Identification of cross-frequency interactions in compressible cavity flow using harmonic resolvent analysis
Md Rashidul Islam, Yiyang Sun

TL;DR
This paper extends harmonic resolvent analysis to compressible flows, revealing how cross-frequency interactions influence flow instabilities and energy transfer in cavity flows at different Mach numbers.
Contribution
The study formulates a harmonic resolvent analysis framework for compressible flows based on linearized Navier-Stokes equations and applies it to cavity flows, demonstrating its effectiveness in capturing cross-frequency interactions.
Findings
Cross-frequency interactions dominate perturbation amplification at certain frequencies.
Energy transfer occurs from slow to fast modes via cross-frequency interactions.
Analysis reveals coexisting resonances in high Mach number cavity flow.
Abstract
The resolvent analysis reveals the worst-case disturbances and the most amplified response in a fluid flow that can develop around a stationary base state. The recent work by Padovan et al.(2020) extended the classical resolvent analysis to the harmonic resolvent analysis framework by incorporating the time-varying nature of the base flow. The harmonic resolvent analysis can capture the triadic interactions between perturbations at two different frequencies through a base flow at a particular frequency. The singular values of the harmonic resolvent operator act as a gain between the spatio-temporal forcing and the response provided by the singular vectors. In the current study, we formulate the harmonic resolvent analysis framework for compressible flows based on the linearized Navier-Stokes equation (i.e., operator-based formulation). We validate our approach by applying the technique…
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Taxonomy
TopicsHydraulic and Pneumatic Systems · Computational Fluid Dynamics and Aerodynamics · Vibration and Dynamic Analysis
