H2020Individual fellowship2016–2018

DUSC3 · DUSt, Climate and Carbone Cycle

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2016-12-01 → 2018-11-30
EU contribution
€173,076
Participants
1
Scheme
MSCA-IF-EF-ST

Lines connect the coordinator with its partners.

Results in brief

DUSt, Climate and Carbone Cycle

Mineral (desert) dust is the most abundant aerosol by mass in present day atmosphere, and contributes to about one quarter of the total extinction of sunlight by aerosols, including anthropogenic aerosols. Dust is emitted from sparsely vegetated lands by the action of wind erosion. Changing climatic conditions, as well as land cover and land use changes, have altered dust emissions in the past as much as by a factor five over vast areas of the globe, and may cause significant changes in dust emissions in the future. Because of dust impacts on economical activities, air quality and climate it is important that we are able to understand and predict changes in the global dust cycle. DUSC3 produces an updated view of the global dust cycle, by integrating a collection and re-interpretation of paleodust archives with novel simulations with the IPSL Earth system model, which is used to estimate impacts of dust on climate.

Data: CORDIS, © European Union

Project objective

The goal of this innovative, inter-disciplinary project is to explain the role of mineral dust during key climate periods through its feedbacks on the global carbon cycle and climate. Mineral (desert) dust is a major component of the natural aerosol load globally. It impacts the climate system directly by interacting with solar and terrestrial radiation, and indirectly impacts clouds, surface albedo, and biogeochemical cycles. Paleodust records from land, ice and oceans show significant variability, both in the alternation of glacial/interglacial cycles, and on shorter time scales, with potential impacts on climate change in the 21st century. The state-of-the-art IPSL-CM5 Earth System Model will be our main research tool, with simulations grounded in an extensive compilation of observational data, constraining the mass balance as well as the physical and compositional properties of dust. Mentoring from supervisors will provide fertile grounds for training the candidate through mobility, ensuring both the realization of this project and his career development.The consistent organization of size- and time-resolved dust mass accumulation rates data since the last interglacial period (130 ka) into an innovative database, will provide a research tool fulfilling an emerging necessity in the climate scientific community, that will be freely shared/disseminated. An integrated observation-modelling approach will allow reconstructing the dust cycle for the Last Glacial Maximum period$. The expected output of the project will fill a gap in the quantitative understanding of the global dust cycle, studying its impacts in the future with direct impacts on reducing the uncertainty in aerosol feedbacks on climate. Therefore, it fits the goals of the key Horizon 2020 Environment & Climate Action: “Developing climate modelling and science for climate services to help provide trustworthy science-based information to government, public and private decisiion-makers"".""

Original text from CORDIS.

Participants

  • UNIVERSITE DE VERSAILLES SAINT-QUENTIN EN YVELINES · VERSAILLESCoordinatorFrance

Links

Data: CORDIS, © European Union