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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Adiabatic surface temperature as thermal/structural parameter in fire modeling: Thermal analysis for different wall conductivities
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Adiabatic surface temperature as thermal/structural parameter in fire modeling: Thermal analysis for different wall conductivities

机译:绝热表面温度作为火模型中的热/结构参数:不同壁电导率的热分析

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The new useful concept of "Adiabatic Surface Temperature" or more commonly known as AST, introduced by Wickstrom et al. in 2007, is investigated in this study. Adiabatic surface temperature can be used for bridging the gap between fire models and temperature models; for example, it offers the opportunity to transfer both thermal information of the gas and the net heat flux to the solid phase model, obtained by CFD analysis. In this study two numerical analyses are carried out in order to evaluate the effect of wall thermal conductivity and of convective heat transfer coefficient on the adiabatic surface temperature as thermal/structural parameter in fire modeling. First one CFD analysis simulating a fire scenario, "conjugate heat transfer", with a square beam exposed to hot surface, is carried out to calculate AST, convective heat transfer coefficient and temperature field in the beam. In the second one, a conductive analysis is carried out on "standalone beam" imposing a third type boundary condition on its boundaries assuming the AST, evaluated in the conjugate analysis, as external temperature. Different convective heat transfer coefficients are imposed on the beam walls; the beam is of concrete or steel. Results are presented in terms of net heat flux on beam surfaces, convective heat transfer coefficients and temperature profiles on the beam walls, temperature fields for the two, CFD and conductive, analyses and the relative temperature and net heat flux percent errors. Results underline that convective heat transfer coefficient profiles and adiabatic surface temperatures on the bottom and lateral beam walls are independent of the wall thermal conductivity value, whereas the net heat flux values increase as wall thermal conductivity increases, fixed the emissivity.
机译:由Wickstrom等人介绍的“绝热表面温度”或更普遍称为AST的新有用概念。 2007年,在这项研究中进行了调查。绝热表面温度可用于弥补火灾模型和温度模型之间的差距;例如,它提供了将气体的热信息和净热通量传递到通过CFD分析获得的固相模型的机会。在这项研究中,进行了两个数值分析,以评估壁热导率和对流传热系数对绝热表面温度的影响,以此作为火灾建模中的热/结构参数。首先进行CFD分析,模拟了一种火灾情况,即“方形传热”,其中方形光束暴露于热表面,以计算AST,对流传热系数和光束中的温度场。在第二种方法中,对“独立束”进行传导分析,并在其边界上施加第三种边界条件,假定在共轭分析中评估的AST为外部温度。不同的对流传热系数被施加到梁壁上。梁是混凝土或钢制的。结果以梁表面的净热通量,梁壁上的对流传热系数和温度分布,CFD和传导性两者的温度场,相对温度和净热通量百分比误差的形式表示。结果表明,底壁和横梁壁上的对流传热系数曲线和绝热表面温度与壁的导热系数值无关,而净热通量值随壁的导热系数增加而固定,从而固定了发射率。

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