Spectral response between particle and fluid kinetic energy in decaying homogeneous isotropic turbulence
Martin Schi{\o}dt, Azur Hodzic, Fabien Evrard, Max Hausmann, Berend, Van Wachem, Clara M. Velte

TL;DR
This paper extends spectral analysis of particle-fluid energy interactions from stationary to non-stationary turbulence using time-focalized POD, revealing spectral symmetry and proposing a response function model.
Contribution
It introduces a POD-based method to analyze non-stationary particle-laden turbulence, enabling spectral response evaluation in decaying flows, which was previously limited to stationary flows.
Findings
POD modes can represent both fluid and particle velocities in non-stationary turbulence.
Response functions in non-stationary flows can be modeled similarly to stationary cases.
Energy relationships depend on Stokes number and show spectral symmetry.
Abstract
In particle-laden turbulence, the Fourier Lagrangian spectrum of each phase is regularly computed, and analytically derived response functions relate the Lagrangian spectrum of the fluid- and the particle phase. However, due to the periodic nature of the Fourier basis, the analysis is restricted to statistically stationary flows. In the present work, utilizing the bases of time-focalized proper orthogonal decomposition (POD), this analysis is extended to temporally non-stationary turbulence. Studying two-way coupled particle-laden decaying homogeneous isotropic turbulence for various Stokes numbers, it is demonstrated that the temporal POD modes extracted from the dispersed phase may be used for the expansion of both fluid- and particle velocities. The POD Lagrangian spectrum of each phase may thus be computed from the same set of modal building blocks, allowing the evaluation of…
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Taxonomy
TopicsParticle Dynamics in Fluid Flows · Fluid Dynamics and Turbulent Flows · Wind and Air Flow Studies
