Relevant Research:
(2024) Stable three-dimensional vortex families consistent with Jovian observations including the Great Red Spot, Journal of Fluid Mechanics 984, p. A61, url, doi:10.1017/jfm.2024.132
(2021) Evolution of the Horizontal Winds in Jupiter's Great Red Spot From One Jovian Year of HST/WFC3 Maps, Geophysical Research Letters 48(18), p. e2021GL093982, pdf, doi:10.1029/2021GL093982
(2019) An equatorial thermal wind equation: Applications to Jupiter, Icarus 324, p. 198-223, pdf, doi:10.1016/j.icarus.2018.09.037
(2017) Changes in Jupiter's Zonal Wind Profile preceding and during the Juno mission, Icarus 296, p. 163-178, pdf, doi:10.1016/j.icarus.2017.06.007
(2014) Dramatic Change In Jupiter’s Great Red Spot From Spacecraft Observations, The Astrophysical Journal 797(2), p. L31, pdf, doi:10.1088/2041-8205/797/2/L31
(2013) Jupiter's red oval BA: Dynamics, color, and relationship to Jovian climate change, Journal of Heat Transfer 135(1), pdf, doi:10.1115/1.4007666
(2012) The universal aspect ratio of vortices in rotating stratified flows: Experiments and observations, Journal of Fluid Mechanics 706, p. 34-45, pdf, doi:10.1017/jfm.2012.176
(2012) Erratum to " Changes in Jupiter's Great Red Spot (1979-2006) and Oval BA (2000-2006)" [Icarus 210 (2010) 182-201], Icarus 217(1), p. 432, pdf, doi:10.1016/j.icarus.2011.10.017
(2011) Jupiter's zonal winds: are they bands of homogenized potential vorticity organized as a monotonic staircase?, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences 369(1937), p. 771-795, pdf, doi:10.1098/rsta.2010.0299
(2011) Vertical structure of Jupiter's Oval BA before and after it reddened: What changed?, Icarus 215(1), p. 211-225, pdf, doi:10.1016/j.icarus.2011.06.032
(2011) Forme et persistance de tourbillons lenticulaires dans les écoulements stratifiés tournants: du laboratoire à la Tâche Rouge de Jupiter!, CFM 2011-20ème Congrès Français de Mécanique, pdf
(2010) Persistent rings in and around Jupiter’s anticyclones–Observations and theory, Icarus 210(2), p. 742-762, pdf
(2010) Changes in Jupiter’s great red spot (1979–2006) and oval BA (2000–2006), Icarus 210(1), p. 182-201, pdf
(2009) Jupiter’s shrinking Great Red Spot and steady Oval BA: Velocity measurements with the ‘Advection Corrected Correlation Image Velocimetry’ automated cloud-tracking method, Icarus 203(1), p. 164-188, url, doi:10.1016/j.icarus.2009.05.001
(2008) Depth of a strong jovian jet from a planetary-scale disturbance driven by storms, Nature 451(7177), p. 437-440, pdf, doi:10.1038/nature06533
(2008) Erratum to ‘Vortex Street Dynamics: the Selection Mechanism for the Areas and Locations of Jupiter’s Vortices’, Journal of the Atmospheric Sciences 65(5), p. 1719-1719, pdf, doi:10.1175/2008JAS2775.1
(2007) Jupiter’s New Red Oval, Hubble 2006 Science Year in Review, Robert Brown (ed.), p. 33–41, Space Science Telescope Institute, pdf
(2007) Vortex street dynamics: The selection mechanism for the areas and locations of Jupiter's vortices, Journal of the Atmospheric Sciences 64(4), p. 1318-1333, pdf, doi:10.1175/JAS3882.1
(2007) On the Interaction of Jupiter’s Great Red Spot and Zonal Jet Streams, Journal of the Atmospheric Sciences 64(12), p. 4432-4444, pdf, doi:10.1175/2007JAS2097.1
(2004) Prediction of a global climate change Jupiter, Nature 428(6985), p. 828-831, pdf, doi:10.1038/nature02470
(2003) The dynamics of jovian white ovals from formation to merger, Icarus 162(1), p. 74-93, pdf, doi:10.1016/S0019-1035(02)00060-X
(1998) The Formation and Maintenance of the Zonal Winds of Jupiter and Saturn, NASA STI/Recon Technical Report N, p. 45688
(1994) Jupiter’s Great Red Spot and zonal winds as a self-consistent, one-layer, quasigeostrophic flow, Chaos: An Interdisciplinary Journal of Nonlinear Science 4(2), p. 269-286, American Institute of Physics, pdf
(1993) Jupiter's Great Red Spot and other vortices, Annual Review of Astronomy and Astrophysics 31(1), p. 523-569, pdf
(1990) The Red Spot of Jupiter, The Impact of Mathematics: Nonlinear Mathematics, Chaos, and Fractals in Science: Proceedings of a Symposium Sponsered by the National Research Council, p. 47-51, National Academy Press
(1988) Numerical simulation of Jupiter's great red spot, Nature 331(6158), p. 693-696, pdf, doi:10.1038/331693a0
(1987) Spatial self-organization of vorticity in chaotic shearing flows, Nuclear Physics B (Proceedings Supplements) 2(C), p. 127-138, pdf, doi:10.1016/0920-5632(87)90013-2
(1985) Coherent vortical features in a turbulent two‐dimensional flow and the Great Red Spot of Jupiter, Journal of the Acoustical Society of America 78(S1), p. S11-S11, pdf, doi:10.1121/1.2022646
Abstracts
(2023) Stable 3-Dimensional Vortex Families Consistent with Jovian Observations Including the Great Red Spot, AAS/Division for Planetary Sciences Meeting Abstracts, url
(2023) Three-Dimensional Vortex Families Consistent with Jovian Observations Including the Great Red Spot, AGU Fall Meeting Abstracts, p. P23C-3073, url
(2021) Longevity of Stratified Anticyclones with Thermal Dissipation and Cyclones with Viscous Dissipation and Their Relevance to Jupiter, APS Division of Fluid Dynamics Meeting Abstracts, p. T11011, url
(2021) Evolution of Great Red Spot Winds over the Past Jupiter Year, AGU Fall Meeting Abstracts, AGU, url
(2020) Changes in the Velocity Field of Jupiter's Great Red Spot on Short and Long Timescales, AAS/Division for Planetary Sciences Meeting Abstracts 52, p. 100-101, url
(2019) How the Great Red Spot of Jupiter Stays Alive while Losing Energy through Viscous and Radiative Dissipation, APS Division of Fluid Dynamics Meeting Abstracts, p. B13–004, pdf
(2019) The Shedding of Jupiter's Red Flakes Does Not Mean It Is Dying, APS Division of Fluid Dynamics Meeting Abstracts, p. L13–001, pdf
(2019) Jupiter's Great red spot is not disintegrating by flaking apart, AGU Fall Meeting Abstracts 2019, p. P13B–3502, url
(2019) On the Shedding of Jupiter's Red Flakes, AGU Fall Meeting Abstracts 2019, p. P13B–3505, url
(2018) An Equatorial Thermal Wind Equation: Applications to Jupiter, APS Division of Fluid Dynamics Meeting Abstracts 63, p. L34-004, url
(2017) Tracing 3D flows in Jupiter's Atmosphere: Multispectral Observations in February 2017, AAS/Division for Planetary Sciences Meeting Abstracts 49, p. 114-118, url
(2016) Jupiter's Global Winds in Advance of the Juno Encounters, AAS/Division for Planetary Sciences Meeting Abstracts 48, p. 501-507, url
(2015) Dramatic Change in Jupiter's Great Red Spot, Lunar and Planetary Science Conference(GSFC-E-DAA-TN20643), pdf
(2014) On the surprising longevity of Jupiter's centuries-old Great Red Spot, APS Division of Fluid Dynamics Meeting Abstracts, p. M17-001, pdf
(2011) Oval BA (and the Great Red Spot) extend down to a supersolar water cloud layer in Jupiter’s atmosphere, EPSC-DPS Joint Meeting 2011 2011, p. 186, pdf
(2010) Jupiter 2010: A Busy Year, European Planetary Science Congress 2010, p. 915, pdf
(2010) Jupiter's Zonal Winds: Are They Bands of Homogenized Potential Vorticity and Do They Form a Monotonic Staircase?, APS Division of Fluid Dynamics Meeting Abstracts 63, p. HG-002, pdf
(2010) Variability of Jupiter's zonal winds on multiple timescales, EGU General Assembly Conference Abstracts, p. 7369, pdf
(2009) HST and Keck AO Images of Vortices on Jupiter, AAS/Division for Planetary Sciences Meeting Abstracts 41, p. 3-10
(2008) Velocity Fields of Jovian Dynamical Features using the Advection Corrected Correlation Image Velocimetry Method, APS Division of Fluid Dynamics Meeting Abstracts 61, p. AV-002, pdf
(2008) Dynamics and Interactions of Jovian Vortices During the Last Year, APS Division of Fluid Dynamics Meeting Abstracts 61, p. AV-003, pdf
(2008) New Observations and Simulations of Jupiter's Great, Little and Oval Red Spots and Stagnation Points and Their Interactions, AAS/Division for Planetary Sciences Meeting Abstracts 40, p. 3-53
(2008) Jupiter's South Equatorial Belt Outbreak Spots and the SEB Fade and Revival Cycle, AAS/Division for Planetary Sciences Meeting Abstracts 40, p. 6-43, pdf
(2007) Jupiter's Red Oval: a Sign of Global Climate Change?, European Planetary Science Congress 2007, p. 617, pdf
(2007) The global upheaval of Jupiter, AAS/Division for Planetary Sciences Meeting Abstracts 39, p. 9-19, pdf
(2007) The 2007 Jupiter's North Temperate Belt Disturbance: I. Overview and jet stream changes., AAS/Division for Planetary Sciences Meeting Abstracts 39, p. 1-4
(2007) Jupiter's New Red Spot-An Indication of Climate Change?, APS Division of Fluid Dynamics Meeting Abstracts 60, p. GL-009, pdf
(2007) Jupiter's New Red Oval--Its Relation to Global Changes, AAS/Division for Planetary Sciences Meeting Abstracts 39, p. 1-6
(2006) Modeling and Data Assimilation of the Velocity of Jupiter's Great Red Spot and Red Oval, APS Division of Fluid Dynamics Meeting Abstracts 59, p. FG-007, pdf
(2006) Modeling and Data Assimilation of the Velocity Fields of Jupiter's Great Red Spot, New Red Oval, and Zonal Jet Streams, AAS/Division for Planetary Sciences Meeting Abstracts 38, p. 3-11
(2006) Velocities and Temperatures of Jupiter's Great Red Spot and the New Red Oval and Their Implications for Global Climate Change, AAS/Division for Planetary Sciences Meeting Abstracts 38, p. 3-39
(2006) Extraction of Velocity Fields from Telescope Image Pairs of Jupiter's Great Red Spot, New Red Oval, and Zonal Jet Streams, APS Division of Fluid Dynamics Meeting Abstracts 59, p. FG-006, pdf
(2006) Extraction of Velocity Fields from HST Image Pairs of Jupiter's Great Red Spot, New Red Oval, and Zonal Jet Streams, AAS/Division for Planetary Sciences Meeting Abstracts 38, p. 4-11, pdf
(2006) Velocities and Temperatures of Jupiter's Great Red Spot and the New Red Oval and Implications for Global Climate Change, APS Division of Fluid Dynamics Meeting Abstracts 59, p. FG-005, pdf
(2003) Predictions of a Global Climate Change and Cycle on Jupiter, AGU Fall Meeting Abstracts 2003, p. P51C--0462, pdf
(2002) Using vortex dynamics to predict an impending global climate change for Jupiter, APS Division of Fluid Dynamics Meeting Abstracts 55, p. BA-001, url
(2002) Preventing Jupiter's Great Red Spot from Turning Itself Inside-Out, APS Division of Fluid Dynamics Meeting Abstracts 55, p. DJ-012, url
(1999) Jupiter's Zonal Flows: The Effect of Differential Rotation on a Forced and Dissipated Three-Dimensional System, APS Division of Fluid Dynamics Meeting Abstracts, p. JD-07, url
(1999) Jovian Vortex Streets as Attractors of a Nearly--Hamiltonian PDE, APS Division of Fluid Dynamics Meeting Abstracts, p. JD-08, url
(1998) Creation of Jovian Zonal Winds, APS Division of Fluid Dynamics Meeting Abstracts, p. FC-06, url
(1997) The Breakdown of Cyclone/Anticyclone Degeneracy in Jupiter's Atmosphere: Modeling of Cloud Morphologies by Lagrangian Passive Tracers, APS Division of Fluid Dynamics Meeting Abstracts, p. Eg-05, url
(1996) Creation of Jovian Zonal Winds by Forcing and Dissipation, APS Division of Fluid Dynamics Meeting Abstracts, p. IA-03, url
(1994) Infrared Observations of the Comet SL9/Jupiter Impacts at Keck, AAS/Division for Planetary Sciences Meeting Abstracts 26, p. 1566