Jin Xin, Mao Haojie, Yang King H, King Albert I
Bioengineering Center, Wayne State University, 818 W. Hancock, Detroit, MI, 48201, USA,
Ann Biomed Eng. 2014 Apr;42(4):812-21. doi: 10.1007/s10439-013-0948-6. Epub 2013 Dec 10.
The pia-arachnoid complex (PAC) covering the brain plays an important role in the mechanical response of the brain during impact or inertial loading. Recent studies have revealed the complicated material behavior of the PAC. In this study, the nonlinear viscoelastic, transversely isotropic material properties of the PAC were modeled as Mooney-Rivlin ground substance with collagen fibers strengthening within the meningeal plane through an exponential model. The material constants needed were determined using experimental data from in-plane tension, normal traction, and shear tests conducted on bovine specimens. Results from this study provide essential information to properly model the PAC membrane, an important component in the skull/brain interface, in a computational brain model. Such an improved representation of the skull/brain interface will enhance the accuracy of finite element models used in brain injury mechanism studies under various loading conditions.
覆盖大脑的软脑膜-蛛网膜复合体(PAC)在撞击或惯性加载过程中大脑的力学响应中起着重要作用。最近的研究揭示了PAC复杂的材料行为。在本研究中,PAC的非线性粘弹性、横观各向同性材料特性被建模为Mooney-Rivlin基质,胶原纤维通过指数模型在脑膜平面内增强。所需的材料常数是根据对牛标本进行的面内拉伸、法向牵引和剪切试验的实验数据确定的。本研究结果为在计算脑模型中正确模拟PAC膜(颅骨/脑界面的一个重要组成部分)提供了重要信息。颅骨/脑界面的这种改进表示将提高在各种加载条件下用于脑损伤机制研究的有限元模型的准确性。