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首页> 外文期刊>The Journal of the Acoustical Society of America >The effect of reflector geometry on the acoustic field and bubble dynamics produced by an electrohydraulic shock wave lithotripter
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The effect of reflector geometry on the acoustic field and bubble dynamics produced by an electrohydraulic shock wave lithotripter

机译:反射器几何形状对电液冲击波碎石机产生的声场和气泡动力学的影响

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A theoretical model for the propagation of shock wave from an axisymmetric reflector was developed by modifying the initial conditions for the conventional solution of a nonlinear parabolic wave equation (i.e., the Khokhlov-Zabolotskaya-Kuznestsov equation). The ellipsoidal reflector of an HM-3 lithotripter is modeled equivalently as a self-focusing spherically distributed pressure source. The pressure wave form generated by the spark discharge of the HM-3 electrode was measured by a fiber optic probe hydrophone and used as source conditions in the numerical calculation. The simulated pressure wave forms, accounting for the effects of diffraction, nonlinearity, and thermoviscous absorption in wave propagation and focusing, were compared with the measured results and a reasonably good agreement was found. Further-more, the primary characteristics in the pressure wave forms produced by different reflector geometries, such as that produced by a reflector insert, can also be predicted by this model. It is interesting to note that when the interpulse delay time calculated by linear geometric model is less than about 1.5 mu s, two pulses from the reflector insert and the uncovered bottom of the original HM-3 reflector will merge together. Coupling the simulated pressure wave form with the Gilmore model was carried out to evaluate the effect of reflector geometry on resultant bubble dynamics in a lithotripter field. Altogether, the equivalent reflector model was found to provide a useful tool for the prediction of pressure wave form generated in a lithotripter field. This model may be used to guide the design optimization of reflector geometries for improving the performance and safety of clinical lithotripters. (c) 2006 Acoustical Society of America.
机译:通过修改非线性抛物线波动方程(即Khokhlov-Zabolotskaya-Kuznestsov方程)的常规解的初始条件,建立了从轴对称反射器传播冲击波的理论模型。 HM-3碎石机的椭圆反射器等效地建模为自聚焦球形分布压力源。通过光纤探针水听器测量由HM-3电极的火花放电产生的压力波形,并将其用作数值计算中的源条件。将模拟的压力波形与测量结果进行了比较,考虑了衍射,非线性和热粘滞吸收在波传播和聚焦中的影响,并与测量结果进行了比较。此外,通过该模型还可以预测由不同的反射器几何形状产生的压力波形的主要特征,例如由反射器插件产生的压力波形的主要特征。有趣的是,当通过线性几何模型计算出的脉冲间延迟时间小于约1.5μs时,来自反射镜插件的两个脉冲和原始HM-3反射镜的未覆盖底部将合并在一起。进行模拟压力波形与Gilmore模型的耦合,以评估反射器几何形状对碎石场中合成气泡动力学的影响。总而言之,等效反射器模型被发现为预测碎石场中产生的压力波形提供了有用的工具。该模型可用于指导反射器几何形状的设计优化,以改善临床碎石机的性能和安全性。 (c)2006年美国声学学会。

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