel alloys of the present invention are advantageous for some applications, such as the production of electrical steels. Because trace amounts of Ti may be present in the alloys of the present invention, the minimum Ti concentration may be 0.003 wt.%. Because refining Ti in the ladle can be difficult, good furnace practice and raw material selection can help successfully achieve low titanium contents.
[0042] Phosphorus is an impurity in the production of silicon-based alloys and is generally less than 0.03 wt% in commercially available grades of Si-based ferroalloys. Cr alloys generally contain P concentrations in a similar range to Si alloys. However, P is usually sufficiently abundant in Mn alloys that alloying with Mn can result in a higher P content in the final Si alloy. Thus, while the P concentration in the present invention is a maximum of 0.07 wt%, if, for example, Mn is not added to a chromium-containing Si alloy, the P concentration can be reduced to a maximum of 0.03 wt%. It is important to note that the P content in steels made with the addition of the silicon alloy of the present invention is the same as or slightly lower than that of steels made with the separate additions of silicon, chromium, and manganese alloys.
[0043] Sulfur is generally low in the production of silicon alloys, generally less than 0.003 wt% in commercial grade silicon alloys. However, S is usually higher in Cr alloys and slightly higher in Mn alloys. Therefore, alloying with Cr and / or Mn can result in higher S content in the final silicon alloy, depending on the target Cr and Mn content. Therefore, the S concentration is a maximum of 0.02 wt% in the present invention. It is important to note that the S content in steel made with the addition of the silicon alloy of the present invention is the same as or slightly lower than that of steel made with the separate addition of silicon, chromium, and manganese alloys.
[0044] In one embodiment, the composition of the alloy according to the present invention comprises: Si: 64~78% by weight, C: Maximum 0.03% by weight, Cr: 1~25% by weight, Ca: 0.01~0.05% by weight, Ti: maximum 0.06% by weight, P:0.005~0.07% by weight, S: 0.001~0.02% by weight, Mn: 0.04~20% by weight, Al: 0.01~10% by weight, The balance is Fe, and the usual amounts of incidental impurities.
[0045] In another embodiment, the composition of the Si alloy according to the present invention comprises ferrosilicon alloyed with Cr without the addition of Mn, which is therefore present as an impurity. Si: 45~95% by weight, C: Maximum 0.05% by weight, Cr:0.4~30% by weight, Ca: 0.01~0.3% by weight, Ti: maximum 0.10% by weight, P:0.005~0.03% by weight, S: 0.001~0.02% by weight, Mn: 0.04~0.3% by weight, Al: 0.01~10% by weight, The balance being Fe, and normal amounts of incidental impurities.
[0046] In another embodiment, the composition of the Si alloy according to the present invention comprises ferrosilicon alloyed with Cr with the addition of Mn, whereby Mn is present as an alloying element: Si: 45~95% by weight, C: Maximum 0.05% by weight, Cr:0.4~30% by weight, Ca: 0.01~0.3% by weight, Ti: maximum 0.10% by weight, P:0.005~0.07% by weight, S: 0.001~0.02% by weight, Mn: 0.3~25% by weight, Al: 0.01~10% by weight, The balance being Fe, and normal amounts of incidental impurities.
[0047] The alloys according to the present invention are made by adding a Cr source containing carbon as an alloying or impurity element to a liquid Si-based alloy. The Cr source can be in the form of a solid or liquid chromium unit, in the form of a chromium ferroalloy or chromium metal, or a mixture thereof. The chromium source may contain typical impurities / contaminants. The chromium source can be, for example, a ferrochromium alloy, such as high-carbon ferrochromium, medium-carbon ferrochromium, low-carbon ferrochromium, or chromium metal, or a mixture thereof. Commercially available chromium ferroalloys, such as those listed in Table 2 above, or commercially available chromium metal, or a combination of two or more such alloys, are suitable for use in the present invention. Preferably, the added Cr is in the form of high-carbon ferrochromium or medium-carbon ferrochromium.
[0048] The carbon added from the chromium source reacts with silicon, thereby forming solid SiC (silicon carbide) particles. The solid SiC particles are removed from the melt during refining into the refractory of the ladle or into any slag formed before or during the casting process, preferably while stirring in the ladle. If necessary to have a sufficiently large recipient for the formed SiC particles, a slag former can be added. This results in a Si alloy according to the present invention having a low carbon content and containing chromium in the element ranges shown above.
[0049] If manganese is to be present in the final product (up to 25%), the addition of solid or liquid manganese units can be made in the ladle along with the addition of chromium. Mn can be added to adjust the Mn content to a range of 0.3 to 25 wt.%. The Mn source may be in the form of solid or liquid manganese units, in the form of a manganese alloy or manganese metal, or a mixture thereof. The manganese source may contain the usual impurities / contaminants. The manganese alloy may be a ferromanganese alloy, such as high-carbon ferromanganese, medium-carbon ferromanganese, low-carbon ferromanganese, or a mixture thereof. Commercially available manganese alloys, such as those listed in Table 3 above, or combinations of two or more such alloys, are suitable for use in the present invention. Preferably, the added Mn is in the form of high-carbon ferromanganese or medium-carbon ferromanganese.
[0050] The carbon added from the manganese source reacts with silicon in the same manner as described above for carbon added from the chromium source, thereby forming solid SiC (silicon carbide) particles. The solid SiC particles are removed from the melt during refining to the refractory of the ladle or to any slag formed before or during the casting process, preferably while stirring in the ladle. If necessary to provide a sufficiently large recipient for the formed SiC particles, a slag former can be added. This method produces a Si alloy according to the present invention, which has a low carbon content and contains chromium and manganese in the elemental ranges as shown above.
[0051] An example of a starting composition would be liquid FeSi from a furnace, but many others are possible depending on the final specifications to be achieved. Remelting any commercially available silicon-based alloy, such as standard ferrosilicon or high purity ferrosilicon, is also a possible starting material.
[0052] Thus, possible starting materials are: Si: 45~95% by weight, C: Maximum 0.5% by weight, Al: maximum 2% by weight, Ca: max. 1.5% by weight, Ti: maximum 0.1% by weight, Cr: maximum 0.4% by weight, Mn: max. 0.3% by weight, P: maximum 0.02% by weight, S: Maximum 0.005% by weight, The balance is Fe, and may contain the usual amounts of incidental impurities.
[0053] If aluminum is to be present in the final product (up to 10%), the addition of solid or liquid aluminum units can be made in the ladle. Alternatively, the aluminum in the liquid ferrosilicon from the furnace can be increased by the selection of the feedstock to the furnace. Al can be added to adjust the Al content up to 10%.
[0054] To produce the alloys according to the invention, additional steps can be carried out, generally by known techniques, involving smelting, skimming, and / or stirring of the slag, in particular to reach the low carbon concentrations claimed by the present invention. Such steps can be carried out before or during the casting process, or a combination thereof.
[0055] The following examples are intended to illustrate the present invention but not to limit its scope.
[0056] Example 1 The ferrosilicon was tapped conventionally into a tapping ladle with air bottom stirring. The amount of liquid ferrosilicon was approximately 7800 kg. Table 4 shows the chemical composition of the starting material before the addition of ferrochromium.
[0057] TIFF0007813735000004.tif18148
[0058] After pouring, the ladle was transported to the alloying and casting area. Next, 401 kg of lumpy HCFeCr, containing 67.61 wt% Cr, 7.23 wt% C, 0.92 wt% Si, the remainder being Fe, and the usual amount of incidental impurities, was added to the liquid ferrosilicon, aiming for a 3 wt% Cr content in the final product. Because the Cr yield was unknown, the HCFeCr was added gradually in four 100 kg batches over 8-10 minutes until the target 3 wt% Cr content was reached (additions may be made over shorter or longer periods). Bottom stirring was maintained throughout the entire addition process. After the HCFeCr alloy was added, the formed SiC particles were removed during smelting, and the ladle was transported to the casting area, where the liquid material was poured into a cast iron mold.
[0059] The samples of the novel alloys according to the present invention were taken out after casting but before crushing, and the results are shown in Table 5.
[0060] All samples were analyzed for Al, Cr, Si, P, Ca, Ti, Mn using XRF (Zetium® from Malvern Panalytical). For C, a LECO® CS-220 (combustion analysis) was used.
[0061] TIFF0007813735000005.tif18145
[0062] By applying such methods, the inventors achieved low carbon concentrations, which can be explained by the low solubility of carbon in high silicon alloys. However, it was surprising that it was possible to reach carbon concentrations as low as those of current low carbon ferrosilicon grades (see Table 1).
[0063] The alloy according to the present invention is a cost-effective alternative to current methods of adding the required alloying elements Si and Cr separately in combination with a ferrochrome alloy as a lower-carbon type of ferrosilicon, improving processing time and quality. The alloy can also help steel manufacturers reduce the total carbon content in steel, reaching lower concentrations than would be possible with separate additions of chromium in the form of ferrosilicon / Si-based alloys and low-carbon ferrochrome alloys. Furthermore, the alloy allows steel manufacturers to create new grades with higher Cr concentrations while maintaining a low carbon content in the steel using only one alloying additive.
[0064] The alloy of the present invention is also a cost-effective alternative to the current method of adding the required alloying elements Si, Cr, and Mn separately as a lower-carbon type of ferrosilicon in combination with ferrochrome and ferromanganese alloys or manganese metal, thereby improving processing time and quality. The alloy can also help steel manufacturers reduce the total carbon content in steel, reaching lower concentrations than would be possible with separate additions of ferrosilicon / Si-based alloys, chromium in the form of low-carbon ferrochrome alloys, and manganese or manganese metal in the form of low-carbon ferromanganese. Furthermore, the alloy allows steel manufacturers to create new grades with higher Cr and higher Mn concentrations, while maintaining a low carbon content in the steel using only one alloying additive.
[0065] While different embodiments of the present invention have been described, it will be apparent to those skilled in the art that other embodiments incorporating the concepts may be used. These and other examples of the invention illustrated above are intended as examples only, and the actual scope of the invention should be determined from the claims that follow.
Claims
1. 45 to 95 wt.% Si, maximum 0.05% by weight of C, 0.4 to 1 wt. % Cr, 0.01 to 10 wt. % Al, 0.01 to 0.3 wt. % Ca, maximum 0.10 wt.% Ti, up to 25 wt.% Mn, 0.005 to 0.07 wt. % P, 0.001 to 0.02 wt.% S, A silicon-based alloy consisting of the balance being Fe and unavoidable impurities.
2. 45 to 95 wt.% Si, maximum 0.05% by weight of C, 20 to 30 wt. % Cr, 0.01 to 10 wt. % Al, 0.01 to 0.3 wt. % Ca, maximum 0.10 wt.% Ti, up to 25 wt.% Mn, 0.005 to 0.07 wt. % P, 0.001 to 0.02 wt.% S, A silicon-based alloy consisting of the balance being Fe and unavoidable impurities.
3. 3. The silicon-based alloy according to claim 1, comprising 50 to 80 wt. % Si.
4. 4. The silicon-based alloy of claim 3, comprising 64-78 wt.% Si.
5. 5. The silicon-based alloy according to claim 1, containing up to 0.03 wt. % C.
6. 6. A silicon-based alloy according to any one of claims 1 to 5, containing 0.01 to 0.1 wt% of Ca.
7. A silicon-based alloy according to any one of claims 1 to 6, containing up to 0.06 wt% Ti.
8. A silicon-based alloy according to any one of claims 1 to 7, containing 0.04 to 0.3 wt% Mn.
9. A silicon-based alloy according to any one of claims 1 to 7, containing 0.3 to 25 wt% Mn.
10. A method for producing a silicon-based alloy according to any one of claims 1 to 9, Si: 45 to 95% by weight, C: maximum 0.5% by weight, Al: maximum 2% by weight, Ca: maximum 1.5% by weight, Ti: maximum 0.1% by weight, Cr: maximum 0.4% by weight, Mn: maximum 0.3% by weight, P: maximum 0.02% by weight, S: maximum 0.005% by weight, 1. A method comprising: providing a liquid-based ferrosilicon alloy consisting of Fe, the balance being Fe, and unavoidable impurities; adding a carbon-containing Cr source and optionally a Mn source to said liquid ferrosilicon, thereby obtaining a melt; and refining said obtained melt, wherein said refining comprises removing silicon carbide particles formed before and / or during casting of said melt.
11. 11. The method of claim 10, wherein the added Cr source is in the form of a high carbon ferrochrome alloy, a medium carbon ferrochrome alloy, a low carbon ferrochrome alloy, Cr metal, or mixtures thereof.
12. 11. The method of claim 10, wherein the added Mn source is in the form of a high carbon ferromanganese alloy, a medium carbon ferromanganese alloy, a low carbon ferromanganese alloy, Mn metal, or a mixture thereof.
13. The method according to any one of claims 10 to 12, wherein Al is added to adjust the Al content to a maximum of 10 wt.%.
14. Use of the silicon-based alloy according to any one of claims 1 to 9 as an additive in the production of steel.
15. 15. Use according to claim 14 in the production of electrical steel.
Citation Information
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