Lean blow-out mechanism in a swirl-stabilized turbulent spray combustion in a realistic gas turbine combustor

ORAL

Abstract

The present study involves identification of lean blow-out mechanism in a swirl-stabilized turbulent spray combustion in a realistic gas turbine combustor using large eddy simulation. A modified Cartesian cut-cell technique and a gradient-adaptive mesh refinement are employed. Combustion is modeled using a finite rate chemistry approach with compact kinetic models for fuel chemistry. The subgrid stress tensor in the filtered momentum equation is evaluated by solving a transport equation for subgrid kinetic energy. Subgrid turbulence-chemistry interactions are accounted using a partially stirred reactor closure. The multiphase spray is modeled with discrete injections of droplets in a Lagrangian framework to simulate an air-blast atomizer. Injection droplet diameter distributions are derived from experiments. Lean blow-out calculations are carried out by the gradual reduction in the fuel flow rate. These results are further utilized to understand the physics of the lean blow-out process by studying the coupled interactions between fluid dynamics and combustion.

*Argonne National Laboratory’s work was supported by the U.S. Department of Energy under contract no. DE-AC02-06CH11357

Presenters

  • Veeraraghava Raju Hasti

    • Purdue University

Authors

  • Veeraraghava Raju Hasti

    • Purdue University
  • Prithwish Kundu

    • Argonne National Laboratory
  • Sibendu Som

    • Argonne National Laboratory
  • Jay P. Gore

    • Purdue University