Effect of the high-power electromagnetic pulses on the reactivity of the coal-water slurry in hot environment
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[1] Z. Ismagilov,et al. Ignition of Different Metamorphic Grade Coals by Free-Running Laser Pulses , 2020 .
[2] R. I. Taburchinov,et al. Efficiency of Different Heat Exchange Mechanisms for Ignition of Coal–Water Compositions , 2019, Energy & Fuels.
[3] P. Dong,et al. Comparison of bituminous coal and lignite during combustion: Combustion performance, coking and slagging characteristics , 2019, Journal of the Energy Institute.
[4] D. Peck,et al. Manufacture of high density carbon blocks by self-sintering coke produced via a two-stage heat treatment of coal tar , 2019, Heliyon.
[5] Roman I. Egorov,et al. Activation of the Fuels with Low Reactivity Using the High-Power Laser Pulses , 2018, Energies.
[6] P. Strizhak,et al. Energetic and ecological effect of small amount of metalline powders used for doping waste-derived fuels , 2018 .
[7] G. Murastov,et al. About laser heat absorbing impurities in the transparence matrix of pentaerythritol tetranitrate , 2017 .
[8] Z. Ismagilov,et al. Laser ignition of low-rank coal , 2016, Russian Journal of Physical Chemistry B.
[9] P. Strizhak,et al. Organic coal-water fuel: Problems and advances (Review) , 2016 .
[10] S. V. Syrodoy,et al. Ignition of promising coal-water slurry containing petrochemicals: Analysis of key aspects , 2016 .
[11] P. Strizhak,et al. Burning Properties of Slurry Based on Coal and Oil Processing Waste , 2016 .
[12] L. Zhou,et al. Advances in LES of Two-phase Combustion (II) LES of Complex Gas-Particle Flows and Coal Combustion , 2012 .
[13] C. Shaddix,et al. Pulverized coal stream ignition delay under conventional and oxy-fuel combustion conditions , 2011 .
[14] Juan Adánez,et al. Ilmenite Activation during Consecutive Redox Cycles in Chemical-Looping Combustion , 2010 .
[15] John M. Simmie,et al. Autoignition measurements and a validated kinetic model for the biodiesel surrogate, methyl butanoate , 2008 .
[16] U. Renz,et al. Two colour pyrometer technique for coal particle temperature measurements in pressurised pulverised coal flame , 2007 .
[17] D. Jianxin,et al. Erosion wear mechanisms of coal–water–slurry (CWS) ceramic nozzles in industry boilers , 2006 .
[18] Asri Gani,et al. Characteristics of Co-combustion of Low-Rank Coal with Biomass , 2005 .
[19] T. Dubaniewicz,et al. Continuous wave laser ignition thresholds of coal dust clouds , 2003 .
[20] K. Yuan,et al. Study on characteristics of different types of nozzles for coal-water slurry atomization , 2001 .
[21] Yulianto Sulistyo Nugroho,et al. Low-temperature oxidation of single and blended coals , 2000 .
[22] Karen M. Nashold,et al. Investigations of optical limiting mechanisms in carbon particle suspensions and fullerene solutions , 1995 .
[23] John-Chang Chen,et al. Laser Ignition of Pulverized Coals , 1994 .
[24] Matti Hiltunen,et al. Sintering mechanisms of FBC ashes , 1994 .
[25] Dongke Zhang,et al. Laser-induced ignition of pulverized fuel particles , 1992 .
[26] R. Essenhigh,et al. Ignition of coal particles: A review , 1989 .
[27] Frank P. Incropera,et al. Fundamentals of Heat and Mass Transfer , 1981 .
[28] L. Kirsch,et al. The autoignition of hydrocarbon fuels at high temperatures and pressures—Fitting of a mathematical model , 1977 .