CPFD simulations of corn stalk gasification in a circulating fluidized bed

被引:5
作者
Liu, Hongpeng [1 ]
Wang, Zhixue [1 ]
Huang, Yanze [1 ]
Zhou, Mo [1 ,2 ]
Jia, Chunxia [1 ]
Gu, Zengyi [3 ]
Sun, Baizhong [1 ]
Wang, Qing [1 ]
机构
[1] Northeast Elect Power Univ, Engn Res Ctr Oil Shale Comprehens Utilizat, Sch Energy & Power Engn, Minist Educ, Jilin 132012, Peoples R China
[2] Yantai Longyuan Power Technol Co Ltd, Yantai 264001, Peoples R China
[3] Datang Northeast Elect Power Test Res Inst Co Ltd, Changchun 130000, Peoples R China
关键词
Corn Stalk; Computational particle fluid dynamics; Gasification; Circulating fluidized bed; Gasification agent; GAS-SOLID FLOW; BIOMASS GASIFICATION; STEAM GASIFICATION; MODEL; TEMPERATURE; VALIDATION; COMBUSTION; REACTOR; CO2;
D O I
10.1016/j.cherd.2024.04.004
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Gasification is one of the most widely-used methods for biomass utilization owing to its environmental friendliness and high economic benefits. In this study, a three-dimensional compressible computational particle fluid dynamics (CPFD) model of a 20 MW circulating fluidized bed (CFB) gasifier was established using the EulerLagrangian method. The model, which incorporates heat and mass transfer, phase behavior, and chemical reaction, was validated using experimental data. Then, it was applied to investigate the effects of steam-to-biomass (S/B) ratio and carbon dioxide-to-biomass (C/B) ratio on gasification performance of corn stalk. The results indicate that increasing the S/B ratio reduces the gasifier temperature and significantly reduces the tar yield, while increasing the C/B ratio slightly reduces the tar yield. Furthermore, an appropriate increase in the amount of steam in the gasifier is significantly beneficial to the yield of H2, while the addition of CO2 is somewhat beneficial to the production of CO. Hence, selecting suitable gasification agents can effectively increase the H2/ CO ratio of the produced syngas.
引用
收藏
页码:246 / 256
页数:11
相关论文
共 37 条
[1]   Numerical simulation of hydrogen production by gasification of large biomass particles in high temperature fluidized bed reactor [J].
Ansarifar, H. ;
Shams, M. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2018, 43 (10) :5314-5330
[2]   THE RESOLUTION OF SHOCKS AND THE EFFECTS OF COMPRESSIBLE SEDIMENTS IN TRANSIENT SETTLING [J].
AUZERAIS, FM ;
JACKSON, R ;
RUSSEL, WB .
JOURNAL OF FLUID MECHANICS, 1988, 195 :437-462
[3]  
Bermudez JM, 2016, WOODHEAD PUBL SER EN, P431, DOI 10.1016/B978-0-08-100455-5.00015-1
[4]   Local phase holdups in gas-solids fluidization and transport [J].
Bi, HT ;
Su, PC .
AICHE JOURNAL, 2001, 47 (09) :2025-2031
[5]   Biomass gasification with CO2 in a fluidized bed [J].
Cheng, Yongpan ;
Thow, Zhihao ;
Wang, Chi-Hwa .
POWDER TECHNOLOGY, 2016, 296 :87-101
[6]  
Couturier M.F., 1993, Proc.12th Int. Conf. on Fluidized Bed Combustion, P1215
[7]   Simulation on coal-fired supercritical CO2 circulating fluidized bed boiler: Coupled combustion with heat transfer [J].
Cui, Ying ;
Zhong, Wenqi ;
Xiang, Jun ;
Liu, Guoyao .
ADVANCED POWDER TECHNOLOGY, 2019, 30 (12) :3028-3039
[8]  
ERGUN S, 1952, CHEM ENG PROG, V48, P89
[9]   CFD simulation of biomass steam gasification in a fluidized bed based on a multi-composition multi-step kinetic model [J].
Eri, Qitai ;
Peng, Jing ;
Zhao, Xinjun .
APPLIED THERMAL ENGINEERING, 2018, 129 :1358-1368
[10]   Experimental Study on Product Gas and Tar Removal in Air-Steam Gasification of Corn Straw in a Bench-Scale Internally Circulating Fluidized Bed [J].
Guo, Shuai ;
Wei, Xiao ;
Li, Jian ;
Che, Deyong ;
Liu, Hongpeng ;
Sun, Baizhong ;
Wang, Qing .
ENERGY & FUELS, 2020, 34 (02) :1908-1917