可延迟负荷对电网的辅助服务:佛罗里达州智能泳池泵的案例

Sean P. Meyn, P. Barooah, A. Bušić, Jordan Ehren
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引用次数: 79

摘要

风能和太阳能等可再生能源具有高度的不可预测性和时变性,这使得平衡需求和供应具有挑战性。解决这一挑战的一种可能方法是利用多种类型负载需求的固有灵活性。我们专注于泳池泵,以及如何使用它们为电网提供辅助服务,以保持供需平衡。介绍了单个池泵的马尔可夫决策过程模型。提出了一种随机控制体系结构,其动机是分散决策的需要,以及避免可能导致大量有害需求峰值的同步的需要。然后,通过检查平均场极限,开发了大量池的聚合模型。一个关键的创新是集合非线性模型的lti -系统近似,以标量信号作为输入,以总需求的度量作为输出。这使得近似对于网格级的控制设计特别方便。仿真结果表明了逼近的准确性和所提控制方法的有效性。
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Ancillary service to the grid from deferrable loads: The case for intelligent pool pumps in Florida
Renewable energy sources such as wind and solar power have a high degree of unpredictability and time-variation, which makes balancing demand and supply challenging. One possible way to address this challenge is to harness the inherent flexibility in demand of many types of loads. We focus on pool pumps, and how they can be used to provide ancillary service to the grid for maintaining demand-supply balance. A Markovian Decision Process (MDP) model is introduced for an individual pool pump. A randomized control architecture is proposed, motivated by the need for decentralized decision making, and the need to avoid synchronization that can lead to large and detrimental spikes in demand. An aggregate model for a large number of pools is then developed by examining the mean field limit. A key innovation is an LTI-system approximation of the aggregate nonlinear model, with a scalar signal as the input and a measure of the aggregate demand as the output. This makes the approximation particularly convenient for control design at the grid level. Simulations are provided to illustrate the accuracy of the approximations and effectiveness of the proposed control approach.
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