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Experimental and numerical study of the cold crucible melting process

机译:冷坩埚熔化过程的实验与数值研究

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The cold crucible, or induction skull melting process as is otherwise known, has the potential to produce high purity melts of a range of difficult to melt materials, including Ti-Al and Ti6Al4V alloys for Aerospace, Ti-Ta and other biocompatible materials for surgical implants, silicon for photovoltaic and electronic applications, etc. A water cooled AC coil surrounds the crucible causing induction currents to melt the alloy and partially suspend it against gravity away from water-cooled surfaces. Strong stirring takes place in the melt due to the induced electromagnetic Lorentz forces and very high temperatures are attainable under the right conditions (i.e., provided contact with water cooled walls is minimised). In a joint numerical and experimental research programme, various aspects of the design and operation of this process are investigated to increase our understanding of the physical mechanisms involved and to maximise process efficiency. A combination of FV and Spectral CFD techniques are used at Greenwich to tackle this problem numerically, with the experimental work taking place at Birmingham University. Results of this study, presented here, highlight the influence of turbulence and free surface behaviour on attained superheat and also discuss coil design variations and dual frequency options that may lead to winning crucible designs.
机译:如其他已知的那样,冷坩埚或感应颅骨熔化工艺有可能产生一系列难以熔化的材料的高纯度熔体,包括用于航空航天业的Ti-Al和Ti6Al4V合金,用于外科手术的Ti-Ta和其他生物相容性材料水冷的交流线圈围绕坩埚,导致感应电流熔化合金,并使合金部分地抵抗重力悬浮,使其离开水冷表面。由于感应的电磁洛伦兹力在熔体中发生强烈搅拌,并且在适当的条件下(即,如果与水冷壁的接触最小化)可以达到很高的温度。在联合的数值和实验研究计划中,对该过程的设计和操作的各个方面进行了研究,以加深我们对所涉及物理机制的理解,并最大程度地提高了过程效率。格林威治大学使用FV和光谱CFD技术的组合来数字地解决这个问题,伯明翰大学正在进行实验工作。此处给出的这项研究结果突出了湍流和自由表面行为对获得的过热的影响,并讨论了线圈设计的变化和可能导致坩埚设计获胜的双频选择。

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