Numerical and Experimental Investigation of Equivalence Ratio (ER) and Feedstock Particle Size on Birchwood Gasification

被引:42
作者
Jayathilake, Rukshan [1 ]
Rudra, Souman [1 ]
机构
[1] Univ Agder, Dept Sci & Engn, N-4879 Grimstad, Norway
关键词
Birchwood gasification; computational fluid dynamics; equivalence ratio; cold gas efficiency; syngas; FLUIDIZED-BED GASIFICATION; LIGNOCELLULOSIC BIOMASS; RENEWABLE ENERGY; GASIFIER; CFD; PERFORMANCE; SIMULATION; FLOW; MODEL; WASTES;
D O I
10.3390/en10081232
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
This paper discusses the characteristics of Birchwood gasification using the simulated results of a Computational Fluid Dynamics (CFD) model. The CFD model is developed and validated with the experimental results obtained with the fixed bed downdraft gasifier available at the University of Agder (UIA), Norway. In this work, several parameters are examined and given importance, such as producer gas yield, syngas composition, lower heating value (LHV), and cold gas efficiency (CGE) of the syngas. The behavior of the parameters mentioned above is examined by varying the biomass particle size. The diameters of the two biomass particles are 11.5 mm and 9.18 mm. All the parameters investigate within the Equivalences Ratio (ER) range from 0.2 to 0.5. In the simulations, a variable air inflow rate is used to achieve different ER values. For the different biomass particle sizes, CO, CO2, CH4, and H-2 mass fractions of the syngas are analyzed along with syngas yield, LHV, and CGE. At an ER value of 0.35, 9.18 mm diameter particle shows average maximum values of 60% of CGE and 2.79 Nm(3)/h of syngas yield, in turn showing 3.4% and 0.09 Nm(3)/h improvement in the respective parameters over the 11.5 mm diameter biomass particle.
引用
收藏
页数:19
相关论文
共 60 条
[1]   RANZ AND MARSHALL CORRELATIONS LIMITS ON HEAT FLOW BETWEEN A SPHERE AND ITS SURROUNDING GAS AT HIGH TEMPERATURE [J].
Aissa, Abderrahmane ;
Abdelouahab, Mohamed ;
Noureddine, Abdelkader ;
El Ganaoui, Mohammed ;
Pateyron, Bernard .
THERMAL SCIENCE, 2015, 19 (05) :1521-1528
[2]   Gasification of lignocellulosic biomass in fluidized beds for renewable energy development: A review [J].
Alauddin, Zainal Alimuddin Bin Zainal ;
Lahijani, Pooya ;
Mohammadi, Maedeh ;
Mohamed, Abdul Rahman .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2010, 14 (09) :2852-2862
[3]   Co-gasification of coal and biomass wastes in an entrained flow gasifier: Modelling, simulation and integration opportunities [J].
Ali, Dalia A. ;
Gadalla, Mamdouh A. ;
Abdelaziz, Omar Y. ;
Hulteberg, Christian P. ;
Ashour, Fatma H. .
JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2017, 37 :126-137
[4]   Modeling of coupling gasification and anaerobic digestion processes for maize bioenergy conversion [J].
Allesina, Giulio ;
Pedrazzi, Simone ;
Guidetti, Luca ;
Tartarini, Paolo .
BIOMASS & BIOENERGY, 2015, 81 :444-451
[5]   Modeling and investigation of the channeling phenomenon in downdraft stratified gasifers [J].
Allesina, Giulio ;
Pedrazzi, Simone ;
Tartarini, Paolo .
BIORESOURCE TECHNOLOGY, 2013, 146 :704-712
[6]   One-way, two-way and four-way coupled LES predictions of a particle-laden turbulent flow at high mass loading downstream of a confined bluff body [J].
Alletto, M. ;
Breuer, M. .
INTERNATIONAL JOURNAL OF MULTIPHASE FLOW, 2012, 45 :70-90
[7]   Influence of Fuel Moisture Content and Reactor Temperature on the Calorific Value of Syngas Resulted from Gasification of Oil Palm Fronds [J].
Atnaw, Samson Mekbib ;
Sulaiman, Shaharin Anwar ;
Yusup, Suzana .
SCIENTIFIC WORLD JOURNAL, 2014,
[8]   Modeling of biomass gasification: A review [J].
Baruah, Dipal ;
Baruah, D. C. .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2014, 39 :806-815
[9]  
Basu P, 2010, BIOMASS GASIFICATION AND PYROLYSIS: PRACTICAL DESIGN AND THEORY, P1
[10]  
Belosevic S., 2010, The Open Thermodynamics Journal, V4, P50, DOI DOI 10.2174/