Department of Biomedical Engineering, Indian Institute of Technology Ropar, India; Biomechanics Section, Department of Mechanical Engineering, KU Leuven, Leuven, Belgium.
Department of Endocrinology, Post Graduate Institute of Medical Education and Research, Chandigarh, India.
J Biomech. 2023 Dec;161:111853. doi: 10.1016/j.jbiomech.2023.111853. Epub 2023 Oct 25.
In this study, the role of inelastic deformation of bone on its strain rate-dependent mechanical behaviour was investigated. For this, human cortical bone samples were cyclically loaded to accumulate inelastic strain and subsequently, mechanical response was investigated under compressive loading at different strain rates. The strain rate behaviour of fatigued samples was compared with non-loaded control samples. Furthermore, cyclic loading-induced microdamage was quantified through histological analysis. The compression test results show that the strength of fatigue-loaded bone reduced significantly at low strain rates but not at high strain rates. The difference in microcrack density was not significant between fatigued and control groups. The results indicate that the mechanism of load transfer varies between low strain rate and high strain rate regimes. The inelastic deformation mechanisms are more prominent at low strain rates but not at high strain rates. This study shed light on the role of inelastic deformation on the rate-dependent behaviour of cortical bone.
在这项研究中,研究了骨的非弹性变形对其应变速率相关力学行为的作用。为此,对人皮质骨样本进行了循环加载以积累非弹性应变,然后在不同应变速率下进行压缩加载下的力学响应研究。比较了疲劳样本和未加载对照样本的应变速率行为。此外,通过组织学分析量化了循环加载引起的微损伤。压缩试验结果表明,在低应变速率下,疲劳加载骨的强度显著降低,但在高应变速率下则没有。疲劳组和对照组之间的微裂纹密度差异不显著。结果表明,在低应变速率和高应变速率区之间,载荷传递机制不同。在低应变速率下,非弹性变形机制更为明显,但在高应变速率下则不明显。本研究揭示了非弹性变形对皮质骨的率相关行为的作用。