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Coupling acoustic cavitation and solidification in the modeling of light alloy melt ultrasonic treatment

机译:轻合金熔体超声处理建模中的声空化与凝固耦合

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摘要

The space industry requires strong lightweight alloys to decrease launching costs and to increase the reliability of components. One promising technique is the application of ultrasound to a solidifying melt, which has been demonstrated to enhance the thermo-physical qualities of the treated sample through grain refinement. The underlying mechanism is through acoustic cavitation; however, it is not well understood how cavitating bubbles disrupt the microstructure. Further understanding of the fundamentals of ultrasonic melt processing is required to optimize treatment parameters, thus enabling the efficient production of lighter, stronger alloys at an industrial scale. To achieve this goal and investigate the effect of cavitating bubbles on the solidification front, we present a high-order micro-scale acoustic cavitation model. This model is applied to the interaction between cavitating bubbles and a needle dendrite of succinonitrile 1 wt. % camphor organic transparent alloy for which high-speed digital imaging is available in the literature.
机译:航天工业需要坚固的轻质合金以降低发射成本并提高组件的可靠性。一种有前途的技术是将超声波应用于凝固的熔体,这已被证明可以通过晶粒细化提高处理后样品的热物理性质。潜在的机制是通过声空化。然而,人们对空化气泡如何破坏微观结构的了解还不是很清楚。需要进一步了解超声熔体加工的基础知识,以优化处理参数,从而能够在工业规模上高效生产更轻,更坚固的合金。为了实现这一目标并研究空化气泡对凝固前沿的影响,我们提出了一种高阶的微尺度声空化模型。该模型适用于空化气泡与1 wt。丁二腈的针状枝晶之间的相互作用。 %樟脑有机透明合金,文献中提供了高速数字成像技术。

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