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Numerical Study of Entropy Generation due to Coupled Laminar and Turbulent Mixed Convection and Thermal Radiation in an Enclosure Filled with a Semitransparent Medium

机译:具有半透明介质的外壳耦合层状和湍流混合对流和热辐射引起的熵产生的数值研究

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The effect of radiation on laminar and turbulent mixed convection heat transfer of a semitransparent medium in a square enclosure was studied numerically using the Finite Volume Method. A structured mesh and the SIMPLE algorithm were utilized to model the governing equations. Turbulence and radiation were modeled with the RNGk-εmodel and Discrete Ordinates (DO) model, respectively. For Richardson numbers ranging from 0.1 to 10, simulations were performed for Rayleigh numbers in laminar flow (104) and turbulent flow (108). The model predictions were validated against previous numerical studies and good agreement was observed. The simulated results indicate that for laminar and turbulent motion states, computing the radiation heat transfer significantly enhanced the Nusselt number (Nu) as well as the heat transfer coefficient. Higher Richardson numbers did not noticeably affect the average Nusselt number and corresponding heat transfer rate. Besides, as expected, the heat transfer rate for the turbulent flow regime surpassed that in the laminar regime. The simulations additionally demonstrated that for a constant Richardson number, computing the radiation heat transfer majorly affected the heat transfer structure in the enclosure; however, its impact on the fluid flow structure was negligible.
机译:用有限体积法在数值上进行了数值在线辐射对半透明介质的半透明介质的层状和湍流对流热传递的影响。使用结构化网格和简单算法来模拟控制方程。湍流和辐射分别用RNGK-εmodel和离散坐标(DO)模型进行建模。对于Richardson号码,范围为0.1至10,对层流(104)和湍流(108)的瑞利数进行了模拟。模型预测是针对先前的数值研究验证的,并且观察到良好的一致性。模拟结果表明,对于层流和湍流运动状态,计算辐射热传递显着增强了NUSERET数(NU)以及传热系数。较高的理查森数量没有明显影响平均营养数和相应的传热速率。此外,如预期的那样,湍流状态的传热速率超过了层状制度。仿真还证明,对于恒定的理查森数,计算辐射热传递主要影响外壳中的传热结构;然而,它对流体流动结构的影响可以忽略不计。

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