Project Grant 2511905
- This Project Grant award from the National Science Foundation's Mathematical and Physical Sciences program, totaling $135,294 from September 1, 2025 to August 31, 2027, supports the "Collaborative Research: Citizen CATE Next-Generation 2024 Total Solar Eclipse Experiment, Phase 3." The project aims to characterize the processes that shape the heating, structure, and evolution of the solar corona through high-resolution, high-cadence, and wide field-of-view ground-based observations...
- This $215,044 Project Grant awarded by the National Science Foundation's Division of Astronomical Sciences supports the Citizen Continental-America Telescopic Eclipse (Citizen CATE) experiment for the 2024 total solar eclipse. The grant will fund the deployment of 40 teams of citizen scientists along the path of totality to collect over 60 minutes of high-resolution polarimetric data on the solar corona. The research aims to better understand the physical processes that shape the heating,...
- The National Science Foundation (CFDA 47.049 - Mathematical and Physical Sciences) awarded Southwest Research Institute a $399,696 project grant to conduct the Collaborative Research: Citizen CATE Next-Generation 2024 Total Solar Eclipse Experiment, Phase 3. This 2-year project, from September 2025 to August 2027, will leverage the unique observational opportunities provided by the 2024 total solar eclipse to study the solar corona and address fundamental questions about its heating,...
- 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 $182,730 Project Grant awarded by the National Science Foundation's Division of Atmospheric and Geospace Sciences (CFDA 47.050 Geosciences) aims to improve the understanding of the Sun's corona, the outermost layer of the solar atmosphere. The research will analyze imaging data from five total solar eclipses between 2015-2024 and compare it to advanced magnetohydrodynamic simulations to study the coronal electron temperature, electron density, and magnetic field structure. This will enhance...
- This $385,959 project grant award from the National Science Foundation's (NSF) Geosciences program (CFDA 47.050) aims to improve the understanding of the Sun's corona, the outer layer of the solar atmosphere, by analyzing data from total solar eclipses. The award recipient, Wentworth Institute of Technology, Inc., will study coronal electron temperature, electron density, and magnetic field structure using imaging observations from five total solar eclipses spanning 2015 to 2024. The research...
- 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 Project Grant award from the National Science Foundation's (NSF) Division of Astronomical Sciences, under the Mathematical and Physical Sciences Federal Grant Program (CFDA 47.049), provides $206,422 to Southwest Research Institute (SwRI) to investigate transverse wave fluctuations in the solar corona using the advanced instrumentation of the Daniel K. Inouye Solar Telescope (DKIST). The project aims to characterize the impulsive and wave heating mechanisms in the solar corona, which is...
- 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 National Science Foundation Project Grant of $508,504 provides funding from November 1, 2022 to October 31, 2025 under the Geosciences program (CFDA 47.050) to advance understanding of coronal mass ejections (CMEs) from the Sun. Led by underrepresented groups in STEM, the award supports physics-based and statistical studies to quantify the structure and evolution of magnetic flux ropes from the solar photosphere to the inner heliosphere. Researchers will characterize CME flux ropes using...
COLLABORATIVE RESEARCH: CITIZEN CATE NEXT-GENERATION 2024 TOTAL SOLAR ECLIPSE EXPERIMENT, PHASE 3 -DESPITE WELL OVER 100 YEARS OF SCIENTIFIC OBSERVATION, MANY FUNDAMENTAL QUESTIONS ABOUT THE NATURE OF THE SOLAR CORONA REMAIN UNANSWERED. THE CORONA IS PERMEATED BY COMPLEX, HIGHLY STRUCTURED AND INTENSE MAGNETIC FIELDS COUPLED TO HOT PLASMA AT TEMPERATURES OF 1?10 MILLION KELVIN, OVER 100 TIMES HOTTER THAN THE UNDERLYING SURFACE, THE PHOTOSPHERE. THE MIDDLE CORONA MEDIATES ALMOST ALL THE OUTFLOW FROM THE SUN TO THE HELIOSPHERE AND HOSTS TRANSITIONS BETWEEN THE PHYSICAL REGIMES OF THE INNER AND OUTER CORONAE BUT REMAINS POORLY CHARACTERIZED DUE TO THE DIFFICULTY IN OBSERVING THE DIM EMISSION FROM THIS REGION. THIS PROJECT WILL (1) DETERMINE THE CONNECTIVITY OF STRUCTURES THAT SPAN THE MIDDLE CORONA; (2) MEASURE THE FLOW OF THE NASCENT SOLAR WIND; (3) IDENTIFY AND CHARACTERIZE MAGNETIC RECONNECTION; AND (4) CHARACTERIZE POLARIZATION IN PROMINENCES TO DERIVE PHYSICAL PARAMETERS IMPORTANT FOR SOLAR AND STELLAR UNDERSTANDING. THROUGH THESE INVESTIGATIONS, THIS PROJECT WILL CHARACTERIZE THE PROCESSES THAT SHAPE THE HEATING, STRUCTURE, AND EVOLUTION OF THE SOLAR CORONA AT SCALES THAT HAVE NOT BEEN PREVIOUSLY STUDIED IN THIS WAY. TOTAL SOLAR ECLIPSES OFFER RARE OPPORTUNITIES TO STUDY THE SOLAR CORONA WITHOUT THE INHERENT LIMITATIONS OF GROUND- OR SPACE-BASED CORONAGRAPHS, PROVIDING OPTIMAL CONDITIONS FOR GROUND-BASED OBSERVATIONS THAT CAN ACHIEVE HIGH RESOLUTION, HIGH CADENCE, AND WIDE FIELD OF VIEW, WITH ESSENTIALLY ZERO STRAY LIGHT FROM THE OCCULTER (THE MOON). THE SCIENCE OBJECTIVES ABOVE ARE UNIQUELY ADDRESSED BY THE ONE HOUR EXTENDED TIME SERIES OF HIGH-SENSITIVITY POLARIZED CORONAL IMAGING OBTAINED BY CATE DURING THE 2024 TOTAL SOLAR ECLIPSE. THE MIDDLE CORONA IS DIFFICULT TO STUDY BECAUSE IT IS OFTEN TOO FAINT FOR GROUND-BASED CORONAGRAPHS, AND THE REQUIRED RESOLUTION IS TOO FINE FOR EXISTING SPACE-BASED INSTRUMENTS TO TRACE ITS DETAILED CONNECTIVITY. CATE 2024?S POWERFUL POLARIZATION-SENSITIVE ECLIPSE OBSERVATIONS PERMIT 3D RENDERING AND DISAMBIGUATION OF THE FINE STRUCTURE PREVIOUSLY OBSERVED BY CATE 2017 AND OTHER PROJECTS, ALONG WITH DIRECT MEASUREMENTS OF ELECTRON DENSITY. ECLIPSES ALSO OFFER THE BEST GROUND-BASED OPPORTUNITY TO DETECT SCATTERED WHITE-LIGHT EMISSION FROM PROMINENCES, AND THE CATE 2024 DATA, COMBINING BOTH MEASUREMENTS OF THE LINEAR POLARIZATION AND A LONG DURATION, OFFER A NEW AVENUE TO PROBE THE PROMINENCE CONDITIONS, WITH A GOAL OF BEING ABLE TO BETTER INTERPRET COMPARABLE OBSERVATIONS OF STELLAR PROMINENCES AND CORONAL MASS EJECTIONS. 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 | $69.9k | 8/14/25 |