To understand the movement and evaporation behavior of single droplet in high temperature fuel gas
a mathematical model was proposed by considering the gas-liquid two-phase coupling. The droplet diameter
velocity and average temperature during its evaporating process and the influence of the fuel gas temperature(1 530 K - 2 130 K)and velocity(30 m/s - 60 m/s)were analyzed. The numerical results show that both higher temperature and higher velocity of fuel gas can accelerate the evaporation of droplet. When the fuel gas temperature decreases continuously along the droplet movement direction
a critical droplet diameter for evaporation exists. The evaporation time shortens with the increasing gas velocity as the droplet diameter gets lower than the critical value. However
the trend is contrary to the droplet diameter beyond that value. In the present condition(the temperature of the fuel gas drops from 2 210 K to 1 090 K along 550 mm length)
the critical value is 100 μm. The evaporation investigation of a single droplet provides a foundation for the research of spray evaporation in high temperature gas.
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references
SPALDING D B. The combustion of liquid fuels [C]∥Proceedings of the Fourth International Symposium on Combustion. Pittsburgh, PA, USA: The Combustion Institute, 1953: 847-864.
GODSAVE G A E. Studies of the combustion of drops in a fuel spray: the burning of single drops of fuel [C]∥Proceedings of the Fourth International Symposium on Combustion. Pittsburgh, PA, USA: The Combustion Institute, 1953: 818-830.
VARNAVAS C V, ASSANIS D N. A high temperature and high pressure evaporation model for the KIVA-3 code, SAE Paper 960629 [R]. Warrendale, PA, USA: Society of Automotive Engineers, Inc., 1996.
HOHMANN S, KLINGSPORN M, RENZ U. An improved model to describe spray evaporation under diesel-like conditions, SAE Paper 960630 [R]. Warrendale, PA, USA: Society of Automotive Engineers, Inc., 1996.[5] ABRAMZON B, SAZHIN S. Convective vaporization of a fuel droplet with thermal radiation absorption [J]. Fuel, 2006, 85(1): 32-46.
WU J S, LIN Y J, SHEEN H J. Effects of ambient turbulence and fuel properties on the evaporation rate of single droplets [J]. Int J Heat Mass Transfer, 2001, 44(24): 4593-4603.
TSENG C C, VISKANTA R. Enhancement of water droplet evaporation by radiation absorption [J]. Fire Safety Journal, 2006, 41(3): 236-247.
LEFEBVRE A H. Atomization and sprays [M]. New York, USA: Hemisphere Pub. Co., 1989: 309-362.
BARATA J M M, MATOS H M M, SILVA A R R. Numerical simulation of an array of evaporating droplets through a crossflow [C]∥43rd AIAA Aerospace Sciences Meeting and Exhibit. Reno, Nevada, USA: American Institute of Aeronautics and Astronautics Inc., 2005: 1-17.
SHIROLKAR J S, COIMBRA C F M, MCQUAY M Q. Fundamental aspects of modeling turbulent particle dispersion in dilute flows [J]. Progress in Energy and Combustion Science, 1996, 22(4): 363-399.
BERLEMONT A, GRANCHER M S, GOUESBET G. Heat and mass transfer coupling between vaporizing droplets and turbulence using a Lagrangian approach [J]. Int J Heat Mass Transfer, 1995, 38(16): 3023-3024.