Improvement of coke resistance of Ni/Al2O3 catalyst in CH4/CO2 reforming by ZrO2 addition

Journal article


Authors/Editors


Strategic Research Themes

No matching items found.


Publication Details

Author listTherdthianwong S., Siangchin C., Therdthianwong A.

PublisherElsevier

Publication year2008

JournalFuel Processing Technology (0378-3820)

Volume number89

Issue number2

Start page160

End page168

Number of pages9

ISSN0378-3820

eISSN1873-7188

URLhttps://www.scopus.com/inward/record.uri?eid=2-s2.0-38449117834&doi=10.1016%2fj.fuproc.2007.09.003&partnerID=40&md5=94781d5c56cfaba31ff0354f4a350d61

LanguagesEnglish-Great Britain (EN-GB)


View in Web of Science | View on publisher site | View citing articles in Web of Science


Abstract

This work investigates the improvement of Ni/Al2O3 catalyst stability by ZrO2 addition for H2 gas production from CH4/CO2 reforming reactions. The initial effect of Ni addition was followed by the effect of increasing operating temperature to 500-700 ฐC as well as the effect of ZrO2 loading and the promoted catalyst preparation methods by using a feed gas mixture at a CH4:CO2 ratio of 1:1.25. The experimental results showed that a high reaction temperature of 700 ฐC was favored by an endothermic dry reforming reaction. In this reaction the deactivation of Ni/Al2O3 was mainly due to coke deposition. This deactivation was evidently inhibited by ZrO2, as it enhances dissociation of CO2 forming oxygen intermediates near the contact between ZrO2 and nickel where the deposited coke is gasified afterwards. The texture of the catalyst or BET surface area was affected by the catalyst preparation method. The change of the catalyst texture resulted from the formation of ZrO2-Al2O3 composite and the plugging of Al2O3 pore by ZrO2. The 15% Ni/10% ZrO2/Al2O3 co-impregnated catalyst showed a higher BET surface area and catalytic activity than the sequentially impregnated catalyst whereas coke inhibition capability of the promoted catalysts prepared by either method was comparable. Further study on long-term catalyst stability should be made. ฉ 2007 Elsevier B.V. All rights reserved.


Keywords

CH4/CO2 reformingCoke formationNi/Al2O3Ni/ZrO2/Al2O3


Last updated on 2023-03-10 at 07:35