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Critical velocity in ventilated tunnels in the case of fire plumes and densimetric plumes

机译:出现火羽和密度羽时,通风隧道的临界速度

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摘要

We focus on the critical velocity in longitudinally ventilated tunnels and on its dependence on the power of the fire source. In particular we aim at identifying the reason for the appearance of the so-called 'super-critical' velocity, a ventilation velocity that becomes independent of the heat release rate as this latter becomes large. A critical review of existing literature studies allows us to point out possible explanations for this peculiar phenomenon. Among these, we focus here on effects related to heat fluxes (diffusive and radiative) and to the presence of large (compared to the tunnel height) flames. To enlighten the role of these phenomena, our approach is that of systematically compare the critical velocities as induced, for a given heat release rate, by densimetric plumes and fire plumes. The study is conducted by combining experimental, numerical and theoretical methods. The experiments were performed in a reduced-scale tunnel using densimetric plumes (air/helium mixture and hot air). Numerical simulations were performed with Fire Dynamics Simulator (FDS) and concerned densimetric plumes and fire plumes (propane). These show that the diffusive heat fluxes at the tunnel walls affect only marginally the critical ventilation. Similar conclusions can be drawn for the role of the radiative fluxes. The results also show that plumes arising from small fires can be reliably modelled as buoyant densimetric plumes released at ground level. In these cases the critical velocity increases with the one-third power of the heat release rate. The flow dynamics (and therefore the critical velocity) induced by larger fires is instead different. Notably, the occurrence of large flames (i.e. larger than the tunnel half-height) represent a source of distributed buoyancy, located downwind of the injection of flammable gases. Their presence induces the critical velocity to become almost independent on the heat release rate.
机译:我们关注纵向通风隧道中的临界速度及其对火源功率的依赖性。特别地,我们旨在确定出现所谓的“超临界”速度的原因,即随着该速度变大而变得与放热率无关的通风速度。对现有文献研究的批判性回顾使我们能够为这种特殊现象指出可能的解释。在这些方法中,我们将重点放在与热通量(扩散和辐射)和大火焰(与隧道高度相比)有关的效应上。为了启发这些现象的作用,我们的方法是系统地比较在给定的放热速率下,由密度羽状流和火状羽流引起的临界速度。这项研究是结合实验,数值和理论方法进行的。实验是在缩小的隧道中使用密度羽流(空气/氦气混合物和热空气)进行的。使用Fire Dynamics Simulator(FDS)进行了数值模拟,并关注了密度羽状流和火羽状流(丙烷)。这些表明,隧道壁处的扩散热通量仅对临界通风有轻微的影响。对于辐射通量的作用可以得出类似的结论。结果还表明,小火产生的羽流可以可靠地建模为在地面释放的浮力密度羽流。在这些情况下,临界速度随放热率的三分之一增加。相反,由较大的火灾引起的流动动力学(因而是临界速度)是不同的。值得注意的是,大火焰的发生(即大于隧道的半高)代表着分布的浮力源,位于可燃气体注入的顺风口。它们的存在导致临界速度变得几乎与放热速率无关。

著录项

  • 来源
    《Fire Safety Journal》 |2018年第10期|53-62|共10页
  • 作者单位

    Univ Claude Bernard, Univ Lyon, CNRS,UMR 5509, INSA Lyon,Ecole Cent Lyon,Lab Mecan Fluides & Aco, 36 Ave Guy Collongue, F-69134 Ecully, France;

    Univ Claude Bernard, Univ Lyon, CNRS,UMR 5509, INSA Lyon,Ecole Cent Lyon,Lab Mecan Fluides & Aco, 36 Ave Guy Collongue, F-69134 Ecully, France;

    Ctr Etud Tunnels, 25 Ave Francois Mitterrand, F-69500 Bron, France;

    Univ Claude Bernard, Univ Lyon, CNRS,UMR 5509, INSA Lyon,Ecole Cent Lyon,Lab Mecan Fluides & Aco, 36 Ave Guy Collongue, F-69134 Ecully, France;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Buoyant plumes; Critical velocity; Fire; Tunnel ventilation;

    机译:浮羽;临界速度;着火;隧道通风;

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