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CFD study of fire-induced pressure variation in a mechanically-ventilated air-tight compartment

机译:机械通风气密室内火灾诱导压力变化的CFD研究

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Computational Fluid Dynamics (CFD) simulations of fire-induced pressure and ventilation flow in a mechanically-ventilated air-tight compartment, representative of a passive house, are presented. Experiments conducted by University of Mons are used to assess the results. The simulation heat release rate is prescribed based on experimental measurements. The experimental duct flow rate is about 80 m(3)/h. Two methods are used to meet the aforementioned value in simulations: 1) by modeling the actual fan curve and dampers, and 2) by modifying the fan curve to avoid simulations of dampers. The combination of real fan curve and dampers provides better results. The simulations reproduce well the pressure profile (maximum 433 Pa) and the duct flows. The simulated reverse inlet flow and increased outlet flow rates reach values of 157 m(3)/h and 165 m(3)/h, respectively. Besides, the fire-induced pressure is high enough to hinder evacuation and fire rescue operations due to the impossibility of opening inward-open doors. Moreover, the adjacent room pressure also reaches a high level. Reducing the gap area between rooms significantly reduces the adjacent room pressure, but leads to an increase of the fire room pressure. Temperature deviations are observed and are improved by modeling a more realistic fire source.
机译:呈现了计算流体动力学(CFD)在机械通风气密隔室中的燃烧压力和通风流动的模拟,是被动房屋的代表。 Mons大学进行的实验用于评估结果。基于实验测量规定了模拟热释放速率。实验管道流速约为80米(3)/ h。通过修改风扇曲线来避免阻尼器模拟,通过修改风扇曲线来满足模拟中的两种方法来满足模拟中的上述值:1)。真正的风扇曲线和阻尼器的组合提供了更好的结果。模拟再现压力曲线(最大433Pa)和管道流动。模拟的反向入口流量和增加的出口流速分别达到157m(3)/ h和165m(3)/ h的值。此外,由于打开内部开放门的不可能性,火诱导的压力足以妨碍疏散和救援行动。此外,相邻的房间压力也达到高水平。减少房间之间的间隙区域显着降低了相邻的房间压力,但导致火灾室压力的增加。观察温度偏差,通过建模更现实的消防来源来改善。

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