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Model predictive control for energy storage systems in a network with high penetration of renewable energy and limited export capacity

机译:具有高可再生能源渗透率和有限出口能力的网络中储能系统的模型预测控制

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This paper considers a novel control strategy for energy storage systems in networks with high penetration of renewable power and limited network capacity based on the combination of model predictive control (MPC) and hierarchical optimization. The objective is to maximize the output, hence the income, from the renewable generation using appropriate charging and discharging control strategy for energy storage systems based on the prediction of renewable power output, demand and network capability in future time horizon. The battery energy storage system can be used to smooth out the variations in renewable energy such as, wind power, and maximize renewable power output whilst meeting the system constraints. Furthermore network interconnection capacity with other systems must be honored. Network interconnection capability depends on many factors including demand and flexible/inflexible generation within the network and also the external systems. In this paper, we show how this problem can be formulated as an optimization problem, leading directly to the design of a model predictive controller. In this scheme, the optimal control for energy storage systems is implemented in a receding time horizon. The method is applied as a case study to the modified IEEE-30 bus test system and northwest power grid of China.
机译:本文基于模型预测控制(MPC)和分层优化相结合,考虑了一种可再生能源渗透率高,网络容量有限的网络中储能系统的新型控制策略。目的是基于对未来时间范围内可再生能源的输出,需求和网络能力的预测,对储能系统使用适当的充电和放电控制策略,以使可再生能源的输出最大化,从而使收入最大化。电池储能系统可用于消除风能等可再生能源的变化,并在满足系统约束的同时最大化可再生能源的输出。此外,必须尊重与其他系统的网络互连能力。网络互连能力取决于许多因素,包括需求以及网络内部以及外部系统的灵活/不灵活生成。在本文中,我们展示了如何将此问题表述为优化问题,直接导致模型预测控制器的设计。在该方案中,在后退的时间范围内实现了对储能系统的最佳控制。将该方法作为实例,应用于改进的IEEE-30总线测试系统和中国西北电网。

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