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A methodology for meta-model based optimization in building energy models

机译:一种基于元模型的建筑能耗模型优化方法

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摘要

As building energy models become more accurate and numerically efficient, model-based optimization of building design and operation is becoming more practical. The state-of-the-art typically couples an optimizer with a building energy model which tends to be time consuming and often leads to suboptimal results because of the mathematical properties of the energy model. To mitigate this issue, we present an approach that begins by sampling the parameter space of the building model around its baseline. An analytical meta-model is then fit to this data and optimization can be performed using different opti-mization cost functions or optimization algorithms with very little computational effort. Uncertainty and sensitivity analysis is also performed to identify the most influential parameters for the optimiza-tion. A case study is explored using an EnergyPlus model of an existing building which contains over 1000 parameters. When using a cost function that penalizes thermal comfort and energy, 45% annual energy reduction is achieved while simultaneously increasing thermal comfort by a factor of two. We compare the optimization using the meta-model approach with an approach using the EnergyPlus model inte-grated with the optimizer on a smaller problem using only seven optimization parameters illustrating good performance.
机译:随着建筑能源模型变得更加准确和数值高效,基于模型的建筑设计和运营优化变得越来越实用。现有技术通常将优化器与建筑能耗模型耦合,这往往很耗时,并且由于能耗模型的数学特性,往往导致次优结果。为了缓解此问题,我们提出了一种方法,该方法从围绕建筑模型基线的建筑模型的参数空间开始采样。然后,将分析元模型拟合到此数据,并且可以使用不同的优化成本函数或优化算法以很少的计算工作来执行优化。还进行不确定性和敏感性分析,以确定最有影响力的优化参数。使用包含1000多个参数的现有建筑物的EnergyPlus模型探索了一个案例研究。当使用损失热舒适性和能量的成本函数时,可实现每年节能45%,同时将热舒适性提高两倍。我们将使用元模型方法的优化与使用与优化器集成的EnergyPlus模型的方法进行比较,以解决较小的问题,仅使用七个说明良好性能的优化参数即可。

著录项

  • 来源
    《Energy and Buildings》 |2012年第4期|p.292-301|共10页
  • 作者单位

    Center for Energy Efficient Design, Engr-, Mechanical Engineering, University of California, Santa Barbara, CA 93106, United States;

    United Technologies Research Center. East Hartford, CT, 06108. United States;

    United Technologies Research Center. East Hartford, CT, 06108. United States;

    Aimdyn, Inc., Santa Barbara, CA, 93101, United States;

    Center for Energy Efficient Design, Engr-, Mechanical Engineering, University of California, Santa Barbara, CA 93106, United States Department of Mechanical and Environmental Engineering University of California, Santa Barbara, CA, 93106, United States;

  • 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

    comfort and energy optimization; sensitivity analysis; machine learning; energyplus;

    机译:舒适度和能量优化;敏感性分析;机器学习能量加;

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