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首页> 外文期刊>International Journal of Heat and Mass Transfer >Two-dimensional analytical investigation of coupled heat and mass transfer and entropy generation in a porous, catalytic microreactor
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Two-dimensional analytical investigation of coupled heat and mass transfer and entropy generation in a porous, catalytic microreactor

机译:多孔催化微反应器中传热与传质耦合与熵产生的二维分析研究

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HighlightsTwo-dimensional analytical solutions for the temperature and concentration fields.Thicknesses of the microstructure is most influential in altering the temperature fields.Nusselt number is heavily affected by the configuration of the microstructure.Thermal diffusion of mass is usually the dominant source of irreversibility.AbstractInfluences of the solid body of microreactors (or the microstructure) upon the transfer processes and hence on the performance of microreactors have been recently emphasised. Nonetheless, the subtle connections between microstructure design and micro-transport phenomena are still largely unknown. To resolve this, the current paper presents an analytical study of the advective-diffusive transport phenomena in a microreactor filled with porous media and with catalytic surfaces. The system under investigation includes the fluid and porous solid phases inside a microchannel with thick walls and subject to uneven thermal loads. The thermal diffusion of mass, viscous dissipation of the flow momentum and local thermal non-equilibrium in the porous medium are considered. The axial variations of heat and mass transfer processes are also taken into account and two-dimensional solutions of the temperature and concentration fields are provided. The local and total entropy generation within the system are further calculated. The results clearly demonstrate the major influences of thick walls on the thermal behaviour and subsequently on the mass transfer and entropy generation of the microreactor. In particular, the Nusselt number is shown to be strongly dependent upon the configuration of microstructure such that it decreases significantly by thickening the walls. The results also demonstrate that for finite Soret numbers the total irreversibility of the system is dominated by the Soret effect. The analytical results of this work can be further used for the validation of future numerical analyses of microreactors.
机译: 突出显示 温度和浓度场的二维分析解决方案。 < ce:list-item id =“ o0010”> 微观结构的厚度对改变温度场影响最大。 Nusselt号在很大程度上受微观结构的影响。 质量的热扩散通常是不可逆转的主要来源。 摘要 近期已强调了微反应器(或微结构)的固体对转移过程以及微反应器性能的影响。但是,微观结构设计和微观传输现象之间的微妙联系仍然是未知的。为了解决这个问题,本论文对充满多孔介质和催化表面的微反应器中的对流扩散传输现象进行了分析研究。正在研究的系统包括壁厚且受到不均匀热负荷的微通道内的流体和多孔固相。考虑了多孔介质中质量的热扩散,流动动量的粘性耗散和局部热不平衡。还考虑了传热和传质过程的轴向变化,并提供了温度和浓度场的二维解。进一步计算系统内的局部和总熵产生。结果清楚地证明了厚壁对微反应器的热行为以及随后的传质和熵产生的主要影响。特别地,显示出努塞尔数强烈地依赖于微结构的构造,从而其通过增加壁厚而显着降低。结果还表明,对于有限的Soret数,系统的总不可逆性受Soret效应支配。这项工作的分析结果可进一步用于验证未来的微反应器数值分析。

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