Project Grant 2328210
- This $135,000 National Science Foundation (NSF) Project Grant award under the Geosciences program (CFDA 47.050) supports collaborative research to study the impact of solar eclipses on the ionosphere, a critical region of Earth's atmosphere that affects radio communications and navigation. The lead awardee, the Regents of the University of Colorado (a U.S. state government entity and institution of higher learning), will coordinate multi-instrument observations of ionospheric parameters during...
- This $238,190 Project Grant awarded by the National Science Foundation's Geosciences program (CFDA 47.050) supports a collaborative research effort between the University of Colorado Denver and the University of California, Berkeley to study the lower ionosphere during the 2024 solar eclipse in the eastern United States. The researchers will make very low frequency radio observations before, during, and after the eclipse to better understand the spatial and temporal scales of ionization and...
- This $177,334 Project Grant from the National Science Foundation (NSF) under the Mathematical and Physical Sciences program (CFDA 47.049) will support imaging and spectral observations of the 2023 and 2024 total solar eclipses conducted by President and Trustees of Williams College. Key deliverables include high-resolution Fabry-Perot and Lyot/Halle filter observations of the solar corona, high-frequency (>1 Hz) power spectra measurements of coronal loops to study coronal heating...
- This $385,959 project grant awarded by the National Science Foundation's Geosciences Program (CFDA 47.050) aims to improve understanding of the Sun's corona, the hot outer layer of the solar atmosphere, through the analysis of data from five total solar eclipses occurring between 2015 and 2024. Researchers at the Wentworth Institute of Technology will analyze visible and near-infrared imaging data of the corona to study its electron temperature, density, and magnetic field structure. This will...
- This Project Grant award from the National Science Foundation's Geosciences Program (CFDA 47.050) provides $166,193 to The Johns Hopkins University to conduct collaborative research on the ionospheric density response to solar eclipses across the United States. The primary objectives are to: 1) quantify how solar eclipses impact the ionosphere's electron density and variations in the F-region height, and 2) identify the key factors driving these ionospheric responses, including reduced solar...
- The National Science Foundation (NSF) awarded a $215,044 Project Grant under its Mathematical and Physical Sciences (CFDA 47.049) program to the Southwest Research Institute (SwRI) to conduct the Citizen CATE (Continental-America Telescopic Eclipse) Next-Generation 2024 Total Solar Eclipse Experiment. This collaborative project between SwRI, the National Solar Observatory, and the National Center for Atmospheric Research aims to deploy 40 teams of citizen scientists along the path of the April...
- This Project Grant award from the National Science Foundation's Geosciences Program (CFDA 47.050) provides $210,153 to Embry-Riddle Aeronautical University to conduct collaborative research on the ionospheric density response to solar eclipses across the United States. The research project aims to quantify the impact of solar eclipses on the ionosphere, a crucial region of the atmosphere that affects radio communication and navigation, and to identify the key factors driving these ionospheric...
- The National Science Foundation (NSF) awarded a $244,218 Project Grant under the Geosciences (CFDA 47.050) program to The Regents of the University of California, doing business as University of California, Berkeley, to study the lower ionosphere during the 2024 solar eclipse in the eastern United States. This collaborative project between UC Denver and UC Berkeley will use very low frequency (VLF) and extremely low frequency (ELF) remote sensing techniques to observe the spatial and temporal...
- This federal Project Grant award of $182,730, provided by the National Science Foundation's Geosciences program (CFDA 47.050), aims to improve the understanding of the Sun's corona through the analysis of data from five total solar eclipses between 2015 and 2024. The project, led by Predictive Science Incorporated, a for-profit research organization in San Diego, will analyze visible and near-infrared imaging data of coronal emission lines to infer the electron temperature, electron density, and...
- Federal Project Grant Award Summary The National Science Foundation (NSF) Division of Atmospheric and Geospace Sciences awarded $519,030 to the University of Hawaii at Manoa on April 15, 2026, under the Geosciences program (CFDA 47.050) to conduct collaborative research examining coronal processes through three upcoming total solar eclipses. The project will leverage eclipse observations scheduled for August 12, 2026, August 2, 2027, and July 22, 2028, to advance understanding of the sun's...
SOLAR ECLIPSE-INDUCED CHANGES IN THE OZONE LAYER OBSERVED WITH UV/VIS (ULTRAVIOLET?VISIBLE SPECTROSCOPY) RADIOMETER -SOLAR ECLIPSES ARE RARE ASTRONOMICAL PHENOMENA, WHICH PROVIDE A NATURAL TESTBED FOR PROBING PROCESSES OCCURRING IN EARTH?S ATMOSPHERE. IT HAS BEEN REPORTED THAT THE MOON?S SHADOW AS IT TRAVELS OVER OUR PLANET DURING AN ECLIPSE WILL LEAD TO FLUCTUATIONS IN THE OZONE LAYER, A RESULT WHICH IS CONTROVERSIAL AND DEMANDS ADDITIONAL NEW RESEARCH. THE EARTH?S OZONE LAYER PROTECTS LIFE ON OUR PLANET FROM THE SUN?S HARMFUL ULTRAVIOLET (UV) RADIATION. THIS PROJECT STRIVES TO RESOLVE THIS ISSUE BY PERFORMING MEASUREMENTS OF ?TOTAL OZONE? (OZONE AMOUNTS INTEGRATED FROM THE EARTH?S SURFACE TO THE TOP OF THE ATMOSPHERE) AND SOLAR UV RADIATION DURING THE TOTAL SOLAR ECLIPSE OF 8 APRIL 2024 WITH TWO DISTINCT INSTRUMENTS. RESULTS FROM THE PROJECT WILL IMPROVE OUR UNDERSTANDING ABOUT THE WAY RADIATION FROM THE SUN TRAVELS THROUGH THE ATMOSPHERE TO EARTH?S SURFACE WHERE IT INTERACTS WITH THE LIVING WORLD. APART FROM PROVIDING NEW INSIGHTS IN THIS TRANSFER OF RADIATION, THE PROJECT WILL CONTRIBUTE TO THE DESIRE OF MANKIND TO BETTER UNDERSTAND THE AWE-INSPIRING PHENOMENON OF A SOLAR ECLIPSE AND ITS IMPLICATIONS. FURTHERMORE, THE PROJECT WILL ADVANCE THE ACADEMIC SKILLS OF AN INTERNATIONAL GRADUATE STUDENT WHO WILL SIMULATE THE IRRADIANCE DURING TOTALITY AND COMPARE IT WITH THE MEASUREMENTS. PARTICIPATION OF OBSERVERS IN MEXICO AND SCIENTISTS FROM GERMANY AT NO ADDITIONAL COSTS TO THE PROJECT PROMOTE INTERNATIONAL COLLABORATIONS. IT IS WELL ESTABLISHED THAT SOLAR ECLIPSES GENERATE GRAVITY WAVES IN THE UPPER ATMOSPHERE (IONOSPHERE) AS THE MOON?S SHADOW TRAVELS AT SUPERSONIC SPEEDS OVER EARTH. HOWEVER, EFFECTS ON THE STRATOSPHERIC OZONE LAYER ARE LESS WELL ESTABLISHED, WITH SOME PUBLICATIONS SUPPORTING A LINK, SOME DISPUTING ONE, AND SOME PRESENTING AMBIGUOUS RESULTS BECAUSE OF MEASUREMENT ARTIFACTS. THE OVERARCHING OBJECTIVE OF THIS PROJECT IS TO RESOLVE THESE CONTRADICTIONS BY MEASURING SHORT-TERM (SECONDS TO MINUTES) VARIATIONS IN THE TOTAL OZONE COLUMN (TOC) USING ?GLOBAL? (SUN AND SKY) AND DIRECT-SUN OBSERVATIONS IN THE ULTRAVIOLET (UV) RANGE DURING THE TOTAL SOLAR ECLIPSE OF 8 APRIL 2024. MEASUREMENTS WILL BE PERFORMED AT MAZATL?N, MEXICO, UNDER THE PATH OF TOTALITY. AT THIS LOCATION, TOTALITY WILL LAST 4 MINUTES AND 25 SECONDS AND THE LIKELIHOOD OF CLEAR SKIES IS ONE OF THE HIGHEST ALONG THE PATH OF THE ECLIPSE. GLOBAL OBSERVATIONS WILL BE MADE WITH A GUVIS-3511 RADIOMETER, WHICH USES 19 WAVEBANDS BETWEEN 305 AND 1640 NM; TOC IS CALCULATED FROM MEASUREMENTS BETWEEN 305 AND 340 NM. THE RADIOMETER IS EQUIPPED WITH A SHADOW BAND TO ALLOW ALTERNATING GLOBAL AND DIFFUSE MEASUREMENTS FROM WHICH THE DIRECT SPECTRAL IRRADIANCE IS CALCULATED. A MICROTOPS II SUN PHOTOMETER WILL ALSO BE USED FOR DIRECT-SUN OBSERVATIONS. USE OF TWO DISTINCT INSTRUMENTS REDUCES THE RISK THAT OBSERVATIONAL VARIATIONS IN TOC CAUSED BY MEASUREMENT ARTIFACTS ARE INCORRECTLY ATTRIBUTED TO REAL OZONE CHANGES. DATA COLLECTED AS A PART OF THIS PROJECT WILL IMPROVE THE UNDERSTANDING OF THE COUPLING BETWEEN THE UPPER ATMOSPHERE AND THE STRATOSPHERE. IN ADDITION TO TOC OBSERVATIONS, MEASUREMENTS OF THE GLOBAL SPECTRAL IRRADIANCE DURING TOTALITY AT THE EARTH?S SURFACE WILL BE COMPARED WITH RESULTS OF A 3-D RADIATIVE TRANSFER MODEL. THIS WILL ENHANCE UNDERSTANDING OF PHOTON TRANSPORT DURING A SOLAR ECLIPSE WHERE PHOTONS ENTERING THE ATMOSPHERE OUTSIDE THE MOON?S SHADOW ARE SCATTERED MANY TIMES BEFORE REACHING THE OBSERVER, WHICH IS A NUMERICALLY CHALLENGING PROBLEM TO SOLVE. A SIMILAR COMPARISON DURING THE 2017 ECLIPSE HAS EXPANDED OUR KNOWLEDGE OF THE EFFECTS OF SURFACE ALBEDO, TOPOGRAPHY, AEROSOLS, AND THE VERTICAL OZONE DISTRIBUTION ON THE PHOTON PATH. DATA RECORDED DURING THE 2024 ECLIPSE WILL INCREASE OUR UNDERSTANDING OF THIS IMPORTANT EFFECT FURTHER. 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 | $79.1k | 1/8/24 |