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Thermal load prediction and operation optimization of office building with a zone-level artificial neural network and rule-based control

机译:带区级人工神经网络与基于规则控制的办公大楼热负荷预测与运行优化

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摘要

Precise and quick thermal load prediction for buildings is imperative in realizing the flexibility of building energy systems. Operation optimization based on the prediction results can effectively mitigate the energy consumption and operation cost. Here, an artificial neural network (ANN) model is built to predict the load demand and energy consumption of an office building. Thermal zones division is considered to improve the prediction accuracy. Measured data are collected to establish and validate the ANN model. The total number of samples for training, validation and testing are 13674, 3978 and 3977, respectively. A rule-based control optimization model is introduced and combined with ANN model to optimize the operation of heating, ventilation and airconditioning system. Building energy flexibility is activated by optimization model in a time-of-use electricity price scenario. The results indicate that ANN model has high precision and the coefficient of variation of root mean squared errors corresponding to the load demand prediction and energy consumption prediction are 10.76% and 15.59%, respectively. Furthermore, the optimization results can reduce the operation cost by 39.22% and 44.41% in the heating and cooling season, respectively.
机译:在实现建筑能量系统的灵活性方面,建筑物的精确和快速热负荷预测是势在必行的。基于预测结果的操作优化可以有效地减轻能量消耗和运营成本。这里,建立了一种人工神经网络(ANN)模型以预测办公楼的负荷需求和能耗。热带区分割被认为是提高预测精度。收集测量数据以建立和验证ANN模型。用于培训,验证和测试的样本总数分别为13674,3978和3977。引入了基于规则的控制优化模型,并与ANN模型结合,以优化加热,通风和空调系统的运行。在使用时间的电价场景中优化模型激活建筑能量灵活性。结果表明,ANN模型具有高精度,并且对应于负载预测和能量消耗预测的根部平均断线的变化系数分别为10.76%和15.59%。此外,优化结果分别可以将运行成本降低39.22%和44.41%,在加热和冷却季节。

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