MA (Cantab), DPhil (Oxon), FRAS, FRMetS, MInstP
Senior Lecturer
- 51cg
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- Email Address
- roland.young@abdn.ac.uk
- Office Address
- School/Department
- School of Natural and Computing Sciences






Biography
I am a Senior Lecturer in the Department of Physics.
My research focuses on the atmospheric dynamics and climate of other planets in the Solar System. My main expertise is in of Mars and Jupiter, analysis of spacecraft observations (particularly visible and thermal infrared) from several historical and current missions, and . I am also interested in (particularly ), , and in the context of .
I obtained my DPhil in Atmospheric, Oceanic and Planetary Physics from the in 2009, as part of the group in the Department of Physics. After briefly working in the at the London School of Economics, I returned to Oxford as a Postdoctoral Research Assistant until 2017, when I moved to the in Paris as a CNRS Research Scientist. My final position before joining the 51cg was Assistant Professor (later Associate Professor) between 2019 and 2023 in the Department of Physics at in , UAE. During my time there I led the Planetary Science research group at the .
Qualifications
- DPhil Atmospheric, Oceanic and Planetary Physics2009 - Linacre College, University of Oxford
Thesis title: ""
- BA/MSci Natural Sciences (Astrophysics)2005 - St John's College, University of Cambridge
Memberships and Affiliations
- Internal Memberships
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- Member, Academic Senate (2024-2028)
- Media Officer, Department of Physics
- External Memberships
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- Participating Scientist,
- Co-Investigator, ACS instrument
- Fellow of the
- Fellow of the
- Member of the
- Member of the
- Member of the
- Member of the
- Member,
- Vice-Chair, Task Group on Reference Atmospheres of Planets and Satellites
Latest Publications
Stratification-dependent enstrophy-controlled regime in geostrophic turbulence
Physical Review Letters, vol. 136, no. 11, 114101Contributions to Journals: Articles- [ONLINE] DOI:
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Characteristics of Helium Bulges and the Impact of Martian Year 34 Global Dust Storm using MAVEN/NGIMS Observations and MarsPCM and MGITM Simulations
Journal of Geophysical Research, vol. 130, no. 12, e2025JE009071Contributions to Journals: Articles- [ONLINE] DOI:
- [OPEN ACCESS]
Diurnal Temperature Variations and Migrating Thermal Tides in the Martian Lower Atmosphere Observed by the Emirates Mars InfraRed Spectrometer
Journal of Geophysical Research - Planets, vol. 130, no. 10, e2025JE009092Contributions to Journals: Articles- [ONLINE] DOI:
- [OPEN ACCESS]
Seasonal and diurnal variations of dust storms in Martian Year 36 based on the EMM-EXI database
Journal of Geophysical Research - Planets, vol. 129, no. 4, e2023JE008156Contributions to Journals: Articles- [ONLINE] DOI:
- [OPEN ACCESS]
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Sub-Hourly Observations of Dust Storm Growth, Lee Waves, and Lyot Crater, by the EMM Camera EXI
Geophysical Research Letters, vol. 50, no. 24, e2023GL105317Contributions to Journals: Articles- [ONLINE] DOI:
- [OPEN ACCESS]
- [ONLINE]
- Research
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Research Overview
Planetary atmospheres are complex nonlinear systems whose observed behaviour can be understood and predicted using a hierarchy of numerical models, from idealised models of individual physical processes to global climate models. My research uses numerical simulations and spacecraft observations to understand their dynamic atmospheres.
Since 2016 I have focused on studying Mars' atmosphere using the Mars Planetary Climate Model (formerly LMD Mars GCM), observations from NASA Mars Reconnaissance Orbiter, ESA/Roscosmos' ExoMars Trace Gas Orbiter, the Emirates Mars Mission, and various landers and rovers, and combining these using data assimilation. I am a Participating Scientist with the Emirates Mars Mission, and a Co-Investigator for the ExoMars Trace Gas Orbiter ACS instrument. Mars' atmosphere exhibits a complicated interplay of weather, surface-air interactions, cloud and convective processes, seasonal and diurnal cycles, and a critical role for airborne dust. Data assimilation is a powerful technique used to combine observations with a numerical model in a statistically rigorous way. It is a cornerstone of Earth atmospheric science, and is an increasingly important tool for studying Mars' atmosphere since its first use during the 1990s, particularly for understanding wind, which is very difficult to measure systematically.
I am also interested in turbulence and dynamics in Jupiter's atmosphere, which I have studied using the Jason general circulation model and by analysing visible images from NASA's Cassini spacecraft. The model simulates the atmospheric circulation and climate in the troposphere and lower stratosphere of that planet. All four of the giant planets have no solid surfaces and are different examples of rapidly-rotating, spherical balls of fluid forced by differential heating. Studying convection and turbulence on the giant planets helps us to understand these phenomena in the more complicated environment of our own planet. Using a method developed for laboratory experiments which tracks features between pairs of images, I built global maps of Jupiter's horizontal winds at cloud level and studied the exchange of energy between small and large scales.
My DPhil work was about simulating the rotating annulus, a laboratory representation of planetary atmospheres, and working with similar geophysical fluid dynamics experiments. We can use the annulus to study methods for forecasting or data assimilation in current use or in development using a real fluid with a non-idealised model under laboratory conditions. The laboratory is a bridge between analytical systems, where new methods are first tested, and large atmospheric models, where they are eventually applied.
Some specific past and present topics are listed below. More detail about some of these can be found on my .
Research Areas
Accepting PhDs
I am currently accepting PhDs in Physics, Maths.
Please get in touch if you would like to discuss your research ideas further.
Research Specialisms
- Planetary Science
- Atmospheric Physics
- Dynamics
- Mathematical Modelling
- Fluid Mechanics
Our research specialisms are based on the Higher Education Classification of Subjects (HECoS) which is , published under the licence.
Current Research
- Mars atmospheric data assimilation (, , )
- Observing System Simulation Experiments for future Mars observation platforms
- Studying Mars' wind structure by tracking clouds in UV/visible imaging
- Fractal analysis of Mars' topography
- Wind stress and dust lifting at Mars' surface using reanalysis datasets
- β-plane turbulence in the Turin TurLab large-scale rotating tank experiment
Past Research
Dormant:
- Simulating moist convection, turbulence, and the energy cycle in Jupiter's atmosphere using the Jason GCM
- Atmospheric turbulence at the Insight lander site on Mars
- Shadowing the rotating annulus experiment (, )
Complete:
- Cloud-tracking analysis of Jupiter's turbulent cloud layer using Cassini ISS imaging (, )
- Mars atmospheric phenomenology (, , , )
- Simulating Jupiter's dry atmosphere and cloud dynamics using Jason (, )
- Predictability of the thermally-driven rotating annulus using MORALS (, )
- Data assimilation in the rotating annulus experiment using analysis correction ()
- Zonal jet formation in the LEGI-Coriolis large-scale rotating tank experiment ()
- Mars Modelling Information Tool for Engineering ()
- Chaotic dynamics of the thermally-driven rotating annulus ()
Collaborations
Past and present:
- University of Oxford (giant planet modelling, cloud tracking, rotating tank experiments, Mars exploration)
- Laboratoire de Météorologie Dynamique (Mars data assimilation, giant planet modelling)
- United Arab Emirates University (Mars data assimilation, EMM science)
- Emirates Mars Mission science team (Mars data assimilation)
- ExoMars Trace Gas Orbiter ACS science team (Mars data assimilation)
- Space Science Institute (Mars data assimilation, cloud tracking)
- TurLab, Turin (rotating tank experiments)
- LEGI-Coriolis (rotating tank experiments)
- University of South Florida (cloud tracking, rotating tank experiments)
- The Open University (Mars data assimilation)
- London School of Economics (rotating annulus assimilation)
- Teaching
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Teaching Responsibilities
Undergraduate
PX1514 Astronomy and Meteorology (Spring 2025, 2026)
PX4510 Structure of Matter and the Universe (Spring 2026)
MX4555 Nonlinear Dynamics and Chaos Theory II (Spring 2024, 2025, 2026)
Postgraduate
PX5510/PX5518/PX5710/PX5718 Statistics and Time Series Analysis (Spring 2024, 2025)
Project supervision
PX4013 BSc Physics Project (2024-25, 2025-26)
PX5901/PX5902/PX55PA MSc Data Science Project
(Summer 2024, Spring, Summer 2025, Spring, Summer 2026)GL5966 MSc Planetary Sciences Dissertation (Summer 2026)
- Publications
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Simulating Jupiter's weather layer. Part I: Jet spin-up in a dry atmosphere
Icarus, vol. 326, pp. 225-252Contributions to Journals: Articles- [ONLINE] DOI:
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Simulating Jupiter's weather layer. Part II: Passive ammonia and water cycles
Icarus, vol. 326, pp. 253-268Contributions to Journals: Articles- [ONLINE] DOI:
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Martian dust storm impact on atmospheric H2O and D/H observed by ExoMars Trace Gas Orbiter
Nature, vol. 568, no. 7753, pp. 521-525Contributions to Journals: Articles- [ONLINE]
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No detection of methane on Mars from early ExoMars Trace Gas Orbiter observations
Nature, vol. 568, no. 7753, pp. 517-520Contributions to Journals: Articles- [ONLINE]
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Barotropic and zonostrophic turbulence
Zonal Jets: Phenomenology, Genesis, and Physics. Cambridge University Press, pp. 220-237, 18 pagesChapters in Books, Reports and Conference Proceedings: Chapters- [ONLINE] DOI:
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Convectively driven turbulence, rossby waves and zonal jets: Experiments on the Coriolis platform
Zonal Jets: Phenomenology, Genesis, and Physics. Cambridge University Press, pp. 135-151, 17 pagesChapters in Books, Reports and Conference Proceedings: Chapters- [ONLINE] DOI:
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Gas giants
Zonal Jets: Phenomenology, Genesis, and Physics. Peter L. Read, B. G. (ed.). Cambridge University Press, pp. 72-103, 32 pagesChapters in Books, Reports and Conference Proceedings: Chapters- [ONLINE] DOI:
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Comparative terrestrial atmospheric circulation regimes in simplified global circulation models. Part I: From cyclostrophic super-rotation to geostrophic turbulence
Quarterly Journal of the Royal Meteorological Society, vol. 144, no. 717, pp. 2537-2557Contributions to Journals: Articles- [ONLINE] DOI:
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Comparative terrestrial atmospheric circulation regimes in simplified global circulation models. Part II: Energy budgets and spectral transfers
Quarterly Journal of the Royal Meteorological Society, vol. 144, no. 717, pp. 2558-2576Contributions to Journals: Articles- [ONLINE] DOI:
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Forward and inverse kinetic energy cascades in Jupiter's turbulent weather layer
Nature Physics, vol. 13, no. 11, pp. 1135-1140Contributions to Journals: Articles- [ONLINE] DOI:
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