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在使用流动微泡进行聚焦超声辐射时,最小化灌注过程中的热损失。

Minimizing the thermal losses from perfusion during focused ultrasound exposures with flowing microbubbles.

机构信息

The Key Laboratory of Biomedical Information Engineering of Ministry of Education, Department of Biomedical Engineering, School of Life Science and Technology, Xi'an Jiaotong University, Xi'an 710049, People's Republic of China.

出版信息

J Acoust Soc Am. 2011 Apr;129(4):2336-44. doi: 10.1121/1.3552982.

Abstract

This paper demonstrated the use of flowing microbubbles (MBs) to minimize thermal losses from perfusion during focused ultrasound exposures due to acoustic cavitation. Temperature and cavitation were simultaneously investigated as MBs flowing through a wall-less flow phantom with varying flow velocities (2-55 cm/s) and concentrations (0%-0.1%) when exposed at different acoustic power levels (5-120 W). The peak temperature at the end of ultrasonic exposures in the flow and in the outer of the vessel as well as the cavitation were higher than those pure controls measured at the same exposure parameters and flow velocities but without MBs. All the peak temperatures initially increased with increasing flow velocities of MBs, followed by a decrease of the peak temperatures with increasing flow velocities when the velocity was higher than the inflection velocity. Meanwhile, cavitation showed a trend of increases with increasing flow velocity. The inflection velocity and cavitation increased with increasing acoustic power and MBs concentration. Thermal lesion appeared around the vessel as MBs flow through the vessel, at which lesion was not observed originally without MBs. These results suggested that this may provide an effective way to minimize thermal losses from perfusion during focused ultrasound exposures.

摘要

本文展示了利用流动微泡 (MBs) 来最小化由于声空化而导致的聚焦超声暴露期间灌注过程中的热损失。当在不同声功率水平 (5-120 W) 下暴露时,研究了 MBs 以不同流速 (2-55 cm/s) 和浓度 (0%-0.1%) 流过无壁流幻影时的温度和空化情况。在没有 MBs 的相同暴露参数和流速下,流动和容器外部的超声暴露结束时的峰值温度以及空化都高于纯对照测量值。所有的峰值温度最初都随着 MBs 流速的增加而增加,随后当流速高于拐点速度时,峰值温度随着流速的增加而降低。同时,空化表现出随着流速增加而增加的趋势。拐点速度和空化随着声功率和 MBs 浓度的增加而增加。当 MBs 流过血管时,在血管周围出现了热损伤,而在没有 MBs 的情况下,最初没有观察到这种损伤。这些结果表明,这可能为在聚焦超声暴露期间最小化灌注过程中的热损失提供一种有效方法。

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