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基于模型的地下体育馆通风系统原型设计、建立与运行

Model-based prototype design, establishment and operation of ventilation system for underground gymnasium.

作者信息

Meng Ran, Li Hui, Zhang Zhiyong, Dong Chen

机构信息

Laboratory of Virtual Reality and Simulation Technology, Shandong Sport University, Jinan, 250102, China.

Shandong Water conservancy vocational college, Rizhao, 276826, China.

出版信息

Heliyon. 2024 Aug 9;10(16):e36055. doi: 10.1016/j.heliyon.2024.e36055. eCollection 2024 Aug 30.

Abstract

Underground small indoor gymnasiums (USIG) are important public places, it is vital to design and build a very economical and efficient ventilation system for effective closed-loop regulation of temperature and gases concentration at prescribed levels. In the article, the model-based prototype design, establishment and operation were proposed and applied to closed-loop control system of the underground small indoor gymnasiums' ventilation system (USIGVS). First of all, the extended Multiphysics model was developed through feedback connecting the 3D Multiphysics model of air flow rate, temperature, O and CO concentration with a 0D proportional-integral-derivative (PID) controller via Neumann boundary condition, hence a close-loop USIGVS was constructed for feedback control of temperature and gases concentration in ping-pong USIG. Simultaneously, a cost function sufficiently representing the design requirement was formulated. Then global parameter sensitivity analysis (GPSA) was applied for sensitivity ranking of parameters including geometric parameters of USIGVS and tunable parameters of PID controller. The GPSA proved that sensitivity ordering of the cost function to each parameter was proportional gain ( ) > derivative gain ( ) > distance from left inlet to bottom () > distance from outlet pipe to bottom () > integrative gain ( ) > distance from upper inlet pipe to left (), respectively, and the , and was the parameter influencing the cost function the most. The optimal parameters determined by both GPSA and response optimization were  = 3.17 m mol s,  = 1.49 m mol,  2.04 m,  3.12 m,  = 0.37 m mol s and  = 3.85 m. Finally, the closed-loop USIGVS prototype with optimal parameters was designed and established through real-time simulation. The real-time operation confirmed that the temperature and gases concentrations were robust maintained at prescribed levels with desired dynamic response characteristics and lower power consumption, and the expected requirements were achieved for the design, establishment and operation of closed-loop USIGVS control system prototype.

摘要

地下小型室内体育馆(USIG)是重要的公共场所,设计并构建一个经济高效的通风系统,以便将温度和气体浓度有效地闭环调节到规定水平至关重要。本文提出了基于模型的原型设计、建立和运行方法,并将其应用于地下小型室内体育馆通风系统(USIGVS)的闭环控制系统。首先,通过诺伊曼边界条件将空气流速、温度、氧气和二氧化碳浓度的三维多物理场模型与零维比例积分微分(PID)控制器反馈连接,开发了扩展多物理场模型,从而构建了一个用于乒乓球地下小型室内体育馆温度和气体浓度反馈控制的闭环USIGVS。同时,制定了一个充分体现设计要求的成本函数。然后,应用全局参数敏感性分析(GPSA)对包括USIGVS几何参数和PID控制器可调参数在内的参数进行敏感性排序。GPSA证明,成本函数对各参数的敏感性排序分别为比例增益( )>微分增益( )>左入口到底部的距离( )>出口管到底部的距离( )>积分增益( )>上入口管到左边的距离( ),其中 、 和 是对成本函数影响最大的参数。通过GPSA和响应优化确定的最优参数为 = 3.17 m mol s, = 1.49 m mol, = 2.04 m, = 3.12 m, = 0.37 m mol s, = 3.85 m。最后,通过实时仿真设计并建立了具有最优参数的闭环USIGVS原型。实时运行证实,温度和气体浓度能够稳健地维持在规定水平,具有所需的动态响应特性且功耗较低,实现了闭环USIGVS控制系统原型设计、建立和运行的预期要求。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9d27/11367119/ded49544326b/gr1.jpg

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