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Decision support methodologies and day-ahead optimization for smart building energy management in a dynamic pricing scenario

机译:在动态定价场景中智能建筑能源管理的决策支持方法和日前优化

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Nowadays identifying techniques aimed at a rational use of electric power has become even more important than the production of energy itself. This is caused by different factors, as the progressive saturation of the electricity grid, which is increasingly subject to connection requests, mainly due to the development of plants which exploit renewable energy sources. This work suggests a new approach based on the combination of the optimizer and the simulator developed in the MATLAB/Simulink environment, in order to reduce the energy costs in buildings during the summer while taking into consideration the user comfort. The electrical consumption of the entire building is taken into consideration is here examined with the aim of applying an air-conditioning system. The goal is to find, the day before, which is the optimal hourly scheduling of the control variables that must be applied the next day, taking into consideration all external conditions; weather conditions and the hourly energy price. In order to achieve this objective, the control variables, that have been changed, are the room temperature set points and the flow water temperature set point. As required by the UNI EN ISO 7730:2006 standard, comfort measurement is calculated by PPD (Predicted Percentage of Dissatisfied) index. Different scenarios are investigated and two optimization algorithms are compared. The results show that there is an average of 10 - 28% potential cost saving, while maintaining a high level of comfort (PPD = 12). The study is carried out by simulating a real office building in Italy, and the comparisons are shown regarding the actual settings applied to it. (C) 2020 Elsevier B.V. All rights reserved.
机译:如今,识别旨在理性使用电力的技术已经比能量本身的生产更重要。这是由不同因素引起的,作为电网的渐进饱和度,这越来越多地受到连接请求的影响,主要原因是利用可再生能源的植物的开发。这项工作提出了一种基于优化器和Matlab / Simulink环境中开发的模拟器组合的新方法,以便在夏季减少建筑物中的能源成本,同时考虑到用户舒适。在此考虑到整个建筑物的电消耗,目前检查了空调系统的目的。目前的目标是找到,这是第二天必须应用的控制变量的最佳每小时调度;考虑所有外部条件;天气条件和每小时的能源价格。为了实现这一目标,已经改变的控制变量是室温设定点和流量水温设定点。根据UNI EN ISO 7730:2006标准的要求,通过PPD(预测的不满意)指数计算舒适测量。研究了不同的场景,并比较了两种优化算法。结果表明,平均节省了10-28%的潜在成本,同时保持高水平的舒适度(PPD <= 12)。该研究是通过模拟意大利的真正办公楼的研究,并显示了对其应用的实际设置的比较。 (c)2020 Elsevier B.v.保留所有权利。

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