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SCADA-data-based wind turbine fault detection: A dynamic model sensor method

机译:基于SCADA数据的风力涡轮机故障检测:动态模型传感器方法

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Fault detection based on data from the supervisory control and data acquisition (SCADA) system, which has been installed in most MW-scale wind turbines, has brought significant benefits for wind farm operators. However, the changes in the features of hardware sensor measurements, which are used in current SCADA systems, often cannot provide reliable early alarms. In order to resolve this problem, in this paper, a novel dynamic model sensor method is proposed for the SCADA data based wind turbine fault detection. A dynamic model representing the relationship between the generator temperature, wind speed, and ambient temperature is derived following the first principles and used as the basic structure of the model sensor. When the model sensor is applied for fault detection, its parameters are updated regularly using the generator temperature, wind speed, and ambient temperature data from the SCADA system. Then, from the updated model, the fault sensitive features of wind turbine system are extracted via performing system frequency analysis and used for the turbine fault detection. This novel model sensor method is applied to the SCADA data of a wind farm of 3 wind turbines currently operating in Spain. The results show that the proposed method can not only detect the turbine generator fault but also reveal the trend of ageing with the wind turbine generator, demonstrating its capability of failure prognosis for wind turbine system and components.
机译:基于来自大多数MW级风力涡轮机安装的监控和数据采集(SCADA)系统的故障检测已安装在大多数MW级风力涡轮机中,为风电场运营商带来了显着的益处。但是,在当前SCADA系统中使用的硬件传感器测量功能的变化通常不能提供可靠的早期报警。为了解决这个问题,在本文中,提出了一种新型动态模型传感器方法,用于基于SCADA数据的风力涡轮机故障检测。一种动态模型,代表发电机温度,风速和环境温度与环境温度之间的关系,通过第一原理推导出来,用作模型传感器的基本结构。当型号传感器应用于故障检测时,其参数定期使用来自SCADA系统的发电机温度,风速和环境温度数据进行更新。然后,从更新的模型中,通过执行系统频率分析并用于涡轮机故障检测,提取风力涡轮机系统的故障敏感特征。这种新颖的模型传感器方法应用于目前在西班牙运营的3个风力涡轮机的风电场的SCADA数据。结果表明,该方法不仅可以检测涡轮发电机故障,还可以揭示带风力涡轮机发生器老化的趋势,证明了其对风力涡轮机系统的故障预后能力的能力。

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