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Transport mechanism of methane steam reforming on fixed bed catalyst heated by high temperature helium for hydrogen production: a CFD investigation

机译:固定氦气加热制氢制甲烷蒸汽重整的输运机理:CFD研究

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Performance of methane steam reforming reactor heated by helium for hydrogen production has been studied by numerical method. Results show with the increasing of reactant gas inlet velocity, temperature in the reactor drops, leading to the decreasing of methane conversion and hydrogen production rate. Methane conversion, hydrogen production and hydrogen production rate rise with the increasing of reactant gas inlet temperature, while the increasing degree of system thermal efficiency reduces. Besides, with helium inlet velocity rising, temperature in the reactor increases and reaction in the reactor becomes more sufficient. Therefore, methane conversion and hydrogen production also increase when helium inlet temperature of rises, but its influence is weaker compared to that of helium inlet velocity. In the process of methane steam reforming heated by high temperature gas cooled reactor (HTGR) for hydrogen production, lower reactant gas inlet velocity, suitable inlet temperature, higher inlet velocity and higher HTGR outlet temperature of helium are preferable.
机译:通过数值方法研究了氦加热的甲烷蒸汽重整反应器用于制氢的性能。结果表明,随着反应气体入口速度的增加,反应器温度下降,导致甲烷转化率和产氢率降低。甲烷转化率,产氢量和产氢率随着反应气体入口温度的升高而增加,而系统热效率的升高程度降低。此外,随着氦气入口速度的增加,反应器中的温度升高并且反应器中的反应变得更加充分。因此,当氦气入口温度升高时,甲烷的转化率和产氢量也增加,但与氦气入口速度相比,其影响较弱。在由高温气冷反应器(HTGR)加热以产生氢气的甲烷蒸汽重整过程中,较低的反应气体入口速度,合适的入口温度,较高的入口速度和较高的HTGR氦气出口温度是优选的。

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