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A Single-Level Rule-Based Model Predictive Control Approach for Energy Management of Grid-Connected Microgrids

机译:基于单级规则的基于规则的基于水平的微电网的能量管理模型预测控制方法

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摘要

A single-level rule-based model predictive control (RBMPC) scheme is presented for optimizing the energy management of a grid-connected microgrid composed of local production units, renewable energy sources, local loads, and several types of energy storage systems (ESSs). The single-level controller uses two different models that yield different descriptions of the microgrid and use different sampling times. The model with a smaller sampling time provides a more detailed description of the microgrid, in order to keep track of the fast dynamics, while the model with a higher sampling time provides a less detailed description and is used for making long-term predictions when it is not needed anymore to track the fast dynamics. Moreover, we propose a novel RBMPC method that assigns the value to the binary decision variables in the hybrid microgrid model, e.g., ON or OFF status of the generators and charging or discharging mode of ESSs, through if-then-else rules, which rely on the price of electricity and the local net imbalance. The standard method of applying model predictive control (MPC) to a hybrid model results in a mixed-integer linear programming (MILP) problem. Our proposed rule-based method is able to convert the standard MILP problem into a linear one. We compare our approach through simulations to the MILP approach and show that our method yields almost no loss in performance while providing a significant reduction in the computation time.
机译:提出了一种基于单级规则的模型预测控制(RBMPC)方案,用于优化由本地生产单元,可再生能源,局部负载和几种类型的能量存储系统(ESS)组成的网格连接的微电网的能量管理。单级控制器使用两种不同的模型,产生微电网的不同描述,并使用不同的采样时间。具有较小采样时间的模型提供了微电网的更详细描述,以便跟踪快速动态,而采样时间较高的模型提供了更较差的详细描述,并且用于在其何时进行长期预测不再需要追踪快速动态。此外,我们提出了一种新颖的RBMPC方法,该方法将值分配给混合微电网模型中的二进制判定变量,例如,通过If-wey-elss的Charers和Esss的充电或放电模式的上关闭或放电模式,依赖于关于电力价格和当地净失衡。将模型预测控制(MPC)应用于混合模型的标准方法导致混合整数线性编程(MILP)问题。我们所提出的基于规则的方法能够将标准MILP问题转换为线性。我们通过模拟将方法与静态方法进行比较,并表明我们的方法几乎不会在性能下产生损失,同时在计算时间下显着减少。

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