试验TSL熔池熔炼炉飞溅通量的测量与物理模型预测

Yuhua Pan, M. Somerville, D. Langberg
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引用次数: 0

摘要

摘要:用于有色金属冶炼的顶部浸没式喷枪(TSL)炉由于喷枪产生强烈的搅拌和飞溅,具有较高的传热传质率。虽然飞溅会导致炉内较冷区域的吸积积聚,但它在传热传质中起着重要作用,需要加以控制,以最大限度地减少吸积形成,同时最大限度地提高炉生产率。在这项工作中,通过测量300 kg中试TSL炉中的熔渣浴和物理模型中的常温水-甘油溶液浴的飞溅通量来研究飞溅。在两种系统中,测试了总喷射气量、喷枪浸泡深度和飞溅高度,以确定它们对飞溅通量的影响。利用量纲分析的方法,根据水-甘油物理模型的结果,建立了经验相关性。然后用这种相关性来预测高温冶炼条件下的飞溅。将预测结果与冷热实验结果进行比较,结果表明预测结果的变化趋势相同,预测值在可接受的范围内,特别是在飞溅高度高于浴面1 m范围内,以及在喷枪浸泡深度为浴高度1/6 - 1/3的中高气体流速范围内。结果表明,该关系式可用于预测TSL炉的飞溅行为。
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Measurement and physical model prediction on splash fluxes in a pilot TSL bath smelting furnace
ABSTRACT Top Submerged Lance (TSL) furnaces used for non-ferrous smelting have high heat and mass transfer rates due to the intensive stirring and splashing generated by the lance. While splashing can cause accretion build-up in the upper cooler regions of the furnace, it plays an important role in heat and mass transfer and needs to be controlled to minimise accretion formations while maximising furnace productivity. In this work, splashing was studied by measuring the splash flux from a molten slag bath in a 300 kg pilot-scale TSL furnace and also from an ambient temperature aqueous-glycerol solution bath in a physical model. In both systems, total injection gas flowrate, lance immersion depth and splash height were examined to determine their effects on the splash flux. An empirical correlation was developed based on the results of the aqueous-glycerol physical model using the methodology of dimensional analysis. This correlation was then used to predict the splash for high temperature smelting conditions. Comparison of the predictions with both hot and cold experimental measurements showed the same variation trends and the predicted values were within an acceptable range, particularly in splash heights within 1 m above the bath surface and at medium to high gas flowrates with lance immersion depths being 1/6–1/3 of the bath height. It is concluded that the correlation can be potentially applied to predict splashing behaviour in TSL furnaces.
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