Design and Simulation of Air Conditioning System in a Large Auditorium Based on Computational Fluid Dynamics

R. Abu, K. Oladejo, A. O. Popoola, K. T. Oriolowo, K. M. Odunfa
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Abstract

Air conditioning system is an indispensable part of buildings today. The cost of this system increases with the rise in energy consumption which poses a challenge as well as air distribution in large auditoria. Analysis of results can also be daunting when designing this system. The study focuses on designing an air conditioning system in a large auditorium, applying Computational Fluid Dynamics (CFD) and visualizing the result in a Virtual Reality (VR) environment. The 3-dimensional model of the 520-capacity Technology Lecture Theatre, University of Ibadan, Nigeria was drawn with Autodesk Revit and modified into the geometry applicable for Displacement Ventilation (DV) and Mixed Ventilation (MV) for ease of numerical analysis with ANSYS Fluent. The building model and simulation results were then imported into Unity software for visualization in VR. The DV achieved better thermal comfort and air distribution in the computer simulation. At a supply temperature of 292.15 K, the DV system was able to keep the auditorium temperature at about 296.50 K, while the MV system at a supply temperature of 289.15 K was only able to maintain the temperature at 295.40 K. The temperature profile showed that the lower region where the students were seated was colder in DV compared to MV by at least 3 K. The results were also observed from a convenient position in VR. This study, with the aid of CFD and VR, was able to establish that displacement ventilation design has better air flow, lower energy consumption and is efficient for an air conditioning system in a large auditorium.
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基于计算流体力学的大礼堂空调系统设计与仿真
空调系统是当今建筑不可缺少的一部分。该系统的成本随着能源消耗的增加而增加,这对大型礼堂的空气分配提出了挑战。在设计该系统时,结果分析也可能令人望而生畏。本研究的重点是设计一个大型礼堂的空调系统,应用计算流体力学(CFD)并在虚拟现实(VR)环境中将结果可视化。利用Autodesk Revit绘制了尼日利亚伊巴丹大学520个容量的技术报告厅的三维模型,并将其修改为适用于置换通风(DV)和混合通风(MV)的几何形状,以便于使用ANSYS Fluent进行数值分析。然后将建筑模型和仿真结果导入Unity软件进行VR可视化。在计算机模拟中,DV获得了较好的热舒适性和气流分布。在292.15 K的供电温度下,DV系统可以将礼堂温度保持在296.50 K左右,而在289.15 K的供电温度下,MV系统只能将礼堂温度维持在295.40 K。温度分布显示,学生们坐的较低的区域在DV中比在MV中至少冷3k。在VR中方便的位置观察结果。本研究借助CFD和VR技术,确定了置换通风设计对于大礼堂空调系统具有更好的风量、更低的能耗和效率。
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