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The collapse and rebound of gas-vapor cavity on metal surface

机译:气体蒸气在金属表面的塌陷和回弹

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摘要

The oscillation property of a gas-vapor cavity near a solid boundary is investigated by a sensitive fiber-optic sensor based on optical beam deflection principle when a high-intensity laser pulse is focused on an aluminum surface in water. The temporal and spatial evolutions of the bubble wall during the expansion and collapse are traced according to sequence waveforms induced by the bubble motion. Both the maximum and minimum bubble radii at each oscillating cycle are determined by experiment. Further, in combination with the spherical bubble theory, the variation of the gas content remaining in the cavity during each pulsation is estimated by the method of fitting curve. The results show that about half of the gas content is dissolved into the surrounding water during the whole process. The less gas content in the cavity makes the bubble contract more violently. The corresponding minimum radius and the collapsing duration become smaller and shorter. (C) 2007 Elsevier GmbH. All rights reserved.
机译:当高强度激光脉冲聚焦在水中的铝表面上时,基于光束偏转原理,通过灵敏的光纤传感器研究了气体在固体边界附近的空腔的振荡特性。根据气泡运动引起的序列波形,跟踪了气泡壁在膨胀和坍塌过程中的时空演变。通过实验确定每个振荡周期的最大和最小气泡半径。此外,结合球形气泡理论,通过拟合曲线的方法来估计在每个脉动期间残留在空腔中的气体含量的变化。结果表明,在整个过程中,大约一半的气体含量溶解在周围的水中。空腔中较少的气体含量会使气泡更剧烈地收缩。相应的最小半径和塌缩持续时间变得越来越短。 (C)2007 Elsevier GmbH。版权所有。

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