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Real-time control of AHU based on a neural network assisted cascade control system

机译:基于神经网络辅助级联控制系统的AHU实时控制

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摘要

In this paper, we propose a novel neural network assisted proportional-plus-integral (PI) control strategy to improve the supply air pressure control performance of variable air volume (VAV) system. The neural network is trained on-line with a normalized training algorithm, which eliminates the requirement of a bounded regression signal to the system. To ensure the convergence of the training algorithm, an adaptive dead-zone scheme is employed. Stability of the proposed control scheme is guaranteed based on the conic sector theory. To demonstrate the applicability of the proposed method, real-time tests were carried out on a pilot VAV air-conditioning system and good experimental results were obtained.
机译:在本文中,我们提出了一种新颖的神经网络辅助比例积分(PI)控制策略,以提高可变风量(VAV)系统的送风压力控制性能。使用规范化的训练算法对神经网络进行在线训练,从而消除了对系统的有限回归信号的需求。为了确保训练算法的收敛性,采用了自适应死区方案。基于圆锥扇形理论,可以保证所提出的控制方案的稳定性。为了证明所提方法的适用性,在试点VAV空调系统上进行了实时测试,并获得了良好的实验结果。

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