柔性结构早期疲劳信号的高灵敏度非线性辨识

IF 2 Q2 ENGINEERING, MULTIDISCIPLINARY
E. Habtour, D. D. Maio, Thijs Masmeijer, Laura Cordova Gonzalez, T. Tinga
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引用次数: 3

摘要

本研究描述了一种基于物理和数据驱动的非线性系统识别(NSI)方法,用于检测振动载荷引起的早期疲劳损伤。该方法还允许实时跟踪损伤的演变。非线性几何刚度等参数,立方阻尼,和相角变化可以估计疲劳周期的函数,通过实验演示了使用灵活7075 - t6铝合金结构暴露于振动。NSI用于创建和更新非线性频响函数、主干曲线和相位轨迹,以可视化和估计结构的健康状况。结果表明,动态阶段更敏感比非线性疲劳损伤早期的进化参数几何刚度和立方阻尼等参数。采用改进的Carrella-Ewins方法从非线性信号响应中计算主干,与数值和谐波平衡结果吻合较好。相位跟踪方法,来检测损伤后大约有40%的疲劳寿命,而几何刚度和立方阻尼参数能够检测疲劳损伤后大约50%的生命周期。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Highly Sensitive Nonlinear Identification to Track Early Fatigue Signs in Flexible Structures
This study describes a physics-based and data-driven nonlinear system identification (NSI) approach for detecting early fatigue damage due to vibratory loads. The approach also allows for tracking the evolution of damage in real-time. Nonlinear parameters such as geometric stiffness, cubic damping, and phase angle shift can be estimated as a function of fatigue cycles, which are demonstrated experimentally using flexible aluminum 7075-T6 structures exposed to vibration. NSI is utilized to create and update nonlinear frequency response functions, backbone curves and phase traces to visualize and estimate the structural health. Findings show that the dynamic phase is more sensitive to the evolution of early fatigue damage than nonlinear parameters such as the geometric stiffness and cubic damping parameters. A modified Carrella–Ewins method is introduced to calculate the backbone from nonlinear signal response, which is in good agreement with the numerical and harmonic balance results. The phase tracing method is presented, which appears to detect damage after approximately 40% of fatigue life, while the geometric stiffness and cubic damping parameters are capable of detecting fatigue damage after approximately 50% of the life-cycle.
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来源期刊
CiteScore
3.80
自引率
9.10%
发文量
25
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