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首页> 外文期刊>Steel in Translation >Physicochemical characteristics, production and application of boron-bearing complex ferroalloys
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Physicochemical characteristics, production and application of boron-bearing complex ferroalloys

机译:含硼复合物铁合金的物理化学特性,生产和应用

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AbstractThe expediency of producing and using complex ferroalloys in steelmaking is analyzed in terms the manufacturing technology, the raw materials employed, and the interactions of the ferroalloys with the molten steel. The need to produce complex ferroalloys with boron is established. The fundamental principles for determining the best composition of such alloys are presented. The basic compositions of complex ferroalloys with boron (ferrosilicomanganese with boron, ferrosilicon with boron, ferrosilicomanganese with boron and chromium) are established by studying the physicochemical properties of alloys and their interactions with the steel melt. If the characteristics (melting point, density, melting time of the ferroalloy in liquid steel, etc.) of complex ferroalloys with boron are compared with those of ferroboron, which is widely used, the complex alloys have clear benefits. The composition of the complex ferroalloys with boron includes active elements (Si, Al, Ti) facilitating the binding of oxygen and nitrogen from the steel melt in strong compounds and hence preventing their reaction with boron. The recommended boron content in the ferroalloy is 0.7–2%. That permits increase in the quantity of complex ferroalloys with boron in the steel and hence increase in the reliability and stability of boron assimilation. At elevated temperatures (1430–1570°C), the oxidation of ferrosilicoboron is 4–7 times less than that of ferroboron. Data are presented regarding the industrial production and use of ferrosilicoboron in the steel-smelting shop. The boron assimilation from complex alloys in microalloying of the steel is studied. The use of ferrosilicoboron does not require significant changes in the existing system for reduction by ferrosilicon; the boron assimilation is 77.8–96.3% (mean 86.6%). With a boron concentration of 0.0021–0.0027% in the steel during ladle treatment, its content in the cast metal will be no less than 0.0020%. If boron is introduced in steel by means of ferrosilicomanganese with boron, the boron assimilation is increased by a factor of 1.6 (from 48 to 77%, on average) in comparison with the use of ferroboron.
机译:<标题>摘要 ara>在制造技术,所用原料的制造技术,原料与钢水的相互作用中分析生产和使用复杂铁合金的加速和使用复杂的铁合金的权宜之计。建立了用硼生产复杂铁合金的需要。提出了确定这种合金的最佳组成的基本原理。通过研究合金的物理化学性质及其与钢熔体的相互作用,建立通过研究合金的物理化学性质和硼和铬的硼,铁硅烷与硼,硼硅氏硅丹甘烷的硼硅氧烷,铁硅膜,硼硅氏硅丹氏菌,硼硅氏菌丹丹州的硼硅氏菌锰酸二烷基锰的基本组成。如果将具有硼的复合铁合金的复合铁合金的特性(熔点,密度,铁合金的熔融时间,熔融钢等)与广泛使用的硼酮相比,则复杂合金具有明显的益处。具有硼的复杂铁合金的组合物包括促进氧气和氮在强化合物中的钢熔体的结合的活性元素(Si,Al,Ti),因此防止其与硼的反应。铁合金中推荐的硼含量为0.7-2%。允许在钢中与硼的复合铁合金的量增加,因此硼同化的可靠性和稳定性增加。在升高的温度(1430-1570℃)时,铁硅酸硅氧化的氧化比福铁隆的4-7倍。提出了关于钢制冶炼商店的工业生产和使用铁硅硅的数据。研究了来自钢的微合金中的复合合金的硼同化。使用铁硅酸酯的使用不需要硅铁减少现有系统的显着变化;硼同化为77.8-96.3%(平均86.6%)。在钢包装过程中钢中硼浓度为0.0021-0.0027%,其铸造金属中的含量不小于0.0020%。如果硼通过硼硅烷喃与硼在钢中引入硼,则与使用Ferroboron的硼同化增加了1.6倍(平均48%至77%)。

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