Zhao Xiaodong, Pelegri Assimina A
J Biomech Eng. 2014 Sep;136(9):094502. doi: 10.1115/1.4027934.
Acoustic radiation force (ARF) creep imaging applies step ARF excitation to induce creep displacement of soft tissue, and the corresponding time-dependent responses are used to estimate soft tissue viscoelasticity or its contrast. Single degree of freedom (SDF) and homogeneous analytical models have been used to characterize soft tissue viscoelasticity in ARF creep imaging. The purpose of this study is to investigate the fundamental limitations of the commonly used SDF and homogeneous assumptions in ARF creep imaging. In this paper, finite element (FE) models are developed to simulate the dynamic behavior of viscoelastic soft tissue subjected to step ARF. Both homogeneous and heterogeneous models are studied with different soft tissue viscoelasticity and ARF configurations. The results indicate that the SDF model can provide good estimations for homogeneous soft tissue with high viscosity, but exhibits poor performance for low viscosity soft tissue. In addition, a smaller focal region of the ARF is desirable to reduce the estimation error with the SDF models. For heterogeneous media, the responses of the focal region are highly affected by the local heterogeneity, which results in deterioration of the effectiveness of the SDF and homogeneous simplifications.
声辐射力(ARF)蠕变成像应用阶跃ARF激励来诱导软组织的蠕变位移,并利用相应的时间相关响应来估计软组织的粘弹性或其对比度。单自由度(SDF)和均匀分析模型已被用于表征ARF蠕变成像中的软组织粘弹性。本研究的目的是探讨ARF蠕变成像中常用的SDF和均匀假设的基本局限性。本文建立了有限元(FE)模型,以模拟受阶跃ARF作用的粘弹性软组织的动态行为。研究了具有不同软组织粘弹性和ARF配置的均匀和非均匀模型。结果表明,SDF模型对于高粘度的均匀软组织可以提供良好的估计,但对于低粘度软组织表现不佳。此外,较小的ARF聚焦区域有助于减少SDF模型的估计误差。对于非均匀介质,聚焦区域的响应受到局部非均匀性的高度影响,这导致SDF和均匀简化的有效性下降。