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本文引用的文献

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SciPy 1.0: fundamental algorithms for scientific computing in Python.SciPy 1.0:Python 中的科学计算基础算法。
Nat Methods. 2020 Mar;17(3):261-272. doi: 10.1038/s41592-019-0686-2. Epub 2020 Feb 3.
2
Experimental Investigation of Firebrand Accumulation Zones in Front of Obstacles.障碍物前方火brand堆积区域的实验研究。 (注:这里“firebrand”直译为“燃烧的碎片、余烬”,在该语境下结合专业内容意译为“火brand”,具体意思可根据相关专业知识进一步理解)
Fire Saf J. 2017;94. doi: 10.1016/j.firesaf.2017.08.007.
3
Experimental Investigation of Wood Decking Assemblies Exposed to Firebrand Showers.暴露于火流星雨中的木甲板组件的实验研究。
Fire Saf J. 2017 Sep;92:122-131. doi: 10.1016/j.firesaf.2017.05.019. Epub 2017 Jun 27.

在热气流中使用萘升华法对单个替代火brand及平板上简化火brand堆的对流传热关联式。

Convective heat transfer correlation for a single surrogate firebrand and a simplified firebrand pile on a flat plate using naphthalene sublimation in heated air flow.

作者信息

Wessies Savannah S, Yang Jiann C

机构信息

National Institute of Standards and Technology, 100 Bureau Dr., Gaithersburg, 20899, MD, USA.

出版信息

Fire Saf J. 2023 Oct;140. doi: 10.1016/j.firesaf.2023.103858.

DOI:10.1016/j.firesaf.2023.103858
PMID:37614686
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10443621/
Abstract

Previous studies have shown that most structure ignitions in wildland urban-interface fires are due to firebrand deposition and ignition. The heat transfer mechanisms involved in firebrand deposition need further study and characterization for better understanding of the firebrand ignition process. In particular, convective heat transfer correlations over a single firebrand and a pile of firebrands are lacking. Using the heat-mass transfer analogy, naphthalene sublimation experiments were conducted to determine convective heat transfer correlations for a single naphthalene cylinder (a surrogate firebrand) and an idealized three-firebrand pile resting on flat plates from mass loss measurements. These experiments were conducted in a wind tunnel using a heated (50 °C) or room temperature air flow (0.5 m/s to 2.1 m/s). There was good agreement between the Nusselt number correlation obtained using heated air and results with unheated airflows. Experiments using heated airflow reduced the experimental run times and uncertainty in mass loss measurements significantly. In general, the single firebrand had higher Nusselt numbers than the individual firebrands in the pile. In the three-firebrand pile, the firebrand at the top of the pile exhibited the highest heat transfer. The naphthalene sublimation technique can be easily extended to obtain convective heat transfer correlations for various firebrand geometries and configurations.

摘要

先前的研究表明,城市与野地交界处火灾中的大多数建筑起火是由火旋风沉积和着火引起的。为了更好地理解火旋风着火过程,火旋风沉积所涉及的传热机制需要进一步研究和表征。特别是,缺乏关于单个火旋风和一堆火旋风的对流传热关联式。利用传热传质类比,通过萘升华实验,根据质量损失测量结果确定了单个萘圆柱体(替代火旋风)和平板上理想化的三火旋风堆的对流传热关联式。这些实验在风洞中进行,使用加热(50°C)或室温气流(0.5米/秒至2.1米/秒)。使用加热空气得到的努塞尔数关联式与未加热气流的结果之间有很好的一致性。使用加热气流进行实验显著减少了实验运行时间和质量损失测量中的不确定性。一般来说,单个火旋风的努塞尔数高于堆中单个火旋风的努塞尔数。在三火旋风堆中,堆顶部的火旋风传热最高。萘升华技术可以很容易地扩展,以获得各种火旋风几何形状和配置的对流传热关联式。