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A novel probabilistic approach for damage localization and prognosis including temperature compensation

机译:一种新颖的概率方法,用于损伤定位和预后,包括温度补偿

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The development of a reliable structural damage prognostics framework, which can accurately predict the fatigue life of critical metallic components subjected to a variety of in-service loading conditions, is important for many engineering applications. In this article, a novel integrated structural damage localization method is developed for prediction of cracks in aluminum components. The proposed methodology combines a physics-based prognosis model with a data-driven localization approach to estimate the crack growth. Specifically, particle filtering is used to iteratively combine the predicted crack location from prognostic model with the estimated crack location from localization algorithm to probabilistically estimate the crack location at each time instant. At each time step, the crack location predicted by the prognosis model is used as a priori knowledge (dynamic prior) and combined with the likelihood function of the localization algorithm for accurate crack location estimation. For improving the robustness of the localization framework, online temperature estimation is carried out. The model is validated using experimental data obtained from fatigue tests preformed on an Al2024-T351 lug joint. The results indicate that the proposed method is capable of tracking the crack length with an error of less than 1 mm for the majority of the presented cases.
机译:对于许多工程应用而言,可靠的结构损伤预测框架的开发非常重要,该框架可以准确地预测关键金属部件在各种使用载荷条件下的疲劳寿命。在本文中,开发了一种新颖的整体结构损伤定位方法,用于预测铝部件中的裂纹。所提出的方法将基于物理的预测模型与数据驱动的定位方法相结合,以估计裂纹扩展。具体而言,粒子滤波用于将预测模型中的预测裂纹位置与定位算法中的估计裂纹位置进行迭代组合,以概率地估计每个时刻的裂纹位置。在每个时间步上,将预测模型预测的裂纹位置用作先验知识(动态先验知识),并与定位算法的似然函数结合以进行准确的裂纹位置估计。为了提高定位框架的鲁棒性,进行了在线温度估算。使用从在Al2024-T351凸耳接头上进行的疲劳测试获得的实验数据验证了该模型。结果表明,在大多数情况下,所提出的方法能够以小于1 mm的误差跟踪裂纹长度。

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