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Transversely isotropic micromechanics model to determine effect of collagen fibre angle in mechanical properties of articular cartilage

机译:横向各向同性的微力学模型,确定胶原纤维角度对关节软骨力学性能的影响

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摘要

Owing to a variation of collagen fibres orientation through the zones of articular cartilage, it shows a depth dependent transversely isotropic mechanical behaviour. This study characterised the role of collagen fibre angle toward cartilage surface φ on the mechanical properties of articular cartilage with an innovative micromechanics (multi-direction composite - MDC) model. The role of collagen fibres, their volume fraction as well as angle φ in all zones of articular cartilage, was embedded into the MDC model. Variation of collagen fibre angle toward the cartilage surface as a function of cartilage depth was calculated. According to this function, collagen fibres are parallel to cartilage surface in superficial zone, have a nonlinear angle variation in transition zone and become perpendicular to the cartilage surface in the deep zone. The results revealed that owing to constancy of the mechanical properties of articular cartilage components and slight variation of fibres volume fraction through the depth of cartilage, variations of collagen fibre angle φ has the most important role in depth dependent variation of the mechanical properties of the articular cartilage. As elastic modulus parallel to cartilage surface is decreased by increasing the fibre angle qua radial elastic modulus in superficial zone is 10.2 times greater than deep zone, but elastic modulus perpendicular to cartilage surface is increased by increasing the fibre angle qua axial elastic modulus in superficial zone is 28.3 times smaller than deep zone.
机译:由于穿过关节软骨区域的胶原纤维取向的变化,其显示出依赖于深度的横向各向同性的机械行为。这项研究利用创新的微力学(多向复合材料-MDC)模型表征了胶原纤维角向软骨表面φ在关节软骨力学性能中的作用。 MDC模型中嵌入了胶原纤维的作用,其体积分数以及在关节软骨所有区域中的角度φ。计算了胶原纤维相对于软骨表面的角度随软骨深度的变化。根据该功能,胶原纤维在表层区域平行于软骨表面,在过渡区域具有非线性角度变化,并在深部区域垂直于软骨表面。结果表明,由于关节软骨成分的力学性能恒定,并且纤维体积分数随软骨深度的变化很小,因此胶原纤维角度φ的变化在关节力学性能的深度依赖性变化中起着最重要的作用。软骨。当通过增加纤维角来减小与软骨表面平行的弹性模量时,表层区域的径向弹性模量是深部区域的10.2倍,但通过增加纤维角与表面区域的垂直弹性模量,则增加了表面区域的径向弹性模量比深区小28.3倍

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