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A Lyapunov function based model predictive control for three phase grid connected photovoltaic converters

机译:基于李雅普诺夫函数的三相并网光伏转换器模型预测控制

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In this paper, a predictive direct power control (PDPC) method based on Lyapunov function approach is developed for control of grid connected photovoltaic (PV) converter. The predictive control algorithm utilizes the discrete model of the PV converter and predicts the future active and reactive power of the system by calculating a cost function for all voltage vectors. Subsequently, the optimal voltage vector that minimizes the cost function is selected to calculate the model variables in the next sampling instant. The proposed controller predicts error before the switching signal is applied to the high-gain multilevel PV converter and thus is able to choose the next switch event to minimize error between the commanded and actual converter operation. This technique improves the speed at which the controller can track rapid changes in solar insolation and results in an increase in the overall system output power. In the proposed technique, there is no need to adjust the control parameters under changing loads or model parameters uncertainties. Also, the use of many classical controllers is eliminated and only one PI controller is used for DC link voltage. Moreover, contrary to the conventional PDPC, the optimal switching vector is determined only based on active and reactive power and hence, the computation burden is significantly reduced and the convergence is speed up. The detail modeling and design of the proposed controller are verified through computer simulations under different operating conditions. Also, the robustness of the control approach is illustrated in the presence of parameters uncertainties and change in solar irradiations. Simulation results show that the proposed control strategy maintains the active and reactive powers as close as possible to the desired values under different operation mode.
机译:本文提出了一种基于李雅普诺夫函数法的预测直接功率控制(PDPC)方法来控制并网光伏(PV)转换器。预测控制算法利用PV转换器的离散模型,并通过计算所有电压矢量的成本函数来预测系统的未来有功和无功功率。随后,选择最小化成本函数的最佳电压矢量,以在下一个采样瞬间计算模型变量。所提出的控制器在将开关信号施加到高增益多电平PV转换器之前就预测了错误,因此能够选择下一个开关事件以最大程度地减小命令的和实际的转换器操作之间的误差。该技术提高了控制器跟踪太阳日照的快速变化的速度,并导致整个系统输出功率的增加。在提出的技术中,无需在负载变化或模型参数不确定性下调整控制参数。而且,消除了许多传统控制器的使用,并且仅一个PI控制器用于直流母线电压。而且,与传统的PDPC相反,仅基于有功功率和无功功率来确定最佳开关矢量,因此,显着降低了计算负担并且加快了收敛速度。通过在不同操作条件下的计算机仿真,验证了所提出控制器的详细建模和设计。同样,在存在参数不确定性和太阳辐射变化的情况下,说明了控制方法的鲁棒性。仿真结果表明,在不同的运行模式下,所提出的控制策略使有功功率和无功功率尽可能地接近期望值。

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