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Characterization of nonlinear ultrasound fields of 2D therapeutic arrays

机译:2D治疗阵列非线性超声场的表征

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摘要

A current trend in high intensity focused ultrasound (HIFU) technologies is to use 2D focused phased arrays that enable electronic steering of the focus, beamforming to avoid overheating of obstacles (such as ribs), and better focusing through inhomogeneities of soft tissue using time reversal methods. In many HIFU applications, the acoustic intensity in situ can reach thousands of W/cm2 leading to nonlinear propagation effects. At high power outputs, shock fronts develop in the focal region and significantly alter the bioeffects induced. Clinical applications of HIFU are relatively new and challenges remain for ensuring their safety and efficacy. A key component of these challenges is the lack of standard procedures for characterizing nonlinear HIFU fields under operating conditions. Methods that combine low-amplitude pressure measurements and nonlinear modeling of the pressure field have been proposed for axially symmetric single element transducers but have not yet been validated for the much more complex 3D fields generated by therapeutic arrays. Here, the method was tested for a clinical HIFU source comprising a 256-element transducer array. A numerical algorithm based on the Westervelt equation was used to enable 3D full-diffraction nonlinear modeling. With the acoustic holography method, the magnitude and phase of the acoustic field were measured at a low power output and used to determine the pattern of vibrations at the surface of the array. This pattern was then scaled to simulate a range of intensity levels near the elements up to 10 W/cm2. The accuracy of modeling was validated by comparison with direct measurements of the focal waveforms using a fiber-optic hydrophone. Simulation results and measurements show that shock fronts with amplitudes up to 100 MPa were present in focal waveforms at clinically relevant outputs, indicating the importance of strong nonlinear effects in ultrasound fields generated by HIFU arrays.
机译:高强度聚焦超声(HIFU)技术的当前趋势是使用2D聚焦相控阵列,该相控阵能够实现聚焦的电子控制,波束形成以避免障碍物(例如肋骨)过热,并通过使用时间反转通过软组织的不均匀性更好地聚焦方法。在许多HIFU应用中,原位声强可以达到数千W / cm 2 ,从而导致非线性传播效应。在高功率输出时,震荡前沿会在焦点区域发展,并显着改变诱发的生物效应。 HIFU的临床应用相对较新,在确保其安全性和有效性方面仍存在挑战。这些挑战的一个关键组成部分是缺乏在工作条件下表征非线性HIFU场的标准程序。已经提出了将低振幅压力测量与压力场非线性建模相结合的方法,用于轴向对称的单元件换能器,但尚未针对治疗性阵列产生的更为复杂的3D场进行验证。在此,针对包含256元素换能器阵列的临床HIFU源测试了该方法。使用基于Westervelt方程的数值算法进行3D全衍射非线性建模。使用声全息方法,在低功率输出下测量声场的大小和相位,并将其用于确定阵列表面的振动模式。然后按比例缩放此图案,以模拟接近10 W / cm 2 的元素附近的强度水平范围。通过与使用光纤水听器直接测量聚焦波形进行比较,验证了建模的准确性。仿真结果和测量结果表明,临床相关输出的聚焦波形中出现振幅高达100 MPa的冲击波,这表明在HIFU阵列产生的超声场中强烈的非线性效应非常重要。

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