基于约束卡尔曼滤波的风力发电机传感器故障检测与隔离

Essam Nabil, Abdel-Azem Sobaih, B. Abou-Zalam
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引用次数: 4

摘要

可靠性、生存能力、成本效率和高性能是现代风力涡轮机在能源市场上具有竞争力的必要条件。本文设计了一种可行的基于模型的故障检测与隔离(FDI)技术,用于检测水平轴标准现代风力机基准模型的不同传感器故障场景。本文提出了一种基于模型的故障检测与隔离(FDI)技术,该技术通过使用一组约束卡尔曼滤波器来深入了解过程行为,然后在存在系统干扰和随机噪声的情况下估计故障传感器的有效因子。在4.8 MW变转速变桨距风力发电机组上的仿真结果验证了该方案的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Constrained Kalman filter based detection and isolation of sensor faults in a wind turbine
Reliability, Survivability, Cost efficiency and high performance are required for modern wind turbines to be competitive within the energy market. In this paper, a viable model-based fault detection and isolation (FDI) technique is designed to detect different sensor fault scenarios of the benchmark model of horizontal-axis standard modern wind turbines. A model-based fault detection and isolation (FDI) technique is developed with deeper insight into the process behavior by using a set of constrained Kalman filters, and then estimating the effectiveness factor for the faulty sensor in the presence of system disturbances and random noise. The effectiveness of the proposed scheme has justified by simulation result on a 4.8 MW, variable-speed, variable-pitch wind turbine model.
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