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Magnetic resonance elastography in nonlinear viscoelastic materials under load

机译:负载下非线性粘弹性材料的磁共振弹性术

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Characterisation of soft tissue mechanical properties is a topic of increasing interest in translational and clinical research. Magnetic resonance elastography (MRE) has been used in this context to assess the mechanical properties of tissues in vivo noninvasively. Typically, these analyses rely on linear viscoelastic wave equations to assess material properties from measured wave dynamics. However, deformations that occur in some tissues (e.g. liver during respiration, heart during the cardiac cycle, or external compression during a breast exam) can yield loading bias, complicating the interpretation of tissue stiffness from MRE measurements. In this paper, it is shown how combined knowledge of a material's rheology and loading state can be used to eliminate loading bias and enable interpretation of intrinsic (unloaded) stiffness properties. Equations are derived utilising perturbation theory and Cauchy's equations of motion to demonstrate the impact of loading state on periodic steady-state wave behaviour in nonlinear viscoelastic materials. These equations demonstrate how loading bias yields apparent material stiffening, softening and anisotropy. MRE sensitivity to deformation is demonstrated in an experimental phantom, showing a loading bias of up to twofold. From an unbiased stiffness of 4910.4 +/- 635.8 Pa in unloaded state, the biased stiffness increases to 9767.5 +/- 1949.9Pa under a load of approximate to 34% uniaxial compression. Integrating knowledge of phantom loading and rheology into a novel MRE reconstruction, it is shown that it is possible to characterise intrinsic material characteristics, eliminating the loading bias from MRE data. The framework introduced and demonstrated in phantoms illustrates a pathway that can be translated and applied to MRE in complex deforming tissues. This would contribute to a better assessment of material properties in soft tissues employing elastography.
机译:软组织机械性能表征是越来越多的翻译和临床研究的主题。磁共振弹性显影(MRE)已被用于本文中,以评估非侵略性组织的机械性能。通常,这些分析依赖于线性粘弹性波方程来评估来自测量波动态的材料特性。然而,在某些组织中发生的变形(例如,在呼吸期间,心脏循环期间的心脏,或在乳房检查期间的外部压缩)可以产生负载偏压,使组织刚度与MRE测量的解释复杂化。在本文中,示出了如何利用材料流变学和装载状态的综合知识来消除负载偏压并实现内在(卸载)刚度特性的解释。等式利用扰动理论和Cauchy的运动方程来证明加载状态对非线性粘弹性材料中的周期性稳态波动的影响。这些方程展示了如何加载偏压产生表观材料加强,软化和各向异性。在实验幻像中证明了对变形的敏感性,显示出直至双重的装载偏差。从未偏见的4910.4 +/- 635.8 PA在卸载状态下,偏差刚度增加到9767.5 +/- 1949.9pa,在大约34%的单轴压缩的负荷下。将幻影装载和流变学的知识集成到新的MRE重建中,示出了可以表征内在材料特性,从而消除了来自MRE数据的装载偏压。在幻像中引入和证明的框架示出了可以在复杂的变形组织中翻译和应用于MRE的途径。这将有助于更好地评估采用弹性造影的软组织中的材料特性。

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