首页> 外文期刊>Annals of Biomedical Engineering: The Journal of the Biomedical Engineering Society >Constitutive modeling of rate-dependent stress-strain behavior of human liver in blunt impact loading.
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Constitutive modeling of rate-dependent stress-strain behavior of human liver in blunt impact loading.

机译:在钝器冲击载荷下人肝脏速率依赖的应力应变行为的本构模型。

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An understanding of the mechanical deformation behavior of the liver under high strain rate loading conditions could aid in the development of vehicle safety measures to reduce the occurrence of blunt liver injury. The purpose of this study was to develop a constitutive model of the stress-strain behavior of the human liver in blunt impact loading. Experimental stress and strain data was obtained from impact tests of 12 unembalmed human livers using a drop tower technique. A constitutive model previously developed for finite strain behavior of amorphous polymers was adapted to model the observed liver behavior. The elements of the model include a nonlinear spring in parallel with a linear spring and nonlinear dashpot. The model captures three features of liver stress-strain behavior in impact loading: (1) relatively stiff initial modulus, (2) rate-dependent yield or rollover to viscous "flow" behavior, and (3) strain hardening at large strains. Six material properties were used to define the constitutive model. This study represents a novel application of polymer mechanics concepts to understand the rate-dependent large strain behavior of human liver tissue under high strain rate loading. Applications of this research include finite element simulations of injury-producing liver or abdominal impact events.
机译:了解在高应变率载荷条件下肝脏的机械变形行为可能有助于开发车辆安全措施以减少钝性肝损伤的发生。这项研究的目的是建立一个在钝器冲击载荷下人类肝脏应力应变行为的本构模型。实验性应力和应变数据是通过使用落塔技术对12个未植入人体的肝脏进行冲击测试而获得的。先前针对非晶聚合物的有限应变行为开发的本构模型适用于对观察到的肝脏行为进行建模。该模型的元素包括与线性弹簧和非线性阻尼器并联的非线性弹簧。该模型捕获了冲击载荷下肝脏应力-应变行为的三个特征:(1)相对较硬的初始模量;(2)速率相关的屈服或翻转为粘性“流动”行为;以及(3)大应变时的应变硬化。六个材料特性被用来定义本构模型。这项研究代表了高分子力学概念的一种新颖应用,以了解在高应变速率负载下人类肝脏组织的速率依赖性大应变行为。这项研究的应用包括产生伤害的肝脏或腹部撞击事件的有限元模拟。

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