Experimental Study of Forced Synchronization and Cross-coupling in a Liquid-Fuelled Gas Turbine Combustor at Elevated Pressure
Mitchell L. Passarelli, Askar Kazbekov, Victor Salazar, Krishna, Venkatesan, Adam M. Steinberg

TL;DR
This experimental study investigates how external forcing influences the dynamics and synchronization phenomena in a high-pressure liquid-fuelled gas turbine combustor, revealing complex behaviors including phase-locking and amplitude amplification.
Contribution
It provides new insights into the synchronization mechanisms and dynamic responses of combustor oscillations under external forcing at elevated pressure conditions.
Findings
Pressure fluctuations can phase-lock with forcing frequency.
Amplitude of pressure oscillations increases with frequency detuning.
Synchronization can occur via different routes for spray, heat release, and pressure.
Abstract
The effects of external forcing on a turbulent, liquid-fuelled, swirl-stabilized gas turbine combustor operating at a pressure of approximately 1 MPa are explored experimentally. In particular, the dynamics and coupling between the hydrodynamics, heat release rate and acoustics are compared for various forcing amplitudes at a fixed forcing frequency . The hydrodynamics were characterized via laser Mie scattering from droplets in the fuel spray, while the heat release rate was qualitatively measured using chemiluminescence (CL) emissions in the 312 12.5 nm wavelength range, both at 10 kHz. The dynamics at the frequencies of interest were extracted using spectral proper orthogonal decomposition (SPOD). In the unforced case, the spray and CL oscillations exhibited similar dynamics, dominated by oscillations at frequency , whereas the pressure fluctuations were predominantly…
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Taxonomy
TopicsCombustion and flame dynamics · Nonlinear Dynamics and Pattern Formation · Fluid Dynamics and Heat Transfer
