首页> 外文会议>TMS(The Minerals, Metals amp; Materials Society) Annual Meeting; 20040314-20040318; Charlotte,NC; US >INTEGRATED MULTIPHYSICS AND COMPUTATIONAL FLUID DYNAMICS MODELING OF A CARBOTHERMIC ALUMINIUM REACTOR
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INTEGRATED MULTIPHYSICS AND COMPUTATIONAL FLUID DYNAMICS MODELING OF A CARBOTHERMIC ALUMINIUM REACTOR

机译:碳铝反应器的集成多物理场和计算流体动力学模型

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The present simulation study elaborates on a FE CFD model (Gerogiorgis and Ydstie, 2003) developed for a candidate carbothermic aluminium reactor (Johansen and Aune, 2002), aimed at industrial implementation of carbothermic Al production. Carbothermic reduction is an alternative to the conventional Hall-Heroult electrolysis process and is characterized by cost and environmental advantages as well as by a challenging complexity. Process technology encompasses a wide spectrum of phenomena (convection, diffusion, reaction, evaporation, electric field) that occur simultaneously in a multiphase configuration, the geometry of which is an open design problem and remains to be determined without prior experience or even abundance of experimental data. The strong interaction among Joule heating, endothermic reaction, natural Boussinesq convection and turbulent flow phenomena is of paramount importance for understanding reactor performance; conducting CFD simulations is an efficient way to advance with the latter goal, since reliable high-temperature measurements of state variables are remarkably laborious, uncertain and expensive. The quadruple PDE problem (electric charge, heat, momentum and gas volume balances) for the slag flow in the ARP reactor is solved via a commercial CFD software suite (FEMLAB~(~R) v. 2.3) to obtain potential, temperature, velocity and gas volume fraction distributions in a two-dimensional domain, representing in detail the complete second stage of the proposed carbothermic reactor. The new challenge is the present paper is to accurately calculate the volume fraction of the gas generated within the molten slag and understand how the proposed geometry affects production, via the instantaneous thermodynamic equilibrium assumption. The main objective of this CFD study is to extract conclusions regarding the reactive slag flow, the extent of space utilization and the existence of dead volumes, and to provide design guidelines. A steady state sensitivity analysis of state variable distributions (namely, potential, temperature, velocity and gas volume fraction) with respect to a key design variable (the imposed voltage profile) reveals the reactor heating potential, the geometry of the Al region and the nontrivial operation, design and optimization problems.
机译:本模拟研究详细阐述了针对候选碳热铝反应堆(Johansen和Aune,2002)开发的FE CFD模型(Gerogiorgis和Ydstie,2003),旨在工业生产碳热铝。碳热还原是常规霍尔-赫罗尔特电解工艺的替代方法,其特点是成本和环境优势以及复杂的挑战性。工艺技术包含多相配置中同时发生的多种现象(对流,扩散,反应,蒸发,电场),其几何结构是一个开放设计问题,尚待确定,而无需事先经验或丰富的实验数据。焦耳热,吸热反应,自然的Boussinesq对流和湍流现象之间的强相互作用对于理解反应堆性能至关重要。进行CFD模拟是实现上述目标的有效方法,因为可靠的高温状态变量测量非常费力,不确定且昂贵。通过商用CFD软件套件(FEMLAB〜(〜R)v.2.3)解决了ARP反应器中炉渣流量的四重PDE问题(电荷,热量,动量和气体体积平衡),以获得电势,温度,速度和气体体积分数分布在二维域中,详细表示了拟议的碳热反应器的完整第二阶段。本论文面临的新挑战是,通过瞬时热力学平衡假设,准确地计算出熔渣中产生的气体的体积分数,并了解拟议的几何形状如何影响生产。这项CFD研究的主要目的是提取关于反应性炉渣流量,空间利用程度和死体积的存在的结论,并提供设计指导。关于关键设计变量(施加的电压曲线)的状态变量分布(即电势,温度,速度和气体体积分数)的稳态灵敏度分析显示了反应堆的加热电势,Al区的几何形状和非平凡的操作,设计和优化问题。

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