JUMP · JUpiter Modeling Platform
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2018-11-01 → 2020-10-31
- EU contribution
- €168,277
- Participants
- 1
- Scheme
- MSCA-IF-EF-ST
Lines connect the coordinator with its partners.
Results in brief
JUpiter Modeling Platform
In planetary atmospheres, it is common that the outer atmospheric envelope contains highly turbulent flows powered by solar energy and by a heat flux from within the planet itself. These thermal energy sources transform into sources of atmospheric motion by driving turbulent eddies whose typical scales do not exceed a typical length scale of ∼ 2,500 km for both Jupiter and Saturn. It ensures the growth of powerful large scale zonal jets, that is east-west directed flow with 10,000–20,000 km latitudinal scale, and a host of waves and vortices, see Figure 1. On planets as Jupiter and Saturn, the jets are profoundly strong, their influence on the distribution of clouds is clearly visible even through relatively simple amateur telescopes, and their appearance is almost unchanging over hundreds of years since early observations. However, how these zonal jets form in planetary flows and how deep they extend within planetary interiors? are long-lived conundrums that aimed to be explored by designing the JUpiter Modelling Platform throughout the project JUMP. To address the central question arise with JUMP, we designed the first mixed laboratory-numerical-observational platform to explore physical ingredients that govern the formation of zonal jets in the gas giant’s atmospheres. We deliver, in open access, a package of theoretic statistical tools to extract properties of Jupiter-like flows reproduced with the numerical and laboratory platform and observe from direct measurement in the planets. The theoretic statistical tools aim to disclose the dynamical mechanisms that lead to the formation of zonal jets. Using these tools, we show that zonal jets in planetary envelopes results from upscale transfer of kinetic energy from the small scale turbulent eddies up to the large scale jets. We show that this upscale transfer result of rapid planetary rotation in planet such as Jupiter and Saturn. Finally we evidence that large scale hydrodynamic features become zonal jets because of the curvature of the spherical planetary fluid layer. These successive dynamical parameters, namely the formation of turbulent eddies, rotation and spherical curvature, are responsible for the banding of Jupiter’s and Saturn’s atmospheres. In the Earth's atmosphere and oceans, jets are also present but they are so weak and meandering that they are virtually undetectable without some deep analysis of the flow. Nonetheless, jets formation in all planetary envelopes, of the Earth, gas giants and other exoplanets, are likely to result from the same planetary parameters. These results, being obtained using a new climate model named DYNAMICO, we integrated today collaborative efforts of numerous scientific communities that aim to model and understand climate changes. Indeed, Jupiter and Saturn reference simulations that have been run to reproduce the planetary jets, can be considered as crucial tests for the new model DYNAMICO before it becomes a widespread model for the Earth’s atmosphere. Therefore, the next step will be to apply JUMP dynamical diagnostic to the most recent and future models of the Earth’s atmosphere and ocean.
Data: CORDIS, © European Union
Project objective
The exploration of the Jovian system is a priority for present (Juno NASA’s mission) and upcoming (Juice ESA’s mission) spacecraft missions. This research project focuses on Jupiter’s internal dynamics. This is crucial as it sets the whole planetary environment, including the giant magnetosphere. Unfortunately, despite being the nearest gas planet from Earth, the internal dynamics of Jupiter is poorly constrained from present observations. However, Jupiter's observable zonal winds constitute privileged markers directly connected to the underlying dynamics. They are powerful jets that channel more than 90% of the total kinetic energy observed on the planetary surface. Nevertheless, how these jets interact with planetary interiors? remains a fundamental question that the fellow will address during the fellowship. As of now, two dominant models are continuously challenged: the shallow layer model, where jets confine within a thin layer, and a deep model, where jets extend down to the entire molecular envelope. Recently, the fellow published the first successful lab experiment to reproduce jets and consequently restored the deep model that was so-far disqualified from previous studies. Now, taking advantage of this privileged position, the fellow designed “JUMP”: the JUpiter Modeling Platform. JUMP is a mixed laboratory-numerical platform that is capable of generating jet-like flows in a continuum of planetary configurations from shallow to deep atmospheres. It combines an advanced laboratory challenge that requires the strong engineering expertise of the host and associated numerical skills which is well into the specific abilities of the fellow. Using a package of statistical tools the fellow will describe flow properties in such a manner that results are directly comparable with previous works on Jupiter high resolution images. The ultimate challenge of JUMP is to identify markers in flow properties that will distinguish between deep and shallow scenarios on Jupiter.
Original text from CORDIS.
Participants
- UNIVERSITA DEGLI STUDI DI ROMA LA SAPIENZA · RomaCoordinatorItaly
Links
Data: CORDIS, © European Union
