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Numerical representations for flow velocity and shear rate inside electromagnetically levitated droplets in microgravity

机译:微重力下电磁悬浮液滴内部流速和剪切速率的数值表示

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摘要

Electromagnetic levitation techniques are used in a microgravity environment to allow materials research under containerless conditions while limiting the influence of gravity. The induced advective flow inside a levitated molten alloy droplet is a key factor affecting solidification phenomena while potentially influencing the measurement of thermophysical properties of metallic alloy. It is thus important to predict the flow velocity under various operation conditions during melt processing. In this work, a magnetohydrodynamic model is applied over the range of conditions under which electromagnetically levitated droplets are processed to represent the maximum flow velocity and shear rate as a polynomial function of heating voltage, density, viscosity, and electrical conductivity of molten materials. An example is given for the ternary steel alloy Fe-19Cr-21Ni (at%) to demonstrate how internal advection under different heater settings becomes a strong function of alloy temperature and is a determining factor in the transition from laminar to turbulent flow conditions. The results are directly applicable to a range of other materials with properties in the range considered, including Ni-based superalloys, Ti-6Al-4V, and many other commercially-important alloys.
机译:电磁悬浮技术用于微重力环境中,可在无容器条件下进行材料研究,同时限制重力的影响。悬浮的合金熔滴内部引起的对流是影响凝固现象的关键因素,同时可能影响金属合金的热物理性质的测量。因此,重要的是预测熔体加工期间各种操作条件下的流速。在这项工作中,在一定条件下应用了磁流体动力学模型,在该条件下处理电磁悬浮液滴以表示最大流速和剪切速率,这是加热电压,密度,粘度和熔融材料电导率的多项式函数。给出了一个三元钢合金Fe-19Cr-21Ni(at%)的例子,以说明在不同加热器设置下内部对流如何成为合金温度的强函数,并且是从层流向湍流状态转变的决定因素。结果直接适用于考虑范围内的其他材料,包括镍基高温合金,Ti-6Al-4V和许多其他在商业上重要的合金。

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