Catalytic supercritical water gasification of biomass waste using iron-doped alkaline earth catalysts

被引:5
作者
Bakari, Ramadhani [1 ,2 ,3 ]
Kivevele, Thomas [1 ,2 ]
Huang, Xiao [4 ]
Jande, Yusufu A. C. [1 ,2 ]
机构
[1] Inst Sci & Technol, Sch Mat Energy Water & Environm Sci MEWES, POB 447, Arusha, Tanzania
[2] Inst Sci & Technol, African Ctr Excellence Water Infrastruct & Sustai, POB 9124, Arusha, Tanzania
[3] Univ Dodoma, Dept Petr & Energy Engn, POX 11090, Dodoma, Tanzania
[4] Carleton Univ, Dept Mech & Aerosp Engn, 1125 Colonel Dr, Ottawa, ON K1S 5B6, Canada
关键词
Supercritical water gasification; Rice husk; Catalyst; Limestone; Dolomite; Iron; RESPONSE-SURFACE METHODOLOGY; NOBLE-METAL CATALYSTS; HYDROGEN-PRODUCTION; FLUIDIZED-BED; NICKEL NANOPARTICLES; WOODY BIOMASS; TAR CRACKING; PYROLYSIS; LIGNIN; OPTIMIZATION;
D O I
10.1007/s13399-022-02800-x
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
The objective of this study is to optimise the process of supercritical water gasification of rice husk biomass utilising a low-cost catalyst made from alkaline-earth materials. The interactions between catalyst loading and Fe content on gasification yield were investigated using response surface methodology. The catalyst characterisation findings revealed that the catalysts' predominant reactive site is on iron oxide, calcium ferrite, and calcium oxide. Under all the conditions tested, the manufactured catalyst was highly active in promoting char gasification, gas volume, and gasification efficiency whilst the tar yield was substantially elevated. The maximum gasification efficiency of 69.57%, gas yield of 402.8 mL/g biomass, char yield 24.68 wt%, and gravimetric tar yield of 57.5 mg/g were obtained under the catalytic conditions of 15% catalyst loading with 5%Fe/limestone, 492 degrees C, 120-min residence time, and 9.5 wt% feed concentrations. Thus, the manufactured catalyst showed a potential for optimising gasification outputs.
引用
收藏
页码:7487 / 7506
页数:20
相关论文
共 87 条
[1]   A Review: Fundamental Aspects of Silicate Mesoporous Materials [J].
ALOthman, Zeid A. .
MATERIALS, 2012, 5 (12) :2874-2902
[2]  
Anikeev V., 2014, Supercritical Fluid Technology for Energy and Environmental Applications
[3]  
Aqliliriana C., 2015, INT J SCI TECHNOL RE, V4, P168
[4]  
Ariunaa A, 2018, P MONGOLIAN ACAD SCI, V3947, DOI [10.5564/pmas.v58i4.1048, DOI 10.5564/PMAS.V58I4.1048]
[5]   Investigation of the pore blockage of a Brazilian dolomite during the sulfation reaction [J].
Avila, Ivonete ;
Crnkovic, Paula M. ;
Milioli, Fernando E. ;
Luo, Kai H. .
APPLIED SURFACE SCIENCE, 2012, 258 (08) :3532-3539
[6]   Hydrogen production from cellulose, lignin, bark and model carbohydrates in supercritical water using nickel and ruthenium catalysts [J].
Azadi, Pooya ;
Khan, Sami ;
Strobel, Friederike ;
Azadi, Faraz ;
Farnood, Ramin .
APPLIED CATALYSIS B-ENVIRONMENTAL, 2012, 117 :330-338
[7]   Sub- and Supercritical Water Gasification of Rice Husk: Parametric Optimization Using the I-Optimality Criterion [J].
Bakari, Ramadhani ;
Kivevele, Thomas ;
Huang, Xiao ;
Jande, Yusufu A. C. .
ACS OMEGA, 2021, 6 (19) :12480-12499
[8]   Application of response surface methodology (RSM) for optimization of leaching parameters for ash reduction from low-grade coal [J].
Behera, Sushanta Kumar ;
Meena, Himanshu ;
Chakraborty, Sudipto ;
Meikap, B. C. .
INTERNATIONAL JOURNAL OF MINING SCIENCE AND TECHNOLOGY, 2018, 28 (04) :621-629
[9]   Simple pyrolysis experiments for the preliminary assessment of biomass feedstocks and low-cost tar cracking catalysts for downdraft gasification applications [J].
Boot-Handford, Matthew E. ;
Virmond, Elaine ;
Florin, Nick H. ;
Kandiyoti, Rafael ;
Fennell, Paul S. .
BIOMASS & BIOENERGY, 2018, 108 :398-414
[10]   Effect of fuel blend composition on hydrogen yield in co-gasification of coal and non-woody biomass [J].
Cabuk, Busra ;
Duman, Gozde ;
Yanik, Jale ;
Olgun, Hayati .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2020, 45 (05) :3435-3443