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Separating nonlinear propagation and cavitation effects in HIFU

机译:分离HIFU的非线性传播和空化效应

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High intensity focused ultrasound (HIFU) can destroy tumors or stop internal bleeding. The primary physical mechanism in HIFU is the conversion of acoustic energy to heat, which as HIFU amplitude increases is enhanced by nonlinear acoustic propagation and nonlinear scattering from bubbles. The goal of this work is to study and separate the effects of nonlinear propagation and cavitation during HIFU heating of tissue. Transparent polyacrylamide gel was used as a tissue-mimicking phantom to visualize HIFU lesion growth. Lesion size was also measured in excised turkey breast. Lesions were produced by the same time-averaged intensity, but with different peak acoustic pressure amplitudes compensated by different duty cycles. In order to separate cavitation and nonlinear wave effects, experiments were performed under static pressure (10.34MPa) greater than the peak negative pressure amplitude of the sound waves (8.96MPa). Suppression of cavitation by overpressure was measured by reduced acoustic scattering and transmission loss in the treatment region. We found that, with the same time-averaged intensity, a shorter, higher amplitude wave created a larger lesion than a longer, lower amplitude wave with or without overpressure.
机译:高强度聚焦超声(HIFU)可以破坏肿瘤或停止内部出血。 HIFU中的主要物理机制是声能转化为热量,因为通过非线性声学传播和来自气泡的非线性散射来增强HIFU幅度增加。这项工作的目标是研究并分离非线性繁殖和空化在组织的HIFU加热过程中的影响。透明聚丙烯酰胺凝胶用作组织模拟幻像以可视化HIFU病变生长。在切除的火鸡乳房也测量了病变大小。通过相同的时间平均强度产生病变,但是不同的峰值声压幅度通过不同的占空比补偿。为了分离空化和非线性波效应,实验在大于声波的峰值负压幅度(8.96MPa)的静压(10.34MPa)下进行。通过降低处理区域的声学散射和透射损失来测量通过过压的空化抑制。我们发现,具有相同的时间平均强度,较短,较高的幅度波的较大损伤而不是更长,较低的幅度波,或没有超压。

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