Influence of composition and cooling rate of alumocalcium slag on its crumblability

A. Lebedev, V. S. Shuiskaya
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引用次数: 1

Abstract

The main components of metallurgical slags are iron compounds, which are extracted by reduction smelting. There are several types of this process with obtaining various products based on iron and slags of various compositions (aluminum-calcium self-disintegrating), etc. The mode of smelting and cooling of alumocalcium slag, formed during melting in the furnace, should ensure the most complete spontaneous crumbling of it, as well as high rates of extraction of REM from it. Synthetic slags similar in phase composition to industrial samples after smelting of iron-containing ores were selected for the experiments. The simulated samples correspond to the region of primary crystallization of bicalcium silicate on the triple state diagram of CaO – SiO2 – Al2O3 system. The slag after crumbling was subjected to a sieve analysis using a mechanical sieve. In the experiments, slags with a silicon module k = 2.0 were used, which actively crumbled during their cooling. With an increase in the silicon module, the crumbling deteriorates. It was established that it is impossible to precisely limit the areas of compositions of crumbling slags at certain cooling rates. The conducted studies showed that the crumblability of slags improves as it approaches the center of the bicalcium silicate region. The composition of slags close to composition of the intersection points of the lines 2CaO·SiO2 – 2CaO·Al2O3 and 2CaO·SiO2 – 12CaO·7Al2O3 with the lines of the permanent silicon module granulometric composition almost does not depend on the cooling rate. The temperature mode from smelting to cooling affects the slags crumblability. The most promising are slags with a silicon module in the range of 2.85 – 3.00, close to the phase triangle 12CaO·7Al2O3 – 2CaO·SiO2 – 2CaO·Al2O3 .
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铝钙渣组成及冷却速度对其易碎性的影响
冶金渣的主要成分是铁化合物,铁化合物是通过还原冶炼提取出来的。该工艺有几种类型,以铁和各种成分的炉渣(铝钙自崩解)等为基础获得各种产品。铝钙渣是在炉内熔化过程中形成的,其熔炼和冷却方式应保证其最完全的自发破碎,并保证其REM的提取率高。选取含铁矿冶炼后物相组成与工业样品相近的合成渣进行实验。模拟样品与CaO - SiO2 - Al2O3体系三态图上硅酸二钙的初晶区相对应。用机械筛对破碎后的矿渣进行筛分分析。在实验中,使用硅模k = 2.0的炉渣,在冷却过程中主动破碎。随着硅组件的增加,碎裂会恶化。在一定的冷却速率下,不可能精确地限制碎渣成分的范围。研究表明,炉渣越靠近硅酸钙区中心,其可碎性越好。炉渣的组成接近2CaO·SiO2 - 2CaO·Al2O3线和2CaO·SiO2 - 12CaO·7Al2O3线的交点,与永久硅组件的粒度组成几乎不依赖于冷却速率。从熔炼到冷却的温度模式影响炉渣的可碎性。最有希望的是硅模量在2.85 ~ 3.00之间,接近12CaO·7Al2O3 - 2CaO·SiO2 - 2CaO·Al2O3相三角形的炉渣。
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