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Simulation and experimental demonstration of model predictive control in a building HVAC system

机译:建筑物HVAC系统中模型预测控制的仿真和实验演示

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This article presents the framework and results of implementing optimization-based control algorithm for building HVAC systems and demonstrates its benefits through reduced building energy consumption as well as improved thermal comfort along with lessons learned. In particular, a practically effective and computationally efficient model predictive control algorithm is proposed to optimize building energy usage while maintaining thermal comfort in a multi-zone medium-sized commercial building. This article has two themes. Driven by the challenge of fully evaluating the benefit of the proposed model predictive controller against baseline control, a model predictive control design framework is first presented with its performance benchmarked based on a high-fidelity building HVAC simulation environment to verify its effectiveness and feasibility. Following the same model predictive control design framework, the experimental results from the same building located at the Philadelphia Navy Yard are then presented. For the simulation study, the performance of the model predictive control algorithm was estimated relative to baseline days with exactly the same internal loads and outdoor conditions, and it was estimated that model predictive control reduced the total electrical energy consumption by around 17.5%. For the subsequent experimental demonstration, the performance of the model predictive control algorithm was estimated relative to baseline days with similar outdoor air temperature patterns during the cooling and shoulder seasons, and it was concluded that model predictive control reduced the total electrical energy consumption by more than 20% on average while improving thermal comfort in terms of zone air temperature.
机译:本文介绍了在建筑物HVAC系统中实施基于优化的控制算法的框架和结果,并通过减少建筑物的能耗以及改善的热舒适性以及所获得的经验教训展示了其优势。特别是,提出了一种实用有效且计算效率高的模型预测控制算法,以在保持多区域中型商业建筑的热舒适性的同时优化建筑能耗。本文有两个主题。在充分评估所提出的模型预测控制器相对于基线控制的优势这一挑战的驱使下,首先提出了一种模型预测控制设计框架,其性能基于高保真建筑HVAC仿真环境进行了基准测试,以验证其有效性和可行性。遵循相同的模型预测控制设计框架,然后展示了位于费城海军船坞的同一座建筑物的实验结果。对于仿真研究,在内部负载和室外条件完全相同的情况下,相对于基准日估算了模型预测控制算法的性能,并且估计模型预测控制将总电能消耗降低了约17.5%。对于随后的实验演示,模型预测控制算法的性能是相对于在凉爽和肩膀季节具有相似室外空气温度模式的基线天进行估算的,得出的结论是,模型预测控制将总电能消耗减少了超过平均提高20%,同时提高区域空气温度的热舒适​​性。

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