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A CFD-based test method for control of indoor environment and space ventilation

机译:基于CFD的室内环境和空间通风控制测试方法

摘要

System dynamic simulation has been adopted to test and evaluate the local and supervisory control of air-conditioning systems for over twenty years, while the modeling of the space ventilation was usually simulated using perfect mixing models. However, the complete-mixing air model fails to consider the impact of non-uniform air temperature stratifications. This paper presents a CFD-based virtual test method for control and optimization of indoor environment by combining a ventilated room with a ventilation control system. The ventilated room and its dynamic ventilation control system are represented by a computational fluid dynamics (CFD) model and models of the temperature sensor, PID controller and actuator and VAV damper model respectively. The ventilation and its control system are programmed using the user defined function program and interfaced with the CFD model. A space temperature offset model is developed to improve the accuracy of temperature measurement and control at the occupied zone as a virtual sensor. Case studies show that the ventilation control models can interoperate with the CFD simulation of the space online which presents a new application approach of CFD simulation for testing and developing control and optimal control strategy before a system is constructed practically. The use of the virtual sensor can effectively compensate the effect of non-uniform stratification on the temperature control and improve system control reliability in a mechanical ventilated room.
机译:系统动态仿真已被用于测试和评估空调系统的本地和监督控制二十多年,而空间通风的建模通常使用完美的混合模型进行仿真。但是,完全混合空气模型无法考虑非均匀空气温度分层的影响。本文提出了一种基于CFD的虚拟测试方法,该方法通过将通风房间与通风控制系统相结合来控制和优化室内环境。通风室及其动态通风控制系统分别由计算流体动力学(CFD)模型,温度传感器模型,PID控制器模型和执行器模型以及VAV阻尼器模型表示。使用用户定义的功能程序对通风及其控制系统进行编程,并与CFD模型连接。开发了空间温度补偿模型,以提高虚拟传感器在占用区域的温度测量和控制的准确性。案例研究表明,通风控制模型可以与在线空间的CFD仿真互操作,这为在实际构建系统之前测试和开发控制以及最优控制策略提供了一种CFD仿真的新应用方法。虚拟传感器的使用可以有效补偿不均匀分层对温度控制的影响,并提高机械通风室内系统控制的可靠性。

著录项

  • 作者

    Sun Z; Wang S;

  • 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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