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Multiscale modeling of knee ligament biomechanics

机译:膝关节韧带生物力学的多尺度造型

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摘要

Knee connective tissues are mainly responsible for joint stability and play a crucial role in restraining excessive motion during regular activities. The damage mechanism of these tissues is directly linked to the microscale collagen level. However, this mechanical connection is still unclear. During this investigation, a multiscale fibril-reinforced hyper-elastoplastic model was developed and statistically calibrated. The model is accounting for the structural architecture of the soft tissue, starting from the tropocollagen molecule that forms fibrils to the whole soft tissue. Model predictions are in agreement with the results of experimental and numerical studies. Further, damage initiation and propagation in the collagen fiber were computed at knee ligaments and located mainly in the superficial layers. Results indicated higher crosslink density required higher tensile stress to elicit fibril damage. This approach is aligned with a realistic simulation of a damaging process and repair attempt. To the best of our knowledge, this is the first model published in which the connective tissue stiffness is simultaneously predicted by encompassing the mesoscopic scales between the molecular and macroscopic levels.
机译:膝关节结缔组织主要负责关节稳定性,并在常规活动期间限制过度运动起到至关重要的作用。这些组织的损伤机制与微米胶原水平直接相关。然而,这种机械连接仍然不清楚。在这次调查中,开发了多尺度原纤维增强的超弹性模型和统计校准。该模型正在占软组织的结构架构,从对整个软组织形成原纤维的流血分子开始。模型预测与实验和数值研究的结果一致。此外,在膝盖韧带上计算胶原纤维中的损伤和繁殖,主要位于浅层层。结果表明,交联密度较高,需要更高的拉伸应力以引发纤维损伤。这种方法与损坏过程和修复尝试的逼真模拟对齐。据我们所知,这是发布的第一模型,其中通过包围分子和宏观水平之间的介观尺度同时预测结缔组织刚度。

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