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Robust model predictive control of VAV air-handling units concerning uncertainties and constraints

机译:VAV空气处理机组的不确定性和约束的鲁棒模型预测控制

摘要

This paper presents a new strategy for robust temperature control of variable-air-volume (VAV) air-handling units (AHUs) that can deal with dynamic variations and the associated constraints in a straightforward manner. The dynamics of VAV AHUs is described by a first-order-plus-time-delay model, and the dynamic variations of the process gain, time constant, and time delay are described using uncertainty sets. These uncertainty sets are converted into an uncertainty polytope, and then an offline robust model predictive control (MPC) algorithm is employed for robust control design. The design procedure is illustrated step by step. An operating mode identification scheme is also developed based on the operating characteristics of VAV AHUs in order to reduce the size of uncertainty sets and, hence, to improve the control performance. Case studies are performed on a simulated VAV AHU. Results are presented to show that the proposed control strategy is able to enhance robustness without much user intervention, reduce the control activities, and satisfy constraints when implemented in the temperature control of VAV AHUs.
机译:本文提出了一种对可变风量(VAV)空气处理单元(AHU)进行稳健温度控制的新策略,该策略可以直接处理动态变化和相关的约束。 VAV AHU的动力学由一阶加时间延迟模型描述,过程增益,时间常数和时间延迟的动态变化通过不确定性集描述。将这些不确定性集转换为不确定性多态性,然后将离线鲁棒模型预测控制(MPC)算法用于鲁棒控制设计。逐步说明了设计过程。还基于VAV AHU的运行特性开发了运行模式识别方案,以减小不确定性集合的大小,从而改善控制性能。案例研究是在模拟的VAV AHU上进行的。结果表明,所提出的控制策略能够在无须用户干预的情况下提高鲁棒性,减少控制活动,并在VAV AHU的温度控制中满足约束条件。

著录项

  • 作者

    Huang G; Wang S; Xu X;

  • 作者单位
  • 年度 2010
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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