Effect of Nickel Nanocatalyst Loading on Supercritical Water Gasification of Coconut Shell

被引:3
作者
Marcelino, Marcela M. [1 ]
Leeke, Gary A. [2 ]
Jiang, Guozhan [2 ]
Onwudili, Jude A. [3 ]
Alves, Carine T. [1 ,4 ,5 ]
de Sousa, Ana Luiza F. [6 ]
de Santana, Delano M. [1 ,5 ]
Torres, Felipe A. [1 ,5 ,7 ]
de Melo, Silvio A. B. Vieira [1 ,5 ]
Torres, Ednildo A. [1 ,5 ]
机构
[1] Univ Fed Bahia, Escola Politecn, Programa Engn Ind, Rua Prof Aristides Novis,2,6 Andar, BR-40210630 Salvador, Brazil
[2] Univ Birmingham, Sch Chem Engn, Birmingham B15 2TT, England
[3] Aston Univ, Energy & Bioprod Res Inst, Sch Infrastructure & Sustainable Engn, Birmingham B4 7ET, England
[4] Univ Fed Reconcavo Bahia UFRB, Ctr Ciencia & Tecnol Energia & Sustentabilidade, Dept Engn Energia, BR-44085132 Feira De Santana, Brazil
[5] Univ Fed Bahia UFBA, Ctr Interdisciplinar Energia & Ambiente CIENAM, Campus Univ Federacao Ondina, BR-40170115 Salvador, Brazil
[6] Univ Fed Bahia, Escola Politecn, Dept Engn Quim, Rua Prof Aristides Novis,2,6 Andar, BR-40210630 Salvador, Brazil
[7] Univ Fed Reconcavo Bahia, Ctr Ciencias Exatas & Tecnol, Dept Sistemas Mecan, BR-44380000 Cruz Das Almas, Brazil
关键词
coconut shell; supercritical water gasification; nickel loading; HYDROGEN-PRODUCTION; NI CATALYSTS; BIOMASS; NANOPARTICLES; OPTIMIZATION; METHANE; SLUDGE;
D O I
10.3390/en17040872
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Impregnation of metal catalysts into biomass before thermochemical conversion may provide benefits of increased selective reactivity to obtain desirable products. In this work, coconut shells impregnated with increasing loadings of nickel were successfully prepared using a room-temperature impregnation method using a nickel salt solution at 1 and 2 molar (M) concentrations. The physicochemical characterization of the 2 M impregnated sample revealed the presence of 5.6 wt% of nickel with a particle size of 13.5 nm. The nickel-impregnated samples' supercritical water gasification (SCWG) was conducted with biomass loading ranging from 20 wt% to 30 wt%, at temperatures between 400 degrees C and 500 degrees C, and residence times from 20 to 60 min. Higher nickel loading, higher temperatures and longer reaction times promoted the production of H2 and CO2 up to 15 and 79 mol%. Higher nickel loading also led to an increased Hydrogen Gasification Efficiency value of up to 133%. The analysis of hydrochars suggested that increasing nickel loading enhanced the reduction in nickel ions to the Ni0 nanoparticles, leading to higher H2. Additionally, the chemical composition of the liquid product showed the significant ability of nickel to promote lignin decomposition into phenol, facilitating the phenol hydrogenation reaction and subsequent gas production.
引用
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页数:26
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共 56 条
[11]   Catalytic supercritical water gasification of eucalyptus wood chips in a batch reactor [J].
Borges, A. C. P. ;
Onwudili, J. A. ;
Andrade, H. M. C. ;
Alves, C. T. ;
Ingram, A. ;
Vieira de Melo, S. A. B. ;
Torres, E. A. .
FUEL, 2019, 255
[12]   Assessment of sugarcane bagasse gasification in supercritical water for hydrogen production [J].
Cao, Wen ;
Guo, Liejin ;
Yan, Xuecheng ;
Zhang, Deming ;
Yao, Xiangdong .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2018, 43 (30) :13711-13719
[13]   Experimental data on the production and characterization of biochars derived from coconut-shell wastes obtained from the Colombian Pacific Coast at low temperature pyrolysis [J].
Castilla-Caballero, Deyler ;
Barraza-Burgos, Juan ;
Gunasekaran, Sundaram ;
Roa-Espinosa, Aicardo ;
Colina-Marquez, Jose ;
Machuca-Martinez, Fiderman ;
Hernandez-Ramirez, Aracely ;
Vazquez-Rodriguez, Sofia .
DATA IN BRIEF, 2020, 28
[14]   Experimental investigation on gasification characteristic of food waste using supercritical water for combustible gas production: Exploring the way to complete gasification [J].
Chen, Jingwei ;
Fan, Yi ;
Zhao, Xiaohuan ;
E, Jiaqiang ;
Xu, Wenwen ;
Zhang, Feng ;
Liao, Gaoliang ;
Leng, Erwei ;
Liu, Shuai .
FUEL, 2020, 263
[15]   Supercritical water gasification of fruit pulp for hydrogen production: Effect of reaction parameters [J].
Demirel, Elif ;
Erkey, Can ;
Ayas, Nezihe .
JOURNAL OF SUPERCRITICAL FLUIDS, 2021, 177
[16]   X-ray diffraction (XRD) studies on the chemical states of some metal species in cellulosic chars and the Ellingham diagrams [J].
Devi, T. Ganga ;
Kannan, M.P. .
Energy and Fuels, 2007, 21 (02) :596-601
[17]   Hydrothermal gasification of the isolated hemicellulose and sawdust of the white poplar (Populus alba L.) [J].
Gokkaya, Dilek Selvi ;
Sert, Murat ;
Saglam, Mehmet ;
Yuksel, Mithat ;
Ballice, Levent .
JOURNAL OF SUPERCRITICAL FLUIDS, 2020, 162
[18]   Influence of NaOH and Ni catalysts on hydrogen production from the supercritical water gasification of dewatered sewage sludge [J].
Gong, M. ;
Zhu, W. ;
Zhang, H. W. ;
Ma, Q. ;
Su, Y. ;
Fan, Y. J. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2014, 39 (35) :19947-19954
[19]   Supercritical water gasification of biomass model compounds: A review [J].
Hu, Yulin ;
Gong, Mengyue ;
Xing, Xuelian ;
Wang, Haoyu ;
Zeng, Yimin ;
Xu, Chunbao Charles .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2020, 118
[20]   Catalytic co-gasification of coconut shells and oil palm fronds blends in the presence of cement, dolomite, and limestone: Parametric optimization via Box Behnken Design [J].
Inayat, Muddasser ;
Sulaiman, Shaharin A. ;
Kurnia, Jundika Candra .
JOURNAL OF THE ENERGY INSTITUTE, 2019, 92 (04) :871-882