Effects of nonlinear propagation, cavitation, and boiling in lesion formation by high intensity focused ultrasound in a gel phantom

空化 沸腾 回声 超压 材料科学 成像体模 传感器 超声波 超声波传感器 微气泡 声学 流离失所(心理学) 强度(物理) 加速度 非线性系统 非线性声学 光学 物理 经典力学 热力学 心理学 量子力学 心理治疗师
作者
Vera A. Khokhlova,Michael R. Bailey,Justin Reed,Bryan W. Cunitz,Peter Kaczkowski,Lawrence A. Crum
出处
期刊:Journal of the Acoustical Society of America [Acoustical Society of America]
卷期号:119 (3): 1834-1848 被引量:271
标识
DOI:10.1121/1.2161440
摘要

The importance of nonlinear acoustic wave propagation and ultrasound-induced cavitation in the acceleration of thermal lesion production by high intensity focused ultrasound was investigated experimentally and theoretically in a transparent protein-containing gel. A numerical model that accounted for nonlinear acoustic propagation was used to simulate experimental conditions. Various exposure regimes with equal total ultrasound energy but variable peak acoustic pressure were studied for single lesions and lesion stripes obtained by moving the transducer. Static overpressure was applied to suppress cavitation. Strong enhancement of lesion production was observed for high amplitude waves and was supported by modeling. Through overpressure experiments it was shown that both nonlinear propagation and cavitation mechanisms participate in accelerating lesion inception and growth. Using B-mode ultrasound, cavitation was observed at normal ambient pressure as weakly enhanced echogenicity in the focal region, but was not detected with overpressure. Formation of tadpole-shaped lesions, shifted toward the transducer, was always observed to be due to boiling. Boiling bubbles were visible in the gel and were evident as strongly echogenic regions in B-mode images. These experiments indicate that nonlinear propagation and cavitation accelerate heating, but no lesion displacement or distortion was observed in the absence of boiling.
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