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Model-Based Prognostic Techniques Applied to a Suspension System

机译:基于模型的预测技术在悬架系统中的应用

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摘要

Conventional maintenance strategies, such as corrective and preventive maintenance, are not adequate to fulfill the needs of expensive and high availability transportation and industrial systems. A new strategy based on forecasting system degradation through a prognostic process is required. The recent advances in model-based design technology have realized significant time savings in product development cycle. These advances facilitate the integration of model-based diagnosis and prognosis of systems, leading to condition-based maintenance and increased availability of systems. With an accurate simulation model of a system, diagnostics and prognostics can be synthesized concurrently with system design. In this paper, we develop an integrated prognostic process based on data collected from model-based simulations under nominal and degraded conditions. Prognostic models are constructed based on different random load conditions (modes). An Interacting Multiple Model (IMM) is used to track the hidden damage. Remaining-life prediction is performed by mixing mode-based life predictions via time-averaged mode probabilities. The solution has the potential to be applicable to a variety of systems, ranging from automobiles to aerospace systems.
机译:常规的维护策略,例如纠正性维护和预防性维护,不足以满足昂贵且高可用性的运输和工业系统的需求。需要一种基于通过预后过程预测系统退化的新策略。基于模型的设计技术的最新进展实现了产品开发周期中大量时间的节省。这些进步促进了基于模型的系统诊断和预后的集成,从而导致了基于状态的维护和系统可用性的提高。利用准确的系统仿真模型,可以与系统设计同时进行诊断和预测。在本文中,我们基于在名义和退化条件下从基于模型的模拟中收集的数据,开发了一个集成的预后过程。根据不同的随机载荷条件(模式)构建预测模型。交互多重模型(IMM)用于跟踪隐藏的损坏。剩余寿命预测是通过时间平均模式概率通过混合基于模式的寿命预测来执行的。该解决方案有可能适用于从汽车到航空航天系统的各种系统。

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