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Structural constitutive models for knee ligaments.

机译:膝关节韧带的结构本构模型。

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摘要

It has been estimated that approximately 375,000 people experience knee injuries every year in the United States. The majority of the pathologies affect the anterior cruciate ligament (ACL) and the medial collateral ligament (MCL). Thus, a thorough characterization of the mechanical properties of the ligaments is needed to understand the etiology of their injuries and to improve the strategies of their treatment. The first chapter of this dissertation offers a brief overview of the morphology and mechanics of the ligaments.;Since injuries are estimated to occur at strain rates that range from 50%/s to 150, 000%/s. studying the mechanical behavior of ligaments at various strain rates is imperative. In the second chapter, a novel structural constitutive model is formulated by taking into account the nonlinearity, anisotropy, incompressibility, and strain rate-related properties of the ligaments. The collagen fibers, which comprise the ligament; are assumed to be the only load-bearing component of the tissue. They are oriented in various directions, undulated in the stress-free configuration, and they gradually become straight upon deformation. Moreover, the collagen fibers are characterized by a Kelvin-Voigt-type viscoelastic behavior. The fiber spatial orientation and gradual recruitment are represented statistically by probability density functions. Published experimental data on the ACLs are used to assess the model.;The most severe of the knee ligament injuries are partial and complete tears. Thus, there is a compelling, need to understand the mechanical failure behavior of ligaments. In the third chapter, a structural constitutive model for the description of the ligament tensile properties is proposed. The model reproduces the three-regions of the nonlinear stress-strain relationship of ligaments. The collagen fibers contribute to the overall tissue's response after becoming taut and before failing and they are assumed to behave as a linear elastic material. The fiber recruitment and failure processes are stochastically defined. Available experimental data for the MCLs are employed to validate the constitutive relation. Furthermore, the generalization to a three-dimensional model is also given.;Future research directions toward the development of a structural constitutive model for the subfailure behavior of ligaments are indicated in the fourth chapter and conclusions are drawn in the fifth chapter.
机译:据估计,在美国,每年大约有375,000人遭受膝盖受伤。大多数病理影响前交叉韧带(ACL)和内侧副韧带(MCL)。因此,需要对韧带的机械性能进行全面表征,以了解其受伤的病因并改善其治疗策略。本文的第一章简要概述了韧带的形态和力学。由于估计损伤发生在应变率从50%/ s到150%,000%/ s的范围内。必须研究各种应变速率下的韧带的力学行为。在第二章中,考虑到韧带的非线性,各向异性,不可压缩性以及与应变率相关的特性,提出了一种新颖的结构本构模型。构成韧带的胶原纤维;被认为是组织的唯一承重成分。它们以不同的方向取向,以无应力的形式起伏,并且在变形时逐渐变得笔直。此外,胶原纤维的特征在于开尔文-沃格型粘弹性行为。纤维的空间取向和渐进性由概率密度函数统计表示。使用已发布的有关ACL的实验数据来评估模型。最严重的膝盖韧带损伤是部分和完全的眼泪。因此,迫切需要了解韧带的机械失效行为。在第三章中,提出了用于描述韧带拉伸性能的结构本构模型。该模型再现了韧带非线性应力-应变关系的三个区域。胶原纤维在拉紧后和破裂前有助于整个组织的反应,并且假定它们表现为线性弹性材料。随机定义了光纤回收和故障过程。 MCL的可用实验数据用于验证本构关系。第四章指出了韧带亚破坏行为的结构本构模型发展的未来研究方向,第五章提出了结论。

著录项

  • 作者

    De Vita, Raffaella.;

  • 作者单位

    University of Pittsburgh.;

  • 授予单位 University of Pittsburgh.;
  • 学科 Engineering Biomedical.;Engineering Mechanical.;Biophysics Medical.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 83 p.
  • 总页数 83
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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