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In Situ Synchrotron X-ray Study of Ultrasound Cavitation and Its Effect on Solidification Microstructures

机译:超声空化的原位同步X射线研究及其对凝固组织的影响

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Considerable progress has been made in studying the mechanism and effectiveness of using ultrasound waves to manipulate the solidification microstructures of metallic alloys. However, uncertainties remain in both the underlying physics of how microstructures evolve under ultrasonic waves, and the best technological approach to control the final microstructures and properties. We used the ultrafast synchrotron X-ray phase contrast imaging facility housed at the Advanced Photon Source, Argonne National Laboratory, US to study in situ the highly transient and dynamic interactions between the liquid metal and ultrasonic waves/bubbles. The dynamics of ultrasonic bubbles in liquid metal and their interactions with the solidifying phases in a transparent alloy were captured in situ. The experiments were complemented by the simulations of the acoustic pressure field, the pulsing of the bubbles, and the associated forces acting onto the solidifying dendrites. The study provides more quantitative understanding on how ultrasonic waves/bubbles influence the growth of dendritic grains and promote the grain multiplication effect for grain refinement.
机译:在研究使用超声波操纵金属合金的凝固微观结构的机理和有效性方面已经取得了相当大的进展。但是,在超声波作用下微观结构如何演化的基础物理学以及控制最终微观结构和性能的最佳技术方法方面,仍然存在不确定性。我们使用位于美国阿贡国家实验室Advanced Photon Source的超快同步加速器X射线相衬成像设备,就地研究了液态金属与超声波/气泡之间的高度瞬态和动态相互作用。原位捕获液态金属中超声波气泡的动力学及其与透明合金中凝固相的相互作用。通过声压场,气泡脉动以及作用在凝固枝晶上的相关力的模拟来补充实验。该研究提供了关于超声波/气泡如何影响树枝状晶粒生长并促进晶粒细化的晶粒倍增效应的更多定量理解。

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