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Vibration fault detection and classifaction based on the fft and fuzzy logic

机译:基于fft和模糊逻辑的振动故障检测与分类

摘要

Vibration fault exhibit a multifaceted and nonlinear behavior generation in rotated machines, for example in a steam turbine (ST). Vibration fault (VF) is collectedin the form of acceleration, velocity, and displacement via the vibration sensor. This fault damages the turbines if it strays into the danger zone. This paper first models the VF in a time domain to transfer the frequency domain via an FFT technique. The signals were applied to the fuzzy system to be used by the VF for classification via sugeno and mamdani Fuzzy Inference System (FIS) to generate the signal that will reflect the VF in the event it is embedded into the protection system. The Membership Function (MF) sets depends on practical work in a power plant, and the ISO is interested in ST vibration zones. The outcomes of the sugeno fuzzy property is the generation of stable and usable signals that can be used within the protection system, mostly owing to its efficiency in detecting vibrational faults. The results from this work can be utilized to prevent VF from generating on ST via increased processing that will feed signals for ST controls.
机译:振动故障在旋转的机器中(例如在汽轮机(ST)中)表现出多方面的非线性行为。通过振动传感器以加速度,速度和位移的形式收集振动故障(VF)。如果该故障误入危险区域,则会损坏涡轮机。本文首先在时域中对VF建模,以通过FFT技术转移频域。信号通过sugeno和mamdani模糊推理系统(FIS)应用于VF进行分类的模糊系统,以生成信号,该信号将在嵌入保护系统时反映VF。隶属度函数(MF)的设置取决于电厂的实际工作,而ISO对ST振动区域感兴趣。 sugeno模糊特性的结果是可以在保护系统内使用稳定且可用的信号,这主要是由于其检测振动故障的效率。这项工作的结果可以用来防止VF通过增加为ST控制提供信号的处理而在ST上生成。

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