Exacerbation of viscoelastic instability due to viscous heating

Fuente: arXiv
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Hauptverfasser: Kamboj, Ankush, Patne, Ramkarn, Narayana, P. A. L., Sahu, Kirti Chandra
Format: Preprint
Veröffentlicht: 2025
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_version_ 1866916780917653504
author Kamboj, Ankush
Patne, Ramkarn
Narayana, P. A. L.
Sahu, Kirti Chandra
author_facet Kamboj, Ankush
Patne, Ramkarn
Narayana, P. A. L.
Sahu, Kirti Chandra
contents The linear stability analysis of the pressure-driven flow of an Oldroyd-B fluid through a plane channel is performed to examine the effects of viscous heating-induced buoyancy on the ``purely elastic instability" predicted by \citet{khalid2021continuous} (Phys. Rev. Lett., 2021, 127, 134502). We do not impose any external heating; rather, the temperature increase in the system is solely due to the viscous heating generated by the flow of a highly viscous fluid, which induces buoyancy. This buoyancy effect adds an extra term to the momentum equation, proportional to the ratio of the Grashof and Reynolds numbers. Since the elastic instability manifests at very low Reynolds numbers, this buoyancy term is crucial for determining flow stability. Our analysis indicates a significant decrease in the critical Weissenberg number due to the viscous heating-induced buoyancy effect, implying that the elastic instability could potentially be observed experimentally at a significantly lower Weissenberg number than that predicted by Khalid et al. (2021b). The asymmetry in the streamwise velocity eigenfunctions, resulting from the presence of viscous heating, is found to be the mechanism behind the predicted destabilizing effect.
format Preprint
id arxiv_https___arxiv_org_abs_2506_04617
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Exacerbation of viscoelastic instability due to viscous heating
Kamboj, Ankush
Patne, Ramkarn
Narayana, P. A. L.
Sahu, Kirti Chandra
Fluid Dynamics
The linear stability analysis of the pressure-driven flow of an Oldroyd-B fluid through a plane channel is performed to examine the effects of viscous heating-induced buoyancy on the ``purely elastic instability" predicted by \citet{khalid2021continuous} (Phys. Rev. Lett., 2021, 127, 134502). We do not impose any external heating; rather, the temperature increase in the system is solely due to the viscous heating generated by the flow of a highly viscous fluid, which induces buoyancy. This buoyancy effect adds an extra term to the momentum equation, proportional to the ratio of the Grashof and Reynolds numbers. Since the elastic instability manifests at very low Reynolds numbers, this buoyancy term is crucial for determining flow stability. Our analysis indicates a significant decrease in the critical Weissenberg number due to the viscous heating-induced buoyancy effect, implying that the elastic instability could potentially be observed experimentally at a significantly lower Weissenberg number than that predicted by Khalid et al. (2021b). The asymmetry in the streamwise velocity eigenfunctions, resulting from the presence of viscous heating, is found to be the mechanism behind the predicted destabilizing effect.
title Exacerbation of viscoelastic instability due to viscous heating
topic Fluid Dynamics
url https://arxiv.org/abs/2506.04617