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Real-time fault diagnosis using knowledge-based expert system

机译:使用基于知识的专家系统进行实时故障诊断

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摘要

Abnormal operating conditions (faults) cost process industry billons of dollars per year and can be prevented if they are predicted and controlled in advance. Advanced software applications, based on the expert system, has the potential to assist engineers in monitoring, detecting, and diagnosing abnormal conditions and thus providing safe guards against these unexpected process conditions. Abnormal operating conditions (faults) could be modeled and predicted with high confidence using software applications. A wide range of fault diagnosis methods exist which may be used to design safety systems. Due to the increased process complexity and possible instability in the operating conditions, the existing control systems have limited ability to provide practical assistance to both operators and engineers. This paper proposes a knowledge-based fault diagnosis method, which uses the valuable knowledge from the experts and operators, as well as realtime data from a variety of sensors. Fuzzy logic is also used to make inferences based on the acquired information (real-time data) and the knowledge. A computer-aided tool based on proposed methodology is developed on the platform of G2 expert shell using GDA (G2 Diagnostic Assistant) components. Performance of the methodology is verified using both industrial and simulated data.
机译:异常的操作条件(故障)每年在加工行业中花费数十亿美元,如果提前进行预测和控制,则可以避免。基于专家系统的高级软件应用程序有可能协助工程师监视,检测和诊断异常情况,从而为这些意外过程情况提供安全防护。可以使用软件应用程序以高可信度对异常运行状况(故障)进行建模和预测。存在多种可用于设计安全系统的故障诊断方法。由于增加的过程复杂性和操作条件中可能的不稳定,现有的控制系统在为操作员和工程师提供实际帮助方面的能力有限。本文提出了一种基于知识的故障诊断方法,该方法利用了专家和操作员的宝贵知识以及各种传感器的实时数据。模糊逻辑还用于基于获取的信息(实时数据)和知识进行推理。在基于G2专家外壳的平台上,使用GDA(G2诊断助手)组件开发了一种基于建议方法的计算机辅助工具。使用工业和模拟数据验证了该方法的性能。

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