Title of article :
Methane ignition catalyzed by in situ generated palladium nanoparticles
Author/Authors :
Shimizu، نويسنده , , T. and Abid، نويسنده , , A.D. and Poskrebyshev، نويسنده , , G. and Wang، نويسنده , , H. and Nabity، نويسنده , , J. and Engel، نويسنده , , J. and Yu، نويسنده , , J. D. Wickham، نويسنده , , D. and Van Devener، نويسنده , , B. and Anderson، نويسنده , , S.L. and Williams، نويسنده , , S.، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2010
Abstract :
Catalytic ignition of methane over the surfaces of freely-suspended and in situ generated palladium nanoparticles was investigated experimentally and numerically. The experiments were conducted in a laminar flow reactor. The palladium precursor was a compound (Pd(THD)2, THD: 2,2,6,6-tetramethyl-3,5-heptanedione) dissolved in toluene and injected into the flow reactor as a fine aerosol, along with a methane–oxygen–nitrogen mixture. For experimental conditions chosen in this study, non-catalytic, homogeneous ignition was observed at a furnace temperature of ∼1123 K, whereas ignition of the same mixture with the precursor was found to be ∼973 K. In situ production of Pd/PdO nanoparticles was confirmed by scanning mobility, transmission electron microscopy and X-ray photoelectron spectroscopy analyses of particles collected at the reactor exit. The catalyst particle size distribution was log-normal. Depending on the precursor loading, the median diameter ranged from 10 to 30 nm. The mechanism behind catalytic ignition was examined using a combined gas-phase and gas-surface reaction model. Simulation results match the experiments closely and suggest that palladium nanocatalyst significantly shortens the ignition delay times of methane–air mixtures over a wide range of conditions.
Keywords :
Microscopy , Catalytic combustion , Ignition , Particle size distribution , Kinetic modeling , Flow reactor , Gas-surface reaction
Journal title :
Combustion and Flame
Journal title :
Combustion and Flame