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Experimental Design and Validation of an Accelerated Random Vibration Fatigue Testing Methodology

机译:加速随机振动疲劳试验方法的实验设计与验证

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Novel accelerated random vibration fatigue test methodology and strategy are proposed, which can generate a design of the experimental test plan significantly reducing the test time and the sample size. Based on theoretical analysis and fatigue damage model, several groups of random vibration fatigue tests were designed and conducted with the aim of investigating effects of both Gaussian and non-Gaussian random excitation on the vibration fatigue. First, stress responses at a weak point of a notched specimen structure were measured under different base random excitations. According to the measured stress responses, the structural fatigue lives corresponding to the different vibrational excitations were predicted by using the WAFO simulation technique. Second, a couple of destructive vibration fatigue tests were carried out to validate the accuracy of the WAFO fatigue life prediction method. After applying the proposed experimental and numerical simulation methods, various factors that affect the vibration fatigue life of structures were systematically studied, including root mean squares of acceleration, power spectral density, power spectral bandwidth, and kurtosis. The feasibility of WAFO for non-Gaussian vibration fatigue life prediction and the use of non-Gaussian vibration excitation for accelerated fatigue testing were experimentally verified.
机译:提出了一种新的加速随机振动疲劳测试方法和策略,可以产生实验测试计划的设计,从而显着减少测试时间和样本量。基于理论分析和疲劳损伤模型,设计并进行了几组随机振动疲劳试验,旨在研究高斯和非高斯随机激励对振动疲劳的影响。首先,在不同的基础随机激励下测量了缺口试样结构的薄弱点处的应力响应。根据所测得的应力响应,使用WAFO模拟技术预测了与不同振动激励相对应的结构疲劳寿命。其次,进行了两次破坏性振动疲劳测试,以验证WAFO疲劳寿命预测方法的准确性。在应用提出的实验和数值模拟方法之后,系统地研究了影响结构振动疲劳寿命的各种因素,包括加速度的均方根,功率谱密度,功率谱带宽和峰度。实验验证了WAFO在非高斯振动疲劳寿命预测中的可行性以及在加速疲劳试验中使用非高斯振动激励的可行性。

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