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A high-resolution stochastic model of domestic activity patterns and electricity demand

机译:家庭活动模式和电力需求的高分辨率随机模型

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摘要

Realistic time-resolved data on occupant behaviour, presence and energy use are important inputs to various types of simulations, including performance of small-scale energy systems and buildings' indoor climate, use of lighting and energy demand. This paper presents a modelling framework for stochastic generation of high-resolution series of such data. The model generates both synthetic activity sequences of individual household members, including occupancy states, and domestic electricity demand based on these patterns. The activity-generating model, based on non-homogeneous Markov chains that are tuned to an extensive empirical time-use data set, creates a realistic spread of activities over time, down to a 1-min resolution. A detailed validation against measurements shows that modelled power demand data for individual households as well as aggregate demand for an arbitrary number of households are highly realistic in terms of end-use composition, annual and diurnal variations, diversity between households, short time-scale fluctuations and load coincidence. An important aim with the model development has been to maintain a sound balance between complexity and output quality. Although the model yields a high-quality output, the proposed model structure is uncomplicated in comparison to other available domestic load models.
机译:关于乘员行为,存在和能源使用的实时时间分辨数据是各种类型模拟的重要输入,包括小规模能源系统的性能和建筑物的室内气候,照明的使用和能源需求。本文提出了一种随机生成高分辨率系列此类数据的建模框架。该模型基于这些模式生成单个家庭成员的综合活动序列(包括占用状态)和家庭用电需求。活动生成模型基于非均质的马尔可夫链(已调整为广泛的经验时间使用数据集),可创建随时间变化的真实活动分布,分辨率低至1分钟。根据测量结果进行的详细验证表明,就最终用途组成,年度和日变化,住户之间的多样性,时间尺度的短期波动而言,针对单个住户的模型化的电力需求数据以及任意住户的总需求是高度现实的和负载巧合。模型开发的一个重要目标是在复杂性和输出质量之间保持良好的平衡。尽管该模型可产生高质量的输出,但与其他可用的国内负荷模型相比,所提出的模型结构并不复杂。

著录项

  • 来源
    《Applied Energy》 |2010年第6期|1880-1892|共13页
  • 作者

    Joakim Widen; Ewa Waeckelgard;

  • 作者单位

    Department of Engineering Sciences, The Angstroem Laboratory, Uppsala University, P.O. Box 534, SE-751 21 Uppsala, Sweden;

    Department of Engineering Sciences, The Angstroem Laboratory, Uppsala University, P.O. Box 534, SE-751 21 Uppsala, Sweden;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    domestic electricity demand; stochastic; markov chain; bottom-up; load model;

    机译:国内电力需求;随机;马可夫链自下而上;负荷模型;

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