Project Grant 2507890
- This $524,548 Project Grant award from the National Science Foundation's Mathematical and Physical Sciences program (CFDA 47.049) will support a collaborative research project on rotational evolution and angular momentum transport in K dwarf stars. The project will develop new computer models to understand why certain K dwarf stars (with temperatures between 3,900-5,300 K) display unexpected rotational behavior and persistent magnetic activity as they age, in contrast with the expected slower...
- This three-year National Science Foundation project grant of $189,753 awarded on September 1, 2022 supports research into the evolution of magnetic complexity in older sun-like stars under the Mathematical and Physical Sciences program (CFDA 47.049). Principal investigators Metcalfe and Van Saders will obtain polarized spectra of 12 stars using the Potsdam Echelle Polarimetric and Spectroscopic Instrument at the Large Binocular Telescope and the Las Cumbres Observatory's Network of Robotic...
- This Project Grant award, valued at $123,396.00 and spanning September 1, 2025 to August 31, 2028, was provided by the National Science Foundation's (NSF) Division of Astronomical Sciences, under the CFDA program "Mathematical and Physical Sciences." The grant supports collaborative research by The Ohio State University to investigate the rotational evolution and angular momentum transport in K dwarf stars, which exhibit unexpected activity as they age. The research will involve...
- This National Science Foundation Project Grant award of $444,772 provides funding from September 1, 2022 through August 31, 2025 to study the evolution of magnetic complexity in old sun-like stars under the Mathematical and Physical Sciences program (CFDA 47.049). Principal investigators Metcalfe and Van Saders from the University of Hawaii at Manoa will take polarized spectra of 12 stars using the Potsdam Echelle Polarimetric and Spectroscopic Instrument at the Large Binocular Telescope and the...
- This Project Grant award from the National Science Foundation's (NSF) Mathematical and Physical Sciences program, with a total funding amount of $441,642, supports research to deepen the understanding of the final stages of stellar evolution, specifically focusing on red giants and their mass-shedding processes. The key objectives of this 2-year research project, which runs from September 1, 2024 to August 31, 2026, are to: Employ very long baseline interferometry (VLBI) observations,...
- This National Science Foundation (NSF) award under the Mathematical and Physical Sciences Federal Grant Program (CFDA 47.049) provides $365,771 to the University of California, Santa Cruz (UCSC) to enhance stellar models by simulating turbulent plasma flows within stars using cutting-edge computational tools. The project aims to refine the understanding of rotational mixing within stars, a key factor in stellar evolution codes, through direct numerical simulations and multiscale asymptotic...
- This Project Grant award from the National Science Foundation's Geosciences Program (CFDA 47.050) will support a $582,399 research project by the Southwest Research Institute (SwRI) to investigate the origins of "active longitudes" on the Sun's surface and their connection to the solar dynamo and coronal mass ejections. The 3-year project will utilize 3D magnetohydrodynamic simulations and 17 years of observational data from the National Solar Observatory's Global Oscillation Network...
- 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 Project Grant award of $118,673 from the National Science Foundation's (NSF) Mathematical and Physical Sciences program (CFDA 47.049) supports a collaborative research project focused on "Polarimetric Asteroseismology of Massive Hot Stars." A team of astronomers from the Monterey Institute for Research in Astronomy, Florida Gulf Coast University, SETI Institute, University of Maryland Baltimore County, and University of Wisconsin-Madison, along with international partners, will...
- This Project Grant award from the National Science Foundation's Mathematical and Physical Sciences program provides $416,302 to support a collaborative research project between Princeton University and Dartmouth College. The research aims to explore how self-generated magnetic fields can persist and disperse in turbulent astrophysical plasmas. The project will use theoretical and numerical modeling approaches to study the decay and diffusion of dynamo-generated magnetic fields, taking into...
COLLABORATIVE RESEARCH: ROTATIONAL EVOLUTION AND ANGULAR MOMENTUM TRANSPORT IN DEEPLY CONVECTIVE DWARFS -STARS, LIKE OUR SUN, SPIN MORE SLOWLY AS THEY GET OLDER. THIS HAPPENS BECAUSE THEY LOSE ENERGY THROUGH WINDS AND MAGNETIC FIELDS. BUT SCIENTISTS HAVE FOUND THAT CERTAIN STARS?CALLED K DWARFS?DON?T SLOW DOWN THE WAY WE EXPECT. THESE STARS SEEM TO STAY ACTIVE AND SPIN FASTER THAN THEY SHOULD, EVEN AS THEY AGE. THIS PROJECT WILL HELP US UNDERSTAND WHY. THE RESEARCHERS WILL BUILD NEW COMPUTER MODELS TO TEST HOW ENERGY AND MAGNETISM MOVE INSIDE THESE STARS. THEY WILL ALSO USE LARGE TELESCOPES TO DIRECTLY MEASURE THE MAGNETIC FIELDS OF K DWARFS THAT BEHAVE IN SURPRISING WAYS. UNDERSTANDING HOW STARS AGE IS IMPORTANT FOR MANY AREAS OF SCIENCE, INCLUDING LEARNING THE AGES OF PLANETS AROUND OTHER STARS. THIS PROJECT ALSO SUPPORTS SCIENCE EDUCATION IN HAWAII BY HELPING TEACHERS BRING REAL ASTRONOMY INTO THEIR CLASSROOMS. BY COMBINING NEW MODELS, DETAILED OBSERVATIONS, AND OUTREACH, THIS PROJECT WILL PROMOTE SCIENTIFIC PROGRESS AND EXPAND OPPORTUNITIES FOR DIVERSE LEARNERS TO EXPLORE SPACE SCIENCE. THE INVESTIGATORS AIM TO ADDRESS THE UNEXPECTED ROTATIONAL EVOLUTION AND PERSISTENT MAGNETIC ACTIVITY OBSERVED IN K DWARF STARS (~3900?5300 K). THE PROJECT WILL COMBINE NOVEL INTERNAL ANGULAR MOMENTUM (AM) TRANSPORT MODELS?INCLUDING HYDRODYNAMIC, GRAVITY WAVE-DRIVEN, AND MAGNETIC PROCESSES?WITH MODERN MAGNETIC BRAKING LAWS IMPLEMENTED IN THE YALE ROTATING STELLAR EVOLUTION CODE (YREC). THESE MODELS WILL BE TESTED AGAINST A WIDE ARRAY OF OBSERVATIONAL CONSTRAINTS, INCLUDING OPEN CLUSTER ROTATION SEQUENCES, FIELD STAR ROTATION PERIODS, MAGNETIC ACTIVITY PROXIES, LIGHT-ELEMENT DEPLETION TRENDS, AND NEWLY ACQUIRED SPECTROPOLARIMETRIC DATA. THE OBSERVATIONAL COMPONENT WILL INCLUDE DIRECT MEASUREMENTS OF MAGNETIC FIELD STRENGTH AND TOPOLOGY IN ANOMALOUS K DWARFS USING PEPSI (LBT), ESPADONS (CFHT), AND SPIROU (CFHT), FOCUSING ON STARS IN THE HYADES CLUSTER. THE OVERARCHING GOALS ARE TO IMPROVE THEORETICAL UNDERSTANDING OF ROTATIONAL EVOLUTION IN LOW-MASS STARS AND TO ENABLE MORE ACCURATE USE OF GYROCHRONOLOGY IN STELLAR AGE DETERMINATIONS. THE PROJECT ALSO SUPPORTS THE DEVELOPMENT OF NEW ASTRONOMY-BASED CURRICULAR TOOLS THROUGH THE TEACHASTRO PROGRAM FOR MIDDLE AND HIGH SCHOOL STEM TEACHERS IN HAWAII. 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 | $70.6k | 8/14/25 |