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A Dynamic Water-Filling Method for Real-Time HVAC Load Control Based on Model Predictive Control

机译:基于模型预测控制的实时HVAC负荷控制动态注水方法

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Heating ventilation and air-conditioning (HVAC) system can be viewed as elastic load to provide demand response. Existing work usually used HVAC to do the load following or load shaping based on given control signals or objectives. However, optimal external control signals may not always be available. Without such control signals, how to make a tradeoff between the fluctuation of non-renewable power generation and the limited demand response potential of the elastic load, while still guaranteeing user comfort level, is still an open problem. To solve this problem, we first model the temperature evolution process of a room and propose an approach to estimate the key parameters of the model. Second, based on the model predictive control, a centralized and a distributed algorithm are proposed to minimize the fluctuation and maximize user comfort level. In addition, we propose a dynamic water level adjustment algorithm to make the demand response always available in two directions. Extensive simulations based on practical data sets show that the proposed algorithms can effectively reduce the load fluctuation.
机译:供暖通风和空调(HVAC)系统可以看作是弹性负载,可以提供需求响应。现有工作通常使用HVAC根据给定的控制信号或目标进行负载跟踪或负载整形。但是,最佳外部控制信号可能并不总是可用。在没有这种控制信号的情况下,如何在不可再生发电的波动和弹性负载的有限的需求响应电位之间做出折衷,同时仍然保证用户舒适度,这仍然是一个未解决的问题。为了解决这个问题,我们首先对房间的温度演变过程进行建模,然后提出一种估算模型关键参数的方法。其次,基于模型预测控制,提出了一种集中式和分布式算法,以最小化波动并最大化用户舒适度。此外,我们提出了一种动态水位调节算法,以使需求响应始终在两个方向上可用。基于实际数据集的大量仿真表明,所提出的算法可以有效减少负载波动。

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