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Rate-dependent crack nucleation in cartilage under microindentation

机译:在微图中的速率依赖性裂缝成核

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This study investigates rate-dependent crack nucleation in cartilage under microindentation using a poroviscoelastic framework and nano/microscopic images. Localized crack failure was induced at known locations and at different loading rates via microindentation with an axisymmetric sphero-conical indenter. Finite element (FE) modeling was used to reproduce results of microindentation tests within a poroviscoelastic framework. Scanning electron microscopy (SEM) was used to examine nano- and microscale structural features of crack surfaces. Microindentation results showed rate-dependent crack nucleation in cartilage. In particular, critical total work required for crack nucleation was larger at the slow loading rate compared to the fast loading rate. FE results suggested that viscoelastic relaxation of cartilage was a major contributor to the rate dependency and that tensile stresses localized at the indenter tip was a governing factor in crack nucleation. SEM images combined with microindentation and FE results suggested that the solid matrix in the vicinity of the tip experienced relatively large relaxation and kinematic fiber rearrangement at the slow loading rate in comparison to the fast loading rate. These findings extend current understanding of rate-dependent failure mechanisms in cartilage.
机译:本研究使用Poroviscoelastic框架和纳米/微观图像调查在微图中的软骨中依赖于软骨裂缝成核。通过具有轴对称球形锥形压痕的微小凸缘在已知位置和不同的加载速率下诱导局部裂纹衰竭。有限元(FE)建模用于在Poroviscoelastic框架内再现微观凸起试验的结果。扫描电子显微镜(SEM)用于检查裂缝表面的纳米和微观结构特征。微观化结果显示出软骨依赖性裂缝成核。特别是,与快速加载速率相比,裂缝成核的临界总作用较慢较大。 Fe结果表明软骨粘弹性松弛是依赖速率依赖性的主要因素,并且在压痕尖端局部局部化的拉伸应力是裂纹成核的控制因素。 SEM图像与微观化和Fe结果相结合,表明,与快速装载速率相比,尖端附近的固体基质经历了相对大的弛豫和运动纤维重排。这些发现延长了对软骨中的速率依赖性失效机制的了解。

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