Conceptual Model Of Tapping Mechanisms In  FeSi/Si Furnaces

M. Tangstad, E. Ringdalen, J. Olsen, K. Einarsrud, Edin Myrhaug, Q. Reynolds
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引用次数: 1

Abstract

Tapping has mainly been an experience based sub-process in the silicon and ferrosilicon production process. To get this part of the process into a more scientific area, represented by e.g. CFD modelling, a conceptual model on the process is needed. This paper will hence start the work on describing some of the operational parameters that may link the furnace operation to the tapping process. The tapping process of a Si/FeSi furnace, that is the tapping rate, will be dependent on the zones and material in the furnace. The drainage of the furnace can be divided into 3 steps; Step 1 that describes the drainage from the back-electrodes to the tap-electrode, Step 2 that is the drainage in the near tap-hole region, and Step 3, the flow through the tap-hole. Each of these steps will be dependent on the zones and materials in the furnace. The flow from the back-electrodes (Step 1) will be determined by furnace gas pressure as well as high viscosity materials, as e.g. a slag layer, or SiC crusts, hindering the flow. Affecting the flow from the tap-electrode to the tap-hole (Step2), it is seen that the metal must drain through a slag zone filled with small SiC particles. Step 3 is dependent on the material in the entrance of the tap hole, in addition to the geometrical measures of the tap-hole as well as the density and to a lesser extent the viscosity.
FeSi/Si炉出丝机理的概念模型
在硅和硅铁生产过程中,攻丝主要是一个基于经验的子工艺。为了使过程的这一部分进入一个更科学的领域,例如CFD建模,需要一个过程的概念模型。因此,本文将开始描述一些可能将炉操作与攻丝过程联系起来的操作参数。Si/FeSi炉的出丝过程,即出丝速率,将取决于炉内的区域和材料。炉膛排水可分为3步;步骤1描述从后电极到接接电极的排水,步骤2描述接接孔附近区域的排水,步骤3描述通过接接孔的水流。这些步骤中的每一步都将取决于炉子中的区域和材料。从后电极(步骤1)流出的流量将取决于炉气压力以及高粘度材料,例如阻碍流动的渣层或SiC结壳。影响从接出电极到接出孔的流动(步骤2),可以看出金属必须通过充满小SiC颗粒的渣区排出。步骤3是依赖于材料在入口的水龙头孔,除了几何测量的水龙头孔,以及密度和较小程度上的粘度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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