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首页> 外文期刊>Frontiers in Bioengineering and Biotechnology >Measurement and Finite Element Model Validation of Immature Porcine Brain–Skull Displacement during Rapid Sagittal Head Rotations
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Measurement and Finite Element Model Validation of Immature Porcine Brain–Skull Displacement during Rapid Sagittal Head Rotations

机译:快速矢状头旋转过程中未成熟猪脑-颅骨位移的测量和有限元模型验证

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Computational models are valuable tools for studying tissue level mechanisms of traumatic brain injury, but in order to produce more accurate estimates of tissue deformation, these models must be validated against experimental data. In this study, we present in situ measurements of brain-skull displacement in the neonatal piglet head (n=3) at the sagittal midline during six rapid nonimpact rotations (two rotations per specimen) with peak angular velocities averaging 51.7±1.4 rad/s. Marks on the sagittally cut brain and skull/rigid potting surfaces were tracked, and peak values of relative brain-skull displacement were extracted and found to be significantly less than values extracted from a previous axial plane model. In a finite element model of the sagittally transected neonatal porcine head, the brain-skull boundary condition was matched to the measured physical experiment data. Despite smaller sagittal plane displacements at the brain-skull boundary, the corresponding finite element boundary condition optimized for sagittal plane rotations is far less stiff than its axial counterpart, likely due to the prominent role of the boundary geometry in restricting interface movement. Finally, bridging veins were included in the finite element model. Varying the bridging vein mechanical behavior over a previously reported range had no influence on the brain-skull boundary displacements. This direction-specific sagittal plane boundary condition can be employed in finite element models of rapid sagittal head rotations.
机译:计算模型是研究创伤性脑损伤的组织水平机制的有价值的工具,但是为了产生更准确的组织变形估计,必须对照实验数据对这些模型进行验证。在这项研究中,我们提出了在六个快速无冲击旋转(每个样本两个旋转)期间,新生仔猪头部(n = 3)在矢状中线的脑头骨位移的原位测量,峰值角速度平均为51.7±1.4 rad / s 。跟踪矢状切开的大脑和颅骨/刚性盆栽表面上的标记,并提取相对脑颅位移的峰值,发现该峰值明显小于从先前的轴向平面模型中提取的值。在矢状横断的新生猪头的有限元模型中,将脑-颅边界条件与测得的物理实验数据相匹配。尽管在脑颅边界处的矢状面位移较小,但为矢状面旋转优化的相应有限元边界条件的刚性远小于其轴向对应值,这可能是由于边界几何形状在限制界面运动方面的突出作用。最后,在有限元模型中包含了桥接静脉。在先前报告的范围内改变桥接静脉的机械行为对脑颅边界位移没有影响。该特定于方向的矢状面边界条件可用于快速矢状头旋转的有限元模型。

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