Institute of Acoustics, Key Laboratory of Modern Acoustics, MOE, Nanjing University, Nanjing 210093, China.
Med Phys. 2011 Sep;38(9):5033-9. doi: 10.1118/1.3622602.
In this work, the authors propose a modeling approach to compute the nonlinear acoustic field generated by a flat piston transmitter with an attached aluminum lens.
In this approach, the geometrical parameters (radius and focal length) of a virtual source are initially determined by Snell's refraction law and then adjusted based on the Rayleigh integral result in the linear case. Then, this virtual source is used with the nonlinear spheroidal beam equation (SBE) model to predict the nonlinear acoustic field in the focal region.
To examine the validity of this approach, the calculated nonlinear result is compared with those from the Westervelt and (Khokhlov-Zabolotskaya-Kuznetsov) KZK equations for a focal intensity of 7 kW/cm(2). Results indicate that this approach could accurately describe the nonlinear acoustic field in the focal region with less computation time.
The proposed modeling approach is shown to accurately describe the nonlinear acoustic field in the focal region. Compared with the Westervelt equation, the computation time of this approach is significantly reduced. It might also be applicable for the widely used concave focused transmitter with a large aperture angle.
在这项工作中,作者提出了一种建模方法,用于计算带有附加铝透镜的平面活塞发射器产生的非线性声场。
在该方法中,首先根据斯涅尔折射定律确定虚拟源的几何参数(半径和焦距),然后根据线性情况下的瑞利积分结果进行调整。然后,使用此虚拟源和非线性椭球波束方程(SBE)模型来预测焦区中的非线性声场。
为了检验该方法的有效性,将计算得到的非线性结果与 Westervelt 和(Khokhlov-Zabolotskaya-Kuznetsov)KZK 方程的结果进行了比较,焦点强度为 7kW/cm(2)。结果表明,该方法可以用较少的计算时间准确描述焦区中的非线性声场。
所提出的建模方法能够准确地描述焦区中的非线性声场。与 Westervelt 方程相比,该方法的计算时间大大减少。它也可能适用于具有大孔径角的常用凹面聚焦发射器。