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Magnetohydrodynamic Simulations of Hypersonic Flow over a Cylinder Using Axial- and Transverse-Oriented Magnetic Dipoles

机译:轴向和横向磁偶极子在圆柱体上的超音速流动的磁流体动力学模拟

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摘要

Numerical simulations of magnetohydrodynamic (MHD) hypersonic flow over a cylinder are presented for axial- and transverse-oriented dipoles with different strengths. ANSYS CFX is used to carry out calculations for steady, laminar flows at a Mach number of 6.1, with a model for electrical conductivity as a function of temperature and pressure. The low magnetic Reynolds number (≪1) calculated based on the velocity and length scales in this problem justifies the quasistatic approximation, which assumes negligible effect of velocity on magnetic fields. Therefore, the governing equations employed in the simulations are the compressible Navier-Stokes and the energy equations with MHD-related source terms such as Lorentz force and Joule dissipation. The results demonstrate the ability of the magnetic field to affect the flowfield around the cylinder, which results in an increase in shock stand-off distance and reduction in overall temperature. Also, it is observed that there is a noticeable decrease in drag with the addition of the magnetic field.
机译:针对具有不同强度的轴向和横向偶极子,给出了磁流体动力学(MHD)高超声速在圆柱体上流动的数值模拟。 ANSYS CFX用于对马赫数为6.1的稳定层流进行计算,其电导率模型是温度和压力的函数。在这个问题中,基于速度和长度尺度计算出的低磁雷诺数(≪1)证明了准静态近似是正确的,它假定速度对磁场的影响可忽略不计。因此,模拟中使用的控制方程是可压缩的Navier-Stokes和具有MHD相关源项(例如洛伦兹力和焦耳耗散)的能量方程。结果证明了磁场影响圆柱体周围流场的能力,从而导致冲击距离增加,整体温度降低。另外,观察到随着磁场的增加,阻力明显减小。

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