Low-temperature oxidation of some Turkish coals

Fuel - Tập 93 - Trang 423-432 - 2012
K. Baris1, Sait Kızgut1, Vedat Didari1
1Mining Engineering Department, Zonguldak Karaelmas University, 67100 Zonguldak, Turkey

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Clemens, 1991, Low temperature oxidation studies of dried New Zealand coals, Fuel, 70, 215, 10.1016/0016-2361(91)90155-4

Davidson, 1990

Itay, 1988, A study of the low temperature oxidation of coal, Fuel Process Technol, 21, 81, 10.1016/0378-3820(89)90063-5

Kaji, 1985, Low temperature oxidation of coals: effect of pore structure and coal composition, Fuel, 64, 297, 10.1016/0016-2361(85)90413-2

Krishnaswamy, 1996, Low temperature oxidation of coal, Fuel, 75, 333, 10.1016/0016-2361(95)00180-8

Pisupati, 1993, Natural weathering and laboratory oxidation of bituminous coals: organic and inorganic structural changes, Fuel, 72, 531, 10.1016/0016-2361(93)90113-G

Polat, 1983, Low-temperature oxidation of Victorian brown coal, Fuel, 63, 669, 10.1016/0016-2361(84)90164-9

Wang, 1999, Theoretical analysis of reaction regimes in low-temperature oxidation of coal, Fuel, 78, 1073, 10.1016/S0016-2361(99)00016-2

Wang, 2002, Thermal decomposition of solid oxygenated complexes formed by coal oxidation at low temperatures, Fuel, 81, 1913, 10.1016/S0016-2361(02)00122-9

Wang, 2003, Coal oxidation at low temperatures: oxygen consumption, oxidation products, reaction mechanism and kinetic modelling, Prog Energy Combust, 29, 487, 10.1016/S0360-1285(03)00042-X

Wang, 2003, Pathways for production of CO2 and CO in low-temperature oxidation of coal, Energy Fuel, 17, 150, 10.1021/ef020095l

Larsen, 1986, Multiple mechanisms for the loss of coking properties caused by mild air oxidation, Fuel, 65, 595, 10.1016/0016-2361(86)90056-6

Maloney, 1982, Low-temperature air oxidation of caking coals. 2. Effect on swelling and softening properties, Fuel, 61, 175, 10.1016/0016-2361(82)90231-9

Pis, 1988, Effect of aerial oxidation of coking xoals on the technological properties of the resulting cokes, Fuel Process Technol, 20, 307, 10.1016/0378-3820(88)90029-X

Song, 1994, Effects of drying and oxidation of Wyodak subbituminous coal on its thermal and catalytic liquefaction. Spectroscopic characterization and products distribution, Energy Fuel, 8, 301, 10.1021/ef00044a003

Schmal, 1989, Spontaneous heating of stored coal, 133

Ferrari, 1983, Die enstehung von grubenbranden nach untersuchungen auf kohlenpetrographischer grundlage, Gluckauf, 74, 765

Marevich, 1953, Tendency toward spontaneous combustion of petrographic types of coal from Prokop’evsk deposits of Kuzbass (in Russian), Otdl Tekh Nauk, 1, 1110

Chandra, 1958, Reflectance of oxidized coals, Econ Geol, 53, 102, 10.2113/gsecongeo.53.1.102

Kukharenko, 1959, Distinguishing brown coals from weathered high rank coals, Trusy Inst Goryuch Iskop, 8, 163

Stach, 1982

Misra, 1994, Susceptibility to spontaneous combustion of Indian coals and lignites: an organic petrographic autopsy, Int J Coal Geol, 25, 265, 10.1016/0166-5162(94)90019-1

Winmill, 1914, The adsorption of oxygen by coal. IV. Influence of temperature, Trans Inst Min Engrs, 48, 514

Schmidt, 1940, Atmospheric oxidation of coal at moderate temperatures: rates of the oxidation reaction for representative coking coals, Ind Eng Chem, 32, 249, 10.1021/ie50362a021

Allerdice, 1966, The adsorption of oxygen on brown coal char, Carbon, 4, 255, 10.1016/0008-6223(66)90087-X

Swann, 1979, Low-temperature oxidation of brown coal. 3. Reaction with molecular oxygen at temperatures close to ambient, Fuel, 58, 276, 10.1016/0016-2361(79)90136-4

Veselovski, 1953, Dependence of oxidation of mineral fuels on temperature, Otdl Tech Nauk, 4, 905

Cliff, 1996

Carpenter, 1964, The initial stage of oxidation of coal with molecular oxygen I. Effect of time, temperature, and coal rank on the rate of oxygen consumption, Fuel, 43, 247

Smith, 1987

Winmill, 1915, The adsorption of oxygen by coal. IX. Comparison of rates of adsorption of oxygen by different varieties of coal, Trans Inst Min Engrs, 51, 510

Carpenter, 1966, The initial stages of the oxidation of coal with molecular oxygen. IV. The accessibility of the internal surface to oxygen, Fuel, 45, 429

Palmer, 1990, Relation between particle size and properties of some bituminous coals, Fuel, 69, 183, 10.1016/0016-2361(90)90171-L

Akgun, 1994, Effect of particle size on the spontaneous heating of a coal stockpile, Combust Flame, 99, 137, 10.1016/0010-2180(94)90085-X

Carras, 1994, Self-heating of coal and related materials: models, application and test methods, Prog Energy Combust Sci, 20, 1, 10.1016/0360-1285(94)90004-3

Nelson, 1975, Particle-to-fluid heat and mass transfer in dense systems of fine particles, Chem Eng Sci, 30, 1, 10.1016/0009-2509(75)85109-8

Agarwal, 1988, Transport phenomena in multi-particle systems- II particle-fluid heat and mass transfer, Chem Eng Sci, 43, 2501, 10.1016/0009-2509(88)85184-4

Mitchell, 1990, Spontaneous combustion, 27

ASTM-International. New developments in instrumentation for routine coal analysis. American Society of Testing and Materials International; 2007.

ISO 7404-2, ISO Methods for the petrographic analysis of bituminous coal and anthracite. Part 3: Method of preparing coal samples, International Organization of Standardization-ISO, Geneva; 1985.

Bustin, 1985, Coal petrology. Its principles methods and applications, 81

ISO 7404-5, ISO. Methods for petrographic analysis of bituminous coal and anthracite. Part 3: method of determining maceral group composition, International Organization for Standardization-ISO, Geneva; 1984.

ISO 7404-3, ISO. Methods for the petrographic analysis of bituminous coal and anthracite. Part 2: method of determining maceral group composition. International Organization for Standardization, Geneva; 1984.

Kelemen, 1990, Oxidation kinetics of Wyoming powder river basin coal in oxygen between 295 and 398K, Energy Fuel, 4, 165, 10.1021/ef00020a007

Hower, 1985, Maceral partitioning through beneficiation of Illinois basin coals, Int J Coal Prep Util, 2, 149, 10.1080/07349348508905161

Hower, 2008, Maceral/ microlithotype partitioning with particle size of pulverized coal: examples from power plants burning Central Appalachian and Illinois basin coals, Int J Coal Geol, 73, 213, 10.1016/j.coal.2007.06.005