Project Grant 2541482
- 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...
- The National Science Foundation (NSF) awarded a $422,670 Project Grant to the Monterey Institute for Research in Astronomy (MIRA) to support a collaborative research effort on "Polarimetric Asteroseismology of Massive Hot Stars". This research project, funded under the NSF's Mathematical and Physical Sciences (CFDA 47.049) program, aims to determine the interior structures of massive hot stars by applying a new technique called polarimetric asteroseismology. The collaboration...
- This $525,731 National Science Foundation project grant will support the creation of precision models for a reference set of Mira variable stars. The New Mexico Institute of Mining and Technology will analyze archival data spanning several years from multiple space missions, along with recent observations, to provide fundamental parameters for each star. These parameters include variability periods, bolometric fluxes, radii, masses, luminosities, effective temperatures and distances. The work...
- 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 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 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 National Science Foundation (NSF) Mathematical and Physical Sciences project grant of $248,151 will support high resolution optical interferometry studies of interacting binary star systems to better understand stellar evolution and the formation of neutron stars and black holes. Led by Dr. [PI name] at New Mexico Institute of Mining and Technology, the team will use the Center for High Angular Resolution Astronomy array to collect interferometric data on known symbiotic binary stars over a...
- Federal Grant Award Summary The National Science Foundation's Division of Astronomical Sciences awarded $532,746 under the Mathematical and Physical Sciences program (CFDA 47.049) to the Monterey Institute for Research in Astronomy for a three-year project grant beginning October 1, 2025. The award supports the development of a comprehensive catalog of chemically peculiar AP (Ap/Bp) stars through analysis of infrared spectroscopic data from the Sloan Digital Sky Survey/Apache Point Observatory...
- This $396,000 Project Grant award from the National Science Foundation (NSF) Division of Astronomical Sciences supports observational and laboratory studies of the evolution of circumstellar material from late-stage stellar evolution. The primary objectives are to: 1) Conduct a broadband millimeter-wave survey to analyze the carbon budget and isotope ratios in the carbon-rich envelope of the asymptotic giant branch (AGB) star IRC+10216; 2) Perform laboratory measurements of the rotational...
- This Project Grant award from the National Science Foundation (NSF) Division of Astronomical Sciences provides $229,131 to the University of Texas Rio Grande Valley (UTRGV) to develop a new research and education partnership in astronomy with Texas Southmost College (TSC). The partnership will engage Hispanic community college students in South Texas in multi-messenger and time domain astronomy research, including observational techniques, data analysis, and machine learning. Key activities...
COLLABORATIVE RESEARCH: POLARIMETRIC ASTEROSEISMOLOGY OF MASSIVE HOT STARS -MASSIVE HOT STARS ARE THE GREATEST SOURCES OF ENERGY AND NEW MATERIAL IN THE GALAXY. A COLLABORATION OF ASTRONOMERS AT THE MONTEREY INSTITUTE FOR RESEARCH IN ASTRONOMY (MIRA), FLORIDA GULF COAST UNIVERSITY, THE SETI INSTITUTE, THE UNIVERSITY OF MARYLAND BALTIMORE COUNTY, AND THE UNIVERSITY OF WISCONSIN MADISON, ALONG WITH THEIR INTERNATIONAL PARTNERS AIM TO DETERMINE THE INTERIOR STRUCTURES OF THESE STARS BY THE APPLICATION OF A NEW TECHNIQUE: POLARIMETRIC ASTEROSEISMOLOGY. SEISMIC WAVES BOUNCE AROUND THE INTERIORS OF STARS DISTURBING THEIR SURFACES AS IF IN A PERPETUAL STAR-QUAKE. THE COLLABORATION WILL MAKE OBSERVATIONS OF THIS PHENOMENON IN KEY STARS IN TANDEM WITH GROUND- AND SPACE-BASED TELESCOPES (INCLUDING THE NASA TESS MISSION). A NEW NETWORK OF THE WORLD'S MOST SENSITIVE POLARIMETERS, SPANNING A THIRD OF THE EARTH WILL BE USED TO DETECT THE SURFACE OSCILLATIONS CAUSED BY THESE SEISMIC WAVES. THE TEAM WILL ALSO BUILD ON ESTABLISHED CODE TO DEVELOP SOPHISTICATED NEW COMPUTER MODELS TO INTERPRET THE MULTI-FACETED DATA. COLLEGE UNDERGRADUATE AND HIGH SCHOOL STUDENTS, INCLUDING SOME FROM TRADITIONALLY UNDER-REPRESENTED GROUPS, WILL ASSIST WITH THE PROJECT AND GAIN THEIR FIRST HANDS-ON EXPERIENCE OF OBSERVATIONAL ASTRONOMY AND MODELING. CITIZEN SCIENTISTS WILL ALSO BE INVOLVED, AND THE PROJECT WILL FORM PART OF MIRA'S PUBLIC EDUCATION PROGRAMS. A VERY EXTENSIVE DATA SET WILL ALLOW THE TEAM TO DETERMINE THE INTERIOR STRUCTURES OF ABOUT 10 BETA CEPHEI AND SLOWLY PULSATING B-TYPE STARS IN VARIOUS STAGES OF EVOLUTION. THIS WILL BE ENABLED BY A LARGE-SCALE COORDINATED HIGH-PRECISION POLARIMETRIC OBSERVING CAMPAIGN. TO ACHIEVE THE NEEDED PHASE COVERAGE, IT WILL INVOLVE MULTIPLE OBSERVATORIES, ALL EQUIPPED WITH STATE-OF-THE-ART PICSARR POLARIMETERS. TO OBTAIN THE NECESSARY S/N AND FREQUENCY RESOLUTION (WHICH DEPENDS ON TEMPORAL BASELINE) WILL REQUIRE MANY THOUSANDS OF NEW POLARIMETRIC OBSERVATIONS SPANNING MORE THAN 2 YEARS, MATCHED TO CORRESPONDING PHOTOMETRY AND SPECTROSCOPY ? INCLUDING NEW AND ARCHIVAL DATA. THE OBSERVATIONS WILL BE FOLLOWED BY AN INTENSIVE MULTI-PART ANALYSIS INVOLVING SOPHISTICATED RADIATIVE TRANSFER MODELING. INTEGRAL TO THE WORK IS THE CREATION OF A NEW SOFTWARE PROGRAM THAT COMBINES PULSATING STAR AND POLARIZED RADIATIVE TRANSFER CODES TO PROPERLY ACCOUNT FOR THE SIGNIFICANT EFFECTS OF ROTATION. THIS PROGRAM WILL MAKE MODE IDENTIFICATION FEASIBLE USING POLARIMETRY IN RAPIDLY ROTATING STARS. THE RESULTS WILL ENABLE STELLAR EVOLUTION MODELS TO BE PROPERLY CALIBRATED AND EXTRAPOLATED TO THE SUPERNOVA STAGE. 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 | $145.9k | 8/14/25 |