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Two-dimensional finite element analysis of oblique impact problems with friction.

机译:斜向摩擦问题的二维有限元分析。

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摘要

A two-dimensional finite element procedure for oblique impact analyses with friction is developed, employing Coulomb's friction law. Proportional material damping is implemented into the finite element procedure to model real engineering materials more accurately, as well as to attenuate the spurious high-frequency oscillations in finite element solutions. The classical discrete impact and release conditions are modified to include additional material damping terms. A two-step, iterative approach is developed to consider the impact conditions of sliding contact nodes when damping exists. A finite element program CIFE has been established for contact-impact analyses. Several static and dynamic numerical examples have been solved to illustrate the accuracy and reliability of the finite element procedure.;Dispersion properties of one-dimensional, constant strain, finite element discretizations are investigated by using the complex variable method. A general form of dispersion relation has been derived in which both the spatial and temporal discretizations are taken into account. The possible sources of spurious wave components in impact analysis are discussed. The frequency response functions of finite element meshes are shown to be very useful to reveal the physical essence of the wave front dispersion and spurious oscillations caused by finite element spatial discretizations. In order to expose the effect of the spatial discretization alone, the modal superposition method is employed to integrate the discretized equations of motion. It is found that the non-dimensional stress distribution depends only on the percentage of modes which are included in the modal superposition method and the number of elements through which the stress wave has propagated. It is also found that the amplitude of the spurious oscillations cannot be reduced by using a finer mesh.
机译:利用库仑摩擦定律,开发了一种用于斜向摩擦分析的二维有限元程序。比例材料阻尼被应用到有限元程序中,以更精确地对真实的工程材料建模,以及衰减有限元解决方案中的虚假高频振荡。对经典的离散冲击和释放条件进行了修改,以包括其他材料阻尼项。开发了一种两步迭代方法来考虑存在阻尼时滑动接触节点的冲击条件。建立了有限元程序CIFE,用于接触碰撞分析。数值算例表明了有限元程序的准确性和可靠性。通过复杂变量方法研究了一维,恒定应变,有限元离散化的色散特性。导出了色散关系的一般形式,其中考虑了空间和时间离散。讨论了影响分析中杂散波分量的可能来源。结果表明,有限元网格的频率响应函数对于揭示波前频散的物理本质以及由有限元空间离散化引起的寄生振荡非常有用。为了单独暴露空间离散化的影响,采用模态叠加方法对离散化的运动方程进行积分。发现无量纲应力分布仅取决于模态叠加方法中包含的模态百分比和应力波通过其传播的元素数量。还发现,通过使用更精细的网格不能减小寄生振荡的幅度。

著录项

  • 作者

    Jiang, Lei.;

  • 作者单位

    University of New Brunswick (Canada).;

  • 授予单位 University of New Brunswick (Canada).;
  • 学科 Mechanical engineering.
  • 学位 Ph.D.
  • 年度 1989
  • 页码 1 p.
  • 总页数 1
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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