Project Grant 2440352
- This five-year, $622,775 project grant from the National Science Foundation's Integrative Activities program (CFDA 47.083) supports research by the University Corporation for Atmospheric Research's National Center for Atmospheric Research to generate actionable climate intervention scenarios. The research team will advance the scientific understanding of portfolio approaches combining mitigation, carbon dioxide removal, and solar radiation management strategies to limit global warming to 1.5...
- This National Science Foundation project grant of $291,231 supports collaborative research on coastal cloud chemistry during the Eastern Pacific Cloud Aerosol Precipitation Experiment campaign. Funded under the Geosciences program (CFDA 47.050), the award will leverage recent instrumentation developments to augment the Department of Energy's campaign conducted in La Jolla, California from February 2023 to January 2024. Specifically, the University of California, Los Angeles will utilize...
- This National Science Foundation (NSF) Division of Atmospheric and Geospace Sciences Project Grant award, with a total funding amount of $532,712, supports collaborative research to investigate the physical processes underlying transitions in marine stratocumulus cloud cover over the eastern North Atlantic region. The research aims to develop a causal framework to better understand the complex interactions that drive changes in cloud structure, from continuous stratocumulus layers to more broken...
- This $941,193 Project Grant award from the National Science Foundation's Geosciences Program (CFDA 47.050) supports research to further develop a theory on the invariance of cloud size distribution under varying climate conditions. The research aims to evaluate whether certain cloud properties, such as the relationship between cloud size and number, remain consistent despite changes in atmospheric climate and chemical composition. The work seeks to understand the underlying physical mechanisms...
- This $1,185,628 National Science Foundation Project Grant under the Geosciences program (CFDA 47.050) funds research at the University of Miami Rosenstiel School of Marine and Atmospheric Science examining the evolving role of the ocean and atmosphere in decadal to multidecadal climate variability modes. The principal investigators aim to determine if climate modes characterized by alternating 20-40 year warming and cooling episodes in the North Atlantic, such as the Atlantic Multidecadal...
- This $358,499 Project Grant from the National Science Foundation Division of Ocean Sciences, under the Geosciences program (CFDA 47.050), will fund research to understand the impact of warming on the structure and function of marine communities in the Northwest Atlantic Shelf region, including the Gulf of Maine and Mid-Atlantic Bight. The University of North Carolina at Chapel Hill, through its Office of Sponsored Research, will characterize the composition and features of plankton and fish...
- This Project Grant from the National Science Foundation's Polar Programs will support research to enhance understanding of cloud impacts on the surface energy budget of the Antarctic Peninsula. With total funding of $248,364, the award period is from February 1, 2022 through July 31, 2024. The University of California San Diego's Scripps Institution of Oceanography, as awardee, will use surface-based and satellite measurements to characterize clouds and humidity in the region. Researchers will...
- The National Science Foundation (NSF) awarded a $304,365 Project Grant under the Geosciences program to Bigelow Laboratory for Ocean Sciences, a non-profit marine research organization in East Boothbay, Maine. The 3-year grant, running from February 2024 to January 2027, focuses on investigating how emissions from various marine planktonic communities lead to particle nucleation in the atmosphere and how these emissions might evolve with a changing environment. The key objectives are to: (1)...
- This $1.5 million National Science Foundation project grant supports research into secondary marine aerosol precursors and their links to aerosol growth during Arctic sea ice melt onset. Funded under the Geosciences program (CFDA 47.050), the goal is to advance understanding of secondary marine aerosol formation in the atmosphere and its impact on cloud properties and climate. Colorado State University will conduct measurements of volatile organic compounds and reduced sulfur compounds aboard...
- This $250,771 Project Grant was awarded by the National Science Foundation (NSF) Division of Polar Programs to Colorado State University to conduct collaborative research on the interaction between Antarctic low clouds and natural aerosols. The research aims to improve global climate model simulations over Antarctica and the Southern Ocean by better representing low-level cloud physics, which have significant impacts on ice surface melt and solar energy transmission. The 4-year project will...
DESIGNING MARINE CLOUD BRIGHTENING TO MEET CLIMATE OBJECTIVES -2440352 (MACMARTIN). CLIMATE CHANGE IS ALREADY BRINGING DAMAGES TO THE US AND ELSEWHERE, AND THESE WILL CONTINUE TO GET WORSE WITH CONTINUED EMISSIONS OF CO2 AND OTHER GREENHOUSE GASES. EVEN WITH EFFORTS TO REDUCE EMISSIONS, THERE WILL STILL BE SIGNIFICANT IMPACTS, BOTH ECONOMIC AND HUMAN, RESULTING FROM FUTURE CLIMATE CHANGE. AN ADDITIONAL OPTION THAT COULD POTENTIALLY REDUCE MANY CLIMATE DAMAGES IS TO COOL THE PLANET BY REFLECTING A TINY BIT MORE SUNLIGHT BACK TO SPACE. HOWEVER, THERE IS NOT YET SUFFICIENT INFORMATION TO SUPPORT INFORMED DECISIONS. THE TWO IDEAS MOST OFTEN SUGGESTED ARE MARINE CLOUD BRIGHTENING (MCB, THE MAIN FOCUS OF THIS WORK) AND STRATOSPHERIC AEROSOL INTERVENTION (SAI). MCB WOULD INVOLVE SPRAYING SEA SALT AEROSOLS INTO LOW CLOUDS OVER THE OCEAN TO INCREASE (FORCE) CLOUD REFLECTIVITY, PROVIDING LOCAL AND GLOBAL COOLING. THE REGIONAL CLIMATE EFFECTS AND ASSOCIATED IMPACTS OF MCB WOULD DEPEND QUITE STRONGLY ON WHERE AND HOW MUCH FORCING IS APPLIED, SUGGESTING THE POTENTIAL TO DESIGN AN MCB APPROACH TO ACHIEVE MULTIPLE CLIMATE OBJECTIVES. WHILE THERE HAS BEEN SIMILAR RESEARCH CONDUCTED FOR SAI, THERE HAS BEEN MUCH MORE LIMITED WORK TREATING MCB AS A DESIGN PROBLEM. THIS PROJECT FIRST AIMS TO FILL THIS GAP, DESIGNING AN MCB STRATEGY TO SIMULTANEOUSLY MANAGE MULTIPLE CLIMATE OBJECTIVES BY TUNING THE AMOUNT OF FORCING IN DIFFERENT REGIONS. THIS IS AN ESSENTIAL STEP TOWARDS ASSESSING THE CLIMATE IMPACTS OF MCB, AND THUS EVALUATING WHAT ROLE IT MIGHT PLAY IN MANAGING FUTURE CLIMATE RISKS. FURTHERMORE, THE COMBINATION OF SAI AND MCB MAY BE ABLE TO REDUCE CLIMATE IMPACTS BETTER THAN EITHER ALONE; THE SECOND GOAL IS THUS TO ASSESS THIS POTENTIAL. FINALLY, THIS PROJECT WILL SUPPORT INTEGRATION OF EXPERTISE BETWEEN CLIMATE SCIENTISTS AND ENGINEERING, STRENGTHENING BOTH DISCIPLINES. GIVEN THE RISKS OF CLIMATE CHANGE, IT IS ESSENTIAL TO UNDERSTAND TO WHAT EXTENT DIFFERENT SOLAR GEOENGINEERING APPROACHES MIGHT CONTRIBUTE TO AN OVERALL PORTFOLIO OF RESPONSE OPTIONS. THIS PROJECT WILL INTRODUCE SYSTEMATIC DESIGN PRINCIPLES INTO MARINE CLOUD BRIGHTENING (MCB) RESEARCH, AND WILL CAREFULLY ASSESS HOW SAI AND MCB MIGHT COMPLEMENT EACH OTHER. EXISTING MCB SIMULATIONS HAVE OFTEN SIMPLY INTRODUCED SOME SPECIFIED PERTURBATION AND EVALUATED WHAT HAPPENS, RATHER THAN STARTING WITH DESIRED OUTCOMES AND DETERMINING BOTH WHERE TO PERTURB, AND HOW MUCH FORCING TO APPLY IN DIFFERENT REGIONS, IN ORDER TO ACHIEVE THOSE OUTCOMES. THE BROADER MCB RESEARCH COMMUNITY IS NOW EXPLORING HOW FORCING IN DIFFERENT REGIONS AFFECTS THE CLIMATE DIFFERENTLY. THIS PROJECT WILL LEVERAGE THIS MOMENTUM, AND BUILD ON THE EXPERIENCE GAINED WITH SAI, BY USING OPTIMIZATION TOOLS TO SYSTEMATICALLY EVALUATE MCB AS A DESIGN PROBLEM AND DEVELOP MULTI-DEGREE-OF-FREEDOM FEEDBACK ALGORITHMS TO ACHIEVE DESIRED CLIMATE OUTCOMES IN THE PRESENCE OF UNCERTAINTY. THE APPROACH THUS INTRODUCES NEW TOOLS THAT WILL BE BROADLY USEFUL FOR THE RESEARCH COMMUNITY GOING FORWARD, AND DEFINES AN APPROACH FOR SYSTEMATICALLY EVALUATING THE BENEFITS AND RISKS OF MCB. FURTHERMORE, THIS APPROACH WILL ENABLE A SIMULTANEOUS OPTIMIZATION COMBINING SAI AND MCB TO ASSESS WHETHER THEIR COMBINATION COULD BE ?BETTER? THAN EITHER ALONE. SIMULATIONS WILL BE CONDUCTED IN CLIMATE MODELS FOR DIFFERENT REGIONS, AND FOR COMBINATIONS OF REGIONS. THE FINAL SIMULATIONS CONDUCTED AS PART OF THIS RESEARCH WILL BE MADE AVAILABLE TO THE CLIMATE IMPACTS MODELING COMMUNITY TO BETTER ASSESS THE ROLE OF MCB IN MANAGING FUTURE CLIMATE RISKS. THIS AWARD REFLECTS NSF'S STATUTORY MISSION AND HAS BEEN DEEMED WORTHY OF SUPPORT THROUGH EVALUATION USING THE FOUNDATION'S INTELLECTUAL MERIT AND BROADER IMPACTS REVIEW CRITERIA.- SUBAWARDS ARE NOT PLANNED FOR THIS AWARD.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $392.6k | 6/13/25 |