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CO2 conversion to synthetic natural gas: Reactor design over Ni-Ce/Al2O3 catalyst

机译:CO2转化为合成天然气:Ni-Ce / Al2O3催化剂的反应器设计

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Within the Power-to-Gas concept, the catalytic conversion of renewable hydrogen and carbon dioxide to methane for injection to the gas grid has recently attracted much attention. In the present work, the implementation of a nickel-ceria-alumina catalyst on a multitubular reactor for CO2 methanation was studied. The reaction kinetics were experimentally obtained and considered for a CFD model by means of Ansys(center dot) Fluent software, to evaluate the behaviour of a multitubular heat-exchange reactor. The simulations showed that most reaction occurs at the beginning of the reactor tube and the temperature raises rapidly. At the kinetic regime zone, a proper control of the temperature is required to avoid excessive hot-spots. In contrast, the final reactor volume is mainly controlled by the reaction thermodynamics. In this zone, the reaction is shifted toward products by using a cooling medium at low temperature. The effect of several design variables on the final methane yield and on the temperature profile was carried out, and finally, a reactor able to convert the CO2 present in the biogas to synthetic natural gas is proposed. The modelling showed that the proposed reactor tube (d(i) = 9 mm and L =250 mm) should be able to obtain a high methane content ( 95%), at high GHSV (14,400 h(-1)), and keeping the hot-spots at minimum (Delta 100 K). Within this reactor design approach, almost 1000 of tubes are necessary for the methanation of a medium-size biogas plant. (C) 2018 Institution of Chemical Engineers. Published by Elsevier B.V. All rights reserved.
机译:在能量到气体概念中,可再生氢气和二氧化碳对气体网格注射到甲烷的催化转化最近引起了很多关注。在本作研究中,研究了在多臂式甲烷化上的多臂反应器上的镍 - 二氧化亚氧化铝催化剂的实施。通过ANSYS(中心点)流畅的软件实验获得反应动力学并考虑CFD模型,以评估多臂热交换反应器的行为。模拟表明,大多数反应在反应器管的开始处发生,温度迅速升高。在动力学区域,需要适当的温度控制以避免过量的热点。相反,最终反应器体积主要由反应热力学控制。在该区域中,通过在低温下使用冷却介质将反应朝向产品。提出了几种设计变量对最终甲烷产量和温度曲线的影响,最后,提出了能够将存在于沼气中的CO2与合成天然气转化为合成天然气的反应器。该建模表明,所提出的反应器管(D(i)= 9mm和L = 250mm)应该能够在高GHSV(14,400h(-1))中获得高甲烷含量(& 95%),并至少保持热点(Delta 100 k)。在这种反应器设计方法中,近1000个管是一种中尺寸的沼气植物的甲烷化所必需的。 (c)2018化学工程师机构。 elsevier b.v出版。保留所有权利。

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