Nanoscale Ni enveloped in hydrochar prepared by one-step hydrothermal method for dry reforming of CH4 with CO2

被引:9
作者
Zhao, Bo [1 ]
Yang, Qijun [1 ]
Qin, Linbo [1 ]
Shan, Weiwei [1 ]
Zhang, Qiang [1 ]
Chen, Wangsheng [1 ]
Han, Jun [1 ,2 ]
机构
[1] Wuhan Univ Sci & Technol, Hubei Key Lab Efficient Utilizat & Agglomerat Met, Wuhan 430081, Peoples R China
[2] Wuhan Univ Sci & Technol, Ind Safety Engn Technol Res Ctr Hubei Prov, Wuhan 430081, Peoples R China
关键词
Ni nanoparticle; Hydrothermal; Sugarcane bagasse; Methane dry reforming; Carbon resistance; COKING RESISTANCE; SUGARCANE BAGASSE; POROUS CARBON; METHANE; CATALYSTS; NANOPARTICLES; CARBONIZATION; TEMPERATURE; PERFORMANCE; DISPERSION;
D O I
10.1016/j.mcat.2021.111869
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
In this work, sugarcane bagasse was used as carbon sources, and nickel particles supported on hydrochar were prepared by one step hydrothermal method for dry reforming of CH4 with CO2. The characterization of the catalysts demonstrated that Ni nanoparticles enveloped in hydrochar were in the rage of 4.23-15.07 nm, and Ni atom dispersion was 8.45-22.93%. The highly dispersion of nanoscale Ni particles were benefit for promoting the catalytic activity of the catalysts, and suppressing the sintering of Ni particles or carbon deposition during DRM. CH4/CO2 conversions of 81.32/93.93% over Ni-10/SB-C-240 were achieved after 72 h DRM reaction under 850 degrees C and 12000 ml/g.h gas hourly space velocity (GSHV). At the same time, limit carbon deposition on the surface of the used catalyst was observed, and the carbon balance even reached to 99.86%. The influence of Ni particle size on CH4 and CO2 conversions rate was also experimentally investigated, and the results displayed that smaller Ni particle size was beneficial to promote the stability of the catalysts.
引用
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页数:9
相关论文
共 53 条
[1]  
Abbasi M., 2019, J ALLOYS COMPD, V799, P546
[2]   Recent advances in dry reforming of methane over Ni-based catalysts [J].
Abdullah, Bawadi ;
Ghani, Nur Azeanni Abd ;
Vo, Dai-Viet N. .
JOURNAL OF CLEANER PRODUCTION, 2017, 162 :170-185
[3]   Controlling the rate of change of Ni dispersion in commercial catalyst by ALD overcoat during dry reforming of methane [J].
Afzal, Shaik ;
Prakash, Anuj, V ;
Littlewood, Patrick ;
Marks, Tobin J. ;
Weitz, Eric ;
Stair, Peter C. ;
Elbashir, Nimir O. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2020, 45 (23) :12835-12848
[4]   PARTIAL OXIDATION OF METHANE TO SYNTHESIS GAS-USING CARBON-DIOXIDE [J].
ASHCROFT, AT ;
CHEETHAM, AK ;
GREEN, MLH ;
VERNON, PDF .
NATURE, 1991, 352 (6332) :225-226
[5]   Ni-phyllosilicate structure derived Ni-SiO2-MgO catalysts for bi-reforming applications: acidity, basicity and thermal stability [J].
Ashok, J. ;
Bian, Z. ;
Wang, Z. ;
Kawi, S. .
CATALYSIS SCIENCE & TECHNOLOGY, 2018, 8 (06) :1730-1742
[6]  
Bartholomew C.H., 2011, FUNDAMENTALS IND CAT
[7]   Steam reforming and graphite formation on Ni catalysts [J].
Bengaard, HS ;
Norskov, JK ;
Sehested, J ;
Clausen, BS ;
Nielsen, LP ;
Molenbroek, AM ;
Rostrup-Nielsen, JR .
JOURNAL OF CATALYSIS, 2002, 209 (02) :365-384
[8]   Dry reforming of methane on Ni/mesoporous-Al2O3 catalysts: Effect of calcination temperature [J].
Bian, Zhoufeng ;
Zhong, Wenqi ;
Yu, Yang ;
Wang, Zhigang ;
Jiang, Bo ;
Kawi, Sibudjing .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2021, 46 (60) :31041-31053
[9]  
Cao Y., 2018, APPL CATAL B, V238, P51
[10]   Synthesis of carbon nanofibers:: effects of Ni crystal size during methane decomposition [J].
Chen, D ;
Christensen, KO ;
Ochoa-Fernández, E ;
Yu, ZX ;
Totdal, B ;
Latorre, N ;
Monzón, A ;
Holmen, A .
JOURNAL OF CATALYSIS, 2005, 229 (01) :82-96