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Determination of loss coefficients for high-temperature flow devices: An entropy-based approach

机译:确定高温流量设备的损耗系数:基于熵的方法

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Thermodynamic analysis of a high-temperature confined turbulent gas-jet is presented in this paper. The numerical model is two dimensional, steady, and includes the effect of gravity in the governing equations. Computations are carried out with a commercial CFD code and the local exergy losses are determined as post processed quantities. The analysis takes into account the second law effects of viscous dissipation, heat conduction and convection, and radiative heat transfer. The study is extended by conducting a parametric investigation to determine the effects of Reynolds number, inlet fluid temperature, optical thickness, and Planck number on the exergy loss coefficient, which is defined as the total exergy destroyed per unit mechanical energy input. The results show that exergy loss trough radiation entropy production is higher than that due to heat conduction and convection when the inlet gas temperature is high. It has also been found that in contrast to the conventional head loss coefficient, the exergy loss coefficient increases with inlet gas temperature, optical thickness, and Planck number.
机译:本文介绍了高温密闭湍流射流的热力学分析。数值模型是二维的,稳定的,并且在控制方程中包括重力的影响。计算使用商业CFD代码进行,本地火用损失确定为后处理量。该分析考虑了粘性耗散,热传导和对流以及辐射热传递的第二定律效应。通过进行参数研究确定雷诺数,入口流体温度,光学厚度和普朗克数对本能损耗系数的影响,该研究得以扩展,本能损耗系数定义为每单位机械能输入所破坏的总本能。结果表明,当进气温度较高时,通过辐射熵产生的火用损失高于通过热传导和对流产生的损失。还已经发现,与常规的压头损失系数相比,本能损失系数随着进气温度,光学厚度和普朗克数的增加而增加。

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