低压运行水煤气移位固定床反应器的数值研究

Wail El-Bazi, Mustapha Bideq, A. El-Abidi, S. Yadir, Bajil Ouartassi
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引用次数: 1

摘要

如今,氢已经成为最有前途的清洁能源之一。有几种方法可以获得氢气,其中有水气变换(WGS)反应。在工业规模上,WGS反应发生在高压下[25-35 bar]。在高压下,由于压缩所消耗的能量,以及设备和催化剂寿命的缩短,该工艺的成本上升。在低压下,催化剂寿命可达多年,降低了能源成本。正是出于这个原因,我们对在接近大气压的低压下运行的WGS转换器的建模和仿真感兴趣。在这项工作中,进行了数值研究,以确定在低压下允许良好的矢量运行的条件。确定了该过程的一些缺点。这些缺点主要是不可忽略的压降和较强的颗粒内扩散阻力。对球团内浓度和反应速率的预测表明,球团的活性区位于球团表面附近。研究还表明,界面传质和传热的阻力是微不足道的。压力效应的研究表明,压力的增加降低了达到平衡所需的催化剂质量。最后,本工作揭示了通过增加反应物的通量来降低温度和增加反应物的浓度,可以提高催化剂的有效系数和一氧化碳的转化率。版权所有©2022作者所有,BCREC集团出版。这是一篇基于CC BY-SA许可(https://creativecommons.org/licenses/by-sa/4.0)的开放获取文章。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical Study of a Water Gas Shift Fixed Bed Reactor Operating at Low Pressures
Today, hydrogen has become one of the most promising clean energy. Several processes allow obtaining hydrogen, among them there is the Water Gas Shift (WGS) reaction. On an industrial scale, WGS reaction takes place at high pressure [25–35 bar]. At high pressure, the cost of the process rises due to the energy consumed by compression, and the reduction in the lifetime of the equipment and the catalyst. At low pressures, catalyst lifetime can reach many years and the energy cost is reduced. It is for this reason that we are interested in modelling and simulation of a WGS converter operating at low pressures close to atmospheric pressure. In this work, a numerical study was conducted in order to determine the conditions allowing good rector operating at low pressure. A number of drawbacks of the process were identified. These drawbacks are essentially the non-negligible pressure drops and the strong intraparticle diffusion resistances. The prediction of the concentrations and the reaction rate within the pellet showed that the active zone of the pellet is located near the particle surface. It has also been shown that the resistances to interfacial mass and heat transfer are insignificant. The study of pressure effect showed that the pressure increase reduces the required catalyst mass to achieve equilibrium. Finally, this work revealed that the decrease in temperature and the increase in the concentrations of the reactants by increasing their fluxes, make it possible to increase the effectiveness factor of the catalyst and the conversion of carbon monoxide. Copyright © 2022 by Authors, Published by BCREC Group. This is an open access article under the CC BY-SA License (https://creativecommons.org/licenses/by-sa/4.0). 
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