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An MPC-Based ESS Control Method for PV Power Smoothing Applications

机译:用于光伏功率平滑应用的基于MPC的ESS控制方法

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Random fluctuation in photovoltaic (PV) power plants is becoming a serious problem affecting the power quality and stability of the grid along with the increasing penetration of PVs. In order to solve this problem, by the adding of energy storage systems (ESS), a grid-connected microgrid system can be performed. To make this system feasible, this paper proposes a model predictive control (MPC) based on power/voltage smoothing strategy. With the receding horizon optimization performed by MPC, the system parameters can be estimated with high accuracy, and at the same time the optimal ESS power reference is obtained. The critical parameters, such as state of charge, are also taken into account in order to ensure the health and stability of the ESSs. In this proposed control strategy, communication between PVs and ESS is not needed, since control command can be calculated with local measured data. At the same time, MPC can make a great contribution to the accuracy and timeliness of the control. Finally, experimental results from a grid-connected lab-scale microgrid system are presented to prove effectiveness and robustness of the proposed approach.
机译:光伏(PV)发电厂的随机波动正成为一个严重的问题,随着PV的不断普及,影响电网的电能质量和稳定性。为了解决该问题,通过添加能量存储系统(ESS),可以执行并网的微电网系统。为了使该系统可行,本文提出了一种基于功率/电压平滑策略的模型预测控制(MPC)。通过MPC执行的后退水平优化,可以高精度估计系统参数,同时获得最佳ESS功率参考。为了确保ESS的健康和稳定性,还考虑了一些关键参数,例如充电状态。在这种建议的控制策略中,不需要PV和ESS之间的通信,因为可以使用本地测量数据来计算控制命令。同时,MPC可以为控制的准确性和及时性做出巨大贡献。最后,提出了并网实验室规模微电网系统的实验结果,以证明所提方法的有效性和鲁棒性。

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