Energy, enstrophy and helicity transfers in polymeric turbulence
Alessandro Chiarini, Rahul K. Singh, and Marco E. Rosti

TL;DR
This paper investigates how polymers influence the transfer of energy, enstrophy, and helicity across scales in turbulent flows, revealing that polymers modify cascade processes and promote two-dimensional flow features.
Contribution
It provides a detailed analysis of scale-by-scale transfers in polymeric turbulence using direct numerical simulations, highlighting the role of polymers in energy and helicity dynamics.
Findings
Polymers deplete the nonlinear energy cascade at small scales.
Polymer-driven flux dominates at small scales for De ≥ 1.
Polymers promote two-dimensional flow structures and increase helicity at all scales.
Abstract
We characterise the scale-by-scale transfers of energy, enstrophy and helicity in homogeneous and isotropic polymeric turbulence using direct numerical simulations. The microscale Reynolds number is set to , and the Deborah number is varied between ; is the polymeric relaxation time and is the turnover time of the largest scales of the flow. The study relies on the exact scale-by-scale budget equations (derived from the the governing model equations) for energy, enstrophy and helicity, which account for the back-reaction of the polymers on the flow. Polymers act as a sink/source in the flow, and provide alternative routes for the scale-by-scale transfers of the three quantities, whose relevance changes with . We find that polymers deplete the nonlinear energy cascade mainly at smaller scales, by…
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