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A two-dimensional mathematical model for the catalytic steam reforming of methane in both conventional fixed-bed and fixed-bed membrane reactors for the Production of hydrogen

机译:常规固定床和固定床膜反应器中甲烷催化蒸汽重整制氢的二维数学模型

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摘要

A modelling and simulation study of catalytic steam reforming of methane is presented in this paper. A two-dimensional pseudo-heterogeneous model is developed to simulate a conventional fixed-bed reactor (FBR) as well as a fixed-bed membrane reactor (FBMR) with sweep gas added in both co-current modes for the two reactor configurations. The developed model is based on mass and energy balance equations for the catalyst phase and the gas phase in both FBR and FBMR reactors. Firstly, a study is done for describing that the temperature profiles of gaseous and solid phases reach to stable state as well as the component distributions in the two FBR and FBMR reactors. The model covers the aspect of the partial pressure of hydrogen in the membrane reactor with the permeation of hydrogen across a Pd-based membrane. The conversion of methane is significantly enhanced by the partial removal of hydrogen as from the shell side as a result of diffusion through the Pd based membrane. Simulation results demonstrated that methane conversion of 97.21% can be achieved in FBR at operating temperature of 1250 K relative to methane conversion of 99.79% to 923 K in FBMR. The yield of hydrogen achieved to level from 2.154 in FBR at operating temperature of 1250 K while the yield of hydrogen reached to level from 3.731 with a thickness from 1.7 mu m in FBMR reactor. (C) 2017 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:本文对甲烷的催化蒸汽重整进行了建模和仿真研究。建立了二维伪异质模型,以模拟常规固定床反应器(FBR)和固定床膜反应器(FBMR),其中两种反应器配置的两种并流模式均添加了吹扫气。开发的模型基于FBR和FBMR反应器中催化剂相和气相的质量和能量平衡方程式。首先,进行了一项研究以描述气相和固相的温度分布达到稳定状态以及两个FBR和FBMR反应器中的组分分布。该模型涵盖了膜反应器中氢气的分压以及氢气在Pd基膜上的渗透情况。通过扩散通过基于Pd的膜,从壳侧部分除去氢,显着提高了甲烷的转化率。模拟结果表明,相对于FBMR中99.79%到923 K的甲烷转化率,在1250 K的工作温度下FBR可以实现97.21%的甲烷转化率。在1250 K的工作温度下,氢的收率在FBR中从2.154达到水平,而在FBMR反应器中,氢的收率从3.731达到水平,厚度为1.7μm。 (C)2017氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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