Prediction of flow and elastic stresses in a viscoelastic turbulent channel flow using convolutional neural networks
Arivazhagan G. Balasubramanian, Ricardo Vinuesa, Outi Tammisola

TL;DR
This paper explores the use of convolutional neural networks to predict flow and polymeric stresses in viscoelastic turbulent channel flows using wall measurements, advancing non-intrusive flow analysis and control.
Contribution
It demonstrates the feasibility of predicting flow and stress fields from wall data in viscoelastic turbulence, including the reconstruction of polymeric stresses from velocity or pressure measurements.
Findings
Velocity fluctuations are well predicted from wall measurements.
Models accurately predict polymeric shear stress and stress trace.
Prediction accuracy improves during low-drag (hibernation) intervals.
Abstract
Neural-network models have been employed to predict the instantaneous flow close to the wall in a viscoelastic turbulent channel flow. Numerical simulation data at the wall is utilized to predict the instantaneous velocity-fluctuations and polymeric-stress-fluctuations at three different wall-normal positions in the buffer region. The ability of non-intrusive predictions has not been previously investigated in non-Newtonian turbulence. Our analysis shows that velocity-fluctuations are predicted well from wall measurements in viscoelastic turbulence. The models exhibit enhanced accuracy in predicting quantities of interest during the hibernation intervals, facilitating a deeper understanding of the underlying physics during low-drag events. The neural-network models also demonstrate a reasonably good accuracy in predicting polymeric-shear stress and the trace of the polymer stress at a…
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Taxonomy
TopicsRheology and Fluid Dynamics Studies
