动态声辐射力对横波干涉图样的理论分析。

IF 0.4 Q4 ENGINEERING, MECHANICAL
Kenneth Hoyt
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引用次数: 3

摘要

与高强度聚焦超声相关的声辐射力刺激剪切波传播,允许剪切波速度和组织结构的剪切粘度估计。由于波的速度是每秒几米,因此使用超声波在扩展视场上进行实时位移跟踪是有问题的,因为帧速率要求非常高。然而,两个空间分离的动力外源可以刺激横波运动,导致横波干涉图样。优点是剪切波可以在较低的帧率下成像,局部干涉图案的空间特性反映了组织的粘弹性特性。本文用动态声辐射力对横波干涉图样进行了理论分析。利用粘弹性格林函数分析,给出了一对聚焦超声光束和相关辐射力对组织运动的影响。总的来说,本文从理论上证明了剪切波干涉模式可以用动态声辐射力来激发,并使用传统的超声成像来跟踪。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Theoretical Analysis of Shear Wave Interference Patterns by Means of Dynamic Acoustic Radiation Forces.

Acoustic radiation forces associated with high intensity focused ultrasound stimulate shear wave propagation allowing shear wave speed and shear viscosity estimation of tissue structures. As wave speeds are meters per second, real time displacement tracking over an extend field-of-view using ultrasound is problematic due to very high frame rate requirements. However, two spatially separated dynamic external sources can stimulate shear wave motion leading to shear wave interference patterns. Advantages are shear waves can be imaged at lower frame rates and local interference pattern spatial properties reflect tissue's viscoelastic properties. Here a theoretical analysis of shear wave interference patterns by means of dynamic acoustic radiation forces is detailed. Using a viscoelastic Green's function analysis, tissue motion due to a pair of focused ultrasound beams and associated radiation forces are presented. Overall, this paper theoretically demonstrates shear wave interference patterns can be stimulated using dynamic acoustic radiation forces and tracked using conventional ultrasound imaging.

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来源期刊
International Journal of Multiphysics
International Journal of Multiphysics ENGINEERING, MECHANICAL-
CiteScore
1.20
自引率
57.10%
发文量
21
审稿时长
15 weeks
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