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Energy Management of a Building Cooling System With Thermal Storage: An Approximate Dynamic Programming Solution

机译:带蓄热的建筑制冷系统的能量管理:一种近似的动态编程解决方案

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This paper concerns the design of an energy management system for a building cooling system that includes a chiller plant (with two or more chiller units), a thermal storage unit, and a cooling load. The latter is modeled in a probabilistic framework to account for the uncertainty in the building occupancy. The energy management task essentially consists in the minimization of the energy consumption of the cooling system, while preserving comfort in the building. This is achieved by a twofold strategy. The cooling power request is optimally distributed among the chillers and the thermal storage unit. At the same time, a slight modulation of the temperature set-point of the zone is allowed, trading energy saving for comfort. The problem can be decoupled into a static optimization problem (mainly addressing the chiller plant optimization) and a dynamic programming (DP) problem for a discrete time stochastic hybrid system (SHS) that takes care of the overall energy minimization. The DP problem is solved by abstracting the SHS to a (finite) controlled Markov chain, where costs associated with state transitions are computed by simulating the original model and determining the corresponding energy consumption. A numerical example shows the efficacy of the approach.
机译:本文涉及用于建筑物冷却系统的能量管理系统的设计,该系统包括一个制冷设备(具有两个或多个制冷设备),一个蓄热设备和一个制冷负荷。后者是在概率框架中建模的,以解决建筑物占用中的不确定性。能源管理的任务主要在于最大程度地降低冷却系统的能耗,同时又要保持建筑物的舒适感。这是通过双重策略来实现的。要求的冷却功率最佳地分布在冷却器和储热单元之间。同时,允许对该区域的温度设定点进行轻微调节,以节省能源为代价。对于离散时间随机混合系统(SHS),可以将问题分解为静态优化问题(主要是解决冷水机组的优化问题)和动态规划(DP)问题,该问题需要解决总体能耗最小化问题。通过将SHS抽象到(有限的)受控马尔可夫链来解决DP问题,在该链中,通过模拟原始模型并确定相应的能耗来计算与状态转换相关的成本。数值示例表明了该方法的有效性。

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