Project Grant 2213623
- This $651,159 project grant from the National Science Foundation's Biological Sciences program (CFDA 47.074) will fund research examining particulate matter transport through forest canopies. The University of Utah will monitor storm conditions, throughfall, stemflow, and particulate composition across 11 forest sites in the National Ecological Observatory Network, representing major North American forest types. The project aims to estimate particulate mass fluxes, characterize particulate...
- The National Science Foundation awarded a $651,159 Project Grant to the University of North Texas under the Biological Sciences federal grant program (CFDA 47.074) for the period of August 1, 2022 through March 31, 2023. The grant will support research to estimate the water and particulate mass flux across major US forest types transported by throughfall and stemflow. The university will monitor these variables and particulate composition across 11 sites of the National Ecological Observatory...
- The National Science Foundation's Geosciences Program (CFDA 47.050) awarded a $672,505 project grant to Cleveland State University to investigate how urban tree canopies impact stormwater runoff and water quality. The 3-year project will use advanced methods from hydrology, ecology, and remote sensing to quantify how rainfall interception, stemflow, and throughfall vary across common urban tree species like oak and maple. The research aims to determine which canopy traits are most effective...
- This $860,741 Project Grant award from the National Science Foundation's (NSF) Biological Sciences program (CFDA 47.074) will fund a collaborative research project titled "COLLABORATIVE RESEARCH: MRA: PANAM PEAT: UNDERSTANDING WATER AND CARBON CYCLING ACROSS THE PAN-AMERICAN TROPICAL PEATLAND BIOME" at Arizona State University. The overarching goal is to gain new insights into tropical peatland environments and better constrain regional and global carbon budgets. Key deliverables...
- This $649,388 Project Grant from the National Science Foundation's Division of Atmospheric and Geospace Sciences, under the Geosciences program (CFDA 47.050), will fund research exploring the impact of future land use change on global air quality and nutrient deposition. Specifically, the awardee, the Massachusetts Institute of Technology, will couple land use output from the Community Land Model simulations, driven by Shared Socioeconomic Pathways scenarios, to the GEOS-Chem global chemical...
- This Project Grant award from the National Science Foundation's Geosciences Program (CFDA 47.050) provides $202,000 to investigate how atmospheric boundary layer turbulence and scalar transport are impacted by complex, vegetated topography under unstable daytime conditions. The core of the project involves extending the researcher's prior large eddy simulation database to include the effects of heat and moisture in unstable convective conditions. This will address two key science questions: 1)...
- This Project Grant award, funded by the National Science Foundation (NSF) Biological Sciences program (CFDA 47.074), aims to improve understanding of how forest structure and function influence "ecological climate" - the climate experienced by organisms within forest canopies. The $424,492 project, running from August 2024 to July 2028, will integrate data from the National Ecological Observatory Network (NEON) into advanced forest canopy models to evaluate how forest diversity...
- This Project Grant award from the National Science Foundation's Geosciences Program (CFDA 47.050) provides $426,218.00 to the Board of Regents of the Nevada System of Higher Education, operating through the University of Nevada, Reno, to conduct a collaborative research study on the effects of forest litter on precipitation interception and soil water budgets. The project aims to quantify the relative influences of the mulching effect that reduces soil evaporation versus the interception...
- This $200,000.00 Project Grant award from the National Science Foundation's Geosciences Program (CFDA 47.050) will enable the Regents of the University of California at Riverside to conduct collaborative research evaluating paradigms in phosphorus (P) biogeochemical cycling. The study will determine the role of the atmosphere as a supplier of P, a key soil nutrient, to ecosystems by reconstructing how P cycled over time using lake sediments. The research aims to re-evaluate established paradigms...
- This $329,272 Project Grant award from the National Science Foundation's Geosciences Program (CFDA 47.050) will fund research to investigate the impacts of sea level rise on stemflow dynamics and associated hydrological and biogeochemical processes in coastal forests along the Atlantic seaboard. The University of Delaware, as the prime awardee, will use field measurements, laboratory analyses, and statistical modeling to understand how changes in stemflow (precipitation channeled down tree...
COLLABORATIVE RESEARCH: MRA: PARTICULATES IN CANOPY FLOWPATHS: A MISSING MASS FLUX AT THE MACROSYSTEM SCALE? -FORESTS COVER ONE-THIRD OF THE LAND ON EARTH. FOR RAINFALL TO PASS THROUGH THE FOREST CANOPY, IT MUST DRAIN ALONG TWO ?HYDROLOGIC HIGHWAYS?: THROUGHFALL (WATER THAT DRIPS THROUGH GAPS AND FROM LEAVES OR BARK); AND STEMFLOW (WATER THAT RUNS DOWN STEMS). AS THROUGHFALL AND STEMFLOW DRAIN, THEY WASH PARTICLES FROM LEAVES AND BARK. ALTHOUGH TINY, PARTICLES WASHED FROM THE CANOPY BY THESE HYDROLOGIC HIGHWAYS CAN CONSTITUTE A SIGNIFICANT CHEMICAL INPUT TO THE SOIL, AND REPRESENT A WIDE RANGE OF MATERIALS, FROM NUTRIENTS TO POLLUTANTS. DESPITE THIS, NO LARGE-SCALE EFFORT HAS SOUGHT TO MEASURE, SCALE, AND PREDICT THE AMOUNT AND QUALITY OF PARTICLES DESCENDING DOWN THESE HYDROLOGIC HIGHWAYS. THESE PARTICLES ARE GENERALLY ?MISSING? FROM CURRENT ECOLOGICAL THEORY OF HOW FORESTS CYCLE ELEMENTS. THIS STUDY SEEKS TO FILL THIS GAP BY MONITORING STORM CONDITIONS, THROUGHFALL, STEMFLOW, AND THE PARTICLES IN THESE HYDROLOGIC HIGHWAYS ACROSS SITES REPRESENTING MAJOR FOREST TYPES IN NORTH AMERICA. RESULTS WILL LINK THROUGHFALL AND STEMFLOW TO COMMON MODELS USED TO INFORM FRESHWATER AND FOREST MANAGEMENT. OUTCOMES WILL INFORM OUTREACH EFFORTS, INCLUDING SCIENCE COMICS AND ILLUSTRATION EXHIBITS, OPEN-ACCESS ARTICLES WRITTEN FOR (AND REVIEWED BY) PRIMARY AND SECONDARY SCHOOL CHILDREN WITH FRONTIERS FOR YOUNG MINDS, AND YOUTUBE VIDEOS WITH MINUTEEARTH, A CHANNEL WITH AN INTERNATIONAL VIEWERSHIP OF MILLIONS. THE PROJECT WILL ALSO PROVIDE RESEARCH EXPERIENCES TO MEMBERS OF UNDERREPRESENTED GROUPS TO BROADEN PARTICIPATION IN SCIENCE. FOR 40% OF THE NORTH AMERICAN CONTINENT AND ONE-THIRD OF GLOBAL LAND SURFACE, RAINFALL MUST PASS THROUGH FORESTS TO REACH THE SOIL SURFACE. THIS RAINFALL IS PARTITIONED BY THE FOREST CANOPY INTO TWO NET RAINFALL FLUXES: A DRIP FLUX CALLED THROUGHFALL (TF), AND A FLOW OF WATER DOWN STEMS, CALLED STEMFLOW (SF). HOW MUCH RAIN TRAVELS ALONG THESE HYDROLOGIC HIGHWAYS CAN ALTER WATER SUPPLY BY 20-50%, AND WHAT THEY CARRY FROM THE CANOPY CAN SUPPLY >100 KG PER HECTARE OF VARIOUS MATERIALS TO THE SOIL SURFACE EACH YEAR. THESE CANOPY ECOHYDROLOGICAL PROCESSES ARE ON THE FRONT LINE OF CLIMATE AND LAND USE CHANGE, BEING THAT THE FOREST-RAINFALL INTERACTIONS THAT INITIATE TERRESTRIAL HYDROLOGICAL PATHWAYS AND SUPPLY NUTRIENTS/POLLUTANTS TO THE SURFACE ARE THE FIRST ECOSYSTEM ELEMENTS IMPACTED BY HYDROLOGIC INTENSIFICATION. IGNORING THESE FLUXES, AND THEIR PARTICULATE TRAFFIC, INTRODUCES ERROR IN WATER AND NUTRIENT FLUX MODELS AT THE FIRST POINT WHERE TERRESTRIAL BIOGEOCHEMISTRY AND HYDROLOGICAL CYCLES ENTWINE, AND WHICH MAY CASCADE THOSE ERRORS THROUGH DOWNGRADIENT PROCESSES. THIS PROJECT AIMS TO EXTEND CURRENT MACROSYSTEM BIOLOGICAL UNDERSTANDING TO INCLUDE THROUGHFALL AND STEMFLOW PARTICULATE CONCENTRATIONS, FLUXES AND COMPOSITION, SPECIFICALLY ADDRESSING 3 MAJOR OBJECTIVES: (1) ESTIMATE THE NET RAINFALL (TF+SF) WATER AND PARTICULATE MASS FLUX ACROSS FOREST TYPES; (2) CHARACTERIZE THE PARTICULATE COMPOSITION (C:N:P, INCLUDING C COMPONENTS LIKE TOTAL C, ORGANIC C, BLACK C, AND MICROPLASTIC C) OF TF AND SF; AND (3) IDENTIFY MAJOR DRIVERS OF MACROSYSTEM VARIABILITY IN NET RAINFALL PARTICULATE FLUX AND COMPOSITION. FIELD MONITORING OF THE ABOVE VARIABLES ACROSS 11 SITES OF THE NATIONAL ECOLOGICAL OBSERVATORY NETWORK REPRESENTING THE MAJOR US FOREST DOMAINS ALLOWS LINKS TO BE TESTED BETWEEN EXISTING FUNCTIONAL CHARACTERISTICS AND THE PRACTICAL INTEGRATION OF THROUGHFALL AND STEMFLOW DYNAMICS INTO CONTINENTAL-TO-GLOBAL SCALE BIOGEOPHYSICAL MODELS. THE PROJECT WILL ALSO SUPPORT RESEARCH TRAINING OF A POSTDOCTORAL RESEARCHER, MASTERS AND DOCTORAL STUDENTS, AND A TECHNICIAN. 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 | $75.1k | 8/15/25 | ||
| Not listed | $109.0k | 7/7/25 | ||
| Not listed | $2.1m | 6/23/22 |
GrantNumber | Description | Subgrantee | Prime Award | Dollars Obligated | Updated At |
|---|---|---|---|---|---|
200002540S | University Corporation For Atmospheric Research | Project Grant 2213623 | $479.3k | 10/3/22 |