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Statistical Optimisation Techniques in Fatigue Signal Editing Problem

机译:疲劳信号编辑问题的统计优化技术

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摘要

Success in fatigue signal editing is determined by the level of length reduction without compromising statistical constraints. A great reduction rate can be achieved by removing small amplitude cycles from the recorded signal. The long recorded signal sometimes renders the cycle-to-cycle editing process daunting. This has encouraged researchers to focus on the segment-based approach. This paper discusses joint application of the Running Damage Extraction (RDE) technique and single constrained Genetic Algorithm (GA) in fatigue signal editing optimisation.. In the first section, the RDE technique is used to restructure and summarise the fatigue strain. This technique combines the overlapping window and fatigue strain-life models. It is designed to identify and isolate the fatigue events that exist in the variable amplitude strain data into different segments whereby the retention of statistical parameters and the vibration energy are considered. In the second section, the fatigue data editing problem is formulated as a constrained single optimisation problem that can be solved using GA method. The GA produces the shortest edited fatigue signal by selecting appropriate segments from a pool of labelling segments. Challenges arise due to constraints on the segment selection by deviation level over three signal properties, namely cumulative fatigue damage, root mean square and kurtosis values. Experimental results over several case studies show that the idea of solving fatigue signal editing within a framework of optimisation is effective and automatic, and that the GA is robust for constrained segment selection.
机译:疲劳信号编辑中的成功由长度降低的水平决定而不损害统计约束。通过从记录的信号中移除小幅度周期,可以实现巨大的减少率。长记录信号有时会使周期到周期的编辑过程令人生畏。这鼓励研究人员专注于基于分段的方法。本文讨论了疲劳信号编辑优化中运行损伤(RDE)技术和单约束遗传算法(GA)的联合应用。在第一部分中,RDE技术用于重组和总结疲劳菌株。该技术结合了重叠的窗口和疲劳应变寿命模型。它旨在识别和将在可变幅度应变数据中存在的疲劳事件识别和分离成不同的段,由此考虑统计参数和振动能量的保留。在第二部分中,疲劳数据编辑问题被制定为可以使用GA方法解决的约束单优化问题。通过从标记段池中选择合适的段,GA产生最短的疲劳信号。由于在三个信号特性上偏差水平,即累积疲劳损伤,根均值和峰值值,因此由于对段选择的约束而产生的挑战产生。在几个案例研究中的实验结果表明,在优化框架内解决疲劳信号编辑的思想是有效的,自动的,并且GA对受限段选择具有鲁棒性。

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