首页> 外文学位 >Dynamic modeling and global optimal operation of multizone variable air volume HVAC systems.
【24h】

Dynamic modeling and global optimal operation of multizone variable air volume HVAC systems.

机译:多区域可变风量HVAC系统的动态建模和全局最优运行。

获取原文
获取原文并翻译 | 示例

摘要

Energy conservation and indoor environment concerns have motivated extensive research on various aspects of control of Heating, Ventilating and Air-Conditioning (HVAC) and building systems. The study on optimal operation as well as modeling of HVAC and building systems is one of the fastest growing fields that contribute to saving energy and improving indoor environment.; This thesis is devoted to the development of a comprehensive modeling and optimization methodology for global multiple-stage optimal operation of HVAC and building systems. Two different dynamic models of a multizone variable air volume (VAV) system have been developed using (i) bottom-up and (ii) top-down approaches. The models take account of the dynamic interactions between building shell, VAV system components and control systems. The models describe the dynamics of fan, air distribution system, zone(s), cooling coil and primary plant (chiller) as one multivariable nonlinear system in a way that is useful for control analysis. Using the bottom-up approach a large-scale VAV system model has been developed. This model considers the interactions between flow field and thermal field via distributed capacity and variable air density considerations. An alternate model which is computationally more efficient was developed using the top-down approach. Model reduction techniques were applied to develop a reduced-order state space model of the VAV system. Results show that predictions from the reduced order model are within 5% of those from the large scale model.; Optimal control schemes are developed for the efficient operation of VAV systems. In the control scheme proposed it is necessary to compute optimal setpoint profiles for local controllers. The optimal control profiles so computed can be used as tracking signals for local controllers for moving the system states from one setpoint to another. In order to determine optimal setpoint profiles an optimization methodology for formulating and solving the multiple stage optimal operation problems has been developed. The methodology is based on the maximum principle of Pontryagin and perturbation method in order to deal with the multiple time-scale of the HVAC processes and building operating schedules. A solution methodology and the corresponding computer models have been developed for solving the multiple stage optimal operation problems.; The applications of the VAV model and the multistage optimization methodology have been demonstrated by considering several practical examples. The examples include (i) a comparison of optimal strategies for constant and variable air volume systems with and without time-of-day price structure for electrical energy, (ii) a two-zone VAV heating system and (iii) a five-zone VAV cooling system. Results showing the 24-hour optimal setpoint profiles, energy cost savings and the output responses such as zone temperatures and humidity ratios are given for different building operation schedules. These applications show that the developed models and optimization methodology can be used to determine energy efficient operating strategies for VAV systems without violating the thermal comfort in buildings.
机译:节能和室内环境问题促使人们对供暖,通风和空调(HVAC)和建筑系统控制的各个方面进行了广泛的研究。对最佳运行以及HVAC和建筑系统建模的研究是发展最快的领域之一,有助于节能和改善室内环境。本文致力于为暖通空调和建筑系统的全球多阶段优化运行开发一种综合的建模和优化方法。使用(i)自下而上和(ii)自上而下的方法已经开发出了两种不同的多区可变风量(VAV)系统动态模型。这些模型考虑了建筑外壳,VAV系统组件和控制系统之间的动态相互作用。这些模型以一种对控制分析有用的方式将风扇,空气分配系统,区域,冷却盘管和主要设备(冷却器)的动力学描述为一个多变量非线性系统。使用自下而上的方法,已经开发了大规模的VAV系统模型。该模型通过分布容量和可变的空气密度考虑了流场和热场之间的相互作用。使用自顶向下方法开发了一种计算效率更高的替代模型。应用模型约简技术来开发VAV系统的降阶状态空间模型。结果表明,降阶模型的预测与大型模型的预测相差5%。针对VAV系统的有效运行,开发了最佳控制方案。在提出的控制方案中,有必要为本地控制器计算最佳设定值曲线。这样计算出的最佳控制曲线可以用作本地控制器的跟踪信号,以将系统状态从一个设定点移动到另一个设定点。为了确定最佳设定点曲线,已经开发出用于制定和解决多阶段最佳运行问题的优化方法。该方法基于庞特里亚金(Puntryagin)的最大原理和摄动法,以便处理HVAC过程的多个时间尺度和建立运行时间表。已经开发了一种解决方法和相应的计算机模型来解决多阶段最优运行问题。通过考虑几个实际示例,已经证明了VAV模型和多阶段优化方法的应用。示例包括(i)比较具有和不具有电能的每日价格结构的恒定和可变风量系统的最佳策略;(ii)两区VAV加热系统;(iii)五区VAV冷却系统。针对不同的建筑运营时间表,给出了显示24小时最佳设定值曲线,节省能源成本以及输出响应(如区域温度和湿度比)的结果。这些应用表明,开发的模型和优化方法可用于确定VAV系统的节能运行策略,而不会破坏建筑物的热舒适性。

著录项

  • 作者

    Zheng, Guo Rong.;

  • 作者单位

    Concordia University (Canada).;

  • 授予单位 Concordia University (Canada).;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 1997
  • 页码 206 p.
  • 总页数 206
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号