Hariharan Prasanna, Myers Matthew R, Robinson Ronald A, Maruvada Subha H, Sliwa Jack, Banerjee Rupak K
Division of Solid and Fluid Mechanics, Center for Devices and Radiological Health, US Food and Drug Administration, Silver Spring, Maryland 20993, USA.
J Acoust Soc Am. 2008 Mar;123(3):1706-19. doi: 10.1121/1.2835662.
A new approach for characterizing high intensity focused ultrasound (HIFU) transducers is presented. The technique is based upon the acoustic streaming field generated by absorption of the HIFU beam in a liquid medium. The streaming field is quantified using digital particle image velocimetry, and a numerical algorithm is employed to compute the acoustic intensity field giving rise to the observed streaming field. The method as presented here is applicable to moderate intensity regimes, above the intensities which may be damaging to conventional hydrophones, but below the levels where nonlinear propagation effects are appreciable. Intensity fields and acoustic powers predicted using the streaming method were found to agree within 10% with measurements obtained using hydrophones and radiation force balances. Besides acoustic intensity fields, the streaming technique may be used to determine other important HIFU parameters, such as beam tilt angle or absorption of the propagation medium.
本文提出了一种表征高强度聚焦超声(HIFU)换能器的新方法。该技术基于HIFU束在液体介质中吸收所产生的声流场。利用数字粒子图像测速技术对声流场进行量化,并采用数值算法计算产生观测声流场的声强场。这里介绍的方法适用于中等强度范围,高于可能对传统水听器造成损坏的强度,但低于非线性传播效应明显的水平。发现使用声流法预测的强度场和声功率与使用水听器和辐射力平衡获得的测量值在10%以内相符。除了声强场,声流技术还可用于确定其他重要的HIFU参数,如束倾斜角或传播介质的吸收。