4.7 Article

Comprehensive parametric investigation of methane reforming and hydrogen separation using a CFD model

期刊

ENERGY CONVERSION AND MANAGEMENT
卷 249, 期 -, 页码 -

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.enconman.2021.114838

关键词

Steam-methane reforming; Hydrogen production; Hydrogen-selective membrane; Sweep flow effect

资金

  1. Saudi Aramco
  2. Department of Mechanical Engineering at KFUPM [ME2489]
  3. Research Institute at KFUPM [ME2489]

向作者/读者索取更多资源

The study on the membrane-integrated reformer reactor (MRR) demonstrated that optimizing the steam-to-methane ratio and flow rate can significantly enhance methane conversion and hydrogen recovery. Additionally, the introduction of sweeping steam plays a crucial role in improving hydrogen recovery efficiency.
Steam-methane reforming is the primary method for industrial hydrogen production. High energy consumption and elevated greenhouse gas (GHG) emissions call for a significant improvement in the reforming process for optimum methane conversion and hydrogen production. Enhanced fuel conversion also produces more CO2 than CO, making the carbon capture process easier, consequently reducing harmful emissions. In this work, a membrane-integrated reformer reactor (MRR) has been investigated through an experimentally validated computational fluid dynamics (CFD) model using ANSYS-Fluent. The MRR model constitutes of Ni-based catalyst filled reforming zone, Pd-based hydrogen-selective membrane, and permeate zone for hydrogen recovery. The developed model has been examined for several parameters including steam-to-methane ratio, flow rate, sweeping conditions, flow direction, reformer pressure and membrane length. The results indicated a substantial increase in methane conversion with a higher steam-to-carbon (S/C) ratio for a given feed flow rate. The methane conversion increased from 34% to 63% when the S/C ratio is increased from 2 to 6 at a methane mass flow rate of 0.0018 kg/s. The results also indicate an increase in hydrogen recovery with the decrease in feed flow rate for a fixed steam-to-methane ratio. Hydrogen recovery decreased from 28% to 2% when the mass flow rate of methane is increased from 5 x 10(-5) kg/s to 1.8 x 10(-3) kg/s, at a fixed S/C of 4. The incorporation of sweeping steam demonstrated a significant improvement in hydrogen recovery increasing from 15% to 33% with a sweep flow rate equal to the feed flow rate and methane mass flow rate of 1.8 x 10(-4) kg/s. Further increase in sweep flow rate showed very small increase in hydrogen recovery, therefore in order to minimize the use of sweeping steam, a sweeping steam flow rate equal to the feed flow rate is suggested. Furthermore, flow direction, reformer pressure and membrane length were also found to play vital role in MRR performance.

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