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ID 338

Atomization in acoustically excited sprays

Mahesh Natarajan
Cornell University
United States

Olivier Desjardins
Cornell University
United States

 

Abstract:

The efficiency of a gas turbine is largely dependent on the combustion process between the liquid fuel and the oxidizer. The mixing of the fuel vapours and the incoming air is critical to the combustion process, and the primary factor affecting vaporization is the atomization of the fuel spray. Experiments have shown that high-amplitude acoustic waves are effective in controlling breakup and enhancing atomization of liquid sprays. In this paper, we perform numerical simulations to investigate the dynamics of spray breakup of a water jet in the presence of transverse, standing acoustic waves. It is shown that high-amplitude sound waves ∼170 dB can have a significant effect on spray atomization. The compressible flow equations are solved, and the multiphase treatment uses a Volume of Fluid (VOF) approach with a piecewise linear interface calculation (PLIC) for the interface re- construction.