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Details of Award

NERC Reference : NE/W009307/1

ConstrAining the RolE of Sulfur in the earth system (CARES)

Grant Award

Principal Investigator:
Professor H Coe, The University of Manchester, Earth Atmospheric and Env Sciences
Co-Investigator:
Professor GB McFiggans, The University of Manchester, Earth Atmospheric and Env Sciences
Co-Investigator:
Dr PI Williams, The University of Manchester, Earth Atmospheric and Env Sciences
Co-Investigator:
Dr JD Allan, The University of Manchester, Earth Atmospheric and Env Sciences
Co-Investigator:
Professor PJ Connolly, The University of Manchester, Earth Atmospheric and Env Sciences
Science Area:
Atmospheric
Marine
Overall Classification:
Unknown
ENRIs:
Environmental Risks and Hazards
Global Change
Pollution and Waste
Science Topics:
Aerosol precursors
Aerosols
Atmospheric chemistry
Atmospheric fluxes
Climate modelling
Cloud formation
Hydroxyl radical chemistry
Volatile organic compounds
Land - Atmosphere Interactions
Aerosols
Atmospheric composition
Atmospheric modelling
Atmospheric oxidants
Climate modelling
Dimethyl sulphide fluxes
Gas exchange
Marine boundary layer
Phytoplankton
Radical chemistry
Volatile organics
Ocean - Atmosphere Interact.
Aerosols
Atmospheric trace compounds
Radiation budget
Tropospheric processes
Radiative Processes & Effects
Radiative forcing
Sulphur oxides
Tropospheric modelling
Hydroxyl radical chemistry
Tropospheric Processes
Aerosols
Biogenic vol organic compounds
Dimethyl sulphide chemistry
Climate modelling
Climate & Climate Change
Abstract:
The marine sulfur cycle is an exemplar of a climatically important biogeochemical cycle within the Earth system (initially described by the CLAW hypothesis). Marine sulfate aerosol produced from biogenic dimethyl sulfide (DMS) is the main component of natural aerosol over many oceanic regions and sets a baseline aerosol concentration against which the magnitude of anthropogenic aerosol radiative forcing is determined. However, recent discoveries of new sulfur molecules formed from DMS (e.g., HPMTF) force us to radically re-examine the role of marine sulfur in the climate system. The understanding embedded in current climate models is now significantly challenged by new aerosol formation pathways and by observations of marine emissions of other biogenic sulfur species that were previously dismissed as unimportant: What do these molecules do? How do the processes they participate in affect the natural sulfur cycle? How do these discoveries alter the impact of DMS emissions on climate and anthropogenically driven climate change? The recently discovered species and chemical pathways are not included in any Earth system models that inform global climate change policies through the IPCC, even though aerosols from natural sources are a key driver of uncertainty in radiative forcing. The significant gap in understanding of the natural sulfur cycle is a major limitation when trying to constrain the pre-industrial climate system, which is itself crucial for determining the allowed emissions of greenhouse gases needed to meet climate stabilisation targets. The CARES project will fill these holes in our knowledge of the marine atmospheric sulfur cycle through a combination of intensive aircraft and ship observations as well as multi-scale model experiments. Advancements in models, further informed by new laboratory data, will allow us to better understand contemporary and historical sulfur and climate observations. This will deliver a substantial revision to our understanding of the fate and impact of natural sulfur emissions. The results will be used to rectify errors in the representation of sulfur processes in Earth system models, constrain the role of marine sulfur in the Earth System, and improve confidence in simulations that project future change.
Period of Award:
1 May 2023 - 30 Apr 2027
Value:
£617,772 Split Award
Authorised funds only
NERC Reference:
NE/W009307/1
Grant Stage:
Awaiting Event/Action
Scheme:
Large Grant
Grant Status:
Active
Programme:
Large Grant

This grant award has a total value of £617,772  

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FDAB - Financial Details (Award breakdown by headings)

DI - Other CostsIndirect - Indirect CostsDA - InvestigatorsDI - EquipmentDA - Estate CostsDI - StaffDA - Other Directly AllocatedDI - T&S
£70,487£156,198£100,045£51,600£45,429£144,653£30,330£19,029

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