Lagrangian study of dispersion and transport by submesoscale currents at an upper-ocean front
Vicky Verma, Sutanu Sarkar

TL;DR
This study uses Lagrangian particle tracking to analyze the dispersion, vertical transport, and dynamics of submesoscale currents at an ocean front, revealing the role of coherent structures and multiple time scales in transport processes.
Contribution
It provides a detailed Lagrangian analysis of submesoscale front dynamics, highlighting the role of vortex filaments and eddies in vertical and horizontal transport, and characterizing dispersion and slumping processes.
Findings
Coherent vortex filaments and eddies dominate submesoscale transport.
Particles organize into lobes associated with eddies, influencing front slumping.
Vertical motions occur on multiple time scales, with rapid displacements in filaments.
Abstract
The three-dimensional transport pathways, the time scales of vertical transport, and the dispersion characteristics of submesoscale currents at an upper-ocean front are investigated using material points (tracer particles) that advect with the local fluid velocity. Coherent submesoscale vortex filaments and eddies which dominate submesoscale (0.1 - 10 km) dynamics are found to play a crucial role which is quantified here. These coherent structures are generated and sustained through nonlinear evolution of baroclinic instability. The collective motion of particles helps identify common features of transport at the front. It is found that the particles in the central region organize into inclined lobes, each associated with an eddy, and the filaments associated with the heavy- and light-edges of the front transfer edge particles to the lobes. This flux of new particles into the lobe…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
