The Influence of Pressure on Flame-Flow Characteristics of a Reacting Jet in Crossflow

Author:

Otero Michelle1,Genova Tommy1,Stiehl Bernhard1,Morales Anthony J.1,Martin Scott2,Ahmed Kareem A.1

Affiliation:

1. Department of Mechanical and Aerospace Engineering, The Center for Advanced Turbomachinery and Energy Research, University of Central Florida, 12781 Ara Drive, Orlando, FL 32828

2. Flight Research Center, Embry-Riddle Aeronautical University, 1 Aerospace Boulevard, Daytona Beach, FL 32114

Abstract

Abstract This work experimentally investigates the effects of elevated combustor pressures on the characteristics of a lean premixed reacting methane/air jet injected into a lean vitiated crossflow using a 12.7 mm axial jet. Experiments were conducted in an axially staged combustor, which implements a reacting jet in crossflow (RJIC) configuration and operates over a pressure range of 1−5 atmospheres. Simultaneous CH* chemiluminescence and particle image velocimetry (PIV) are used to study the flow field and flame behavior. The results show that the reacting jet trajectory exhibits greater penetration with elevated pressure, which is a novel finding compared to available data in the literature. However, the flame liftoff point and ignition delay time both decreased with elevated pressure, which was attributed to decreased vorticity along the flame boundary which corresponds to increased Damköhler numbers (Da). Emissions measurements confirm the NOx increase with pressure as reported in the literature for single-stage gas turbine combustors. Concurrently, emission measurements for the staged configuration show the strong NOx benefit of the RJIC system: the data prove a reduction of global outlet emission levels at elevated pressure with the axially staged configuration. The axial emission reduction was attributed to the decreasing liftoff at elevated pressure levels. Hence, the research emphasizes that the flame and emission characteristics are coupled; they are not only dependent on the geometric parameters and momentum flux ratios but are also a function of pressure.

Funder

Office of Fossil Energy

Publisher

ASME International

Subject

Geochemistry and Petrology,Mechanical Engineering,Energy Engineering and Power Technology,Fuel Technology,Renewable Energy, Sustainability and the Environment

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