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The dynamic deformation of a layered viscoelastic medium under surface excitation

机译:表面激励下层状粘弹性介质的动态变形

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摘要

In this study the dynamic behavior of a layered viscoelastic medium in response to the harmonic and impulsive acoustic radiation force applied to its surface was investigated both theoretically and experimentally. An analytical solution for a layered viscoelastic compressible medium in frequency and time domains was obtained using the Hankel transform. A special incompressible case was considered to model soft biological tissues. To verify our theoretical model, experiments were performed using tissue-like gel-based phantoms with varying mechanical properties. A 3.5 MHz single-element focused ultrasound transducer was used to apply the radiation force at the surface of the phantoms. A phase-sensitive optical coherence tomography (OCT) system was used to track the displacements of the phantom surface. Theoretically predicted displacements were compared with experimental measurements. The role of the depth dependence of the elastic properties of a medium in its response to an acoustic pulse at the surface was studied. It was shown that the low-frequency vibrations at the surface are more sensitive to the deep layers than high-frequency ones. Therefore, the proposed model in combination with spectral analysis can be used to evaluate depth-dependent distribution of the mechanical properties based on the measurements of the surface deformation.
机译:在这项研究中,从理论上和实验上研究了层状粘弹性介质响应施加到其表面的谐波和脉冲声辐射力的动力学行为。使用Hankel变换获得了在频域和时域中的层状粘弹性可压缩介质的解析解。考虑了一种特殊的不可压缩的情况来模拟软生物组织。为了验证我们的理论模型,使用具有变化的机械性能的基于组织的凝胶状体模进行了实验。使用3.5 MHz单元素聚焦超声换能器在体模表面施加辐射力。使用相敏光学相干断层扫描(OCT)系统跟踪体模表面的位移。理论上预测的位移与实验测量值进行了比较。研究了介质的弹性特性的深度依赖性在其对表面声脉冲的响应中的作用。结果表明,表面的低频振动比高频振动对深层更敏感。因此,所提出的模型与光谱分析相结合可用于基于表面变形的测量值来评估机械性能的深度依赖分布。

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