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Control and Optimization of Grid-Tied Photovoltaic Storage Systems Using Model Predictive Control

机译:基于模型预测控制的并网光伏储能系统控制与优化

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In this paper, we develop optimization and control methods for a grid-tied photovoltaic (PV) storage system. The storage component consists of two separate units, a large slower moving unit for energy shifting and arbitrage and a small rapid charging unit for smoothing. We use a Model Predictive Control (MPC) framework to allow the units to automatically and dynamically adapt to changes in PV output while responding to external system operator requests or price signals. At each time step, the system is modeled using convex objectives and constraints and solved to obtain a control schedule for the storage units across the MPC horizon. For each subsequent time step, the first step of the schedule is executed before repeating the optimization process to account for changes in the operating environment and predictions due to availability of additional information. We present simulation results that demonstrate the ability of this optimization framework to respond dynamically in real time to external price signals and provide increased system benefits including smoother power output while respecting and maintaining the functional requirements of the storage units and power converters.
机译:在本文中,我们开发了并网光伏(PV)存储系统的优化和控制方法。存储组件由两个独立的单元组成,一个较大的较慢运动的单元用于能量转移和套利,另一个较小的快速充电单元用于平滑。我们使用模型预测控制(MPC)框架,以允许设备在响应外部系统操作员的请求或价格信号的同时,自动动态地适应PV输出的变化。在每个时间步,使用凸目标和约束对系统进行建模并求解,以获得跨MPC范围的存储单元的控制计划。对于每个随后的时间步骤,在重复优化过程之前执行时间表的第一步,以说明由于附加信息的可用性而导致的操作环境变化和预测。我们提供的仿真结果证明了该优化框架能够实时动态响应外部价格信号,并提供了更多的系统优势,包括在遵守和维护存储单元和电源转换器的功能要求的同时,提供了更顺畅的功率输出。

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