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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >Nonlinear Robust Backstepping Control for Three-Phase Grid-Connected PV Systems
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Nonlinear Robust Backstepping Control for Three-Phase Grid-Connected PV Systems

机译:三相并网光伏系统的非线性鲁棒逆推控制

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This paper proposes a cascade control structure for three-phase grid-connected Photovoltaic (PV) systems. The PV system consists of a PV Generator, DC/DC converter, a DC link, a DC/AC fully controlled inverter, and the main grid. For the control process, a new control strategy using nonlinear Backstepping technique is developed. This strategy comprises three targets, namely, DC/DC converter control; tight control of the DC link voltage; and delivering the desired output power to the active grid with unity power factor (PF). Moreover, the control process relies mainly on the formulation of stability based on Lyapunov functions. Maximizing the energy reproduced from a solar power generation system is investigated as well by using the Perturb and Observe (P&O) algorithm. The Energetic Macroscopic Representation (EMR) and its reverse Maximum Control Structure (MCS) are used to provide, respectively, an instantaneous average model and a cascade control structure. The robust proposed control strategy adapts well to the cascade control technique. Simulations have been conducted using Matlab/Simulink software in order to illustrate the validity and robustness of the proposed technique under different operating conditions, namely, abrupt changing weather condition, sudden parametric variations, and voltage dips, and when facing measurement uncertainties. The problem of controlling the grid-connected PV system is addressed and dealt by using the nonlinear Backstepping control.
机译:本文提出了一种用于三相并网光伏系统的级联控制结构。光伏系统包括光伏发电机,DC / DC转换器,DC链路,DC / AC完全控制的逆变器和主电网。对于控制过程,开发了一种使用非线性Backstepping技术的新控制策略。该策略包括三个目标,即DC / DC转换器控制;严格控制直流母线电压;并以单位功率因数(PF)将所需的输出功率输送到有源电网。此外,控制过程主要依赖于基于Lyapunov函数的稳定性公式。通过使用扰动和观测(P&O)算法,还研究了最大化太阳能发电系统产生的能量。高能宏观表示(EMR)及其反向最大控制结构(MCS)用于分别提供瞬时平均模型和级联控制结构。提出的鲁棒控制策略非常适合级联控制技术。为了说明所提出的技术在不同的工作条件下的有效性和鲁棒性,使用了Matlab / Simulink软件进行了仿真,这些工作条件是在突然变化的天气条件,突然的参数变化和电压骤降下以及面对测量不确定性时。通过使用非线性Backstepping控制解决并控制了并网光伏系统的控制问题。

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