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Thermoelectric magnetohydrodynamic flow during crystal growth with a moderate or weak magnetic field

机译:具有中等或弱磁场的晶体生长过程中的热电磁流体动力流

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This paper treats a steady, axisymmetric melt motion in a cylindrical ampoule with a uniform, axial magnetic field and with an electric current due to a radial temperature variation along the crystal-melt interface, where the values of the absolute thermoelectric power for the crystal and melt are different. The radial component of the thermoelectric current in the melt produces an azimuthal body force, and the axial variation of the centrifugal force due to the azimuthal motion drives a meridional circulation with radial and axial velocities. For moderate magnetic field strengths, the azimuthal velocity and magnetic field produce a radially induced electric field which partially cancels the Seebeck electromotive force in the melt, so that the thermoelectric current and the melt motion are coupled. For weak magnetic fields, the thermoelectric current is decoupled from the melt motion, which is an ordinary hydrodynamic flow driven by a known azimuthal body force. The results show how the flow varies with the strength of the magnetic field and with the magnitude of the temperature variation along the crystal-melt interface. They also define the parameter ranges for which the simpler weak-field decoupled analysis gives accurate predictions.
机译:本文研究了在均匀,轴向磁场和电流的作用下,由于沿晶体-熔体界面的径向温度变化而在圆柱形安瓿瓶中产生的稳定轴对称熔体运动,其中晶体和晶体的绝对热电功率值融化是不同的。熔体中热电流的径向分量会产生方位角体力,并且由于方位角运动而导致的离心力的轴向变化会驱动具有径向和轴向速度的子午循环。对于中等强度的磁场,方位角速度和磁场会产生径向感应的电场,该电场会部分抵消熔体中的塞贝克电动势,从而使热电流和熔体运动耦合。对于弱磁场,热电流会与熔体运动分离,熔体运动是由已知方位角体力驱动的普通流体动力流。结果表明,流量如何随磁场强度以及沿熔体-熔体界面的温度变化幅度而变化。他们还定义了更简单的弱场解耦分析可提供准确预测的参数范围。

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