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Thermal models for fire safety : calculation of flame spread on surfaces and heating of structures

机译:防火安全的热模型:表面火焰扩散和结构加热的计算

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摘要

The studies presented in this thesis under the title "Thermal models for fire safety – calculation of flame spread on surfaces and heating of structures" consist of two parts: flame spread on combustible surfaces and calculation of heating of structures.This work consists of the development of thermal models for Fire Safety purposes. The main objective of the present thesis work is to produce new information for fire safety related to the development of models for flame spread on surfaces and to develop engineering calculation methods in heating of structures.In the context of Fire Safety, the word "fire" means accidental unwanted fires. The primary goal in Fire Safety is to protect life and property. The research field is relatively young and multi-disciplinary.The growth rate of a fire depends on how fast the flame will spread and involve more burning surfaces. In an enclosure, the burning rate is enhanced due to feedback effects but it is still the increasing area of the fire that affect the flame size. In fully developed fire, as in enclosures, the availablilty of air limits the rate of heat release. Fire growth rate and the rate of heat release depend highly on how rapidly the initialized fire propagates on surfaces. Thus, it is the flame spread that controls the rate of heat release in large or open spaces. This shows the importance of modeling flame spread, due to its direct impact on fire safety.This first part of the work discusses upward surface flame spread on a combustible solid surface. The flame spread is a process of a moving flame in the vicinity of a pyrolysing region on the surface which acts as a fuel source. The flame itself results from the combustion in the atmosphere of the pyrolysed gases leaving the surface. The oxygen and fuel concentrations together with the heat transfer phenomena between the flame and the solid phase affect strongly the process. Flame spread models of various levels of complexity are developed. A novel thermal pyrolysis upward flame spread model is also developed to predict the fire growth of combustible charring wall linings.Heat release rate in fires is of primary importance. When a structure is present, a part of the calorific energy dissipated in the fire is fed back to the structure via thermal radiation and convection with consequence of raising its temperature. As the performance of structures decrease with the increasing of temperature, knowledge of temperature distribution within the structure it is important to estimate the safe-escape time for occupants, safe-operational time for firemen and fire resistance. It is therefore essential to model heat transfer in structures. In the second part of the thesis heating of structures and temperature calculations in solids are addressed.Efficient engineering temperature calculation algorithms for various fire heated structures are developed.
机译:本文以“防火安全热模型–计算表面火焰传播和结构加热”的标题进行的研究包括两部分:可燃表面火焰传播和结构加热计算。用于消防安全的热模型。本文工作的主要目的是提供与开发表面火焰传播模型有关的新的消防安全信息,并开发结构加热中的工程计算方法。在消防安全的上下文中,“火”一词表示意外的意外火灾。消防安全的主要目标是保护生命和财产。研究领域相对较年轻且涉及多个学科,火的增长率取决于火焰扩散的速度和涉及更多的燃烧表面。在封闭空间中,由于反馈效应,燃烧率得到了提高,但是影响火焰大小的仍然是着火面积的增加。在完全燃烧的火灾中(如在封闭环境中),空气的可用性限制了放热的速度。火的生长速率和放热率高度取决于初始火在表面上传播的速度。因此,正是火焰蔓延控制了大空间或开放空间中的热量释放速率。由于火焰蔓延对消防安全有直接影响,因此显示了火焰蔓延建模的重要性。本工作的第一部分讨论了可燃固体表面上的向上火焰蔓延。火焰蔓延是在用作燃料源的表面上的热解区域附近移动火焰的过程。火焰本身是由离开表面的热解气体在大气中燃烧产生的。氧气和燃料的浓度以及火焰和固相之间的传热现象会严重影响该过程。开发了各种复杂程度的火焰传播模型。还开发了一种新型的热解向上燃烧火焰蔓延模型来预测可燃炭化衬砌的火势增长。火中的热释放率至关重要。当存在结构时,在火中耗散的一部分热能通过热辐射和对流反馈给结构,从而提高了温度。随着结构的性能随温度的升高而下降,了解结构内的温度分布对于估算乘员的安全逃生时间,消防员的安全操作时间和耐火性非常重要。因此,必须对结构中的热传递进行建模。在论文的第二部分中,讨论了结构的加热和固体中的温度计算。开发了用于各种火灾加热结构的有效工程温度计算算法。

著录项

  • 作者

    Baroudi Djebar;

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  • 年度 2007
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  • 原文格式 PDF
  • 正文语种 en
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