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Characterization and sensitivity analysis of hyperelastic materials in biaxial tension.

机译:双轴拉伸中超弹性材料的表征和敏感性分析。

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摘要

The focus of this study was to improve characterization of hyperelastic materials in biaxial tension through improved design and validation of an existing test fixture and specimen geometry. Additionally, a sensitivity analysis of the material properties to variations in selected test parameters was conducted to better understand material response.;Misalignment and binding in the original tensile test fixture resulted in non-equibiaxial loading and inaccurate stress-strain data. Analysis and modification were required to improve accuracy and repeatability. Vector analysis of the link system and the Minimum Constraint Design method were used to achieve this aim. Based on a proposed set of criteria, a FE analysis was conducted on several biaxial specimen geometries to determine the best shape and scale for obtaining stress and strain data. A stress decay factor (SDF) is proposed to predict internal stresses from measurable data. A test method has been designed around the use of the SDF and was ultimately applied to a cruciform specimen geometry. In addition to the ideal equibiaxial case, numerical simulations have been perturbed in two ways. The first variation involved a specimen gripped clamps offset by up to half the width of the clamp. The second variation involved non-equibiaxial load ratios ranging from 0.85 to 1.15. The goal was to quantify the change in stress-strain response to slight deviations from ideal loading conditions.;Binding has been eliminated from the test fixture and a 1:1 load ratio has been achieved. The new specimen experiences less stress decay while achieving greater experimental strain. A high sensitivity to non-equibiaxial load ratios and low sensitivity to clamp offset are seen in the test parameter analysis. Finally, results from the SDF correction material characterization method is compared with results from an inflated boiling flask geometry.
机译:这项研究的重点是通过改进设计和对现有测试夹具和样品几何形状的验证来改善双轴拉伸中超弹性材料的特性。此外,对材料特性对所选测试参数变化的敏感性进行了分析,以更好地理解材料响应。原始拉伸测试夹具中的未对准和粘结导致非等轴加载和不准确的应力应变数据。需要进行分析和修改以提高准确性和可重复性。使用链接系统的矢量分析和最小约束设计方法来实现此目标。基于一组建议的标准,对几种双轴试样几何形状进行了有限元分析,以确定获得应力和应变数据的最佳形状和尺度。提出了一种应力衰减因子(SDF),用于根据可测量的数据预测内部应力。已经围绕SDF的使用设计了一种测试方法,并最终将其应用于十字形试样几何形状。除了理想的等双轴情况外,还通过两种方式干扰了数值模拟。第一个变化涉及样品夹持夹具,其偏移量最多可达夹具宽度的一半。第二种变化涉及非等轴载荷比,范围为0.85至1.15。目的是量化应力-应变响应与理想载荷条件之间的微小偏差的变化。;已从测试夹具中消除了约束力,并实现了1:1的载荷比。新样品在达到较大实验应变的同时应力衰减较小。在测试参数分析中,可以看到对非等轴载荷比的高灵敏度和对钳位偏移的低灵敏度。最后,将SDF校正材料表征方法的结果与充气烧瓶几何形状的结果进行比较。

著录项

  • 作者

    Smoger, Lowell M.;

  • 作者单位

    Rochester Institute of Technology.;

  • 授予单位 Rochester Institute of Technology.;
  • 学科 Engineering Biomedical.;Engineering Mechanical.
  • 学位 M.S.
  • 年度 2010
  • 页码 112 p.
  • 总页数 112
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 公共建筑;
  • 关键词

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