Steam reforming of toluene as a tar model compound with modified nickel-based catalyst
Received date: 20 Feb 2020
Accepted date: 06 Aug 2020
Published date: 15 Jun 2022
Copyright
Catalytic steam reforming is a promising route for tar conversion to high energy syngas in the process of biomass gasification. However, the catalyst deactivation caused by the deposition of residual carbon is still a major challenge. In this paper, a modified Ni-based Ni-Co/Al2O3-CaO (Ni-Co/AC) catalyst and a conventional Ni/Al2O3 (Ni/A) catalyst were prepared and tested for tar catalytic removal in which toluene was selected as the model component. Experiments were conducted to reveal the influences of the reaction temperature and the ratio between steam to carbon on the toluene conversion and the hydrogen yield. The physicochemical properties of the modified Ni-based catalyst were determined by a series of characterization methods. The results indicated that the Ni-Co alloy was determined over the Ni-Co/AC catalyst. The doping of CaO and the presence of Ni-Co alloy promoted the performance of toluene catalytic dissociation over Ni-Co/AC catalyst compared with that over Ni/A catalyst. After testing in steam for 40 h, the carbon conversion over Ni-Co/AC maintained above 86% and its resistance to carbon deposition was superior to Ni/A catalyst.
Omeralfaroug KHALIFA , Mingxin XU , Rongjun ZHANG , Tahir IQBAL , Mingfeng LI , Qiang LU . Steam reforming of toluene as a tar model compound with modified nickel-based catalyst[J]. Frontiers in Energy, 2022 , 16(3) : 492 -501 . DOI: 10.1007/s11708-021-0721-8
1 |
Pinton N, Vidal M V, Signoretto M,
|
2 |
Huber G W, Iborra S, Corma A. Synthesis of transportation fuels from biomass: chemistry, catalysts, and engineering. Chemical Reviews, 2006, 106(9): 4044–4098
|
3 |
Zhang L, Yang K, Zhao R,
|
4 |
Shen Y, Fu Y. Advances in: in situ and ex situ tar reforming with biochar catalysts for clean energy production. Sustainable Energy and Fuels, 2018, 2(2): 326–344
|
5 |
Nabgan W, Tuan Abdullah T A, Mat R,
|
6 |
Chaudhari S T, Dalai A K, Bakhshi N N. Production of hydrogen and/or syngas (H2+CO) via steam gasification of biomass-derived chars. Energy & Fuels, 2003, 17(4): 1062–1067
|
7 |
Rupesh S, Muraleedharan C, Arun P. Energy and exergy analysis of syngas production from different biomasses through air-steam gasification. Frontiers in Energy, 2020, 14(3): 607–619
|
8 |
Teo S H, Yap D K Y, Mansir N,
|
9 |
Ersöz A, DurakÇetin Y, Sarıoğlan A,
|
10 |
Nakamura K, Miyazawa T, Sakurai T,
|
11 |
Zamboni I, Courson C, Kiennemann A. Fe-Ca interactions in Fe-based/CaO catalyst/sorbent for CO2 sorption and hydrogen production from toluene steam reforming. Applied Catalysis B: Environmental, 2017, 203: 154–165
|
12 |
Xiao X, Liu J, Gao A,
|
13 |
Buchireddy P R, Bricka R M, Rodriguez J,
|
14 |
Yang J, Kaewpanha M, Karnjanakom S,
|
15 |
Alipour Z, Rezaei M, Meshkani F. Effect of alkaline earth promoters (MgO, CaO, and BaO) on the activity and coke formation of Ni catalysts supported on nanocrystalline Al2O3 in dry reforming of methane. Journal of Industrial and Engineering Chemistry, 2014, 20(5): 2858–2863
|
16 |
Michel R, Łamacz A, Krzton A,
|
17 |
Kong M, Fei J, Wang S,
|
18 |
Chen S L, Zhang H L, Hu J,
|
19 |
Elias K F M, Lucrédio A F, Assaf E M. Effect of CaO addition on acid properties of Ni-Ca/Al2O3 catalysts applied to ethanol steam reforming. International Journal of Hydrogen Energy, 2013, 38(11): 4407–4417
|
20 |
Furusawa T, Saito K, Kori Y,
|
21 |
Baidya T, Cattolica R J, Seiser R. High performance Ni-Fe-Mg catalyst for tar removal in producer gas. Applied Catalysis A, General, 2018, 558: 131–139
|
22 |
Lu Q, Hou Y, Laraib S R,
|
23 |
Ashok J, Kawi S. Steam reforming of biomass tar model compound at relatively low steam-to-carbon condition over CaO-doped nickel-iron alloy supported over iron-alumina catalysts. Applied Catalysis A, General, 2015, 490: 24–35
|
24 |
Li D, Lu M, Aragaki K,
|
25 |
You X, Wang X, Ma Y,
|
26 |
Koh A C W, Chen L, Kee Leong W,
|
27 |
Tao J, Lu Q, Dong C,
|
28 |
Tao J, Zhao L, Dong C,
|
29 |
Chen W H, Chen C Y. Water gas shift reaction for hydrogen production and carbon dioxide capture: a review. Applied Energy, 2020, 258: 114078
|
30 |
He L, Parra J M S, Blekkan E A,
|
31 |
Vannice M A. The catalytic synthesis of hydrocarbons from H2 CO mixtures over the group VIII metals. III. Metal-support effects with Pt and Pd catalysts. Journal of Catalysis, 1975, 40(1): 129–134
|
32 |
Shen C, Zhou W, Yu H,
|
33 |
Chen L, Zhu Q, Wu R. Effect of Co-Ni ratio on the activity and stability of Co-Ni bimetallic aerogel catalyst for methane Oxy-CO2 reforming. International Journal of Hydrogen Energy, 2011, 36(3): 2128–2136
|
34 |
Feng H Z, Lan P Q, Wu S F. A study on the stability of a NiO-CaO/Al2O3 complex catalyst by La2O3 modification for hydrogen production. International Journal of Hydrogen Energy, 2012, 37(19): 14161–14166
|
35 |
Rashid M H, Raula M, Mandal T K. Polymer assisted synthesis of chain-like cobalt-nickel alloy nanostructures: magnetically recoverable and reusable catalysts with high activities. Journal of Materials Chemistry, 2011, 21(13): 4904–4917
|
36 |
Zhang L, Wang X, Tan B,
|
37 |
Denis A, Grzegorczyk W, Gac W,
|
38 |
Karim A M, Su Y, Engelhard M H,
|
39 |
Furusawa T, Tsutsumi A. Development of cobalt catalysts for the steam reforming of naphthalene as a model compound of tar derived from biomass gasification. Applied Catalysis A, General, 2005, 278(2): 195–205
|
40 |
Horlyck J, Lawrey C, Lovell E C,
|
41 |
Wang L, Li D, Koike M,
|
42 |
Xu J, Zhou W, Li Z,
|
43 |
Dias J A C, Assaf J M. Influence of calcium content in Ni/CaO/g-Al2O3 catalysts for CO2 reforming of methane. Catalysis Today, 2003, 85(1): 59–68
|
44 |
Choong C K S, Zhong Z, Huang L,
|
45 |
Kavalerskaya N E, Lokteva E S, Rostovshchikova T N,
|
46 |
Lei H, Song Z, Bao X,
|
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