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Numerical predictions on thermal characteristic and performance of methanol steam reforming with microwave-assisted heating

机译:微波辅助加热重整甲醇蒸汽的热特性和性能的数值预测

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Microwave irradiation is an effective route to trigger methanol steam reforming (MSR) for hydrogen production because of the double absorption of microwaves by both the reagents and the catalyst. To recognize the thermal characteristic and performance of MSR in an environment with microwave irradiation, a numerical method is employed to predict the coupling phenomena of electromagnetic field, flow field and chemical reactions. Methanol decomposition (MD) is also regarded while MSR proceeds. Two sets of complex relative permittivity are established to account for the transmission of electromagnetic waves to heat reactants in the non-porous zone and the porous zone. Moreover, the effects of heat loss, microwave power and reagent flow rate on MSR are taken into account. The predictions suggest that heat loss is an important factor when the appropriate models with microwave-assisted heating are developed. A higher power is conducive to the performance of MSR, resulting from more heat generated in the reaction tube. At a given microwave power, heat generation due to microwave irradiation is independent of Reynolds number. As a result, increasing Reynolds number lessens methanol conversion and H_2 yield, as a consequence of more reagents passing through the catalyst bed. However, it is of interest that there exists an optimal Reynolds number for MSR to consume heat stemming from microwave irradiation.
机译:微波辐射是引发甲醇蒸汽重整(MSR)产生氢的有效途径,因为试剂和催化剂都会双重吸收微波。为了识别微波辐射环境下MSR的热特性和性能,采用数值方法来预测电磁场,流场和化学反应的耦合现象。在进行MSR时,还会考虑甲醇分解(MD)。建立了两组复杂的相对介电常数,以说明电磁波在无孔区域和多孔区域中对热反应物的传输。此外,考虑了热损失,微波功率和试剂流速对MSR的影响。这些预测表明,当开发出带有微波辅助加热的合适模型时,热损失是一个重要因素。由于反应管中产生更多的热量,较高的功率有利于MSR的性能。在给定的微波功率下,微波辐射产生的热量与雷诺数无关。结果,由于更多的试剂通过催化剂床,因此增加雷诺数降低了甲醇转化率和H_2产率。然而,令人感兴趣的是,对于MSR,存在一个最佳的雷诺数以消耗微波辐射产生的热量。

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