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Micromechanics of the Human Proximal Femur: Role of Microstructure and Tissue-Level Ductility on Femoral Strength.

机译:人类股骨的微力学:股骨强度的微观结构和组织水平延展性的作用。

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摘要

Knowledge of the micromechanics of the human proximal femur is fundamental to improving clinical assessment of hip fracture risk and to understand the etiology of hip fractures. In this context, the focus of this dissertation was to enhance the current understanding of the role of bone microstructure and tissue-level ductility in the whole-bone failure behavior.;Combining the latest advances in micro-computed tomography and high-resolution finite element modeling, we investigated the fundamental issue of load-sharing between the cortical and trabecular bone in the proximal femur. Well-delineated, consistent regions of load-transfer in the proximal portion of the femoral neck and load-sharing in the distal portion were identified, both for a sideways fall and stance loading of the femur, and the mechanisms by which high stresses can develop in the cortical and trabecular bone tissue were demonstrated.;Using non-linear finite element analysis, microstructural failure mechanisms of the human proximal femur during a sideways fall loading were elucidated. The simulations revealed that structure-level failure of the weaker femurs was associated with a relatively lower proportion of tissue-level failure compared to the stronger femurs --- an indication of diminished structural redundancy in the weaker bones. The trabecular tissue failure always preceded and was more prominent than cortical tissue failure in all femurs, and dominated in the very weakest bones. A new morphological measure of hip fragility was identified: the proportion of trabecular bone compared with cortical bone in the femoral neck. This measure was a strong predictor of femoral strength even after adjusting for the effects of areal bone mineral density (aBMD), the current clinical gold-standard for fracture risk assessment.;The work presented in this dissertation has also provided new insight into the influence of tissue-level ductility on structure-level bone strength. It was revealed that the structure-level bone strength reduced substantially (by 40-60%) when the manner in which bone tissue deforms was altered from fully ductile to fully brittle. This effect was relatively uniform across all the specimens of an anatomic site subjected to similar kind of loading, but was greater for the femurs during a sideways fall compared to stance loading. This dissertation also evaluated the effect of typical population-variations in tissue-level ductility on the femoral strength. It was revealed that there was only a modest variation (∼10-12%) in the femoral strength when both cortical and trabecular tissue ductility were simultaneously varied by one standard deviation about their mean.;In closure, this dissertation answers fundamental questions regarding the role of cortical and trabecular bone, and the underlying microstructural failure mechanisms, during age-related hip fractures, and provides new insight into the relationship between tissue-level ductility and structure-level bone strength. This work also outlines potential areas of future research to further advance our understanding of hip fracture etiology and describes a systematic approach to perform morphometric analysis on the bones so as to identify biomechanics-based structural determinants of femoral strength.
机译:对人类股骨近端微力学的了解对于改善髋部骨折风险的临床评估以及了解髋部骨折的病因至关重要。在这种情况下,本论文的重点是加深对骨微结构和组织水平延性在全骨衰竭行为中的作用的当前了解。结合微计算机断层扫描技术和高分辨率有限元的最新进展建模中,我们研究了股骨近端皮质骨和小梁骨之间负载分担的基本问题。确定了股骨颈近端部分的载荷转移和远端部分中的载荷转移的轮廓分明,一致的区域,包括侧向坠落和股骨的姿态加载,以及高应力产生的机制通过非线性有限元分析,阐明了人侧股骨在侧向跌落载荷下的微观结构破坏机制。模拟显示,与强股骨相比,较弱股骨的结构水平衰竭与组织水平衰竭的比例相对较低-这表明较弱骨的结构冗余减少。在所有股骨中,小梁组织衰竭总是先发,比皮质组织衰竭更为突出,在最弱的骨骼中占主导地位。确定了一种新的髋部脆弱性形态学测量方法:股骨颈中小梁骨与皮质骨的比例。即使在调整了目前骨折风险评估的临床金标准-面骨矿物质密度(aBMD)的影响后,该措施仍是股骨强度的有力预测指标。本论文中的工作也为这种影响提供了新的见解。水平延展性对结构水平骨强度的影响。揭示了当骨组织变形的方式从完全延展性变为完全脆性时,结构水平的骨强度显着降低(40-60%)。在相同类型的载荷作用下,该解剖部位的所有标本的作用相对均匀,但与侧向载荷作用相比,在侧向跌倒时股骨的作用更大。本文还评估了组织水平延性中典型人群变异对股骨强度的影响。结果表明,当皮质和小梁组织的延展性同时改变其均值时,股骨强度只有适度的变化(约10-12%)。年龄相关的髋部骨折中皮质和小梁骨的作用以及潜在的微结构破坏机制,并为组织水平延展性与结构水平骨强度之间的关系提供了新的见解。这项工作还概述了未来研究的潜在领域,以进一步增进我们对髋部骨折病因的理解,并描述了一种系统的方法来对骨骼进行形态分析,从而确定基于生物力学的股骨强度决定因素。

著录项

  • 作者

    Nawathe, Shashank.;

  • 作者单位

    University of California, Berkeley.;

  • 授予单位 University of California, Berkeley.;
  • 学科 Mechanical engineering.;Biomechanics.;Biomedical engineering.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 124 p.
  • 总页数 124
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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