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Acoustic resonance for contactless ultrasonic cavitation in alloy melts

机译:合金熔体非接触式超声波空化的声响谐振

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摘要

Contactless ultrasound is a novel, easily implemented, technique for the Ultrasonic Treatment (UST) of liquid metals. Instead of using a vibrating sonotrode probe inside the melt, which leads to contamination, we consider a high AC frequency electromagnetic coil placed close to the metal free surface. The coil induces a rapidly changing Lorentz force, which in turn excites sound waves. To reach the necessary pressure amplitude for cavitation with the minimum electrical energy use, it was found necessary to achieve acoustic resonance in the liquid volume, by finely tuning the coil AC supply frequency. The appearance of cavitation was then detected experimentally with an externally placed ultrasonic microphone and confirmed by the reduction in grain size of the solidified metal. To predict the appearance of various resonant modes numerically, the exact dimensions of the melt volume, the holding crucible, surrounding structures and their sound properties are required. As cavitation progresses the speed of sound in the melt changes, which in practice means resonance becomes intermittent. Given the complexity of the situation, two competing numerical models are used to compute the soundfield. A high order time-domain method focusing on a particular forcing frequency and a Helmholtz frequency domain method scanning the full frequency range of the power supply. A good agreement is achieved between the two methods and experiments which means the optimal setup for the process can be predicted with some accuracy.
机译:非接触式超声波是一种新颖,易于实施的技术,用于液体金属的超声波处理(UST)。不是在熔体内使用振动的超声波探针,这导致污染,我们考虑一个靠近金属表面的高交流频率电磁线圈。线圈引起快速变化的洛伦兹力,又激励声波。为了通过最小电能使用达到空化的必要压力幅度,发现必须通过精细调整线圈AC供应频率来实现液体体积中的声学共振。然后通过外部放置的超声麦克风进行实验检测空化的外观,并通过凝固金属的晶粒尺寸的降低证实。为了在数值上预测各种共振模式的外观,需要熔体体积,保持坩埚,周围结构及其声音特性的精确尺寸。由于空化进展熔体变化中的声速,在实践中是指谐振变得间歇性。鉴于情况的复杂性,使用两个竞争数值模型来计算Soundfield。专注于特定强制频率和亥姆霍兹频率域法扫描电源的全频范围的高阶时间域方法。在两种方法和实验之间实现了一个良好的一致意味着可以通过一些精度来预测该过程的最佳设置。

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