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Structural health monitoring of nonlinear beam under combined translational and rotational vibration.

机译:平移和旋转振动联合作用下非线性梁的结构健康监测。

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摘要

This study presents a nonlinear dynamic methodology for detecting fatigue damage precursor in an isotropic metallic cantilever beam exposed to harmonic transverse, rotation or combined -- transverse and rotation -- base excitations. The methodology accounts for important dynamic nonlinearities due to the complex loading generated by uniaxial and multiaxial nonlinear oscillations. These nonlinearities include: 1) structural stiffening due to gyroscopic motion and high-response amplitude at the structure fundamental mode, 2) structural softening due to inertial forces and gyroscopic loads, and localized evolution in the material microstructure due to fatigue damage and 3) cross-axis coupling due to multiaxial loading. The loading intensity and number of vibration cycles intensified these nonlinearities. The damage precursor feature is acquired by quantifying the reduction in the nonlinear stiffness term in the equation of motion due to localized evolution in the material micromechanical properties at high stress concentration regions. Nanoindentation studies near high stress concentration sites confirmed the evolution in the local micromechanical properties, as a function of loading cycles. The nonlinear analytical approach tracks the degradation in the structural stiffness as a function of the nonlinear dynamic response for the uniaxial transverse or rotation base excitation. The change in the dynamic response due to damage precursor is captured experimentally. The nonlinear stiffness terms are found to be sensitive to fatigue damage precursor for translational or rotational excitation. Therefore, the nonlinear stiffness sensitivity to fatigue damage precursor appeared to be a promising metric for structural health monitoring applications. This method is applicable to a cantilever beam only. Additional investigations will be required to extend its applicability to more complex structures.;For the combined transverse and rotation base excitation, the experimental and analytic results demonstrated the importance of cross-axis coupling. The Experiments are performed using a unique multiaxial electrodynamic shaker with high controllability of phase and base excitation frequencies. The analytical model captures the modulation in the nonlinear dynamic response behavior seen in the experiments as a function of cross-axis coupling and the phase relation between the axes. Although the model is successful in capturing these general trends, it does not agree with the beam deflection absolute values obtained from the experiments. The discrepancy is due to fatigue damage accumulation during the experiments, which is manifested by a shift in the resonance frequency and an increase in the response amplitude.
机译:这项研究提出了一种非线性动力学方法,用于检测各向同性金属悬臂梁中受到谐波横向,旋转或组合-横向和旋转-基础激励的疲劳损伤前体。由于单轴和多轴非线性振荡产生的复杂载荷,该方法考虑了重要的动态非线性。这些非线性包括:1)由于陀螺运动和结构基本模式下的高响应振幅而引起的结构硬化,2)由于惯性力和陀螺载荷而导致的结构软化,以及由于疲劳损伤而导致的材料微观结构的局部演化,以及3)交叉。多轴载荷导致轴耦合。载荷强度和振动循环次数加剧了这些非线性。通过量化运动方程中由于刚体在高应力集中区域的材料微机械性能的局部演化而引起的非线性刚度项的减小,来获得损伤前体特征。在高应力集中点附近的纳米压痕研究证实了局部微机械性能随加载周期的变化。非线性分析方法根据单轴横向或旋转基础激励的非线性动力响应来跟踪结构刚度的下降。实验性地记录了由于损坏前体引起的动态响应的变化。发现非线性刚度项对平移或旋转激励的疲劳损伤先兆敏感。因此,对疲劳损伤前体的非线性刚度敏感性似乎是用于结构健康监测应用的有前途的指标。此方法仅适用于悬臂梁。将需要进一步的研究以将其扩展到更复杂的结构中。对于组合的横向激励和旋转激励,实验和分析结果证明了横轴耦合的重要性。实验是使用独特的多轴电动振动器进行的,该振动器具有很高的相位和基本激励频率可控性。该分析模型捕获了实验中看到的非线性动态响应行为中的调制,该调制是横轴耦合和轴之间的相位关系的函数。尽管该模型成功地捕获了这些总体趋势,但它与从实验中获得的光束偏转绝对值不一致。差异是由于实验过程中的疲劳损伤积累而引起的,其表现为共振频率的偏移和响应幅度的增加。

著录项

  • 作者

    Habtour, Ed.;

  • 作者单位

    University of Maryland, College Park.;

  • 授予单位 University of Maryland, College Park.;
  • 学科 Mechanical engineering.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 329 p.
  • 总页数 329
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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