Kelvin–Helmholtz Instability “Tube” and “Knot” Dynamics. Part I: Expanding Observational Evidence of Occurrence and Environmental Influences

Author:

Fritts David C.12ORCID,Baumgarten Gerd3,Pautet P.-Dominique4,Hecht James H.5,Williams Bifford P.1,Kaifler Natalie6,Kaifler Bernd6,Kjellstrand C. Bjorn7,Wang Ling12,Taylor Michael J.4,Miller Amber D.8

Affiliation:

1. a GATS, Boulder, Colorado

2. b Center for Space and Atmospheric Research, Embry–Riddle Aeronautical University, Daytona Beach, Florida

3. c Leibniz Institute of Atmospheric Physics, University of Rostock, Kühlungsborn, Germany

4. d Department of Physics, Utah State University, Logan, Utah

5. e Space Science Applications Laboratory, The Aerospace Corporation, El Segundo, California

6. f German Aerospace Center, Oberpfaffenhofen, Germany

7. g School of Earth and Space Exploration, Arizona State University, Tempe, Arizona

8. h Department of Physics and Astronomy, University of Southern California, Los Angeles, California

Abstract

Abstract Multiple recent observations in the mesosphere have revealed large-scale Kelvin–Helmholtz instabilities (KHI) exhibiting diverse spatial features and temporal evolutions. The first event reported by Hecht et al. exhibited multiple features resembling those seen to arise in early laboratory shear-flow studies described as “tube” and “knot” (T&K) dynamics by Thorpe. The potential importance of T&K dynamics in the atmosphere, and in the oceans and other stratified and sheared fluids, is due to their accelerated turbulence transitions and elevated energy dissipation rates relative to KHI turbulence transitions occurring in their absence. Motivated by these studies, we survey recent observational evidence of multiscale Kelvin–Helmholtz instabilities throughout the atmosphere, many features of which closely resemble T&K dynamics observed in the laboratory and idealized initial modeling. These efforts will guide further modeling assessing the potential importance of these T&K dynamics in turbulence generation, energy dissipation, and mixing throughout the atmosphere and other fluids. We expect these dynamics to have implications for parameterizing mixing and transport in stratified shear flows in the atmosphere and oceans that have not been considered to date. Companion papers describe results of a multiscale gravity wave direct numerical simulation (DNS) that serendipitously exhibits a number of KHI T&K events and an idealized multiscale DNS of KHI T&K dynamics without gravity wave influences. Significance Statement Kelvin–Helmholtz instabilities (KHI) occur throughout the atmosphere and induce turbulence and mixing that need to be represented in weather prediction and other models of the atmosphere and oceans. This paper documents recent atmospheric evidence for widespread, more intense, features of KHI dynamics that arise where KH billows are initially discontinuous, misaligned, or varying along their axes. These features initiate strong local vortex interactions described as “tubes” and “knots” in early laboratory experiments, suggested by, but not recognized in, earlier atmospheric and oceanic profiling, and only recently confirmed in newer, high-resolution atmospheric imaging and idealized modeling to date.

Funder

AFOSR

Directorate for Geosciences

Defense Sciences Office, DARPA

Publisher

American Meteorological Society

Subject

Atmospheric Science

Reference90 articles.

1. Vorticity dynamics in a breaking internal gravity wave. Part 1. Initial instability evolution;Andreassen, Ø.,1998

2. The instability of a vortex tube in a weak external shear and strain;Arendt, S.,1998

3. The nature, theory, and modeling of atmospheric planetary boundary layers;Baklanov, A. A.,2011

4. Fine structure, instabilities, and turbulence in the lower atmosphere: High-resolution in situ slant-path measurements with the DataHawk UAV and comparisons with numerical Modeling;Balsley, B. B.,2018

5. Quantifying Kelvin-Helmholtz instability dynamics observed in noctilucent clouds: 1. Methods and observations;Baumgarten, G.,2014

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