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Kidney damage in extracorporeal shock wave lithotripsy: a numerical approach for different shock profiles

机译:体外冲击波碎石术中肾脏的损害:不同冲击波分布的数值方法

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摘要

In shock-wave lithotripsy-a medical procedure to fragment kidney stones-the patient is subjected to hypersonic waves focused at the kidney stone. Although this procedure is widely applied, the physics behind this medical treatment, in particular the question of how the injuries to the surrounding kidney tissue arise, is still under investigation. To contribute to the solution of this problem, two- and three-dimensional numerical simulations of a human kidney under shock-wave loading are presented. For this purpose a constitutive model of the bio-mechanical system kidney is introduced, which is able to map large visco-elastic deformations and, in particular, material damage. The specific phenomena of cavitation induced oscillating bubbles is modeled here as an evolution of spherical pores within the soft kidney tissue. By means of large scale finite element simulations, we study the shock-wave propagation into the kidney tissue, adapt unknown material parameters and analyze the resulting stress states. The simulations predict localized damage in the human kidney in the same regions as observed in animal experiments. Furthermore, the numerical results suggest that in first instance the pressure amplitude of the shock wave impulse (and not so much its exact time-pressure profile) is responsible for damaging the kidney tissue.
机译:在冲击波碎石术中(一种使肾结石破裂的医疗程序),患者会受到聚焦在肾结石上的高超声波的影响。尽管这种方法得到了广泛应用,但是这种医学治疗的物理学原理,尤其是周围肾脏组织受到损伤的问题仍在研究中。为了有助于解决该问题,提出了在冲击波载荷下人肾脏的二维和三维数值模拟。为此,引入了生物力学系统肾脏的本构模型,该模型能够绘制出大的粘弹性变形,尤其是材料破坏。空化引起的振荡气泡的特定现象在此建模为肾脏软组织内球形孔的演变。通过大规模的有限元模拟,我们研究了冲击波在肾脏组织中的传播,适应未知的材料参数并分析了产生的应力状态。该模拟预测了在动物实验中观察到的相同区域中人类肾脏的局部损伤。此外,数值结果表明,在第一种情况下,冲击波脉冲的压力幅度(与其确切的时间-压力曲线无关,而是造成肾脏组织损坏的原因)。

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