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An advanced dynamic process model for industrial horizontal anode baking furnace

机译:工业卧式阳极焙烧炉的先进动态过程模型

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摘要

The global aluminum industry is facing new challenges due to new technological developments. Carbon anodes, consisting of mainly petroleum coke and coal tar pitch, are used in the electrolytic production of aluminum. High amperage utilization in the electrolytic cells with the objective of increasing production requires high quality carbon anodes. The anode quality depends both on raw material quality, anode recipe as well as forming and baking conditions of anode manufacturing process. The cost of the baking process constitutes 15 to 25% of the total aluminum production cost [1]. The industrial challenge is to produce better quality anodes consuming less energy, and reducing environmental emissions. A transient two dimensional (2D~+) process model for horizontal anode baking furnace was developed during this study. The main objective was to develop an efficient furnace model with low computation load and time, using the transient Finite Difference Method and simplified furnace geometry. The model represents several phenomena involved during the anode baking process such as heat transfer (convection, radiation and conduction), fuel combustion, volatile matter (tar, methane and hydrogen) generation and combustion, air infiltration and energy loss to the atmosphere from the walls, the top of the furnace and the foundation. The model was developed using two coupled sub-models; the first one describes the thermal conduction through the solid materials (brick refractory wall, packing coke and anode block) as well as the volatile release, and the second one describes the gas flow, heat and mass transfer as well as the combustion of fuel and volatiles in the flue. Compared to the existing process models (where the gas flow in flue is assumed as unidirectional along the horizontal furnace direction), the present model also considers the gas flow in vertical direction and uses four vertical planes per pit section to predict the temperature of the solids. The model predicts 2D temperature distribution within the flue gas (xy plane) and the pit solid materials (yz plane) allowing then the prediction of the pseudo tridimensional distribution of the solid temperature. This model is a useful tool for the continuous monitoring of anode temperature and studying of the horizontal anode baking furnace behaviour. The effect of any change in operational parameters and the energy consumption on the furnace operation can be predicted.
机译:由于新技术的发展,全球铝工业正面临着新的挑战。碳阳极主要由石油焦和煤焦油沥青组成,用于铝的电解生产。为了提高产量,在电解池中高安培利用率需要高质量的碳阳极。阳极质量取决于原材料质量,阳极配方以及阳极制造工艺的成型和烘烤条件。烘烤过程的成本占铝生产总成本的15%到25%[1]。工业上的挑战是生产质量更好的阳极,消耗更少的能源并减少环境排放。在此研究中,建立了水平阳极焙烧炉的瞬态二维(2D〜+)过程模型。主要目标是使用瞬态有限差分法和简化的炉子几何形状,开发一种具有低计算量和时间的高效炉子模型。该模型代表了阳极烘烤过程中涉及的几种现象,例如热传递(对流,辐射和传导),燃料燃烧,挥发性物质(焦油,甲烷和氢气)的产生和燃烧,空气渗透以及能量从壁面向大气的损失,炉子的顶部和基础。该模型是使用两个耦合子模型开发的。第一个描述了通过固体材料(砖状耐火墙,填料焦炭和阳极块)的热传导以及挥发物的释放,第二个描述了气体的流动,热量和质量的传递以及燃料的燃烧。烟道中的挥发物。与现有的过程模型(烟道中的气体流动沿炉子水平方向为单向)相比,本模型还考虑了垂直方向上的气体流动,并使用每个坑段的四个垂直平面来预测固体温度。该模型可预测烟气(xy平面)和矿坑固体材料(yz平面)内的二维温度分布,从而可以预测固体温度的拟三维分布。该模型是连续监测阳极温度和研究卧式阳极焙烧炉性能的有用工具。可以预测运行参数和能耗的任何变化对熔炉运行的影响。

著录项

  • 来源
    《Applied Mathematical Modelling》 |2018年第1期|384-399|共16页
  • 作者单位

    University of Quebec at Chicoutimi, Department of Applied Sciences, 555, boul. de l'Universite, Chicoutimi, Quebec C7H 2B1, Canada;

    University of Quebec at Chicoutimi, Department of Applied Sciences, 555, boul. de l'Universite, Chicoutimi, Quebec C7H 2B1, Canada,Aluminerie Alouette Inc., 400, Chemin de la Pointe-Noire, C.P. 1650, Sept-Iles, Quebec G4R 5M9, Canada;

    University of Quebec at Chicoutimi, Department of Applied Sciences, 555, boul. de l'Universite, Chicoutimi, Quebec C7H 2B1, Canada;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Anode baking furnace; Horizontal furnace; Dynamic process model; Heat transfer; Numerical modelling;

    机译:阳极烘烤炉;卧式炉;动态过程模型;传播热量;数值模拟;

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