首页> 外文会议>Seventh International Conference on Computational Modelling of Free and Moving Boundary Problems; 2003; Santa Fe, USA >Comparison of model and experimental results for material and energy flow in a titanium evaporation system with deforming interfaces
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Comparison of model and experimental results for material and energy flow in a titanium evaporation system with deforming interfaces

机译:具有变形界面的钛蒸发系统中材料和能量流的模型和实验结果比较

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Finite element calculations and measurements are compared for material and energy flow in a system to evaporate pure titanium. A 40 kW electron beam is used to heat the end of a 7.62 cm diameter cylindrical rod which is fed vertically through a water-cooled crucible. Vapor emanates from a liquid pool in which flow is driven strongly by buoyancy and capillary forces. At high evaporation rates, the vapor exerts strong shear and normal forces on the liquid-vapor interface. The MELT finite element code is used to calculate steady-state, axisymmetric flow and temperature fields along with liquid-solid and liquid-vapor interface locations. The influence of the vapor on the liquid top surface is treated using boundary conditions with parameters derived from Monte Carlo simulations. The upper and lower interfaces of the liquid pool are tracked using a mesh structured with rotating spines. Experimental evaporation rates are obtained from measured feed rates, and heat flow rates are determined from measured temperature rises in the cooling water. The finite element model provides a good representation of the measured evaporation rates, heat flows, and lower pool boundary locations.
机译:比较了用于蒸发纯钛的系统中材料和能量流的有限元计算和测量结果。 40 kW电子束用于加热直径为7.62厘米的圆柱棒的末端,该圆柱棒通过水冷坩埚垂直输送。蒸气从储液池散发出来,在该储液池中,浮力和毛细作用力强烈地驱动流动。在高蒸发速率下,蒸气在液-蒸气界面上施加强大的剪切力和法向力。 MELT有限元代码用于计算稳态,轴对称流场和温度场以及液固和液汽界面位置。使用边界条件和从蒙特卡洛模拟得出的参数来处理蒸气对液体顶表面的影响。液体池的上部和下部界面使用带有旋转尖刺的网格跟踪。从测得的进料速率获得实验蒸发速率,从测得的冷却水温升确定热流量。有限元模型可以很好地表示所测得的蒸发速率,热流和池下部边界位置。

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