The effect of air preheating in a biomass CFB gasifier using ASPEN Plus simulation

被引:247
作者
Doherty, Wayne [1 ]
Reynolds, Anthony [1 ]
Kennedy, David [1 ]
机构
[1] Dublin Inst Technol, Dept Mech Engn, Dublin 1, Ireland
关键词
Biomass gasification; Modelling; Circulating fluidised bed; Gibbs free energy minimisation; Equivalence ratio; Steam injection; HIGH-TEMPERATURE AIR; CIRCULATING FLUIDIZED-BED; AGRICULTURAL RESIDUES; PERFORMANCE ANALYSIS; STEAM GASIFICATION; STATIONARY STATE; FUEL-CELL; MODEL; GAS; EFFICIENCY;
D O I
10.1016/j.biombioe.2009.05.004
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
In the context of climate change, efficiency and energy security, biomass gasification is likely to play an important role. Circulating fluidised bed (CFB) technology was selected for the current study. The objective of this research is to develop a computer model of a CFB biomass gasifier that can predict gasifier performance under various operating conditions. An original model was developed using ASPEN Plus. The model is based on Gibbs free energy minimisation. The restricted equilibrium method was used to calibrate it against experimental data. This was achieved by specifying the temperature approach for the gasification reactions. The model predicts syn-gas composition, conversion efficiency and heating values in good agreement with experimental data. Operating parameters were varied over a wide range. Parameters such as equivalence ratio (ER), temperature, air preheating, biomass moisture and steam injection were found to influence syn-gas composition, heating value, and conversion efficiency. The results indicate an ER and temperature range over which hydrogen (H(2)) and carbon monoxide (CO) are maximised, which in turn ensures a high heating value and cold gas efficiency (CGE). Gas heating value was found to decrease with ER. Air preheating increases H(2) and CO production, which increases gas heating value and CGE. Air preheating is more effective at low ERs. A critical air temperature exists after which additional preheating has little influence. Steam has better reactivity than fuel bound moisture. Increasing moisture degrades performance therefore the input fuel should be pre-dried. Steam injection should be employed if a H(2) rich syn-gas is desired. (C) 2009 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1158 / 1167
页数:10
相关论文
共 44 条
[11]   Product distribution from pyrolysis of wood and agricultural residues [J].
Di Blasi, C ;
Signorelli, G ;
Di Russo, C ;
Rea, G .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 1999, 38 (06) :2216-2224
[12]   Steady state simulation of energy production from biomass by molten carbonate fuel cells [J].
Donolo, Giulio ;
De Simon, Giulio ;
Fermeglia, Maurizio .
JOURNAL OF POWER SOURCES, 2006, 158 (02) :1282-1289
[13]  
ECN, PHYLL DAT BIOM WAST
[14]  
European Commission, 2006, WORLD EN TECHN OUTL
[15]   A steady state model of gas-char reactions in a downdraft biomass gasifier [J].
Giltrap, DL ;
McKibbin, R ;
Barnes, GRG .
SOLAR ENERGY, 2003, 74 (01) :85-91
[16]  
Gumz W., 1950, Gas producers and blast furnaces: theory and methods of calculation
[17]  
Higman C., 2003, GASIFICATION
[18]  
Hughes WE, 1998, THESIS PRINCETON U
[19]   Model development and validation:: Co-combustion of residual char, gases and volatile fuels in the fast fluidized combustion chamber of a dual fluidized bed biomass gasifier [J].
Kaushal, Priyanka ;
Proell, Tobias ;
Hofbauer, Hermann .
FUEL, 2007, 86 (17-18) :2687-2695
[20]   Combination of thermochemical recuperative coal gasification cycle and fuel cell for power generation [J].
Kuchonthara, P ;
Bhattacharya, S ;
Tsutsumi, A .
FUEL, 2005, 84 (7-8) :1019-1021