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Model predictive control optimization for rapid response and energy efficiency based on the state-space model of a radiant floor heating system

机译:基于辐射地板加热系统状态空间模型的快速响应和能效模型预测控制优化

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In recent years, radiant floor heating systems have been favored by more and more consumers because of their better comfort, high stability, and energy efficiency. This is especially true in southern China, where heating demand is increasing, and its application is becoming more common. This study explored the method of establishing a state-space model of a variable-flow radiant heating system without selecting and applying extensive measurement data and the application of the model predictive control method to its control optimization. The average errors between the state-space model and the experimental data in terms of the zone air temperatures and radiant floor surface temperatures were only -0.21-0.07 degrees C. The state-space model saves 76%similar to 95% of the computation time compared to the Trnsys model, particularly suitable for large volumes and longtime building simulations. For the intermittent operation of the radiant floor heating with an air-source heat pump, the MPC controller reduced the response time by about 90 min compared with that with the PID controller, a reduction of approximately 56%. Besides, the MPC controller can effectively reduce energy consumption by 14.9% and improve the COP of the air-source heat pump by 24.5% compared with the PID controller. (C) 2021 Elsevier B.V. All rights reserved.
机译:近年来,由于其更好的舒适,高稳定性和能效,辐射地板加热系统被越来越多的消费者受到青睐。这在中国南方尤其如此,其中加热需求正在增加,其应用变得越来越普遍。本研究探索了建立可变流辐射加热系统的状态空间模型的方法,而无需选择和应用广泛的测量数据以及模型预测控制方法在其控制优化中的应用。状态空间模型与区域空气温度和辐射地板表面温度之间的平均误差仅为-0.21-0.07℃。状态空间模型可节省76%,类似于计算时间的95%与Trnsys模型相比,特别适用于大卷和长期建筑模拟。对于使用空气源热泵的辐射地板加热的间歇操作,与PID控制器相比,MPC控制器将响应时间减少约90分钟,减小约56%。此外,与PID控制器相比,MPC控制器可以有效地将能耗降低14.9%,并通过24.5%提高空气源热泵COP。 (c)2021 Elsevier B.v.保留所有权利。

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