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A Review on Fault Prognostics in Integrated Health Management

机译:综合健康管理中的故障预测综述

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Integrated Health Management (IHM) is an advanced technology which integrated artificial intelligence with advanced test and information technologies. Having gone through fault detection, isolation and reconfiguration and immerged with the state of arts reasoning technologies, IHM monitors and controls the function of critical systems and components in order to ensure safe and efficient operation. An IHM system usually comprises seven functional modules, namely data acquisition, signal/feature extraction, condition assessment, diagnostics, prognostics, decision reasoning and human interface. Among them, fault prognostics are not only the core of IHM, but also an important guarantee to reduce the costs of life-cycle maintenance, and to improve system security. Fault prognostics is the process to project the current health state of equipment into the future taking into account estimates of future usage profiles. It may report health status at a future time, or may estimate the remaining useful lifetime (RUL) of a machine given its projected usage profile. In recent years, fault prognostics are under unprecedented attentions. And it is becoming the most challenging research area which is so-called crystal ball of IHM. Based on the theory, methods and routes adopted in the practical application, fault prognostics is generally fallen into three main categories, namely model-based approaches, knowledge-based approaches and data-based approaches. Then, based on the analysis of some typical applications on each approaches, the strengths and weaknesses of each approach are further discussed. Finally, according to the current research situation at home and abroad, the future development trend of fault prognostics is also presented.
机译:综合健康管理(IHM)是一种先进的技术,综合人工智能,具有先进的测试和信息技术。通过故障检测,隔离和重新配置,并突出了艺术推理技术,IHM监视器并控制关键系统和组件的功能,以确保安全有效的操作。 IHM系统通常包含七个功能模块,即数据采集,信号/特征提取,条件评估,诊断,预测,决策和人为界面。其中,故障预测不仅是IHM的核心,而且是降低生命周期维护成本的重要保障,并提高系统安全性。故障预测是将当前健康状况投入到未来的过程中,考虑到未来使用简介的估计。它可能会在未来的时间内报告健康状况,或者可以估计给出预计使用配置文件的机器的剩余使用寿命(RUL)。近年来,故障预测处于前所未有的关注。它正在成为最具挑战性的研究区,这是IHM所谓的水晶球。基于实际应用中采用的理论,方法和路线,故障预测通常落入三个主要类别,即基于模型的方法,基于知识的方法和基于数据的方法。然后,基于对每种方法的一些典型应用的分析,进一步讨论了每种方法的强度和弱点。最后,根据国内外目前的研究情况,还提出了故障预测的未来发展趋势。

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