Adaptive output-feedback control design for maximum power point tracking of uncertain photovoltaic systems

IF 1.8 Q3 AUTOMATION & CONTROL SYSTEMS
Mohamed Stitou , Abderrahim El Fadili , Fatima Zahra Chaoui , Fouad Giri
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Abstract

The problem of maximum power point tracking (MPPT) control of uncertain photovoltaic (PV) systems is addressed in this paper, on the basis of an adaptive Kalman-like observer. The system is composed of a photovoltaic generator (PVG) supplying power to a DC centrifugal pump driven by a DC–DC boost converter. The PVG is connected to the converter by a long PV cable. Indeed, many PV power plant situations require that the PV panels be installed at a great distance from the converter for several reasons including the security and the property of the site and its exposure to good daily solar irradiance. This obviously leads to the difficulty of PVG output current and voltage measurement using ordinary sensors. Such quantities measurement being in fact necessary for MPPT algorithms and controllers design. Furthermore, the specific parameters of the long PV cable used, namely its resistance and inductance, could have a significant effect on the MPPT control efficiency if instead of PVG delivered voltage and current measurements, only those accessible at the converter side of the cable are used in MPPT controllers design. Therefore, this work aims at overcoming the two aforementioned issues by proposing an adaptive output-feedback control-based MPPT for PV systems. An adaptive Kalman-like observer providing online estimates of inaccessible state variables as well as of PV cable unknown parameters is firstly designed. Then, a backstepping control law is synthesized to meet the MPPT objective. The convergence of both adaptive observer and closed-loop system control has been established using Lyapunov approach and the effectiveness of the developed adaptive MPPT controller in achieving an accurate and robust MPPT control towards uncertainties of the PV cable parameters, has been validated through numerical simulations.

不确定光伏系统最大功率点跟踪的自适应输出反馈控制设计
基于自适应类卡尔曼观测器,研究了不确定光伏系统的最大功率点跟踪控制问题。该系统由光伏发电机(PVG)向直流离心泵供电,由直流升压变换器驱动。PVG通过一根长PV电缆连接到转换器上。事实上,许多光伏电站的情况要求光伏电池板安装在距离转换器很远的地方,原因包括安全性和场地的性质,以及它每天暴露在良好的太阳辐照度下。这显然导致使用普通传感器测量PVG输出电流和电压的困难。这种量的测量实际上是必要的MPPT算法和控制器的设计。此外,如果在MPPT控制器设计中不使用PVG提供的电压和电流测量,而只使用电缆转换器侧可获得的电压和电流测量,那么所使用的PV长电缆的具体参数,即电阻和电感,对MPPT控制效率有显著影响。因此,本研究旨在克服上述两个问题,提出一种基于自适应输出反馈控制的光伏系统MPPT。首先设计了一种自适应类卡尔曼观测器,可在线估计不可达状态变量和PV电缆未知参数。然后,合成了一种反演控制律,以满足最优解目标。利用Lyapunov方法建立了自适应观测器和闭环系统控制的收敛性,并通过数值仿真验证了所开发的自适应MPPT控制器对PV电缆参数不确定性的精确和鲁棒控制的有效性。
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来源期刊
IFAC Journal of Systems and Control
IFAC Journal of Systems and Control AUTOMATION & CONTROL SYSTEMS-
CiteScore
3.70
自引率
5.30%
发文量
17
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