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Optimizing building comfort temperature regulation via model predictive control

机译:通过模型预测控制优化建筑物舒适温度调节

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Energy efficiency and energy saving are important concepts bearing in mind by governments and population during the last years. There exist a widespread concern about fossil fuel depletions and the consequent sharp rise in their value. In particular, building is an area highly influenced by those issues. Studies indicate that 40% of the energy generated worldwide is consumed inside buildings, and then, measures to reduce energy consumption are required. In this work, an optimal controller for distributing the energy consumption rate inside a building and preserving, at the same time, the user welfare is proposed. More precisely, the paper presents a predictive control approach that obtains a high thermal comfort level optimizing the use of an HVAC (Heating, Ventilation and Air Conditioning) system by means of a cost function. The optimization procedure is based on the Lagrangian dual method, which allows the use of parallel programming paradigms in an easy way. This may reduce the computational effort proportionally to the number of processing elements when the problem to solve is large.
机译:能源效率和节能是最近几年政府和民众牢记的重要概念。人们普遍关注化石燃料的枯竭及其价值的急剧上升。特别是,建筑是受这些问题影响最大的领域。研究表明,全世界40%的能源消耗在建筑物内部,因此,需要采取措施降低能耗。在这项工作中,提出了一种最优控制器,用于分配建筑物内的能耗率并同时保护用户的利益。更准确地说,本文提出了一种预测控制方法,该方法通过成本函数获得了优化HVAC(供暖,通风和空调)系统使用的高热舒适度。优化过程基于拉格朗日对偶方法,该方法允许轻松地使用并行编程范例。当要解决的问题很大时,这可以与处理元素的数量成比例地减少计算工作量。

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