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Entropy generation for flow boiling on a single semi-circular minichannel

机译:熵生成流沸腾在单个半圆形迷你宣传葵

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The paper investigates the effects of parameters such as mass flux, heat flux, channel diameter and inlet pressure on the entropy generation in flow boiling inside a semi-circular minichannel. A general entropy generation equation is derived for a single minichannel for flow boiling with developing flow, while also relaxing some heat transfer assumptions such as ΔT/T_(sat) 1. The Romberg integration technique is used to solve for the entropy generation. Our results show that an increase in the mass flux causes an abrupt change in the entropy generation when the flow changes from laminar to transitional flow at small diameters although the effect is less significant at larger diameters. The heat transfer contribution in the entropy generation is also higher than the pressure drop contribution for the larger diameters. The larger channel diameters produce higher entropy generation compared to the smaller diameters for every heat flux investigated due to the increase in heat transfer contribution. An increase in the inlet pressure also decreases the entropy generation for every mass flux and heat flux. The aims of this study are to enhance the knowledge of the effects of heat transfer, pressure drop and flow behavior on the entropy generation, and to encourage researchers and designers to explore more novel features that can take advantage on the minimization of entropy generation.
机译:本文研究了参数,例如质量磁通,热通量,通道直径和入口压力的影响,在半圆形迷你宣传中的流动沸腾中的熵产生。导出一般熵生成方程,用于具有开发流的流沸腾的单个百分之烷基,同时还松弛一些传热假设,例如Δt/ t_(sat) 1。 Romberg集成技术用于解决熵生成。我们的结果表明,当流动从层流变为从小直径时流动变化时,质量磁通量的增加导致熵产生突然变化,尽管在较大的直径下效果不太显着,但效果较小。熵生成中的传热贡献也高于较大直径的压降贡献。与由于传热贡献的增加而导致的每次热通量的较小直径相比,较大的通道直径产生更高的熵生成。入口压力的增加还会降低每个质量磁通和热通量的熵产生。本研究的目的是提高传热,压力下降和流动行为对熵生成的影响的知识,并鼓励研究人员和设计师探索更多的新功能,可以利用熵生成的最小化。

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