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首页> 外文期刊>Journal of building performance simulation >Building models for model predictive control of office buildings with concrete core activation
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Building models for model predictive control of office buildings with concrete core activation

机译:具有混凝土核心激活功能的办公楼模型预测控制的建筑模型

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摘要

Model predictive control (MPC) is a good candidate to exploit the energy cost savings potential of concrete core activation (CCA), while guaranteeing thermal comfort. A bottleneck for practical implementation is the selection and identification of the building control model. Using grey box models, this article studies the impact of model structure and identification data set on the MPC control performance for an office building with CCA. Results for a one-year simulation show: (1) a second-order model can achieve equal control performance as a fourth-order one, (2) inclusion of solar or internal gains in the identification data set improves the model accuracy in general, especially for the fourth-order models and (3) MPC with a second-order model reduces electricity consumption by 15% compared to a reference controller, hereby deploying information about past operative temperature prediction errors and this without the need for solar or internal gains predictions.
机译:模型预测控制(MPC)是开发混凝土芯活化(CCA)节省能源成本潜力的理想选择,同时还能保证热舒适性。实际实施的瓶颈是建筑物控制模型的选择和识别。本文使用灰箱模型研究了具有CCA的办公大楼的模型结构和标识数据集对MPC控制性能的影响。一年模拟的结果表明:(1)二阶模型可以达到与四阶模型相同的控制性能;(2)在识别数据集中包含太阳增益或内部增益通常会提高模型的准确性,特别是对于四阶模型,以及(3)具有二阶模型的MPC与参考控制器相比,可减少15%的电力消耗,从而部署有关过去工作温度预测误差的信息,而无需太阳能或内部增益预测。

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