Optimization of Discharge Plasma Reactor for Dry Reforming of Methane using Response Surface Methodology
N. Alawi, Hassan H. Al-Mohammedawi, F. Al-Zuhairi, Hoang M. Nguyen, Jamal M. Ali
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引用次数: 0
Abstract
This research provides a study of the dry reforming of methane (DRM), which converts two main greenhouses gases (CO2 and CH4) to synthesis gas (H2 and CO) by a Dielectric Barrier Discharge (DBD) plasma reactor at atmospheric pressure. The Box-Behnken Design (BBD) method based on the Response Surface Methodology (RSM) was applied to determine the optimum experimental conditions on the plasma stability and the synthesis gas production. The synergistic effects of input power (P), CO2/CH4 ratio (R), and flow rate (FR) on the CO2, CH4 conversions, H2, CO yields, and the syngas ratio of H2 to CO were studied. With the desirability value of 0.97, the optimum values of 10.05 W (P), 1.03 (R), and 1.58 L.min−1 FR were identified with CO2 conversion of 48.56% and CH4 conversion of 86.67%; H2 and CO yields of 45.87% and 39.43% respectively; and syngas ratio of H2 to CO of 0.88. The study shows that both P and FR have a major significant effect on the reactant conversions and syngas ratio, followed by R. Meanwhile, the value of R has a significant impact on the H2, CO yields followed P and FR. In contrast, the synergistic effects between P-R, P-FR, and R-FR had a weak significant on the CO2 and CH4 conversions, H2 and CO yields, and H2 to CO ratio respectively. The quadratic term coefficients of P, R, and FR had a remarkable effect on all responses. Thus, the synergistic effect of the most important parameters improves the process efficiency. Copyright © 2023 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).
用响应面法优化甲烷干重整放电等离子体反应器
本研究利用介质阻挡放电(DBD)等离子体反应器在常压下对甲烷(DRM)进行干重整,将两种主要温室气体(CO2和CH4)转化为合成气(H2和CO)。采用基于响应面法(RSM)的Box-Behnken设计(BBD)方法确定了等离子体稳定性和合成气产量的最佳实验条件。研究了输入功率(P)、CO2/CH4比(R)和流量(FR)对CO2、CH4转化率、H2、CO产率和H2 / CO合成气比的协同效应。适宜值为0.97,最佳值为10.05 W (P)、1.03 (R)和1.58 L.min−1 FR,其中CO2转化率为48.56%,CH4转化率为86.67%;H2和CO产率分别为45.87%和39.43%;H2 / CO合成气比为0.88。研究表明,P和FR对反应物转化率和合成气比的影响最显著,其次是R。R值对H2和CO产率的影响最显著,P和FR次之,而P-R、P-FR和R-FR之间的协同效应对CO2和CH4转化率、H2和CO产率、H2 / CO比的影响较弱。P、R和FR的二次项系数对所有反应均有显著影响。因此,最重要参数的协同效应提高了工艺效率。版权所有©2023作者,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。
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