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Fast prediction of pulsed nonlinear acoustic fields from clinically relevant sources using Time-Averaged Wave Envelope approach: comparison of numerical simulations and experimental results

机译:使用时间平均波包络方法从临床相关源快速预测脉冲非线性声场:数值模拟和实验结果的比较

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摘要

The primary goal of this work was to verify experimentally the applicability of the recently introduced Time-Averaged Wave Envelope (TAWE) method [] as a tool for fast prediction of four dimensional (4D) pulsed nonlinear pressure fields from arbitrarily shaped acoustic sources in attenuating media. The experiments were performed in water at the fundamental frequency of 2.8 MHz for spherically focused (focal length F = 80 mm) square (20 × 20 mm) and rectangular (10 × 25 mm) sources similar to those used in the design of 1D linear arrays operating with ultrasonic imaging systems. The experimental results obtained with 10-cycle tone bursts at three different excitation levels corresponding to linear, moderately nonlinear and highly nonlinear propagation conditions (0.045, 0.225 and 0.45 MPa on-source pressure amplitude, respectively) were compared with those yielded using the TAWE approach []. The comparison of the experimental results and numerical simulations has shown that the TAWE approach is well suited to predict (to within ± 1 dB) both the spatial-temporal and spatial-spectral pressure variations in the pulsed nonlinear acoustic beams. The obtained results indicated that implementation of the TAWE approach enabled shortening of computation time in comparison with the time needed for prediction of the full 4D pulsed nonlinear acoustic fields using a conventional (Fourier-series) approach []. The reduction in computation time depends on several parameters, including the source geometry, dimensions, fundamental resonance frequency, excitation level as well as the strength of the medium nonlinearity. For the non-axisymmetric focused transducers mentioned above and excited by a tone burst corresponding to moderately nonlinear and highly nonlinear conditions the execution time of computations was 3 and 12 hours, respectively, when using a 1.5 GHz clock frequency, 32-bit processor PC laptop with 2 GB RAM memory, only. Such prediction of the full 4D pulsed field is not possible when using conventional, Fourier-series scheme as it would require increasing the RAM memory by at least 2 orders of magnitude.
机译:这项工作的主要目的是通过实验验证最近引入的时间平均波包络(TAWE)方法[]作为快速预测任意形状声源中衰减的四维(4D)脉冲非线性压力场的工具的适用性。媒体。实验是在水中以2.8 MHz的基本频率在水中进行的,球形聚焦(焦距F = 80毫米)方形(20×20毫米)和矩形(10×25毫米)光源类似于一维线性设计中使用的光源。超声成像系统工作的阵列。将在三个不同激励水平下分别对应于线性,中度非线性和高度非线性传播条件(分别为0.045、0.225和0.45 MPa的源压力振幅)的10个周期的音调突发所获得的实验结果与使用TAWE方法获得的结果进行了比较[]。实验结果和数值模拟的比较表明,TAWE方法非常适合预测(在±1 dB之内)脉冲非线性声束中的时空和空间频谱压力变化。获得的结果表明,与使用常规(傅里叶级数)方法预测完整的4D脉冲非线性声场所需的时间相比,TAWE方法的实施可以缩短计算时间。计算时间的减少取决于几个参数,包括源几何形状,尺寸,基本共振频率,激励水平以及介质非线性的强度。对于上述非轴对称聚焦换能器,并由与中度非线性和高度非线性条件相对应的音调脉冲激发,当使用1.5 GHz时钟频率,32位处理器PC笔记本电脑时,计算的执行时间分别为3小时和12小时仅具有2 GB RAM内存。当使用常规的傅立叶级数方案时,无法对整个4D脉冲场进行这种预测,因为它将需要将RAM存储器增加至少2个数量级。

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