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A vision-based fault diagnosis system for heliostats in a central receiver solar power plant

机译:中央接收器太阳能发电厂中基于定日镜的基于视觉的故障诊断系统

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This paper presents an automatic heliostats fault detection and diagnosis system using machine vision techniques and common CCD devices for a solar power plant. The heliostats of a solar power plant reflect solar radiation onto a receiver placed at the top of a tower in order to provide a desired energy flux distribution correlated with the coolant flow through the receiver, usually in an open loop control configuration. Each heliostat maintains reflection of the moving sun onto the receiver. A long time running will make the mechanical components which control the heliostat to modify the azimuth angle and pitch angle break down, so the heliostats cannot reflect sunlight to the receiver or even stop working. In a large power plant, there may be hundreds to hundreds of thousands of heliostats which will increase the complexity of manually recognizing and detecting which heliostat is fault or broken-down. Each heliostat can be equipped with sensors or some other equipment to detect whether fault occurs, but it will greatly increase the cost. So a novel method for fault diagnosis, which is based on image processing and machine vision, is presented in this paper. Experiments have shown promising results.
机译:本文介绍了一种自动定日镜故障检测和诊断系统,该系统使用机器视觉技术和常见的CCD装置为太阳能发电厂。太阳能发电厂的定日镜将太阳辐射反射到放置在塔架顶部的接收器上,以提供与通过接收器的冷却剂流量相关的所需能量通量分布,通常在开环控制配置中。每个定日镜都将移动的太阳反射到接收器上。长时间运行会使控制定日镜以改变方位角和俯仰角的机械部件失效,因此定日镜无法将阳光反射到接收器甚至停止工作。在大型发电厂中,可能会有成百上千的定日镜,这将增加手动识别和检测哪个定日镜有故障或故障的复杂性。每个定日镜可以配备传感器或其他设备以检测是否发生故障,但这会大大增加成本。因此,本文提出了一种基于图像处理和机器视觉的故障诊断新方法。实验显示出令人鼓舞的结果。

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