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DAMAGE ACCUMULATION MODELING AND RATE DEPENDENCY OF SPINAL DURA MATER

机译:硬脊膜损伤累积模型及速率依赖性

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As the strongest of the meningeal tissues, the spinal dura mater plays an important role in the overall behavior of the spinal cord-meningeal complex (SCM). It follows that the accumulation of damage affects the dura mater's ability to protect the cord from excessive mechanical loads. Unfortunately, current computational investigations of spinal cord injury etiology typically do not include post-yield behavior. Therefore, a more detailed description of the material behavior of the spinal dura mater, including characterization of damage accumulation, is required to comprehensively study spinal cord injuries. Continuum mechanics-based viscoelastic damage theories have been previously applied to other biological tissues, however the current work is the first to report damage accumulation modeling in a SCM tissue. Longitudinal samples of ovine cervical dura mater were tensioned-to-failure at one of three strain rates (quasi-static, 0.05/sec, and 0.3/sec). The resulting stress-strain data were fit to a hyperelastic continuum damage model to characterize the strain-rate dependent sub-failure and failure behavior. The results show that the damage behavior of the fibrous and matrix components of the dura mater are strain-rate dependent, with distinct behaviors when exposed to strain-rates above that experienced during normal voluntary neck motion suggesting the possible existence of a protective mechanism.
机译:作为最强的脑膜组织,硬脑膜在脊髓-脑膜复合物(SCM)的整体行为中起着重要的作用。因此,损伤的累积会影响硬脑膜保护绳索免受过度机械负荷的能力。不幸的是,当前脊髓损伤病因的计算研究通常不包括屈服后行为。因此,需要对脊髓硬脑膜的物质行为进行更详细的描述,包括损伤累积的特征,以全面研究脊髓损伤。基于连续体力学的粘弹性损伤理论先前已应用于其他生物组织,但是当前的工作是第一个报道SCM组织中损伤累积模型的研究。将绵羊颈硬脑膜的纵向样品以三种应变率(准静态,0.05 / sec和0.3 / sec)之一拉紧至失效。所得的应力-应变数据适合于超弹性连续介质损伤模型,以表征应变率相关的子破坏和破坏行为。结果表明,硬脑膜的纤维和基质成分的损伤行为取决于应变率,当暴露于高于正常自愿颈部运动过程中经历的应变率时,行为有明显的不同,这表明可能存在保护机制。

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