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首页> 外文期刊>International journal of electrical power and energy systems >Optimization-based estimation of power capacity profiles for activity-based residential loads
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Optimization-based estimation of power capacity profiles for activity-based residential loads

机译:基于活动的住宅负荷的基于优化的功率容量曲线估算

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摘要

This paper proposes a framework to determine capacity profiles in smart buildings. In this scheme the users choose a level of power capacity to account for their stochastic demand while paying the corresponding electricity prices through a flexible time-and-level-of-use pricing policy. We formulate a two-stage stochastic optimization model that minimizes the total cost of booking a power capacity level and meeting the energy demand for the planning horizon. We present two approaches to select the scenarios for the stochastic optimization. In the first approach, we assume that the probability distributions of the start times of the loads are known, and the scenarios are generated using those distributions. In the second approach, we assume that only historical consumption data is available and we propose a new algorithm to build the scenarios using this data. Our simulation experiments validate the performance of both approaches and report cost savings of up to 16%.
机译:本文提出了一个确定智能建筑容量概况的框架。在此方案中,用户选择容量级别来解决其随机需求,同时通过灵活的使用时间和级别的使用定价策略支付相应的电价。我们制定了一个两阶段的随机优化模型,该模型使预订功率水平和满足计划范围内的能源需求的总成本最小化。我们提出两种方法来选择用于随机优化的方案。在第一种方法中,我们假设负载开始时间的概率分布是已知的,并且使用这些分布来生成方案。在第二种方法中,我们假设只有历史消费数据可用,并且我们提出了一种新算法来使用此数据构建方案。我们的仿真实验验证了这两种方法的性能,并节省了高达16%的成本。

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