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Optimal Bidding Strategy for Microgrids Considering Renewable Energy and Building Thermal Dynamics

机译:考虑可再生能源和建筑热力学的微电网最优竞价策略

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摘要

In this paper, we study an optimal day-ahead price-based power scheduling problem for a community-scale microgrid (MG). The proposed optimization framework aims to balance between maximizing the expected benefit of the MG in the deregulated electricity market and minimizing the MG operation cost considering users' thermal comfort requirements and other system constraints. The power scheduling and bidding problem is formulated as a two-stage stochastic program where various system uncertainties are captured by using the Monte Carlo simulation approach. Our formulation is novel in that it can exploit the thermal dynamic characteristics of buildings to compensate for the variable and intermittent nature of renewable energy resources and enables us to achieve desirable tradeoffs for different conflicting design objectives. Extensive numerical results are presented to demonstrate the great benefits in exploiting the building thermal dynamics and the flexibility of the proposed scheduling method in achieving different practical design tradeoffs. We also investigate the impacts of different design and system parameters on the curtailment of renewable energy resources and the optimal expected profit of the MG.
机译:在本文中,我们研究了社区规模微电网(MG)的最优基于日前价格的电力调度问题。所提出的优化框架旨在在考虑到用户的热舒适性要求和其他系统约束的前提下,在最大化MG在放松管制的电力市场中的预期收益与最小化MG运行成本之间取得平衡。功率调度和投标问题被表述为两阶段随机程序,其中通过使用蒙特卡洛模拟方法来捕获各种系统不确定性。我们的配方新颖,可以利用建筑物的热动力特性来补偿可再生能源的多变和间歇性,并使我们能够针对不同的冲突设计目标实现理想的折衷。给出了广泛的数值结果,以证明在利用建筑物热动力学方面的巨大益处以及所提出的调度方法在实现不同的实际设计折衷方面的灵活性。我们还研究了不同设计和系统参数对减少可再生能源和MG最佳预期利润的影响。

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