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Real time high cycle fatigue estimation algorithm and load history monitoring for vehicles by the use of frequency domain methods

机译:利用频域方法的车辆实时高周疲劳估计算法及负荷历史监控

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Real time high cycle fatigue estimation problem for vehicles is examined by the use of frequency domain methods. The purpose was twofold: monitoring of fatigue damage and tracking of load history in real time. Firstly, power spectral density functions (PSDs) of acceleration measurement at a selected location are calculated in a piecewise manner by dividing the acceleration-time history into pieces. Following, Frequency Response Functions (FRF's), whose outputs are the absolute maximum principal stress values at selected components, are calculated by finite element methods to account for multiaxial stress state in fatigue life estimations. Then, fatigue damage intensity at selected output locations is estimated using the FRF results. To this end, the following frequency domain fatigue estimation methods (FDFEMs) proposed for Gaussian and stationary data sets are applied to the selected components of a heavy duty truck: narrow-band approximation, Tovo and Benasciutti, Zhao and Baker, Dirlik and Tovo's alpha(0.75) methods. Gaussianity and stationarity of acceleration-time data set used to estimate fatigue life of a component is checked to ensure the validity of FDFEMs. Numerical results are compared with experimental fatigue lives and damage calculations in time domain made by the combination of rainbow counting and Miner-Palmgren rules. There are two difficulties in implementing this approach using on-board equipment in real time such as overcoming the limited memory to store data sets and completing the computations sufficiently fast. To overcome them, the proposed approach is implemented in a piecewise manner and associated normalized PSDs are updated accordingly. Then, spectral moments and damage intensities are calculated in frequency domain. Implementation of the proposed approach is described in detail and numerical results are presented. It is shown that the proposed approach is able to predict the fatigue damage accurately and can keep track of loading conditions in real time. (C) 2018 Elsevier Ltd. All rights reserved.
机译:通过使用频域方法来检查车辆的实时高周疲劳估计问题。目的是双重的:监视疲劳损伤并实时跟踪载荷历史。首先,通过将加速时间历史分为几段,以分段方式计算出在选定位置的加速度测量的功率谱密度函数(PSD)。接下来,通过有限元方法计算出频率响应函数(FRF),其输出是所选组件上的绝对最大主应力值,以考虑疲劳寿命估计中的多轴应力状态。然后,使用FRF结果估算选定输出位置的疲劳损伤强度。为此,针对高斯和固定数据集提出的以下频域疲劳估计方法(FDFEM)被应用于重型卡车的选定组件:窄带近似,Tovo和Benasciutti,Zhao和Baker,Dirlik和Tovo的alpha (0.75)方法。检查用于估计组件疲劳寿命的加速时间数据集的高斯性和平稳性,以确保FDFEM的有效性。将数值结果与通过彩虹计数和Miner-Palmgren规则相结合的时域实验疲劳寿命和损伤计算进行了比较。使用车载设备实时实施此方法存在两个困难,例如克服有限的内存来存储数据集和足够快地完成计算。为了克服它们,以分段方式实施所提出的方法,并相应地更新相关的归一化PSD。然后,在频域中计算谱矩和破坏强度。详细介绍了该方法的实现,并给出了数值结果。结果表明,该方法能够准确预测疲劳损伤,并能实时跟踪载荷情况。 (C)2018 Elsevier Ltd.保留所有权利。

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