Mitigating CO2 Emission Via Catalytic Conversion to Methane : a Feasibility Study of Metal Oxide Supported Nickel Based Catalysts

IF 0.4 Q4 ENGINEERING, ELECTRICAL & ELECTRONIC EMITTER-International Journal of Engineering Technology Pub Date : 2019-12-24 DOI:10.14419/ijet.v7i4.14.27514
A. Abu Seman, N. H. Berahim, M. G.M. Noh
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Abstract

Exploration and production of sour gas field raise the need for CO2 management to minimize the adverse effect of green house gas venting to the environment. It is a fine balance between the sunken value of CO2 reinjection and value creation in CO2 conversion to value product, essential in ensuring project’s economic viability. Conversion to methane is selected due to the ease of integration with current process facility. Catalytic conversion of CO2 to methane are reported here over metal oxides (Al2O3, ZrO2 and La2O3) supported Nickel base catalysts over a range of temperature and GHSV with fixed H2/CO2 molar ratio. The catalysts were prepared by wet impregnation technique at room temperature. It was then characterized with X-Ray Diffraction (XRD), Brunauer–Emmett–Teller (BET), Temperature Programmed Reduction (TPR) and Temperature Programmed Desorption (TPD). All catalyst systems showed trend of decreasing CO2 conversion when the GHSV is increased from 10000 to 15000 h-1, which is in line with short reactant contact time. The impact is more pronounced at low temperature of 300 °C, but at high temperature of 400 °C, the conversion is almost comparable irrespective of GHSV. Experimental results indicate that Ni/Al2O3 gives the highest CO2 conversion of 74% while 7% and 67% for Ni/ZrO2 and Ni/La2O3 respectively. There is a prospect for further scaling up to complement the current commercial catalyst proven for handling low concentration of CO2.   
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通过催化转化为甲烷减少二氧化碳排放:金属氧化物负载镍基催化剂的可行性研究
含硫气田的勘探和生产提出了二氧化碳管理的必要性,以尽量减少温室气体排放对环境的不利影响。这是二氧化碳再注入的沉没价值与二氧化碳转化为价值产品的价值创造之间的微妙平衡,对于确保项目的经济可行性至关重要。选择转化为甲烷是因为易于与当前的工艺设施集成。本文报道了金属氧化物(Al2O3, ZrO2和La2O3)负载的镍基催化剂在一定温度和固定H2/CO2摩尔比的GHSV下催化CO2转化为甲烷。采用室温湿浸渍法制备催化剂。然后用x射线衍射(XRD)、Brunauer-Emmett-Teller (BET)、程序升温还原(TPR)和程序升温脱附(TPD)对其进行了表征。当GHSV从10000 h-1增加到15000 h-1时,所有催化剂体系的CO2转化率均呈现下降趋势,这与反应物接触时间较短一致。在300°C的低温下影响更为明显,但在400°C的高温下,无论GHSV如何,转换几乎都是相当的。实验结果表明,Ni/Al2O3的CO2转化率最高,为74%,Ni/ZrO2为7%,Ni/La2O3为67%。有进一步扩大规模的前景,以补充目前已被证明可以处理低浓度二氧化碳的商业催化剂。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
EMITTER-International Journal of Engineering Technology
EMITTER-International Journal of Engineering Technology ENGINEERING, ELECTRICAL & ELECTRONIC-
自引率
0.00%
发文量
7
审稿时长
12 weeks
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