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Finite element modeling of dynamic *impact and cornering fatigue of cast aluminum and forged magnesium road wheels.

机译:铸铝和锻造镁质车轮的动态冲击和转弯疲劳的有限元建模。

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摘要

Numerical investigation of wheel dynamic impact and cornering fatigue performance is essential to shorten design time, enhance mechanical performance, and lower development cost. This dissertation focused on two objectives. First, finite element models of the dynamic impact test on a wheel and tire assembly were developed, which considered the material inhomogeneity of the wheel. The model complexity and resultant additional analysis time led to the development of a simplified approach for wheel impact testing without the tired. Comparison of the numerical predictions with the experimental measurements of wheel impact indicated that an approximate 20% reduction of the initial striker kinetic energy provides an effective method for simplifying the numerical modeling. Second, numerical prediction of wheel cornering fatigue testing was considered. Two numerical prediction methods were applied to simulate wheel cornering fatigue testing. The first method utilizes a static stress analysis with different bending directions applied to the hub. The second approach uses a dynamic stress analysis with the application of a rotating bending moment applied to the hub. The fatigue performance of the wheel was evaluated based upon the results from both the static and dynamic stress analyses. Using a Goodman linear fatigue failure criterion for multiaxial stresses, both the equivalent alternating and mean components of the combined stresses as well as the safety factors of wheel fatigue design were determined. The elements with low factors of fatigue safety were identified either by boundary constraints or by geometric stress concentration. Experimental testing results verified the numerical predictions. A design modification was applied to the forged magnesium wheel to improve its fatigue performance.*.;*This dissertation is a compound document (contains both a paper copy and a CD as part of the dissertation).
机译:车轮动力冲击和转弯疲劳性能的数值研究对于缩短设计时间,增强机械性能和降低开发成本至关重要。本文主要针对两个目标。首先,开发了在车轮和轮胎组件上进行动态冲击测试的有限元模型,该模型考虑了车轮的材料不均匀性。模型的复杂性和随之而来的额外分析时间导致开发了一种简化的车轮冲击测试方法,而不会造成疲劳。将数值预测与车轮冲击的实验测量结果进行比较表明,初始撞针动能降低了约20%,为简化数值建模提供了一种有效的方法。其次,考虑了车轮转弯疲劳试验的数值预测。应用了两种数值预测方法来模拟车轮转弯疲劳试验。第一种方法利用静态应力分析,将不同的弯曲方向应用于轮毂。第二种方法是使用动态应力分析,并在轮毂上施加旋转弯矩。根据静态和动态应力分析的结果评估车轮的疲劳性能。使用针对多轴应力的Goodman线性疲劳破坏准则,确定了组合应力的等效交变分量和均值分量以及车轮疲劳设计的安全系数。通过边界约束或几何应力集中来确定疲劳安全系数低的元素。实验测试结果验证了数值预测。对锻造的镁制轮毂进行了设计修改,以改善其疲劳性能。*。*本论文是复合文件(论文包含纸质副本和CD)。

著录项

  • 作者

    Shang, Shixian (Robert).;

  • 作者单位

    University of Windsor (Canada).;

  • 授予单位 University of Windsor (Canada).;
  • 学科 Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 284 p.
  • 总页数 284
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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