Project Grant 2144913
- This Project Grant award from the National Science Foundation's Geosciences program (CFDA 47.050) provides $1,418,325 to the University of California San Diego's Scripps Institution of Oceanography to develop novel, low-cost methods for measuring seafloor motion and deformation over time. The goal is to advance seafloor geodesy capabilities, which are critical for understanding and mitigating natural hazards such as earthquakes, volcanic eruptions, and landslides that originate offshore. The...
- This $732,120 Project Grant from the National Science Foundation Division of Earth Sciences will fund research into the effects of three-dimensional and non-Newtonian mantle viscosity on relative sea-level changes and deglaciation history since the Last Glacial Maximum approximately 26,000 years ago. The University of Colorado will deliver three key products under this award. First, the research team will further develop their open-source computational modeling package CITCOMSVE to more...
- This Project Grant award from the National Science Foundation's Geosciences Program (CFDA 47.050) is funding a collaborative research effort to bridge the gap between short-term earthquake dynamics and long-term plate tectonic processes. The $205,000 award to Virginia Polytechnic Institute & State University will develop advanced computational methods to efficiently model the coupled physics of great earthquakes and plate tectonics on the largest supercomputers. The project aims to provide a...
- This $249,924 Project Grant from the National Science Foundation's Geosciences program (CFDA 47.050) supports the development of a long-lived, continuously operating seafloor geodesy reference station capable of operating in deep water. The grantee, Princeton University, will investigate using acoustic signals that only need to travel from the sea surface to the seafloor, removing the prior 3,000 meter depth limitation of existing seafloor geodesy techniques. This new approach involves...
- This $140,967 two-year Project Grant from the National Science Foundation's Geosciences program (CFDA 47.050) will fund research to reevaluate the experimental foundation for rheology models of crust-forming minerals. Principal Investigator Jianbao Korenaga of Yale University will apply statistical methods to obtain new flow laws from existing deformation data for a range of minerals. Undergraduate students will conduct this reanalysis, gaining valuable research experience. The new flow laws...
- This National Science Foundation (NSF) Geosciences Program (CFDA 47.050) Project Grant award in the amount of $317,272 will fund the development of new computational methods to simulate and advance the understanding of the dynamic interplay between the Earth's surface and interior processes. The principal awardee, the University of Colorado, will couple two widely used community codes - ASPECT (originally for simulating mantle dynamics) and LANDLAB (for modeling surface processes) - to enable...
- This National Science Foundation (NSF) Division of Earth Sciences Project Grant, awarded to the University of California Santa Cruz (UCSC), aims to advance the understanding of subduction fault and earthquake mechanics. Through a combination of new experiments on subduction zone rocks and numerical modeling, the project will investigate how the rheology (deformation behavior) of the megathrust fault zone, and the heterogeneity within it, affect fault slip behavior. Additionally, the project will...
- This five-year, $475,451 National Science Foundation project grant in the Geosciences program (CFDA 47.050) will support research examining how topography preserves details of the seismic cycle. The principal investigator will develop computational landscape simulations under varying tectonic and climatic conditions to identify topographic signatures of the seismic cycle. They will then assess whether these signatures are recognizable in natural landscapes with independent constraints on seismic...
- This $228,331 National Science Foundation project grant supports collaborative research to understand the evolution of continental lithosphere beneath New England through geologic time. Funded under the Geosciences program (CFDA 47.050), the research team will employ seismic imaging techniques and analyze geologic structures exposed at the surface to illuminate plate tectonic processes that have shaped the region. Specifically, the investigators from the University of Vermont and partner...
- This National Science Foundation (NSF) Geosciences (CFDA 47.050) Project Grant award to the New Mexico Institute of Mining and Technology (New Mexico Tech) is funding the development of new computational methods to simulate and advance the understanding of the dynamic interplay between Earth's surface and interior processes. The $123,880 award, running from September 1, 2024 through August 31, 2028, will couple two widely used open-source community software packages - ASPECT and LANDLAB - to...
CAREER: DEFORMATION BY SURFACE LOADING FROM OCEAN TIDES AND CONTINENTAL WATER ON A 3-D EARTH -CIRCULATIONS OF FLUIDS IN THE OCEANS, IN THE ATMOSPHERE, AND OVER LAND CAUSE THE SHAPE OF THE EARTH TO DEFORM ON TIME SCALES DUE TO CHANGES IN SURFACE PRESSURE. THE PATTERN OF DEFORMATION DEPENDS ON THE WEIGHT AND DISTRIBUTION OF THE FLUIDS AS WELL AS ON THE STRUCTURAL PROPERTIES OF EARTH?S INTERIOR. THUS, OBSERVATIONS AND MODELS OF EARTH DEFORMATION CAUSED BY REPEATED CYCLES OF SURFACE LOADING AND UNLOADING CAN SHED LIGHT ON IMPORTANT EARTH-SYSTEM PROCESSES, INCLUDING MANTLE DYNAMICS, THE WATER CYCLE, AND CHANGES IN CLIMATE. FOR WELL-KNOWN LOADS, SUCH AS THE OCEAN TIDES, INVESTIGATIONS OF SURFACE LOADING CAN PLACE KEY CONSTRAINTS ON ALLOWABLE MODELS FOR THE DENSITY STRUCTURE AND MECHANICAL BEHAVIOR OF EARTH?S CRUST AND MANTLE, WHICH CAN ADVANCE UNDERSTANDING OF MANTLE CONVECTIVE PROCESSES THAT DRIVE PLATE TECTONICS AND SURFACE HAZARDS. FURTHERMORE, TRACKING LOAD-INDUCED EARTH DEFORMATION ALLOWS FOR THE QUANTIFICATION OF CHANGES IN FRESHWATER STORAGE OVER THE CONTINENTS, WHICH CAN AID IN DROUGHT MONITORING AND WATER-RESOURCE MANAGEMENT. THIS PROJECT AIMS TO ADVANCE BOTH OBSERVATIONAL AND COMPUTATIONAL METHODS FOR ANALYZING HOW THE EARTH DEFORMS UNDER THE WEIGHT OF WATER AND AIR AT THE SURFACE. RECENT STUDIES SUGGEST THAT THE OBSERVATIONAL PRECISION OF STATE-OF-THE-ART SATELLITE POSITIONING SYSTEMS, INCLUDING THE GLOBAL POSITIONING SYSTEM (GPS), MAY NOW EXCEED THE PREDICTIVE CAPABILITIES OF CURRENT EARTH-DEFORMATION MODELS THAT COMMONLY ASSUME SPHERICALLY SYMMETRIC EARTH STRUCTURE. THUS, A MAJOR OBJECTIVE OF THIS PROJECT WILL BE TO LEVERAGE NEW ADVANCES IN COMPUTATIONAL TECHNOLOGIES AND GEOPHYSICAL SOFTWARE TO INVESTIGATE THE IMPACTS OF THREE-DIMENSIONAL (3-D) VARIATIONS IN EARTH STRUCTURE (I.E., TOPOGRAPHY, POLAR FLATTENING DUE TO ROTATION, AND LATERAL VARIATIONS IN INTERNAL STRUCTURE) ON LOAD-INDUCED EARTH DEFORMATION. BY MAKING PREDICTIVE MODELS OF SURFACE LOADING MORE ACCURATE, AND BY PACKAGING COMPUTATIONAL TOOLS IN A WAY THAT THE BROADER SCIENTIFIC COMMUNITY CAN USE WITH GREATER EASE, THIS PROJECT AIMS TO REFINE EXISTING MODELS OF EARTH STRUCTURE, IMPROVE ESTIMATES OF FRESHWATER STORAGE OVER THE CONTINENTS, AND PROMOTE COLLABORATIVE EFFORTS THAT DRIVE INNOVATION IN GEOPHYSICS. WITH COMPUTATIONAL METHODS BECOMING MORE SOPHISTICATED, RESOURCES THAT SUPPORT AND ENHANCE THE COMPUTATIONAL LITERACY OF EARLY-CAREER SCIENTISTS WILL BECOME EVER MORE CRITICAL TO WORKFORCE DEVELOPMENT AND SUSTAINED INNOVATION. THIS PROJECT WILL PRODUCE A SERIES OF COMPUTATIONAL SHORT COURSES THAT CAN BE DELIVERED TO STUDENTS, POSTDOCTORAL SCHOLARS, AND THE BROADER SCIENTIFIC COMMUNITY IN FLEXIBLE FORMATS. THIS PROJECT WILL ALSO FACILITATE GRADUATE-UNDERGRADUATE MENTORING AND PROFESSIONAL-DEVELOPMENT PROGRAMS AS WELL AS GENERATE OPEN EDUCATIONAL RESOURCES. A PRIMARY OBJECTIVE OF THIS PROJECT IS TO QUANTIFY THE INFLUENCE OF 3-D VARIATIONS IN SOLID-EARTH STRUCTURE, INCLUDING TOPOGRAPHY AND INTERNAL CONTRASTS IN MATERIAL PROPERTIES, ON SURFACE DISPLACEMENTS CAUSED BY OCEAN TIDAL LOADING AND CONTINENTAL WATER LOADING. THIS PROJECT WILL ANALYZE DATA PRODUCTS FROM GLOBAL NAVIGATION SATELLITE SYSTEMS (GNSS) AND DEVELOP MODELS TO PREDICT THE RESPONSE OF A 3-D EARTH TO CYCLES OF SURFACE LOADING AND UNLOADING. RESEARCH PRODUCTS WILL INCLUDE: (1) SENSITIVITY AND RESOLUTION ANALYSES THAT QUANTIFY THE ABILITY TO CONSTRAIN 3-D EARTH STRUCTURE USING GNSS; (2) QUANTITATIVE ASSESSMENTS OF THE IMPACTS OF 3-D EARTH STRUCTURE ON ESTIMATES OF OCEAN TIDAL LOADING AND CONTINENTAL WATER STORAGE; (3) EMPIRICAL ESTIMATES OF LOAD TIDES FROM GNSS DATA; (4) OPEN-SOURCE SOFTWARE TOOLS THAT FACILITATE TIDAL ANALYSIS AND THE INVERSION OF GEODETIC DATA FOR EARTH STRUCTURE; AND (5) REFINED MODELS FOR EARTH STRUCTURE CONSTRAINED BY GNSS OBSERVATIONS OF LOAD TIDES. 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 | $0 | 7/30/25 | ||
| Not listed | $557.4k | 6/6/22 |