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首页> 外文期刊>Frontiers in Bioengineering and Biotechnology >Investigate the Variations of the Head and Brain Response in a Rodent Head Impact Acceleration Model by Finite Element Modeling
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Investigate the Variations of the Head and Brain Response in a Rodent Head Impact Acceleration Model by Finite Element Modeling

机译:通过有限元建模研究啮齿动物头部冲击加速模型中头部和脑响应的变化

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Diffuse axonal injury (DAI) is a severe form of traumatic brain injury and often induced by blunt trauma. The closed head impact acceleration (IA) model is the most widely used rodent DAI model. However, this model results in large variations of injury severity. Recently, the impact device/system was modified to improve the consistency of the impact energy, but variations of the head kinematics and subsequent brain injuries were still observed. This study was aimed to utilize a Finite Element (FE) model of a rat head/body and simulation to investigate the potential biomechanical factors influencing the impact energy transfer to the head. A detailed FE rat head model containing detailed skull and brain anatomy was developed based on the MRI, microCT and atlas data. The model consists of over 722,000 elements, of which 310,000 are in the brain. The white matter structures consisting of highly aligned axonal fibers were simulated with transversely-isotropic material. The rat body was modeled to provide a realistic boundary at the spine-medulla junction. Rodent experiments including dynamic cortical deformation, brain-skull displacement, and IA kinematics were simulated to validate the FE model. The model was then applied to simulate the rat IA experiments. Parametric studies were conducted to investigate the effect of the helmet inclination angles (0o-5o) and skull stiffness (varied 20%) on the resulting head kinematics and maximum principal strain in the brain. The inclination angle of the helmet at 5o could vary head linear acceleration by 8-31%. The change in head rotational velocity was inversely related to the change in linear acceleration. Varying skull stiffness resulted in changes in head linear acceleration by 3% but with no effect on rotational velocity. The brain strain in the corpus callosum was only affected by head rotation while the strain in the brainstem was influenced by the combined head kinematics, local skull deformation, and head-neck position. Validated FE models of rat impact head injury can assist in exploring various biomechanical factors influencing the head impact response and internal brain response. Identification of these variables may help explain the variability of injury severity observed among experiments and across different labs.
机译:弥漫性轴突损伤(DAI)是一种严重的创伤性脑损伤形式,通常由Blunt创伤引起。封闭的头部冲击加速度(IA)模型是最广泛使用的啮齿动物DAI模型。然而,这种模型导致伤害严重程度的大变化。最近,改变了冲击装置/系统以提高冲击能量的一致性,但仍观察到头部运动学和随后的脑损伤的变化。该研究旨在利用大鼠头/体的有限元(Fe)模型和模拟,以研究影响冲击能量转移到头部的潜在生物力学因素。基于MRI,MicroCT和ATLAS数据开发了含有详细的颅骨和脑解剖学的详细Fe鼠头模型。该模型由超过722,000元素组成,其中大脑中有310,000。用横向各向同性材料模拟由高对准的轴向纤维组成的白质结构。模拟大鼠体以在脊柱 - 髓质连接处提供现实边界。模拟啮齿动物实验,包括动态皮质变形,脑颅置位移和IA运动学,以验证FE模型。然后应用该模型以模拟大鼠IA实验。进行参数化研究以研究头盔倾斜角(0O-5O)和颅骨刚度(改变20%)对脑中所得的头部运动学和最大主要菌株的影响。盔甲在5o时的倾斜角度可以改变头线性加速度8-31%。头部旋转速度的变化与线性加速度的变化成反比。不同的颅骨刚度导致头部线性加速度的变化3%,但对旋转速度没有影响。语料库胼um中的脑菌株仅受到头部旋转的影响,而脑干中的应变受到组合的头部运动学,局部头骨变形和头部位置的影响。验证的大鼠冲击头损伤的Fe模型可以帮助探索影响头部冲击反应和内部脑反应的各种生物力学因素。这些变量的鉴定可能有助于解释在实验和不同实验室中观察到的损伤严重程度的可变性。

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