Rouze Ned C, Palmeri Mark L, Nightingale Kathryn R
Department of Biomedical Engineering, Duke University, Durham, North Carolina 27708-0281, USA.
J Acoust Soc Am. 2015 Aug;138(2):1012-22. doi: 10.1121/1.4927492.
Recent measurements of shear wave propagation in viscoelastic materials have been analyzed by constructing the two-dimensional Fourier transform (2D-FT) of the spatial-temporal shear wave signal and using an analysis procedure derived under the assumption the wave is described as a plane wave, or as the asymptotic form of a wave expanding radially from a cylindrically symmetric source. This study presents an exact, analytic expression for the 2D-FT description of shear wave propagation in viscoelastic materials following asymmetric Gaussian excitations and uses this expression to evaluate the bias in 2D-FT measurements obtained using the plane or cylindrical wave assumptions. A wide range of biases are observed depending on specific values of frequency, aspect ratio R of the source asymmetry, and material properties. These biases can be reduced significantly by weighting the shear wave signal in the spatial domain to correct for the geometric spreading of the shear wavefront using a factor of x(p). The optimal weighting power p is found to be near the theoretical value of 0.5 for the case of a cylindrical source with R = 1, and decreases for asymmetric sources with R > 1.
近期对粘弹性材料中剪切波传播的测量,是通过构建时空剪切波信号的二维傅里叶变换(2D - FT),并使用在假设波被描述为平面波或从圆柱对称源径向扩展的波的渐近形式的情况下推导出来的分析程序进行分析的。本研究给出了非对称高斯激励后粘弹性材料中剪切波传播的二维傅里叶变换描述的精确解析表达式,并使用该表达式评估使用平面波或柱面波假设获得的二维傅里叶变换测量中的偏差。根据频率的特定值、源不对称的纵横比R以及材料特性,观察到了广泛的偏差。通过在空间域中对剪切波信号进行加权,使用x(p)因子校正剪切波前的几何扩展,可以显著降低这些偏差。对于R = 1的圆柱源情况,发现最佳加权幂p接近理论值0.5,而对于R > 1的非对称源,p值会减小。