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The importance of nonlinear tissue modelling in finite element simulations of infant head impacts

机译:非线性组织建模在婴儿头部撞击有限元模拟中的重要性

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摘要

Despite recent efforts on the development of finite element (FE) head models of infants, a model capable of capturing head responses under various impact scenarios has not been reported. This is hypothesized partially attributed to the use of simplified linear elastic models for soft tissues of suture, scalp and dura. Orthotropic elastic constants are yet to be determined to incorporate the direction-specific material properties of infant cranial bone due to grain fibres radiating from the ossification centres. We report here on our efforts in advancing the above-mentioned aspects in material modelling in infant head and further incorporate them into subject-specific FE head models of a newborn, 5- and 9-month-old infant. Each model is subjected to five impact tests (forehead, occiput, vertex, right and left parietal impacts) and two compression tests. The predicted global head impact responses of the acceleration–time impact curves and the force–deflection compression curves for different age groups agree well with the experimental data reported in the literature. In particular, the newly developed Ogden hyperelastic model for suture, together with the nonlinear modelling of scalp and dura mater, enables the models to achieve more realistic impact performance compared with linear elastic models. The proposed approach for obtaining age-dependent skull bone orthotropic material constants counts both an increase in stiffness and decrease in anisotropy in the skull bone—two essential biological growth parameters during early infancy. The profound deformation of infant head causes a large stretch at the interfaces between the skull bones and the suture, suggesting that infant skull fractures are likely to initiate from the interfaces; the impact angle has a profound influence on global head impact responses and the skull injury metrics for certain impact locations, especially true for a parietal impact.Electronic supplementary materialThe online version of this article (doi:10.1007/s10237-016-0855-5) contains supplementary material, which is available to authorized users.
机译:尽管最近在开发婴儿有限元(FE)头部模型方面做出了努力,但尚未报道能够捕获各种冲击场景下头部反应的模型。推测这部分归因于简化的线弹性模型用于缝合线,头皮和硬脑膜的软组织。正交各向异性弹性常数尚未确定,以考虑到由于从骨化中心辐射出的谷物纤维而导致的婴儿颅骨的特定于方向的材料特性。我们在这里报告了我们在推进婴儿头部材料建模中的上述方面的工作并将其进一步纳入新生儿,5个月和9个月大婴儿的受试者特定FE头部模型中所做的努力。每个模型都要进行五次冲击测试(前额,枕骨,顶点,左右顶壁冲击)和两次压缩测试。不同年龄段的加速度-时间冲击曲线和力-挠度压缩曲线的预测整体头部冲击响应与文献报道的实验数据吻合良好。特别是,新开发的用于缝线的Ogden超弹性模型,以及头皮和硬脑膜的非线性建模,与线性弹性模型相比,使该模型能够实现更逼真的冲击性能。拟议的获取年龄相关的颅骨正交异性材料常数的方法计算了颅骨的刚度增加和各向异性的降低-这是婴儿早期的两个基本生物学生长参数。婴儿头部的严重变形会导致颅骨与缝合线之间的界面处发生较大的拉伸,这表明婴儿颅骨骨折很可能是从界面处引发的。撞击角度对整体头部撞击反应和某些撞击位置的颅骨损伤指标有深远影响,尤其是对于壁顶撞击而言确实如此。电子补充材料本文的在线版本(doi:10.1007 / s10237-016-0855-5)包含补充材料,授权用户可以使用。

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