Predicting the Amplitude of Thermoacoustic Instability Using Universal Scaling Behavior

Author:

Pavithran Induja1,Unni Vishnu R.2,Saha Abhishek2,Varghese Alan J.3,Sujith R. I.3,Marwan Norbert4,Kurths Jürgen4

Affiliation:

1. Department of Physics, Indian Institute of Technology Madras, Chennai 600036, India

2. Department of Mechanical and Aerospace Engineering, University of California San Diego, San Diego, CA 92093

3. Department of Aerospace Engineering, Indian Institute of Technology Madras, Chennai 600036, India

4. Potsdam Institute for Climate Impact Research, Potsdam 14473, Germany

Abstract

Abstract The complex interaction between the turbulent flow, combustion and the acoustic field in gas turbine engines often results in thermoacoustic instability that produces ruinously high-amplitude pressure oscillations. These self-sustained periodic oscillations may result in a sudden failure of engine components and associated electronics, and increased thermal and vibrational loads. Estimating the amplitude of the limit cycle oscillations that are expected during thermoacoustic instability helps in devising strategies to mitigate and to limit the possible damages due to thermoacoustic instability. We propose two methodologies to estimate the amplitude using only the pressure measurements acquired during stable operation. First, we use the universal scaling relation of the amplitude of the dominant mode of oscillations with the Hurst exponent to predict the amplitude of the limit cycle oscillations. We also present a methodology to estimate the amplitudes of different modes of oscillations separately using “spectral measures,” which quantify the sharpening of peaks in the amplitude spectrum. The scaling relation enables us to predict the peak amplitude at thermoacoustic instability, given the data during the safe operating condition. The accuracy of prediction is tested for both methods, using the data acquired from a laboratory-scale turbulent combustor. The estimates are in good agreement with the actual amplitudes.

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

Reference31 articles.

1. Sensitivity and Nonlinearity of Thermoacoustic Oscillations;Annu. Rev. Fluid Mech.,2018

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3. Combustion Instability Related to Vortex Shedding in Dump Combustors and Their Passive Control;Prog. Energy Combust. Sci.,1992

4. Online Combustor Stability Margin Assessment Using Dynamic Pressure Data;ASME J. Eng. Gas Turbines Power,2005

5. Experimental Determination of the Stability Margin of a Combustor Using Exhaust Flow and Fuel Injection Rate Modulations;Proc. Combust. Inst.,2000

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