Project Grant 2241792
- This Project Grant award from the National Science Foundation (NSF) Division of Ocean Sciences under the Geosciences program (CFDA 47.050) provides $517,526 to The Trustees of Columbia University in the City of New York to quantify uncertainties in air-sea CO2 flux variability and the background ocean carbon sink, and determine data requirements to reduce these uncertainties. Key objectives include: 1) Quantifying regional-scale uncertainties in the background ocean carbon sink using a...
- This National Science Foundation (NSF) Project Grant under the Geosciences program (CFDA 47.050) provides $508,160 in funding to Rutgers, The State University to conduct collaborative research on long-term changes in atmospheric carbon dioxide (CO2) levels during past warm periods. The project aims to reconstruct the movement of the Southern Westerly Winds and evaluate its impact on the Southern Ocean's biological carbon pump and atmospheric CO2 concentrations over the last 900,000 years. The...
- The National Science Foundation Division of Ocean Sciences awarded a $296,671 Project Grant to the University of Virginia to develop a novel approach for measuring greenhouse gas emissions from coastal marine ecosystems. The two-year award, made under the Geosciences program (CFDA 47.050), will support the Principal Investigator's research combining upside-down aquatic eddy covariance measurements of oxygen fluxes at the air-water interface with new sensor technologies to extract greenhouse...
- This three-year, $489,998 project grant from the National Science Foundation Division of Ocean Sciences aims to advance understanding of lateral carbon export from salt marshes. Under the Geosciences program (CFDA 47.050), which supports basic research in the atmospheric, earth, and ocean sciences, the Woods Hole Oceanographic Institution will investigate drivers of dissolved inorganic carbon, dissolved organic carbon, and total alkalinity fluxes across six New England marsh sites. Researchers...
- The National Science Foundation (NSF) awarded a $546,989 Project Grant to The Trustees of Columbia University in the City of New York, operating through its Sponsored Projects Administration Division, under the Geosciences (CFDA 47.050) program. The grant supports collaborative research to understand the non-linear and feedback mechanisms in the atmospheric circulation response to increased carbon dioxide (CO2) levels. The research aims to address the limited understanding of how warming-induced...
- This National Science Foundation (NSF) Project Grant award under the Geosciences program (CFDA 47.050) will support collaborative research to quantify the contribution of wetlands and floodplains to carbon dioxide (CO2) emissions from streams and rivers. The $300,000 award to Yale University will fund a 3-year project that combines computer modeling and field measurements to determine the magnitude, frequency, and duration of water exchange between these aquatic habitats and adjacent rivers. The...
- The National Science Foundation (NSF) awarded a $523,014 Project Grant under the Geosciences program (CFDA 47.050) to the University of Massachusetts (UMass) to develop computational models of global carbon dioxide (CO2) fluxes from inland waters. The research aims to provide robust, physically-constrained estimates of CO2 emissions from rivers, streams, lakes, and reservoirs by coupling hydrologic and hydraulic routing systems with a stream network CO2 model. The project will validate the...
- This three-year project grant from the National Science Foundation's (NSF) Polar Programs, totaling $107,969, will fund research at the Scripps Institution of Oceanography to quantify the impacts of mesoscale eddy processes on ocean carbon content and air-sea carbon dioxide fluxes in the Southern Ocean. The researchers will use the 1/6-degree resolution Southern Ocean State Estimate bioogeochemical model to explore relationships between eddies, ocean carbon content, and air-sea CO2 fluxes....
- The National Science Foundation (NSF) awarded a 4-year, $490,570 Project Grant under its Geosciences (CFDA 47.050) program to the University of New Hampshire (UNH) to develop an autonomous eddy covariance air-sea CO2 flux measurement system for use on moored ocean buoys. This system is designed to provide accurate, low-power measurements of atmospheric and oceanic carbon dioxide exchange, which is critical for improving the predictive capabilities of climate models. As part of this project,...
- This $280,627 Project Grant from the National Science Foundation's Geosciences program (CFDA 47.050) supports research into estuarine metabolism and gas exchange processes. The University of Notre Dame will develop new methods to analyze dissolved oxygen time series data to better quantify key estuarine functions like gross primary production, ecosystem respiration, and gas exchange. Researchers will evaluate advection removal techniques and gas transfer parameterizations through field campaigns...
PHYSICAL CONTROL OF ATMOSPHERIC CARBON DIOXIDE FLUX IN ESTUARIES -THE OVERARCHING GOAL OF THIS PROJECT IS TO DEVELOP A COMPREHENSIVE UNDERSTANDING OF HOW PHYSICAL AND BIOGEOCHEMICAL PROCESSES INTERACT IN ESTUARIES TO MODULATE ATMOSPHERIC CARBON DIOXIDE (CO2) EXCHANGE. MEASUREMENTS OF THE PARTIAL PRESSURE OF CO2 (PCO2) AND DISSOLVED OXYGEN (DO) IN THE HUDSON RIVER ESTUARY FROM A MOORED ARRAY AND FROM SHIP-BASED SURVEYS, WILL BE USED TO RESOLVE VARIABILITY IN TIME AND IN THE ALONG- AND ACROSS-ESTUARY DIRECTIONS. THESE MEASUREMENTS WILL INCLUDE BOTH THE SURFACE AND SUB-SURFACE DISTRIBUTION OF DISSOLVED GASES, AND THEIR DISTRIBUTION WILL BE RELATED TO VARIATIONS IN VERTICAL DENSITY STRATIFICATION AND ESTUARINE CIRCULATION. DIRECT COVARIANCE ATMOSPHERIC CO2 FLUX AND WATER COLUMN TURBULENCE MEASUREMENTS WILL BE MADE FROM A FIXED PLATFORM THAT SPANS THE AIR-SEA INTERFACE AT A LOCATION WHERE NEAR SURFACE TURBULENCE IS LIKELY IMPACTED BY WIND, WAVES, AND TIDES, AND IS SIGNIFICANTLY MODIFIED BY VARIATIONS IN VERTICAL DENSITY STRATIFICATION. THESE DATA WILL PROVIDE A QUANTITATIVE MODEL FOR THE GAS TRANSFER VELOCITY, WHICH WILL BE USED TO ESTIMATE ATMOSPHERIC FLUXES FROM THE SPATIALLY RESOLVED MEASUREMENTS OF SURFACE PCO2. IT IS HYPOTHESIZED THAT THE HIGH OUTGASSING OF CO2 COMMONLY INFERRED IN THE UPPER REGIONS OF MANY ESTUARIES IS STRONGLY CONTROLLED BY THE UNDERLYING ESTUARINE CIRCULATION. THE MEASUREMENTS WILL ADDRESS TWO LONG-STANDING RESEARCH NEEDS THAT CONTRIBUTE TO THE LARGE UNCERTAINTIES IN ESTUARINE CO2 EMISSIONS: 1) SPATIAL AND TEMPORAL HETEROGENEITY IN SURFACE PCO2 VALUES, AND 2) POORLY CONSTRAINED GAS TRANSFER VELOCITIES. THE RESEARCH ADDRESSES THESE TWO FUNDAMENTAL UNCERTAINTIES, BOTH OF WHICH ARE STRONGLY MODULATED BY PHYSICAL PROCESSES, AND A NEW CONCEPTUAL MODEL FOR GAS EXCHANGE THAT IS HYPOTHESIZED TO BE APPLICABLE TO A WIDE RANGE OF ESTUARIES WILL BE TESTED. MOORED INSTRUMENTATION WILL QUANTIFY THE IMPORTANCE OF TEMPORAL VARIABILITY AT A RANGE OF TIME SCALES, NOT RESOLVED IN MOST PREVIOUS STUDIES. DIRECT COVARIANCE ATMOSPHERIC CO2 FLUX MEASUREMENTS COMBINED WITH OBSERVATIONS OF WATER COLUMN TURBULENCE, WAVES AND VERTICAL DENSITY STRATIFICATION WILL RIGOROUSLY QUANTIFY THE RELATIONSHIP BETWEEN TURBULENCE IN THE AQUEOUS SURFACE BOUNDARY LAYER AND SURFACE GAS EXCHANGE. THIS ADDRESSES A FUNDAMENTAL INTERDISCIPLINARY PROBLEM OF SIGNIFICANT SOCIETAL IMPORTANCE AND WILL SIGNIFICANTLY IMPROVE ESTIMATES OF CO2 EMISSIONS FROM ESTUARIES. THIS PROJECT WILL PROVIDE INTERDISCIPLINARY TRAINING FOR A GRADUATE STUDENT, WHO WILL BE INVOLVED IN ALL ASPECTS OF THE PROJECT. RESULTS FROM THIS RESEARCH WILL BE COMMUNICATED TO THE PUBLIC AND SCIENTIFIC AUDIENCES, AND TO INTERESTED STAKEHOLDERS THROUGH PUBLIC SEMINARS HOSTED BY ORGANIZATIONS THAT FOCUS ON HUDSON RIVER SCIENTIFIC AND ENVIRONMENTAL ISSUES AND THROUGH PRESENTATIONS AT NATIONAL MEETINGS. SEVERAL COMMUNITY COLLEGE STUDENTS WILL GAIN HANDS ON EXPERIENCE BUILDING AND TESTING NEW SCIENTIFIC SENSORS, WHICH WILL BE DEPLOYED IN THE HUDSON RIVER. DATA FROM THESE SENSORS WILL BE DISPLAYED AT THE CENTER FOR THE URBAN RIVER AT BECZAK AND USED TO DEVELOP EDUCATIONAL MATERIALS FOR VISITORS TO THIS CENTER ON THE HUDSON RIVER. THIS PROJECT WILL TEST THE CONCEPTUAL MODEL THAT THERE IS AN ESTUARINE GAS EXCHANGE MAXIMUM (EGM), WHOSE LOCATION IS CONTROLLED PRIMARILY BY THE UNDERLYING ESTUARINE DYNAMICS. ANALOGOUS TO THE ESTUARINE TURBIDITY MAXIMUM (ETM), THE LOCATION OF THE EGM IS HYPOTHESIZED TO BE CONTROLLED BY THE CONVERGENCE IN THE LANDWARD ESTUARINE CIRCULATION NEAR THE LIMIT OF SALT AND OCCURS BECAUSE VERTICAL DENSITY STRATIFICATION PREVENTS THE RESPIRATORY DEMAND OF SUB-PYCNOCLINE WATERS IN FROM EXCHANGING WITH THE ATMOSPHERE. THIS DEPENDENCE ON STRATIFICATION WILL LIKELY RESULT IN LARGE ASYMMETRIES IN ATMOSPHERIC FLUX BETWEEN SPRING AND NEAP TIDES, WHICH MAY FUNDAMENTALLY CONTROL THE ALONG-ESTUARY LOCATION OF THE EGM. SIGNIFICANT ACROSS-ESTUARY VARIABILITY ALSO IS EXPECTED, POTENTIALLY DRIVEN BY LATERAL UPWELLING OR STRONG LATERAL GRADIENTS IN STRATIFICATION. IN THE LIGHT-LIMITED HUDSON RIVER ESTUARY, FORTNIGHTLY VARIATIONS IN STRATIFICATION AND MIXING LIKELY INFLUENCE PHYTOPLANKTON DYNAMICS, WHICH ALSO MAY CONTRIBUTE TO THE SPATIAL AND TEMPORAL VARIATIONS IN ATMOSPHERIC EXCHANGE. 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.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $0 | 5/2/25 | ||
| Not listed | $1.8m | 5/26/23 |