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Correlations for fire-wind enhancement flow characteristics based on LES simulations

机译:基于LES模拟的火灾增强流动特性的相关性

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摘要

Unraveling the physics of fire-wind interaction has long been a subject of interest. Among all the physics involved, enhancement of wind by fire deserves great attention due to its potential effects on building structures downstream of the fire source in bushfire attack events. Predominantly, two contributing factors determine the extent to which wind is enhanced by fire: freestream wind velocity and fire intensity. This study employs Large-Eddy Simulation (LES) to fundamentally investigate the combined effects of freestream wind velocity and fire intensity on fire-wind enhancement. An added module was implemented to an open-source transient fire solver in order to analyze the effects of freestream wind velocity and fire intensity based on the analysis of interactions between momentum and fire-induced buoyancy forces. Simulations are performed for parametric combinations of wind velocity and fire intensity. The LES results demonstrate that the normalized maximum wind enhancement increases with a reduction of freestream wind velocity and an increase in fire intensity. The non-dimensional Froude number, Fr, and normalized fire intensity, I*, were employed to quantify the effects of freestream wind velocity and fire intensity, respectively. A correlation was developed to determine the maximum wind enhancement as a function of Fr and I*. The location corresponding to maximum wind enhancement occurs further downstream of the fire source as freestream wind velocity or fire intensity increases. A correlation based on the Fr number and I* was developed for the location at which maximum wind enhancement occurs. Furthermore, the concept of wind enhancement plume line was defined as a line along which the local wind enhancement occurs at a given longitudinal location downstream of the fire source, for which a correlation was also developed. Moreover, a gradual decaying trend is observed in wind enhancement after reaching a peak along the wind enhancement plume line in all simulation scenarios for which a correlation was also developed as a function normalized longitudinal direction.
机译:解开火风相互作用的物理长期以来一直是兴趣的主题。在涉及的所有物理学中,由于其对丛林火箭源下游的建筑结构的潜在影响,火灾的增强值得非常关注。主要是,两种贡献因素决定了火灾的大部分:FreeStream风速和火力强度。本研究采用大型涡流模拟(LES),从根本上调查FreeStream风速和火力强度对火风增强的综合影响。将添加的模块实施到开源瞬态火灾求解器,以分析FreeSteam风速和火力强度的影响,基于动量和火灾引起的浮力力之间的相互作用分析。对风速和火强度的参数组合进行模拟。 LES结果表明,归一化的最大风力增强随着Freestream风速的降低而增加,并且导火强度增加。使用非维度FRoude号码,FR和标准化的火强度,I *,分别用于量化Freestream风速和火力强度的影响。开发了相关性以确定作为FR和I *的函数的最大风力增强。随着FreeStream风速或火力强度的增加,火源的进一步下游发生了与最大风力增强相对应的位置。为基于FR编号和I *的相关性是为最大风力增强发生的位置开发的。此外,风力增强型流线的概念被定义为沿着该线的线,其中在消防源下游的给定纵向位置发生局部风力增强,其中还开发了相关性。此外,在所有仿真场景中沿着风增强型流线达到峰值之后,在沿着风速增强型情况下达到峰值的峰值也被开发为幂归一化的纵向。

著录项

  • 来源
    《International Journal of Heat and Fluid Flow》 |2020年第4期|108558.1-108558.17|共17页
  • 作者单位

    Center for Infrastructure Engineering School of Computing Engineering and Mathematics Western Sydney University Penrilh NSW 2751 Australia;

    University of New South Wales Canberra Canberra 2610 ACT Australia;

    Center for Infrastructure Engineering School of Computing Engineering and Mathematics Western Sydney University Penrilh NSW 2751 Australia;

    School of Civil Engineering The University of Sydney NSW 2006 Australia;

    School of Civil Engineering The University of Sydney NSW 2006 Australia;

    Center for Infrastructure Engineering School of Computing Engineering and Mathematics Western Sydney University Penrilh NSW 2751 Australia;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Fire-wind enhancement; Fire intensity; Wind velocity; Correlation; LES;

    机译:火灾增强;火强度;风速;相关性;l;

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