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A three-dimensional nonlinear visco-elastic constitutive model for ultra high molecular weight polyethylene.

机译:超高分子量聚乙烯的三维非线性粘弹性本构模型。

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摘要

Ultra high molecular weight polyethylene (UHMWPE) is used extensively in biomedical implant applications. The design of the UHMWPE components is critical to the longevity of the implant. Although the material has been used for decades as a biological material, its three-dimensional behavior is still not fully understood, and a better understanding of the material will allow UHMWPE implant components to be more rigorously designed to the benefit of both the manufacturing company and the person receiving the implant. At body temperature, 37C, UHMWPE is a nonlinear visco-elastic material. This purpose of this study is to measure the time-dependent mechanical behavior of UHMWPE, and set forth a representative three-dimensional constitutive model. Eight earlier viscous, molecular, and phenomenological constitutive models are reviewed in this study. Two time-dependent phenomenological models, Visco Plasticity based on Overstress (VBO), and Bernstein-Kearsley-Zappas visco-elasticity (BKZ), three elastic molecular models, Phantom Network, Constrained Chain, Eight-Chain, and Mooney-Rivlin, and three general elastic models, four parameter uniaxial visco-elasticity, Ogden, and Valanis-Landel models are included in the review. Tension-torsion single step stress relaxation tests are performed on cylindrical UHMWPE specimens at temperatures ranging from 25C to 55C, with the focus of the tests being at 37C. A piecewise linear function in addition to the reviewed models are then used to attempt to describe the experimental material behavior determined from these tests. A piecewise linear function is chosen for the isochronal strain energy function derivative, and is incorporated into the three-dimensional BKZ visco-elasticity model. The Fortran programming language is used to implement the model and numerically solve for the stress based on an arbitrary strain history. The model developed in this thesis is verified against the tests performed in this study, and then compared to constant strain rate uniaxial tension test data, and is able to predict stress-strain behavior observed experimentally in UHMWPE. This is the first application of the BKZ viso-elastic material theory to a semi-crystalline material, and demonstrates that within the strain ranges studied the BKZ material model is a valid choice.
机译:超高分子量聚乙烯(UHMWPE)广泛用于生物医学植入物应用。 UHMWPE组件的设计对于植入物的寿命至关重要。尽管该材料已作为生物材料使用了数十年,但仍未完全了解其三维行为,对材料的更好理解将使UHMWPE植入物组件的设计更加严格,从而使制造公司和制造商都受益。接受植入物的人。在人体温度为37°C时,UHMWPE是一种非线性粘弹性材料。这项研究的目的是测量UHMWPE随时间变化的力学行为,并建立一个具有代表性的三维本构模型。八项较早的粘性,分子和现象学本构模型进行了审查。两种时间相关的现象学模型,基于超应力的粘塑性(VBO)和伯恩斯坦-基斯利-扎帕斯粘弹性(BKZ),三种弹性分子模型,幻影网络,约束链,八链和门尼-里夫林,以及该评价包括三个通用弹性模型,四个参数单轴粘弹性,Ogden和Valanis-Landel模型。在25°C至55°C的温度范围内对圆柱形UHMWPE试样进行了拉伸-扭转单步应力松弛测试,测试的重点是37°C。然后使用除审查模型之外的分段线性函数来尝试描述从这些测试确定的实验材料行为。为等时应变能函数导数选择分段线性函数,并将其合并到三维BKZ粘弹性模型中。 Fortran编程语言用于实现该模型,并基于任意应变历史对应力进行数值求解。本文开发的模型经过本研究的测试验证,然后与恒定应变率单轴拉伸测试数据进行比较,并且能够预测在超高分子量聚乙烯中实验观察到的应力-应变行为。这是BKZ粘弹性材料理论在半结晶材料上的首次应用,并证明在所研究的应变范围内,BKZ材料模型是有效的选择。

著录项

  • 作者

    Rondinone, David Michael.;

  • 作者单位

    University of California, Berkeley.;

  • 授予单位 University of California, Berkeley.;
  • 学科 Mechanical engineering.;Biomedical engineering.
  • 学位 Ph.D.
  • 年度 2002
  • 页码 162 p.
  • 总页数 162
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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