首页> 外文期刊>The Journal of the Acoustical Society of America >Finite difference predictions of P-SV wave propagation inside submerged solids. II. Effect of geometry
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Finite difference predictions of P-SV wave propagation inside submerged solids. II. Effect of geometry

机译:淹没固体内部P-SV波传播的有限差分预测。二。几何形状的影响

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摘要

To understand better direct stress wave contributions to stone fragmentation during extracorporeal shock wave lithotripsy (ESWL), the numerical formulation developed in part I is applied to study the time evolution of stress wave fields produced inside submerged isotropic elastic solids having irregular geometries. Cut spheres are used to model stones that have already had an initial fracture. Ellipses are used to approximate other deviations from a spherical geometry. The propagation and focusing of the longitudinal (P) and shear (S) wave fronts are visualized by presenting internal strain contours. Internal strain measurements are obtained from strain gauges embedded inside plaster specimens to confirm the focusing effect obtained from the concave back surfaces of the stones. Fragmentation experiments indicate damage caused by spalling and direct stress wave focusing as well as a front surface pit presumably created by cavitation activity.
机译:为了更好地理解体外冲击波碎石术(ESWL)中应力波对碎石的直接贡献,在第一部分中开发的数值公式用于研究在几何形状不规则的浸入各向同性弹性固体中产生的应力波场的时间演化。切球用于模拟已经开始断裂的石头。椭圆用于近似球形几何形状的其他偏差。纵向(P)和切变(S)波前的传播和聚焦通过呈现内部应变轮廓来可视化。内部应变测量是通过嵌入石膏样品内部的应变仪获得的,以确认从宝石凹入的背面获得的聚焦效果。碎片实验表明,剥落和直接应力波聚焦以及空化活动可能造成的前表面凹坑造成的破坏。

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