Khokhlova Vera A, Yuldashev Petr V, Rosnitskiy Pavel B, Maxwell Adam D, Kreider Wayne, Bailey Michael R, Sapozhnikov Oleg A
CIMU, Applied Physics Laboratory, University of Washington, Seattle, WA.
LIMU, M.V. Lomonosov Moscow State University, Moscow, Russia.
Phys Procedia. 2016;87:132-138. doi: 10.1016/j.phpro.2016.12.020.
Various clinical applications of high intensity focused ultrasound (HIFU) have different requirements on the pressure level and degree of nonlinear waveform distortion at the focus. Applications that utilize nonlinear waves with developed shocks are of growing interest, for example, for mechanical disintegration as well as for accelerated thermal ablation of tissue. In this work, an inverse problem of determining transducer parameters to enable formation of shocks with desired amplitude at the focus is solved. The solution was obtained by performing multiple direct simulations of the parabolic Khokhlov-Zabolotskaya-Kuznetsov (KZK) equation for various parameters of the source. It is shown that results obtained within the parabolic approximation can be used to describe the focal region of single element spherical sources as well as complex transducer arrays. It is also demonstrated that the focal pressure level at which fully developed shocks are formed mainly depends on the focusing angle of the source and only slightly depends on its aperture and operating frequency. Using the simulation results, a 256-element HIFU array operating at 1.5 MHz frequency was designed for a specific application of boiling-histotripsy that relies on the presence of 90-100 MPa shocks at the focus. The size of the array elements and focusing angle of the array were chosen to satisfy technical limitations on the intensity at the array elements and desired shock amplitudes in the focal waveform. Focus steering capabilities of the array were analysed using an open-source T-Array software developed at Moscow State University.
高强度聚焦超声(HIFU)的各种临床应用对焦点处的压力水平和非线性波形失真程度有不同要求。利用具有明显冲击波的非线性波的应用越来越受到关注,例如用于组织的机械破碎以及加速热消融。在这项工作中,解决了确定换能器参数以在焦点处形成具有所需幅度的冲击波的反问题。通过对源的各种参数对抛物型霍克洛 - 扎博洛茨卡娅 - 库兹涅佐夫(KZK)方程进行多次直接模拟获得了解决方案。结果表明,在抛物近似内获得的结果可用于描述单元素球形源以及复杂换能器阵列的焦点区域。还表明,形成完全发展的冲击波的焦点压力水平主要取决于源的聚焦角度,而仅略微取决于其孔径和工作频率。利用模拟结果,针对一种依赖于焦点处存在90 - 100MPa冲击波的沸腾组织粉碎特定应用,设计了一个工作频率为1.5MHz的256元素HIFU阵列。根据对阵列元件强度和焦点波形中所需冲击波幅度的技术限制,选择了阵列元件的尺寸和阵列的聚焦角度。使用莫斯科国立大学开发的开源T - Array软件分析了阵列的焦点控制能力。