Dept of Biomed Eng, Univ of Texas at Austin, TX, USA.
IEEE Trans Ultrason Ferroelectr Freq Control. 2009 Nov;56(11):2380-7. doi: 10.1109/TUFFC.2009.1326.
An ultrasound-based method to locally assess the shear modulus of a medium is reported. The proposed approach is based on the application of an impulse acoustic radiation force to an inhomogeneity in the medium and subsequent monitoring of the spatio-temporal response. In our experimental studies, a short pulse produced by a 1.5-MHz highly focused ultrasound transducer was used to initiate the motion of a rigid sphere embedded into an elastic medium. Another 25 MHz focused ultrasound transducer operating in pulse-echo mode was used to track the displacement of the sphere. The experiments were performed in gel phantoms with varying shear modulus to demonstrate the relationship between the displacement of the sphere and shear modulus of the surrounding medium. Because the magnitude of acoustic force applied to sphere depends on the acoustic material properties and, therefore, cannot be used to assess the absolute value of shear modulus, the temporal behavior of the displacement of the sphere was analyzed. The results of this study indicate that there is a strong correlation between the shear modulus of a medium and spatio-temporal characteristics of the motion of the rigid sphere embedded in this medium.
本文报道了一种基于超声的局部评估介质剪切模量的方法。该方法基于对介质中的不均匀性施加脉冲声辐射力,并随后监测其时空响应。在我们的实验研究中,使用 1.5MHz 的高聚焦超声换能器产生的短脉冲来启动嵌入弹性介质中的刚性球的运动。另一个工作在脉冲回波模式下的 25MHz 聚焦超声换能器用于跟踪球的位移。实验在具有不同剪切模量的凝胶模型中进行,以证明球的位移与周围介质的剪切模量之间的关系。由于施加在球上的声力的大小取决于声材料的特性,因此不能用于评估剪切模量的绝对值,因此分析了球位移的时间行为。这项研究的结果表明,介质的剪切模量与嵌入其中的刚性球的运动的时空特征之间存在很强的相关性。