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Minimization of electricity demand and cost for multi-zone buildings: Part I-Modeling and validation

机译:最小化电力需求和多区建筑成本:第一部分 - 建模和验证

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摘要

Heating, ventilation, and air-conditioning systems are complex in terms of components that make them up and their different time scales. The inefficient operation of a heating, ventilation, and air-conditioning system leads to unreasonable electricity consumption during peak periods, which is accompanied by a high cost of electricity use. In a multi-zone building, multiple thermal interactions among the different thermal zones and the effects on electricity demand and cost are not well understood, due to the lack of fundamental knowledge. Meanwhile, multi-zone interactions and building dynamics play a crucial role in the overall electricity demand, cost, and load profiles due to the dependency of states of each individual zone on the thermal characteristics and states of the adjacent zones. The objective of this research is to understand multi-zone and equipment interactions in buildings energy systems, and to use that knowledge to minimize electricity demand and cost. To the best of the authors' knowledge, this is the first research to integrate building dynamics into controller formulation and design through the use of a physically representative thermal model that captures important phenomenon of building load and cooling coil operations. The current article is laid out in two parts. This first part introduces the development and validation of transient thermal models for building load and cooling coil operations in an actual air-handling unit serving a multi-zone office building. It also introduces a simplified model for supply fan power and speed. The models were developed using fundamental heat transfer equations and fan laws, with the model parameters estimated from short-period measurement data. The respective models are validated using actual data from building automation system. The results are presented, and they show high accuracy for building load, cooling coil, and the fan model, such that suitable predictive control methods could be used to minimize the overall electricity demand and cost. The minimization framework and optimization results are discussed in a subsequent article.
机译:加热,通风和空调系统方面是复杂的,使其构成它们,其不同的时间尺度。加热,通风和空调系统的效率低下操作导致高峰期的不合理的电力消耗,其伴随着高成本的电力使用。在多区建筑物中,由于缺乏基本知识,不同热带区之间的多种热交互和对电力需求的影响并不充分了解。同时,多区交互和建筑动力学在整体电力需求,成本和负载概况中发挥着至关重要的作用,由于每个单独区的状态依赖于相邻区域的热特性和状态的状态。本研究的目的是了解建筑物能源系统中的多区和设备相互作用,并利用该知识来最大限度地减少电力需求和成本。据作者所知,这是第一个通过使用物理代表性的热模型将建筑动力学集成到控制器配方和设计中的第一次研究,该热模型捕获建筑负荷和冷却线圈操作的重要现象。目前的物品分为两部分。第一部分介绍了在适用于多区办公楼的实际空气处理单元中建立负载和冷却线圈操作的瞬态热模型的开发和验证。它还介绍了一种用于电源风扇功率和速度的简化模型。该模型是使用基本传热方程和粉丝定律开发的,模型参数估计了短周期测量数据。使用来自构建自动化系统的实际数据进行验证各个模型。提出了结果,它们对建筑负荷,冷却线圈和风扇模型表示高精度,使得适当的预测控制方法可用于最小化整体电力需求和成本。最小化框架和优化结果在后续的文章中讨论。

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