Multilayer network analysis to study complex inter-subsystem interactions in a turbulent thermoacoustic system
Shruti Tandon, Raman I. Sujith

TL;DR
This study employs multilayer network analysis to investigate the complex spatial interactions between vorticity and thermoacoustic power in a turbulent combustor, revealing how these interactions evolve during different dynamical states.
Contribution
The paper introduces a multilayer network framework to analyze inter-subsystem interactions in thermoacoustic systems, providing new insights into their spatial and dynamical behavior.
Findings
Interactions are non-localized during chaos.
Localized intense interactions occur during thermoacoustic instability.
Dense inter-layer connections emerge in specific regions during intermittency.
Abstract
Thermoacoustic systems are complex systems where the interactions between the hydrodynamic, acoustic and heat release rate fluctuations lead to diverse dynamics such as chaos, intermittency, and ordered dynamics. Such complex interactions cause catastrophically high-amplitude acoustic pressure oscillations and the emergence of order in the spatio-temporal dynamics, referred to as thermoacoustic instability. In this work, we use multilayer networks to study the spatial pattern of inter-subsystem interactions between the vorticity dynamics and thermoacoustic power generated due to acoustically-coupled combustion in a bluff-body stabilized turbulent dump combustor. We construct a two-layered network where the layers represent the thermoacoustic power and vorticity fields. The inter-layer links are determined using cross-variable short-window correlations between vorticity and…
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Taxonomy
TopicsAtmospheric and Environmental Gas Dynamics · Combustion and flame dynamics · Advanced Thermodynamics and Statistical Mechanics
