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FUZZY EXPERT SYSTEMS FOR THE DIAGNOSIS OF COMPONENT AND SENSOR FAULTS IN COMPLEX ENERGY SYSTEMS

机译:模糊专家系统,用于复杂能量系统中的组件和传感器故障的诊断

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Locating the causes of malfunctions in complex energy systems is an extremely difficult task, since more than one fault mode may produce similar and possibly undistinguishable patterns of effects. This paper shows how fuzzy expert systems can exploit the available measurements from the data acquisition system to identify different component and sensor fault modes. Real sensor data (mass flow rates, pressures, temperatures, and key operating parameters) are compared to the expected values of the same quantities that are calculated using numerical models of local subsystems. This comparison simply determines if the differences between measured and expected values are "negative ", "zero " or "positive " in fuzzy logic terms. The final objective is to verify the existence of some patterns of these attributes that uni-vocally identify the considered fault modes. These patterns are then implemented as the set of rules forming the knowledge base of a fuzzy expert system. The proposed diagnostic methodology is tested on the gas section of a real combined-cycle cogeneration plant and the effect of measurement noise is also discussed.
机译:定位复杂能量系统中的故障原因是一个极其困难的任务,因为多于一个故障模式可能产生类似的和可能不可区分的效果模式。本文显示了模糊专家系统如何利用数据采集系统的可用测量来识别不同的组件和传感器故障模式。真实的传感器数据(质量流量,压力,温度和键操作参数)与使用当地子系统的数值模型计算的相同数量的预期值进行比较。这种比较简单地确定了测量值和预期值之间的差异是模糊逻辑术语中的“否定”,“零”或“正”。最终目标是验证无论是统计所考虑的故障模式的这些属性的某些模式的存在。然后实现这些模式作为形成模糊专家系统的知识库的规则集。所提出的诊断方法在真正的循环循环植物的气体部分上测试,并且还讨论了测量噪声的效果。

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