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首页> 外文期刊>Fuzzy Information and Engineering >Development, Design and Experimental Testing of Fuzzy-based Controllers for a Laboratory Scale Sun-tracking Heliostat
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Development, Design and Experimental Testing of Fuzzy-based Controllers for a Laboratory Scale Sun-tracking Heliostat

机译:实验室规模太阳跟踪定日镜的基于模糊控制器的开发,设计和实验测试

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摘要

The objective of this study is to develop and design fuzzy-based controllers for experimental examination and application to a laboratory scale sun tracking heliostat with dynamic movement about azimuth and elevation axes. The experimental approach accounts for unknown parameters such as, nonlinear static and dynamic frictions, nonlinear and variant effect of gravity on system, magnetic saturation of motors, Umitations of power source in supplying rush and steady current and variation in heliostat dynamics due to different spacial and time passing conditions. To meet the objective, a classical PI and PID as well as Fuzzy-PI (F-PI) and Fuzzy-PID (F-PID) controllers are designed and experimentally implemented. The performance of each controller is measured by means of evaluating a cost function that is based on the integral of absolute value of error signal. The results show that for azimuth-axis angle, the cost of F-PI controller for deviation from set point is 67% lower as compared with that of PI controller. Also, it is shown that the application of F-PI controller results in lower cost for elevation-axis angle by 36%, 40%, and 50%, when compared with PI, PID, and F-PID controllers, respectively.
机译:这项研究的目的是开发和设计基于模糊的控制器,以进行实验检查,并将其应用于具有围绕方位角和仰角的动态运动的实验室规模的太阳跟踪定日镜。实验方法考虑了未知参数,例如非线性静,动态摩擦,重力对系统的非线性和变化影响,电动机的磁饱和,在提供急速和稳定电流时电源的限制以及定日镜动态变化(由于不同的空间和时间流逝的条件。为了达到该目的,设计并实验了经典的PI和PID以及Fuzzy-PI(F-PI)和Fuzzy-PID(F-PID)控制器。每个控制器的性能都是通过评估基于误差信号绝对值积分的成本函数来衡量的。结果表明,对于方位角,与PI控制器相比,F-PI控制器偏离设定点的成本降低了67%。此外,还表明,与PI,PID和F-PID控制器相比,F-PI控制器的应用分别使仰角角度的成本降低了36%,40%和50%。

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