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A methodology for phenomenological analysis of cumulative damage processes. Application to fatigue and fracture phenomena

机译:累积损伤过程的现象学分析方法。 应用于疲劳和骨折现象

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摘要

Sample functions, i.e., stochastic process realizations, are used to define cumulative damage phenomena which end into an observable terminal state or failure. The complexity inherent to such phenomena justifies the use of phenomenological models associated with the evolution of a physical magnitude feasible to be monitored during the test. Sample functions representing the damage evolution may be identified, once normalized to the interval [0,1], with cumulative distribution functions (cdfs), generally, of the generalized extreme value (GEV) family. Though usually only a fraction of the whole damage evolution, according to the specific problem handled, is available from the test record, the phenomenological models proposed allow the whole damage process to be recovered. In this way, down- and upwards extrapolations of the whole damage process beyond the scope of the experimental program are provided as a fundamental tool for failure prediction in the practical design. The proposed methodology is detailed and its utility and generality confirmed by its successive application to representative well-known problems in fatigue and fracture characterization. The excellent fittings, the physical interpretation of the model parameters and the good expectations to achieve a complete probabilistic analysis of these phenomena justify the interest of the proposed phenomenological approach with possible applications to other cumulative damage processes.
机译:样本功能,即随机过程实现,用于定义累积损伤现象,该现象结束了可观察到的终端状态或失败。这种现象固有固有的复杂性证明使用与在测试期间要监测的物理幅度的演化相关的现象学模型。可以识别代表损坏进化的示例函数,一旦归一化到间隔[0,1],通常会有累积分布函数(CDF),通常是广义极值(GEV)系列。虽然通常只有整个伤害演变的一小部分,但根据所处理的具体问题,可以从测试记录中获得,所提出的现象学模型允许恢复整个损伤过程。通过这种方式,整个损伤过程的下方和向上推断超出了实验程序范围的基本工具,用于实际设计中的故障预测。拟议的方法详细说明,其效用和普遍性地证实了其连续应用于疲劳和骨折表征中的众所周知的问题。优异的配件,模型参数的物理解释和实现对这些现象的完全概率分析的良好期望证明了所提出的现象方法对其他累积损伤过程的应用的利益。

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