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Prediction of Turbulent Convective Heat Transfer to Supercritical CH_4/N_2 in a Vertical Circular Tube

机译:垂直圆管中湍流对流换热至超临界CH_4 / N_2的预测

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摘要

Cooling of supercritical CH_4/N_2 mixture is the most important heat transfer process during coalbed methane (CBM) liquefaction. In this paper, numerical studies of the turbulent convective heat transfer of supercritical CH4/N2 flowing inside a vertical circular tube have been conducted with Lam-Bremhorst low Reynolds turbulence model. The present numerical investigations focus on the effects of the nitrogen content, heat flux, and flow orientation. Results indicate that as nitrogen content increases, the maximum heat transfer coefficient gradually decreases and corresponds to lower temperature. Heat transfer coefficient is slightly affected by heat flux in the liquid-like region and increases with increasing heat flux in the gas-like region. Buoyancy effect gradually increases with decreasing bulk temperature, and reaches its maximum at the pseudo-critical point, and then drops as bulk temperature further decreases. It is significant in the liquid-like region and negligible in the gas-like region. At the same time, buoyancy effect enhances heat transfer in the upward flow and impairs it in the downward flow.
机译:超临界CH_4 / N_2混合物的冷却是煤层气(CBM)液化过程中最重要的传热过程。本文利用Lam-Bremhorst低雷诺湍流模型对超临界CH4 / N2在垂直圆管内流动的湍流对流换热进行了数值研究。目前的数值研究集中在氮含量,热通量和流动方向的影响上。结果表明,随着氮含量的增加,最大传热系数逐渐降低并对应于较低的温度。传热系数受液体状区域中的热通量的影响很小,并且随着气体状区域中的热通量的增加而增加。浮力效应随着体温的降低而逐渐增加,并在伪临界点达到最大值,然后随着体温的进一步降低而降低。在液体状区域中它是重要的,而在气体状区域中它可以忽略不计。同时,浮力作用增强了向上流动中的热传递,并削弱了向下流动中的热传递。

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