Direct Numerical Simulations of Ice-Ocean Boundary Turbulence

Fuente: arXiv
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Main Authors: Zhao, Ken X., Chor, Tomas, Skyllingstad, Eric, Nash, Jonathan, Rosevear, Madelaine, McConnochie, Craig
Format: Preprint
Published: 2026
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author Zhao, Ken X.
Chor, Tomas
Skyllingstad, Eric
Nash, Jonathan
Rosevear, Madelaine
McConnochie, Craig
author_facet Zhao, Ken X.
Chor, Tomas
Skyllingstad, Eric
Nash, Jonathan
Rosevear, Madelaine
McConnochie, Craig
contents Turbulent heat and freshwater transport at ice-ocean interfaces controls glacier and iceberg melt rates, yet the underlying physics remains poorly constrained. Parameterizations that assume shear boundary layer scaling are commonly used, which neglects meltwater buoyancy-driven convective processes. Using Direct Numerical Simulations with realistic salt diffusivity, which is critical for representing the thin solutal boundary layer (deltaS ~ 0.4 mm) and resulting convective instabilities, we investigate ice-ocean boundary layer turbulence across varying temperature, salinity, stratification, external velocity, and interfacial slope angles. Our simulations agree with laboratory measurements of melt rate and interfacial temperature. In the absence of external flows, we find no transition from buoyancy-controlled to shear-controlled regimes and convection is important even at near-horizontal slopes. External shear becomes significant only when it is strong enough to thin the thermal and solutal boundary layers, which starts influence melting substantially above background flow speeds of 5 cm/s. Understanding how shear and convection compete to determine the ice-ocean diffusive boundary layer enables accurate melt rate predictions across the parameter space relevant to ice shelves and marine-terminating glaciers.
format Preprint
id arxiv_https___arxiv_org_abs_2603_19542
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Direct Numerical Simulations of Ice-Ocean Boundary Turbulence
Zhao, Ken X.
Chor, Tomas
Skyllingstad, Eric
Nash, Jonathan
Rosevear, Madelaine
McConnochie, Craig
Fluid Dynamics
Turbulent heat and freshwater transport at ice-ocean interfaces controls glacier and iceberg melt rates, yet the underlying physics remains poorly constrained. Parameterizations that assume shear boundary layer scaling are commonly used, which neglects meltwater buoyancy-driven convective processes. Using Direct Numerical Simulations with realistic salt diffusivity, which is critical for representing the thin solutal boundary layer (deltaS ~ 0.4 mm) and resulting convective instabilities, we investigate ice-ocean boundary layer turbulence across varying temperature, salinity, stratification, external velocity, and interfacial slope angles. Our simulations agree with laboratory measurements of melt rate and interfacial temperature. In the absence of external flows, we find no transition from buoyancy-controlled to shear-controlled regimes and convection is important even at near-horizontal slopes. External shear becomes significant only when it is strong enough to thin the thermal and solutal boundary layers, which starts influence melting substantially above background flow speeds of 5 cm/s. Understanding how shear and convection compete to determine the ice-ocean diffusive boundary layer enables accurate melt rate predictions across the parameter space relevant to ice shelves and marine-terminating glaciers.
title Direct Numerical Simulations of Ice-Ocean Boundary Turbulence
topic Fluid Dynamics
url https://arxiv.org/abs/2603.19542