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A neural network application for reliability modelling and condition-based predictive maintenance

机译:神经网络在可靠性建模和基于状态的预测维护中的应用

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摘要

Traditionally, decisions on the use of machinery are based on previous experience, historical data and common sense. However, carrying out an effective predictive maintenance plan, information about current machine conditions must be made known to the decision-maker. In this paper, a new method of obtaining maintenance information has been proposed. By integrating traditional reliability modelling techniques with a real-time, online performance estimation model, machine reliability information such as hazard rate and mean time between failures can be calculated. Essentially, this paper presents an innovative method to synthesise low level information (such as vibration signals) with high level information (like reliability statistics) to form a rigorous theoretical base for better machine maintenance.
机译:传统上,使用机器的决定是基于以前的经验,历史数据和常识。但是,在执行有效的预测性维护计划时,决策者必须了解有关当前机器状况的信息。本文提出了一种获取维护信息的新方法。通过将传统的可靠性建模技术与实时的在线性能评估模型相集成,可以计算出机器可靠性信息,例如危险率和平均故障间隔时间。本质上,本文提出了一种创新的方法,可以将低水平信息(例如振动信号)与高水平信息(例如可靠性统计信息)进行综合,以形成严格的理论基础,以更好地维护机器。

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