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首页> 外文期刊>Journal of biomechanical engineering. >Estimation of Anisotropic Material Properties of Soft Tissue by MRI of Ultrasound-Induced Shear Waves
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Estimation of Anisotropic Material Properties of Soft Tissue by MRI of Ultrasound-Induced Shear Waves

机译:超声诱导剪切波MRI估算软组织的各向异性材料特性

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This paper describes a new method for estimating anisotropic mechanical properties of fibrous soft tissue by imaging shear waves induced by focused ultrasound (FUS) and analyzing their direction-dependent speeds. Fibrous materials with a single, dominant fiber direction may exhibit anisotropy in both shear and tensile moduli, reflecting differences in the response of the material when loads are applied in different directions. The speeds of shear waves in such materials depend on the propagation and polarization directions of the waves relative to the dominant fiber direction. In this study, shear waves were induced in muscle tissue (chicken breast) ex vivo by harmonically oscillating the amplitude of an ultrasound beam focused in a cylindrical tissue sample. The orientation of the fiber direction relative to the excitation direction was varied by rotating the sample. Magnetic resonance elastography (MRE) was used to visualize and measure the full 3D displacement field due to the ultrasound-induced shear waves. The phase gradient (PG) of radially propagating “slow” and “fast” shear waves provided local estimates of their respective wave speeds and directions. The equations for the speeds of these waves in an incompressible, transversely isotropic (TI), linear elastic material were fitted to measurements to estimate the shear and tensile moduli of the material. The combination of focused ultrasound and MR imaging allows noninvasive, but comprehensive, characterization of anisotropic soft tissue.
机译:本文介绍了通过聚焦超声(FUS)引起的成像剪切波来估计纤维软组织的各向异性机械性能的新方法,并分析其方向依赖性速度。具有单个显性纤维方向的纤维材料可以在剪切和拉伸模型中表现出各向异性,当载荷以不同方向施加负载时,反映材料的响应的差异。这种材料中的剪切波的速度取决于波浪相对于主纤维方向的传播和偏振方向。在本研究中,通过谐振振荡聚焦在圆柱形组织样品中的超声波梁的幅度,在肌肉组织(鸡胸肉)前体内诱导剪切波。通过旋转样品来改变相对于激发方向的纤维方向的取向。由于超声诱导的剪切波,磁共振弹性显影(MRE)用于可视化和测量全3D位移场。径向传播“慢速”和“快速”剪切波的相位梯度(PG)提供了各自波速和方向的局部估计。在不可压缩,横向各向同性(Ti)中的这些波的速度的速度方程装配到测量以估计材料的剪切和拉伸模量。聚焦超声和MR成像的组合允许非侵入性但全面地表征各向异性软组织。

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