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Building model identification during regular operation - empirical results and challenges

机译:经常运作期间建立模型识别 - 经验结果与挑战

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The inter-temporal consumption flexibility of commercial buildings can be harnessed to improve the energy efficiency of buildings, or to provide ancillary service to the power grid. To do so, a predictive model of the building's thermal dynamics is required. In this paper, we identify a physics-based model of a multi-purpose commercial building including its heating, ventilation and air conditioning system during regular operation. We present our empirical results and show that large uncertainties in internal heat gains, due to occupancy and equipment, present several challenges in utilizing the building model for long-term prediction. In addition, we show that by learning these uncertain loads online and dynamically updating the building model, prediction accuracy is improved significantly.
机译:可以利用商业建筑的间或商业建筑的灵活性来提高建筑物的能源效率,或向电网提供辅助服务。为此,需要建筑物的热动力学的预测模型。在本文中,我们确定了一种基于物理的多用途商业建筑模型,包括其在常规操作期间的加热,通风和空调系统。我们展示了我们的经验结果,并表明,由于占用和设备,内部热量收益的大不确定性在利用建筑模型以实现长期预测的几个挑战存在若干挑战。此外,我们表明,通过在线学习这些不确定的负载并动态更新建筑模型,预测准确性显着提高。

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