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首页> 外文期刊>Journal of Fluid Mechanics >The collapse of single bubbles and approximation of the far-field acoustic emissions for cavitation induced by shock wave lithotripsy
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The collapse of single bubbles and approximation of the far-field acoustic emissions for cavitation induced by shock wave lithotripsy

机译:气泡碎石引起的空泡的单个气泡的破裂和远场声发射的近似值

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Recent clinical trials have shown the efficacy of a passive acoustic device used during shock wave lithotripsy (SWL) treatment. The device uses the far-field acoustic emissions resulting from the interaction of the therapeutic shock waves with the tissue and kidney stone to diagnose the effectiveness of each shock in contributing to stone fragmentation. This paper details simulations that supported the development of that device by extending computational fluid dynamics (CFD) simulations of the flow and near-field pressures associated with shock-induced bubble collapse to allow estimation of those far-field acoustic emissions. This is a required stage in the development of the device, because current computational resources are not sufficient to simulate the far-field emissions to ranges of O(10 cm) using CFD. Similarly, they are insufficient to cover the duration of the entire cavitation event, and here simulate only the first part of the interaction of the bubble with the lithotripter shock wave in order to demonstrate the methods by which the far-field acoustic emissions resulting from the interaction can be estimated. A free-Lagrange method (FLM) is used to simulate the collapse of initially stable air bubbles in water as a result of their interaction with a planar lithotripter shock. To estimate the far-field acoustic emissions from the interaction, this paper developed two numerical codes using the Kirchhoff and Ffowcs WilliamHawkings (FW-H) formulations. When coupled to the FLM code, they can be used to estimate the far-field acoustic emissions of cavitation events. The limitation of the technique is that it assumes that no significant nonlinear acoustic propagation occurs outside the control surface. Methods are outlined for ameliorating this problem if, as here, computational resources cannot compute the flow field to sufficient distance, although for the clinical situation discussed, this limitation is tempered by the effect of tissue absorption, which here is incorporated through the standard derating procedure. This approach allowed identification of the sources of, and explanation of trends seen in, the characteristics of the far-field emissions observed in clinic, to an extent that was sufficient for the development of this clinical device.
机译:最近的临床试验表明,在冲击波碎石术(SWL)治疗期间使用无源声学设备的功效。该设备使用由治疗性冲击波与组织和肾结石相互作用产生的远场声发射来诊断每次电击有助于结石碎裂的有效性。本文详细介绍了通过扩展与冲击引起的气泡破裂相关的流动和近场压力的计算流体力学(CFD)模拟来支持该设备开发的模拟,从而可以估算那些远场声发射。这是设备开发的必需阶段,因为当前的计算资源不足以使用CFD模拟到O(10 cm)范围的远场发射。类似地,它们不足以覆盖整个空化事件的持续时间,在这里仅模拟气泡与碎石机冲击波相互作用的第一部分,以演示由声波产生的远场声发射的方法。相互作用可以估计。自由拉格朗日方法(FLM)用于模拟初始稳定的气泡在水中与平面碎石机激波相互作用的破坏。为了估计相互作用的远场声发射,本文使用Kirchhoff和Ffowcs WilliamHawkings(FW-H)公式开发了两个数字代码。当与FLM代码耦合时,它们可用于估计气蚀事件的远场声发射。该技术的局限性在于它假定在控制面之外没有发生明显的非线性声传播。如果在此处计算资源无法将流场计算到足够的距离,则概述了用于缓解此问题的方法,尽管对于所讨论的临床情况,此限制因组织吸收的影响而有所缓和,此处通过标准降额过程将其纳入本文。这种方法可以识别临床中观察到的远场放射源的来源,并解释所观察到的趋势,其程度足以开发这种临床装置。

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