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Research on a Model of the Residual Life Prediction for Condition-based Maintenance

机译:基于状态维护的剩余寿命预测模型研究

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In condition-based maintenance practice, one of the primary concerns of maintenance managers is how long a monitored item can still survive given condition monitoring information up to date. Once such a model of the residual life is constructed, sequential maintenance decision-making model is readily set up to aid decision-making. The paper reports a model to predict the residual life distribution of a monitored item based on the measured condition monitoring history information up to date. The residual life of a monitored item can''t be described directly by the measured condition monitoring information, but is assumed to correlate with it stochastically. The stochastic filtering theory is applied to establish the relationship between the unobservable residual life of a monitored item and available condition monitoring history information up to date. The model is relevant to a large class of condition monitoring techniques currently used in industry. Not only does the model make the most of all available condition monitoring history information up to date, but also the modeling process is dynamic, and whenever a new piece of information becomes available, the conditional distribution of the residual life will be updated. Method of estimating the parameters in the model is also discussed. A case example is presented to illustrate the modeling ideas
机译:在基于状态的维护实践中,维护管理人员最关心的问题之一是,在给定的状态监视信息最新的情况下,被监视的项目仍可以存活多长时间。一旦建立了这样的剩余寿命模型,就可以轻松建立顺序维护决策模型来辅助决策。本文报告了一个模型,该模型可根据最新的测量状态监视历史信息来预测监视项的剩余寿命分布。被监视项目的剩余寿命不能直接由所测量的状态监视信息来描述,而是被假定为与其随机相关。随机过滤理论被用于建立被监视项目的不可观察的剩余寿命和最新的可用状态监视历史信息之间的关系。该模型与当前行业中使用的大量状态监视技术有关。该模型不仅使最新的所有可用状态监测历史信息都得到最大程度的利用,而且建模过程是动态的,并且只要有新的信息可用,剩余寿命的条件分布就将得到更新。还讨论了估计模型中参数的方法。给出了一个案例示例来说明建模思想

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