An overview of the behaviour of biomass during combustion: Part I. Phase-mineral transformations of organic and inorganic matter

被引:387
作者
Vassilev, Stanislav V. [1 ,2 ]
Baxter, David [1 ]
Vassileva, Christina G. [2 ]
机构
[1] European Commiss, Joint Res Ctr, Inst Energy & Transport, NL-1755 ZG Petten, Netherlands
[2] Bulgarian Acad Sci, Inst Mineral & Crystallog, BU-1113 Sofia, Bulgaria
关键词
Biomass combustion; Phase-mineral transformations; Ash formation; Chemical and mineral composition; Classification; FLUIDIZED-BED COMBUSTION; MUNICIPAL SOLID-WASTE; REFUSE-DERIVED CHAR; REED CANARY-GRASS; RICE HUSK ASH; TEMPERATURE ELEMENTAL LOSSES; HEAT-TRANSFER SURFACES; WOOD-FIRED BOILER; COAL FLY ASHES; CHEMICAL-COMPOSITION;
D O I
10.1016/j.fuel.2013.05.043
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
An extended overview of the phase-mineral transformations of organic and inorganic matter that occur during biomass combustion was conducted. Some general considerations and particularly problems associated with the composition of biomass and biomass ash (BA) and behaviour of biomass during burning were discussed initially. Then, reference peer-reviewed data plus own investigations were used to organise and describe systematically the above topics. It was demonstrated that the phase composition of BA is polycomponent, heterogeneous and variable and includes: (1) mostly inorganic matter (IM) composed of non-crystalline (amorphous) and crystalline to semi-crystalline (mineral) constituents; (2) subordinately organic matter (OM) consisting of char and organic minerals; and (3) some fluid matter associated with both IM and OM. Approximately 291 phases or minerals were identified in BA. These species have primary, secondary or tertiary origin in the combustion residue and they are generated from natural (authigenic and detrital) and technogenic phases or minerals originally present in biomass. Afterwards, common issues related to the composition, occurrence, transformation and origin of common constituents in biomass and BA such as: (1) OM, namely cellulose, hemicellulose, lignin, char and other organic phases plus organic minerals; and (2) IM such as silicates, oxides and hydroxides, phosphates, sulphates (plus sulphides, sulphosalts, sulphites and thiosulphates), carbonates (plus bicarbonates), chlorides (plus chlorites and chlorates), nitrates, glass, amorphous (non-glass) material and other inorganic phases; were described and compared to coal ash. As a final point, a systematization of physico-chemical transformations during biomass combustion is given. It was found that the original OM and IM in biomass during combustion transform: (1) initially to devolatilization of OM and burning of combustible gases and char with formation of intermediate and less stable oxalates, nitrates, chlorides, hydroxides, carbonates, sulphates and inorganic amorphous (non-glass) material; (2) subsequently to more stable silicates, phosphates and oxides; (3) then to melting accompanied by dissolution of the refractory minerals; with increasing combustion temperatures in the system; and (4) followed by crystallisation of melt and formation of glass accompanied by some salt condensation and hydroxylation, hydration and carbonation of newly formed phases during cooling of BA. Finally, some post-combustion transformations of the newly formed minerals and phases to stable during weathering species among silicates, hydroxides, phosphates, sulphates, carbonates, chlorides and nitrates also occur due to their hydration, hydroxylation and carbonation by moisture and CO2 in the air through storage of BA. Certain major associations related to the occurrence, content and origin of elements and phases were identified in the BA system and they include: (1) Si-Al-Fe-Na-Ti (mostly glass, silicates and oxyhydroxides); (2) Ca-Mg-Mn (commonly carbonates, oxyhydroxides, glass, silicates and some phosphates and sulphates); and (3) K-P-S-Cl (normally phosphates, sulphates, chlorides, glass and some silicates and carbonates). These associations were applied for classification of BAs to four types and six sub-types. It was found that such systematic relationships have a key importance in both fundamental and applied aspects related to innovative and sustainable processing of biomass and BA. The ash formation mechanisms and ash fusion behaviour, as well as some indications of potential technological problems and environmental risks during combustion of biomass types and sub-types and application of their BAs will be described in Part II of the present work. (C) 2013 Elsevier Ltd. All rights reserved.
引用
收藏
页码:391 / 449
页数:59
相关论文
共 402 条
[91]   Utilizing biomass and waste for power production - a decade of contributing to the understanding, interpretation and analysis of deposits and corrosion products [J].
Frandsen, FJ .
FUEL, 2005, 84 (10) :1277-1294
[92]   Quantification of the release of inorganic elements from biofuels [J].
Frandsen, Flemming J. ;
van Lith, Simone C. ;
Korbee, Rob ;
Yrjas, Patrik ;
Backman, Rainer ;
Obernberger, Ingwald ;
Brunner, Thomas ;
Joeller, Markus .
FUEL PROCESSING TECHNOLOGY, 2007, 88 (11-12) :1118-1128
[93]   The Biological System of the Elements (BSE).: Part II:: a theoretical model for establishing the essentiality of chemical elements.: The application of stoichiometric network analysis to the biological system of the elements [J].
Fränzle, S ;
Markert, B .
SCIENCE OF THE TOTAL ENVIRONMENT, 2000, 249 (1-3) :223-241
[94]   Experimental investigation of fluidised bed co-combustion of meat and bone meal with coals and olive bagasse [J].
Fryda, L. ;
Panopoulos, K. ;
Vourliotis, P. ;
Pavlidou, E. ;
Kakaras, E. .
FUEL, 2006, 85 (12-13) :1685-1699
[95]   Study on ash deposition under oxyfuel combustion of coal/biomass blends [J].
Fryda, L. ;
Sobrino, C. ;
Cieplik, M. ;
van de Kamp, W. L. .
FUEL, 2010, 89 (08) :1889-1902
[96]   Alkali retention/separation during bagasse gasification:: a comparison between a fluidised bed and a cyclone gasifier [J].
Gabra, M ;
Nordin, A ;
Öhman, M ;
Kjellström, B .
BIOMASS & BIOENERGY, 2001, 21 (06) :461-476
[97]   Co-gasification of Biomass with Coal and Oil Sand Coke in a Drop Tube Furnace [J].
Gao, Chen ;
Vejahati, Farshid ;
Katalambula, Hasan ;
Gupta, Rajender .
ENERGY & FUELS, 2010, 24 (01) :232-240
[98]   Study of main combustion characteristics for biomass fuels used in boilers [J].
Garcia Fernandez, Roberto ;
Pizarro Garcia, Consuelo ;
Gutierrez Lavin, Antonio ;
Bueno de las Heras, Julio L. .
FUEL PROCESSING TECHNOLOGY, 2012, 103 :16-26
[99]   Characterization of Spanish biomass wastes for energy use [J].
Garcia, Roberto ;
Pizarro, Consuelo ;
Lavin, Antonio G. ;
Bueno, Julio L. .
BIORESOURCE TECHNOLOGY, 2012, 103 (01) :249-258
[100]   Thermal analysis of biomass and corresponding pyrolysis products [J].
Ghetti, P ;
Ricca, L ;
Angelini, L .
FUEL, 1996, 75 (05) :565-573