Görtler number-based scaling of boundary-layer transition on rotating cones in axial inflow

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Hauptverfasser: Tambe, Sumit, Kato, Kentaro, Hussain, Zahir
Format: Preprint
Veröffentlicht: 2024
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author Tambe, Sumit
Kato, Kentaro
Hussain, Zahir
author_facet Tambe, Sumit
Kato, Kentaro
Hussain, Zahir
contents This paper reports on the efficacy of the Görtler number in scaling the laminar-turbulent boundary-layer transition on rotating cones facing axial inflow. Depending on the half-cone angle $ψ$ and axial flow strength, the competing centrifugal and crossflow instabilities dominate the transition. Traditionally, the flow is evaluated by using two parameters: the local meridional Reynolds number $Re_l$ comparing the inertial versus viscous effects and the local rotational speed ratio $S$ accounting for the boundary-layer skew. We focus on the centrifugal effects, and evaluate the flow fields and reported transition points using Görtler number based on the azimuthal momentum thickness of the similarity solution and local cone radius. The results show that Görtler number alone dominates the late stages of transition (maximum amplification and turbulence onset phases) for a wide range of investigated $S$ and half-cone angle ($15^{\circ} \leq ψ\leq 50^{\circ}$), although the early stage (critical phase) seems to be not determined by the Görtler number alone on the broader cones ($ψ=30^{\circ}$ and $50^{\circ}$) where the primary crossflow instability dominates the flow. Overall, this indicates that the centrifugal effects play an important role in the boundary-layer transition on rotating cones in axial inflow.
format Preprint
id arxiv_https___arxiv_org_abs_2402_12877
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Görtler number-based scaling of boundary-layer transition on rotating cones in axial inflow
Tambe, Sumit
Kato, Kentaro
Hussain, Zahir
Fluid Dynamics
This paper reports on the efficacy of the Görtler number in scaling the laminar-turbulent boundary-layer transition on rotating cones facing axial inflow. Depending on the half-cone angle $ψ$ and axial flow strength, the competing centrifugal and crossflow instabilities dominate the transition. Traditionally, the flow is evaluated by using two parameters: the local meridional Reynolds number $Re_l$ comparing the inertial versus viscous effects and the local rotational speed ratio $S$ accounting for the boundary-layer skew. We focus on the centrifugal effects, and evaluate the flow fields and reported transition points using Görtler number based on the azimuthal momentum thickness of the similarity solution and local cone radius. The results show that Görtler number alone dominates the late stages of transition (maximum amplification and turbulence onset phases) for a wide range of investigated $S$ and half-cone angle ($15^{\circ} \leq ψ\leq 50^{\circ}$), although the early stage (critical phase) seems to be not determined by the Görtler number alone on the broader cones ($ψ=30^{\circ}$ and $50^{\circ}$) where the primary crossflow instability dominates the flow. Overall, this indicates that the centrifugal effects play an important role in the boundary-layer transition on rotating cones in axial inflow.
title Görtler number-based scaling of boundary-layer transition on rotating cones in axial inflow
topic Fluid Dynamics
url https://arxiv.org/abs/2402.12877