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Numerical solution of melting processes for unfixed phase change material in the presence of electromagnetic field- simulation of low gravity environment

机译:低重力环境电磁场模拟存在下未固定相变材料的熔化过程的数值溶液

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Electromagnetic simulation of low-gravity environment has been numerically investigated to study the transport phenomena associated with melting of an electrically conducting Phase Change Material (PCM) inside a rectangular enclosure. Electromagnetic fields are configured in such a way that the resulting Lorentz force can be used to damp and/or counteract the natural convection as well as the flow induced by sedimentation and/or floatation, and thereby simulating the low gravity environment of outer space. The governing equations are discretized using a control-volume-based finite difference scheme. Numerical solutions are obtained for true low-gravity environment as well as for the simulated-low-gravity conditions due to electromagnetic forces. The results show that when the Lorentz force is caused by the presence of magnetic field alone, the low-gravity condition is simulated by the damping effect, which is shown to have a profound effect on the flow field. On the other hand, it is shown that under electromagnetic field simulation, where the Lorentz force is caused by the transverse electric and magnetic fields, it is possible to minimize the flow field distortion caused by the high magnetic field and therefore achieving a much better simulation of low-gravity.
机译:低重力环境的电磁仿真已数值研究,研究的矩形外壳内有导电相变材料(PCM)的熔化相关联的传输的现象。电磁场以这样的方式使所得洛伦兹力可用于潮湿和/或抵消自然对流被配置以及通过沉降和/或漂浮,并且从而模拟外层空间的低重力环境引起的流动。使用基于控制体积的有限差分方案离散化控制方程。数值解决方案是为真正的低重力环境以及用于仿真的低重力条件下,由于电磁力获得。结果表明,当洛伦兹力是由单独的磁场的存在造成的,低重力条件由阻尼效果,这被示为具有对所述流场具有深远的影响模拟。在另一方面中,示出的是下电磁场仿真,其中所述洛伦兹力由横向电场和磁场引起的,所以可以最小化所引起的高磁场的流场失真,因此只能获得一个更好的模拟的低重力。

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