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A Semi-Empirical Elastic-Plastic-Visco-Damage Constitutive Model of Cortical Bone

机译:皮骨的半经验弹塑性粘滞损伤本构模型

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摘要

Bone quality can be characterized by toughness of bone which quantifies the energy required for failure. As much of the toughness of bone occurs after yielding, elucidating the underlying mechanism of post-yield behavior of bone is critical for further development of clinical strategies to predict and prevent age and disease related bone fractures. However, the underlying mechanism of the post-yield behavior of cortical bone is so far poorly understood, which makes it difficult to establish physically sound constitutive models for cortical bone that could accurately predict the mechanical behavior of the tissue. The absence of the constitutive equations has significantly hindered the application of bone mechanics in solving biomedical problems. Besides, an accurate constitutive model is always required in numerical modeling and simulating the mechanical behavior of bone under different loading conditions. Based on the experimental results obtained in our lab, the objective of this study was to develop and verify a constitutive model of cortical bone under compression, which accounted for damage accumulation, plastic deformation and viscoelastic properties.
机译:骨骼质量的特征是骨骼的韧性,可以量化失败所需的能量。由于骨骼的大部分韧性都发生在屈服之后,因此阐明骨骼的屈服后行为的潜在机制对于进一步发展预测和预防与年龄和疾病相关的骨折的临床策略至关重要。然而,到目前为止,对皮质骨的屈服后行为的潜在机制了解甚少,这使得难以为皮质骨建立物理上合理的本构模型来准确预测组织的机械行为。本构方程的缺乏极大地阻碍了骨力学在解决生物医学问题中的应用。此外,在数值建模和模拟不同载荷条件下骨骼的力学行为时,始终需要精确的本构模型。基于我们实验室获得的实验结果,本研究的目的是开发和验证受压的皮质骨本构模型,该模型考虑了损伤累积,塑性变形和粘弹性质。

著录项

  • 来源
  • 会议地点 Naples FL(US);Naples FL(US)
  • 作者单位

    Mechanical Engineering, the University of Texas at San Antonio, USArnBiomedical Engineering, Peking University, China;

    College of Medicine, Peking University, China;

    Mechanical Engineering, the University of Texas at San Antonio, USA;

    Mechanical Engineering, the University of Texas at San Antonio, USA;

    Biomedical Engineering, Peking University, China;

    Mechanical Engineering, the University of Texas at San Antonio, USA;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 人体工程学;
  • 关键词

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