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Benchmarking of Aggregate Residential Load Models Used for Demand Response

机译:用于需求响应的骨料住宅装载模型的基准

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Residential loads can provide ancillary services such as frequency regulation to an electric power system. Aggregate load models aim to capture the dynamics of the demand-responsive loads in an accurate and computationally-tractable way, which allows the models to be incorporated into controllers and observers used by demand response providers. A variety of aggregate models have been developed; however, their accuracy has not been benchmarked against one another in comparable scenarios. This paper compares the accuracy of two Markov-based and one transfer function-based aggregate air conditioner (AC) models against a realistic simulation model with time-varying outdoor air temperature and temperature-dependent AC parameters. We also extend the existing models to cope with the time-varying outdoor air temperature. We find that 1) the more detailed Markov model is more accurate, 2) updating the Markov transitions as a function of the outdoor temperature trend decreases prediction error in both Markov models, 3) the transfer function model performs worst, likely because the simulation scenario differs significantly from the assumptions used to develop the model.
机译:住宅负载可以为电力系统提供频率调节等辅助服务。聚合负载模型旨在以准确和计算的贸易方式捕获需求响应载荷的动态,这允许模型结合到需求响应提供商使用的控制器和观察者中。已经开发了各种集合模型;但是,他们的准确性在类似的场景中尚未互相互动。本文比较了两种马尔可夫的基于和一个转移函数基集合空调(AC)模型的精度,与现实仿真模型具有时变的室外空气温度和温度相关的AC参数。我们还扩展现有模型以应对时变户外空气温度。我们发现1)更详细的Markov模型更准确,2)更新Markov转换作为室外温度趋势的函数,降低了马尔可夫模型中的预测误差,3)传输函数模型执行最差,可能是因为模拟场景与用于开发模型的假设显着不同。

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