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Numerical Investigation of Molten Glass in a Square Cavity using Finite Element Method

机译:用有限元法测定正方形孔中熔融玻璃的数值研究

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In this study, natural convection of molten glass in a Joule-heated cavity flow is analyzed using the FEM. The GSMAC-FEM is utilized for incompressible viscous flow. The energy equation and Ampere-Maxwell equation are computed by the node-based FEM and edge-based FEM respectively. The solvers of three fields, i.e. flow field, thermal field and electromagnetic field, are coupled through a staggered scheme to simulate the flow behavior. Two carbon plates are placed on opposing side walls of the cavity model and connected a constant AC voltage to generate an internal heat source. The top surface of the cavity model is cooled by constant temperature. In order to confirm the numerical code, velocity and temperature profile is measured at center of cavity using electric conducting fluid of 80wt% glycerol. The numerical results and experimental data have a good agreement in time histories of temperature. It was confirmed that the upflow behavior of molten glass in the cavity depends on magnetic permeability.
机译:在这项研究中,使用FEM分析了焦耳加热腔流动中熔融玻璃的自然对流。 GSMAC-FEM用于不可压缩的粘性流动。能量方程和Ampere-Maxwell方程分别由基于节点的UP和边缘的FEM计算。三个领域的求解器,即流场,热场和电磁场,通过交错方案耦合以模拟流动行为。将两个碳板放置在腔模型的相对侧壁上,并连接恒定的AC电压以产生内部热源。腔模型的顶表面通过恒定温度冷却。为了确认数值代码,使用80wt%甘油的电导液在腔中心测量速度和温度曲线。数值结果和实验数据在温度历史中具有良好的一致性。确认腔内熔融玻璃的上流行为取决于磁导率。

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