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Mathematical modelling of low-temperature hydrogen production with in situ CO2 capture

机译:原位CO2捕集低温制氢的数学模型

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摘要

Theoretical analysis of a process for low-temperature hydrogen production through steam methane reforming (SMR), based on the concept of adsorption-enhanced reaction, is presented. In the proposed process, mobile (pneumatically conveyed) adsorbent particles are passed through a stationary SMR catalyst monolith. Adsorbent regeneration is carried out in an external unit, thus decoupling the reaction and adsorbent regeneration steps, and allowing continuous operation. Heat for reaction is also supplied via the regeneration unit (via the thermal capacitance of the adsorbent), and thus effective energy integration is possible between the reactor and regenerator units. A mathematical model accounting for non-isothermal reaction and adsorption, mass transfer limited adsorption kinetics and non-linear (Langmuirian) adsorption equilibria, has been developed. The performance of the adsorptive reactor in terms of conversion enhancement is presented in this paper. Simulation results indicate considerable conversion enhancement through the use of a flowing adsorbent medium. The importance of the correct selection of operating parameters, i.e., adsorbent mass flow rate and temperature, on the process feasibility is also highlighted. (c) 2007 Elsevier Ltd. All rights reserved.
机译:基于吸附-增强反应的概念,对通过蒸汽甲烷重整(SMR)进行低温制氢的过程进行了理论分析。在所提出的方法中,使可移动(气动输送)的吸附剂颗粒通过固定的SMR催化剂整料。吸附剂再生在外部单元中进行,因此使反应步骤和吸附剂再生步骤脱钩,并允许连续操作。用于反应的热量也通过再生单元(通过吸附剂的热容量)提供,因此在反应器和再生器单元之间可以进行有效的能量整合。建立了一个考虑非等温反应和吸附,传质受限吸附动力学和非线性(朗缪尔系)吸附平衡的数学模型。本文介绍了吸附反应器在转化率方面的性能。模拟结果表明,通过使用流动的吸附剂介质,转化率显着提高。还强调了正确选择操作参数,即吸附剂质量流量和温度对工艺可行性的重要性。 (c)2007 Elsevier Ltd.保留所有权利。

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