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An adaptive-remeshing framework to predict impact-induced skull fracture in infants

机译:重新追忆框架,以预测婴儿的冲击诱导的头骨骨折

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Infant skull fractures are common in both accidental and abusive head trauma, but identifying the cause of injury may be challenging without adequate evidence. To better understand the mechanics of infant skull fracture and identify environmental variables that lead to certain skull fracture patterns, we developed an innovative computational framework that utilizes linear elastic fracture mechanics theory to predict skull fracture as a first step to study this problem. The finite element method and adaptive-remeshing technique were employed to simulate high-fidelity, geometrically explicit crack propagation in an infant skull following impact. In the framework, three modes of stress intensity factors are calculated by means of the M-integral using the commercial analysis code, FRANC3D, and are used as measures of crack driving force. The anisotropy of infant skulls is represented by means of a transversely isotropic constitutive model and a direction-dependent fracture-toughness locus. The ability of the framework to predict impact-induced fracture patterns is validated by comparison with experimentally observed fracture patterns from the literature.
机译:婴儿颅骨骨折在意外和滥用头部创伤中是常见的,但识别伤害的原因可能是挑战,没有足够的证据。为了更好地了解婴儿颅骨骨折的机制,并确定导致某些头骨骨折模式的环境变量,我们开发了一种创新的计算框架,利用线性弹性骨折力学理论来预测颅骨骨折作为研究这个问题的第一步。采用有限元方法和自适应倒退技术来模拟高保真,在婴儿颅骨后的几何显式裂缝扩展。在该框架中,通过使用商业分析代码,FRID3D的M-Integral来计算三种应力强度因子模式,并用作裂缝驱动力的测量。婴儿颅骨的各向异性通过横向各向同性本构体模型和方向依赖性裂缝 - 韧性基因座表示。通过与来自文献的实验观察到的裂缝模式进行比较,验证了框架预测冲击诱导的断裂模式的能力。

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