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Analytical investigation of heat transfer and classical entropy generation in microreactors - the influences of exothermicity and asymmetry

机译:微反应器中传热和经典熵产生的分析研究 - 放热和不对称的影响

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摘要

Heat transfer and entropy generation are analysed theoretically in a thermal model of microreactors accommodating processes with large heat of reaction. This includes an asymmetric, thick wall, partially-filled porous microchannel under local thermal non-equilibrium. The system features exothermicity/endothermicity within the solid and fluid phases to represent heat of chemical reactions and absorption of microwaves by the microstructure. For constant but uneven temperature boundary condition, analytical solutions are developed for the temperature profiles, Nusselt number (Nu) and local and total entropy generation. The influences of the system configuration and thermal specifications upon the heat transfer and irreversibilities are, subsequently, examined. This reveals the strong effects of the wall thicknesses and thermal asymmetry on the heat transfer and entropy generation of the microreactor. Most importantly, it is shown that for given exothermicities in the system there exist optimal wall and porous insert thicknesses that result in the maximum Nu and minimum total entropy generation. The presented analyses are therefore of practical significance and demonstrate the possibility of developing thermal and entropic optimal designs of the microstructure of microreactors.
机译:在微反应器的热模型中,从理论上分析了热传递和熵的产生,该模型用于容纳反应热较大的过程。这包括在局部热不平衡下的不对称,厚壁,部分填充的多孔微通道。该系统在固相和液相中具有放热/吸热的特征,以表示化学反应的热量和微结构对微波的吸收。对于恒定但不均匀的温度边界条件,开发了用于温度曲线,努塞尔数(Nu)以及局部和总熵生成的分析解决方案。随后研究了系统配置和热规格对传热和不可逆性的影响。这揭示了壁厚和热不对称性对微反应器的传热和熵产生的强烈影响。最重要的是,表明对于给定的系统放热,存在最佳壁厚和多孔插入物厚度,从而导致最大的Nu生成和最小的总熵生成。因此,提出的分析具有实际意义,并证明了开发微反应器微观结构的热和熵最佳设计的可能性。

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