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An experimentally-calibrated damage mechanics model for stone fracture in shock wave lithotripsy

机译:实验校准的冲击波碎石碎石破坏力学模型

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摘要

A damage model suggested by the Tuler-Butcher concept of dynamic accumulation of microscopic defects is obtained from experimental data on microcrack formation in synthetic kidney stones. Experimental data on appearance of microcracks is extracted from micro-computed tomography images of BegoStone simulants obtained after subjecting the stone to successive pulses produced by an electromagnetic shock-wave lithotripter source. Image processing of the data is used to infer statistical distributions of crack length and width in representative transversal cross-sections of a cylindrical stone. A high-resolution finite volume computational model, capable of accurately modeling internal reflections due to local changes in material properties produced by material damage is used to simulate the accumulation of damage due to successive shocks. Comparison of statistical distributions of microcrack formation in computation and experiment allows calibration of the damage model. The model is subsequently used to compute fracture of a different aspect-ratio cylindrical stone predicting concurrent formation of two main fracture areas as observed experimentally.
机译:由Tuler-Butcher概念提出的动态缺陷微观累积的损伤模型是从合成肾结石中微裂纹形成的实验数据获得的。微裂纹外观的实验数据是从BegoStone模拟物的显微计算机断层扫描图像中提取的,该图像是在将石材经受电磁冲击波碎石机产生的连续脉冲后得到的。数据的图像处理用于推断圆柱石代表性横截面中裂纹长度和宽度的统计分布。高分辨率的有限体积计算模型能够模拟由于材料损坏产生的材料特性局部变化而引起的内部反射,该模型用于模拟由于连续冲击而造成的损坏累积。在计算和实验中比较微裂纹形成的统计分布可以对损伤模型进行校准。该模型随后用于计算不同纵横比的圆柱形石材的断裂,从而预测通过实验观察到的同时形成两个主要断裂区域。

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