Project Grant 2247856
- This $118,893 Project Grant award, provided by the National Science Foundation's Geosciences program (CFDA 47.050), supports collaborative research to quantify the contribution of off-equatorial ultra-low frequency (ULF) waves on radial diffusion in the Earth's radiation belts. The research aims to derive pitch-angle-dependent magnetic and electric field wave powers, and incorporate them into 3D test particle simulations to estimate improved radial diffusion coefficients. The novel,...
- The Regents of the University of Colorado received a $432,033 Project Grant award from the National Science Foundation Division of Atmospheric and Geospace Sciences under the Geosciences federal grant program (CFDA 47.050). The grant will fund research from June 1, 2023 through May 31, 2026 to quantify the contribution of off-equatorial ultra-low frequency waves on radial diffusion in Earth's radiation belts. Specifically, the University will use satellite data from THEMIS, Van Allen Probes,...
- The National Science Foundation (NSF) awarded a $294,241 Project Grant under the Geosciences program (CFDA 47.050) to The Regents of the University of Colorado, doing business as the University of Colorado. The grant, titled "COLLABORATIVE RESEARCH: GEM--DETERMINING THE GLOBAL IMPACT OF NONLINEAR WAVE-PARTICLE INTERACTIONS IN THE RADIATION BELTS," aims to study the effects of large-amplitude waves on the Earth's radiation belts using theory, modeling, and data analysis. The research...
- This Project Grant award from the National Science Foundation's Geosciences Program (CFDA 47.050) supports research on ultra-low-frequency (ULF) waves in the Earth's inner magnetosphere during geomagnetic storms. The $415,309 award to The Johns Hopkins University aims to observationally determine whether the physical properties of symmetric ULF waves and the associated particle environment are consistent with drift compressional instability. The 3-year project (8/1/2024 - 7/31/2027) will utilize...
- This National Science Foundation Project Grant of $250,059 supports research at the University of California, Los Angeles from April 1, 2022 to March 31, 2024. The research aims to advance understanding and prediction of the Van Allen radiation belts through a novel combination of machine learning and data assimilation methods. Specifically, the Principal Investigator will use the Versatile Electron Radiation Belt model and data assimilation to discover generalized Fokker-Planck equations...
- This three-year, $969,646 National Science Foundation Project Grant in the Geosciences program (CFDA 47.050) supports research at the University of Texas at Dallas to study nonlinear interactions between energetic electrons and oblique whistler-mode chorus waves in Earth's outer radiation belt. The investigators will develop numerical models of oblique chorus wave packets and electron phase space density evolution. They will quantitatively compare model results with in-situ measurements from...
- This three-year, $223,760 National Science Foundation project grant funds research at the University of California, Los Angeles to study energetic electron interactions with oblique whistler-mode chorus waves. Under the NSF's Geosciences program (CFDA 47.050), which supports basic research to enhance understanding of the integrated Earth system, this award will quantitatively analyze wave-particle dynamics using numerical models. Researchers will compare simulations of oblique chorus wave...
- This three-year Project Grant from the National Science Foundation's Division of Atmospheric and Geospace Sciences, under the Geosciences program (CFDA 47.050), provides $287k to the University of California, Berkeley to conduct collaborative research on regulating electron heat flux in the solar wind. The research aims to address the compelling science question of what regulates the solar wind's heat flux through electrons. It will use self-consistent quasilinear theory and kinetic theory of...
- This Project Grant award from the National Science Foundation's Geosciences Program (CFDA 47.050) will provide $539,134 from July 1, 2025 to June 30, 2028 to the University of California, Los Angeles (UCLA) for a project titled "GEM: AI-Based Discovery of the Governing Equations Describing the Geospace Environment". The project will use artificial intelligence and machine learning techniques to automatically discover the fundamental partial differential equations governing the dynamics...
- This Project Grant award of $324,438 from the National Science Foundation's Geosciences program (CFDA 47.050) will support collaborative research by the University of Colorado to study how the plasmapause, the outer boundary of the Earth's plasmasphere, controls electron enhancements in the outer radiation belt. The project aims to systematically evaluate the long-term behavior of radiation belt enhancements and conduct in-depth case studies to understand the role of the plasmapause in these...
COLLABORATIVE RESEARCH: GEM--QUANTIFYING THE CONTRIBUTION OF OFF-EQUATORIAL ULTRA-LOW FREQUENCY (ULF) WAVES ON RADIAL DIFFUSION IN THE RADIATION BELTS -ELECTROMAGNETIC WAVES WITH FREQUENCIES IN THE ULTRA-LOW FREQUENCY (ULF) RANGE ARE KNOWN TO BE AMONG THE LEADING CAUSES OF RADIAL DIFFUSION AND TRANSPORT OF ENERGETIC ELECTRONS IN EARTH'S RADIATION BELTS. THE FREQUENCIES OF ULF WAVES OVERLAP WITH THE RANGE OF DRIFT FREQUENCIES OF ENERGETIC ELECTRONS AS THEY CIRCLE THE EARTH, LEADING TO RESONANT INTERACTIONS. NUMEROUS EXPRESSIONS HAVE BEEN DERIVED TO QUANTITATIVELY DESCRIBE RADIAL DIFFUSION SO THAT THEY CAN BE INCORPORATED INTO GLOBAL MODELS OF RADIATION BELT ELECTRONS. HOWEVER, MOST EXPRESSIONS OF THE RADIAL DIFFUSION RATES ARE DERIVED ONLY FOR EQUATORIALLY MIRRORING ELECTRONS AND ARE BASED ON ESTIMATES OF THE POWER OF ULF WAVES THAT ARE OBTAINED EITHER FROM SPACECRAFT CLOSE TO THE EQUATORIAL PLANE OR FROM THE GROUND. RECENT STUDIES USING THE VAN ALLEN PROBES AND ARASE HAVE SHOWN THAT THE WAVE POWER IN MAGNETIC FLUCTUATIONS IS SIGNIFICANTLY ENHANCED AWAY FROM THE MAGNETIC EQUATOR, CONSISTENT WITH MODELS SIMULATING THE NATURAL MODES OF OSCILLATION OF MAGNETOSPHERIC FIELD LINES. THIS HAS SIGNIFICANT IMPLICATIONS FOR THE ESTIMATION OF RADIAL DIFFUSION RATES, AS HIGHER PITCH ANGLE ELECTRONS WILL EXPERIENCE CONSIDERABLY HIGHER ULF WAVE FLUCTUATIONS THAN EQUATORIAL ELECTRONS. THIS PROJECT WILL DERIVE THE MAGNETIC AND ELECTRIC FIELD WAVE POWERS AND INCORPORATE THEM INTO THE 3D TEST PARTICLE SIMULATIONS TO ESTIMATE THE DIFFUSION COEFFICIENT. THE NOVEL, PITCH-ANGLE-DEPENDENT DIFFUSION RATES WILL BE INTRODUCED TO A GLOBAL MODEL OF RADIATION BELT ELECTRONS TO EVALUATE THE EFFECT OF THE PITCH-ANGLE DEPENDENCE OF THE DIFFUSION COEFFICIENT ON RADIATION BELT DYNAMICS. THE RESULT COULD HAVE SIGNIFICANT IMPLICATIONS FOR THE RADIAL DIFFUSION RATES AS CURRENTLY ESTIMATED. IT WILL PAVE THE WAY FOR INCORPORATING PITCH-ANGLE-DEPENDENT RADIAL DIFFUSION COEFFICIENTS IN GLOBAL MODELS TO PREDICT THE NEAR-EARTH RADIATION ENVIRONMENT BETTER. THE MAIN GOAL OF THIS PROJECT IS TO QUANTIFY THE ROLE OF OFF-EQUATORIAL ULTRA-LOW FREQUENCY (ULF) WAVES ON THE RADIAL TRANSPORT AND DIFFUSION OF RELATIVISTIC ELECTRONS (100S KEV TO FEW MEV) IN THE OUTER RADIATION BELT (L~4 TO 7), INVESTIGATING THE EFFECT OF PITCH-ANGLE-DEPENDENT RADIAL TRANSPORT OF ENERGETIC PARTICLES ON GLOBAL DYNAMICS OF THE RADIATION BELTS. THE FOLLOWING SCIENCE QUESTIONS WILL BE ANSWERED: HOW ARE ULF ELECTRIC AND MAGNETIC FIELD FLUCTUATIONS DISTRIBUTED IN MAGNETIC LATITUDE AND MAGNETIC LOCAL TIME UNDER VARYING SOLAR AND GEOMAGNETIC CONDITIONS? WHAT IS THE ROLE OF OFF-EQUATORIAL ULF WAVE FLUCTUATIONS ON THE RADIAL DIFFUSION AND TRANSPORT OF RELATIVISTIC ELECTRONS IN THE OUTER RADIATION BELT (L~4 TO 7)? HOW ARE OFF-EQUATORIAL ULF WAVES EXPECTED TO IMPACT CURRENT RADIATION BELT MODELS, AND WHAT IS THEIR CONTRIBUTION TO THE GLOBAL DYNAMICS OF THE RADIATION BELTS? THE TEAM WILL USE MULTIPLE SATELLITE DATASETS (THEMIS, VAN ALLEN PROBES, CLUSTER, AND ARASE), TEST PARTICLE TRACING SIMULATIONS, AND A GLOBAL RADIATION BELT MODEL TO QUANTIFY THE CONTRIBUTION OF OFF-EQUATORIAL ULF WAVES ON RADIAL DIFFUSION IN THE RADIATION BELTS. 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 | ($119k) | 8/29/25 | ||
| Not listed | $118.9k | 5/26/23 |