Project Grant 2533457
- This $174,000 two-year project grant from the National Science Foundation Division of Earth Sciences aims to advance understanding of episodic tremor and slip in subduction zones. Funded under the Geosciences program (CFDA 47.050), which supports basic research to strengthen knowledge of the integrated Earth system, this award will fund research into the role of metasomatic alteration in subduction zone seismic phenomena from September 2021 through August 2023. The grantee, located in Seattle,...
- This $500,000 Project Grant from the National Science Foundation Division of Earth Sciences, under the Geosciences program (CFDA 47.050), will fund research at Stanford University from September 2022 to August 2025 on the physical and mechanical response of aluminosilicate cementation. Principal Investigator Dr. Vanorio will conduct laboratory studies to investigate how cements form within rocks and how much they increase rock strength under varying thermal and chemical conditions. This...
- 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 two-year, $354,309 project grant from the National Science Foundation's Geosciences program (CFDA 47.050) supports research to develop a new three-dimensional subsurface framework model of the Cascadia subduction zone in the Pacific Northwest. The awardee, the University of Texas at Austin, will analyze seismic data collected during the 2021 Cascadia Seismic Imaging Experiment to study the geometry of the plate interface along the margin, variations in plate interface properties, the...
- This two-year Project Grant from the National Science Foundation's Division of Ocean Sciences, under the Geosciences program (CFDA 47.050), provides $100,459 to the University of Washington to support collaborative research building a new three-dimensional subsurface framework for the Cascadia Subduction Zone through integrated analysis of data from the 2021 Cascadia Seismic Imaging Experiment (CASIE21). Key products include a regional-scale structural interpretation of offshore Cascadia from...
- This Project Grant from the National Science Foundation Division of Earth Sciences, under the Geosciences program (CFDA 47.050), provides $297,681 to Purdue University to better understand the relationship between orogenesis and seismogenesis along the southern Cascadia forearc region in northern California. The research team will analyze a recently acquired dataset using seismic methodologies including receiver function imaging, ambient noise interferometry, and joint inversion of receiver...
- The National Science Foundation (NSF), through its Geosciences program (CFDA 47.050), awarded a $272,664 project grant to the University of Texas at Austin to conduct collaborative research on subduction megathrust rheology. The research aims to quantify how the deformation behavior and spatial heterogeneity of subduction zone rocks affect fault slip behavior, including the occurrence of slow earthquakes and slip events. The project will involve new laboratory experiments on subduction zone...
- The National Science Foundation awarded a $796,676 project grant to the University of Maryland, College Park to support research investigating the mechanisms enabling high pore fluid pressure to facilitate slow faulting. Funded through the Geosciences program (CFDA 47.050), the three-year award will advance understanding of the role elevated fluid pressures play in stabilizing fault propagation and decelerating frictional slip along pre-existing faults. Researchers will conduct fracture and...
- This National Science Foundation (NSF) Division of Earth Sciences Project Grant awarded to the Planetary Science Institute will conduct collaborative research to study the deformation behavior and rheology of subduction zone rocks. The $169,023 award, made under NSF's Geosciences (CFDA 47.050) program, will address two key questions: 1) how the heterogeneous rheology along subduction megathrusts affects fault slip behavior, and 2) how inelastic deformation on- and off-fault impacts strain energy...
- This $393,670 National Science Foundation award under the Geosciences program (CFDA 47.050) funds research at the University of California, Davis from March 2022 through February 2025 to test the role of metastable olivine in subduction dynamics and deep earthquakes. The researchers will use state-of-the-art numerical simulations integrating experimental and observational parameters to model various subduction scenarios with and without the presence of metastable olivine. They will compare model...
COLLABORATIVE RESEARCH: EXPLORING THE ROLE OF RAPID CEMENTATION, COHESION, AND PORE FLUID PRESSURE EVOLUTION IN THE DYNAMICS OF SLOW SLIP EVENTS -THE EARTH?S FAULTS CAN RUPTURE ABRUPTLY CAUSING HAZARDOUS EARTHQUAKES, BUT SOME CAN ALSO SLIP SLOWLY, IN EVENTS THAT CAN LAST HOURS TO YEARS. IN THE CASCADIA SUBDUCTION ZONE, SLOW SLIP EVENTS (SSES) HAVE DURATIONS OF DAYS TO WEEKS AND OCCUR AT DEPTHS BETWEEN 30 AND 45 KM, WHICH ARE DEEPER THAN TYPICAL EARTHQUAKES. THESE EVENTS PRODUCE A WEAK SEISMIC SIGNAL KNOWN AS TECTONIC TREMOR. DESPITE THEIR STATUS AS ONE OF THE MOST SIGNIFICANT DISCOVERIES IN GEOPHYSICS, THE PHYSICAL MECHANISM(S) RESPONSIBLE FOR SSES REMAIN ENIGMATIC, AND THE EFFECTS OF DEEP SLIP ON SEISMIC HAZARDS ARE UNCLEAR. THIS PROJECT EXPLORES PROCESSES THAT AFFECT THE STRENGTH OF THE FAULT THROUGH TIME, ONE OF THE FACTORS THOUGHT TO CONTROL SSES. AREAS IN THE EARTH WHERE SSES OCCUR ARE TYPICALLY HOT AND UNDER HIGH PRESSURE. THESE CONDITIONS FACILITATE CHEMICAL REACTIONS, SUGGESTING THAT RAPIDLY GROWING MINERALS COULD ACT LIKE A QUICK-SETTING GLUE, BINDING FAULTS TOGETHER THROUGH CEMENTATION, AND PROMOTING RAPID FAULT STRENGTHENING BETWEEN SSES. TO EXPLORE THIS POSSIBILITY, THE TEAM WILL CONDUCT EXPERIMENTS WHERE SMALL ROCK AND MINERAL SAMPLES ARE SUBJECTED TO THE TEMPERATURE AND PRESSURE CONDITIONS OF SSES. THE TEAM WILL THEN MEASURE THE MATERIAL PROPERTIES, SUCH AS THEIR STRENGTH AND PERMEABILITY TO FLUIDS, OF THE EXPERIMENTAL PRODUCTS AS THEY VARY WITH EXPERIMENT DURATION. USING THE EXPERIMENTAL RESULTS, THE TEAM WILL DEVELOP A MATHEMATICAL DESCRIPTION OF RAPID FAULT HEALING FOR INCORPORATION INTO NUMERICAL MODELS EXPLORING THE INFLUENCE OF CEMENTATION ON SSES. RESULTS OF THESE SIMULATIONS WILL BE COMPARED TO REAL-WORLD OBSERVATIONS TO DETERMINE WHETHER THIS PROCESS PLAYS A FUNDAMENTAL ROLE IN THE GENERATION OF SSES. THIS PROJECT WILL CATALYZE INTERDISCIPLINARY RESEARCH IN SUBDUCTION ZONE GEOSCIENCE THROUGH THE TRAINING AND MENTORSHIP OF UNDERGRADUATE AND GRADUATE STUDENTS, PLUS POSTDOCTORAL RESEARCHERS IN THE FIELDS OF SEISMOLOGY, ROCK MECHANICS, AND GEOCHEMISTRY. THE TEAM LEADERS WILL ENABLE INTERACTION BETWEEN THE CASCADIA REGION EARTHQUAKE SCIENCE CENTER (CRESCENT) AND SUBDUCTION ZONES IN 4 DIMENSIONS (SZ4D) TO FACILITATE COORDINATION BETWEEN THESE TWO EFFORTS TO ACHIEVE COMMON GOALS RELEVANT TO GEOHAZARDS. THIS PROPOSAL EXPLORES THE ROLE OF COHESION, WHICH IS NORMAL STRESS INDEPENDENT FAULT STRENGTH, VIA CEMENTATION AND PORE FLUID PRESSURE EVOLUTION IN THE DYNAMICS OF SSES. CEMENTATION IS COMMONLY OBSERVED IN EXHUMED FAULTS ZONES AND IS THOUGHT TO PLAY A KEY ROLE IN FAULT HEALING DURING THE INTERSEISMIC PERIOD. THE HIGH TEMPERATURES (~500?C) AND PRESSURES (1 GPA) PRESENT IN SSE ENVIRONS SHOULD FAVOR RELATIVELY RAPID CEMENTATION. THERE IS ALSO ABUNDANT EVIDENCE FOR FLUIDS IN THE SSE SOURCE REGION THAT APPEAR TO PLAY A CRUCIAL ROLE IN THE GENERATION OF SSES. THE TEAM PROPOSES THAT PORE-FLUID PRESSURE EVOLUTION AND CEMENTATION CAN EXPLAIN SEVERAL ENIGMATIC FEATURES OF SLOW SLIP EVENTS, INCLUDING RADIATIVE PHENOMENA LIKE TREMOR AND LOW-FREQUENCY EARTHQUAKES, THE TENDENCY FOR THE SAME SECTION OF THE MEGATHRUST TO RE-RUPTURE ON SHORT TIMESCALES DURING AN SSE IN SO-CALLED SECONDARY SLIP FRONTS, THE LACK OF SENSITIVITY TO TIDALLY INDUCED NORMAL STRESSES, AND THE EXISTENCE OF FAULT STRENGTH IN ENVIRONMENTS INFERRED TO HAVE NEARLY LITHOSTATIC PORE FLUID PRESSURE. THIS WORK LEVERAGES INTERDISCIPLINARY EXPERTISE FROM THE FIELDS OF PETROLOGY, GEOCHEMISTRY, ROCK MECHANICS, OBSERVATIONAL SEISMOLOGY, FAULT MECHANICS, AND NUMERICAL METHODS TO EXPLORE THE ROLE OF CEMENTATION AND RESULTING COHESION IN SSES. THIS TEAM WILL CONSTRAIN THE MECHANISMS OF CEMENTATION, MINERALOGY AND PETROLOGY OF THE CEMENT, AND THE RESULTING TIME-DEPENDENT STRENGTHENING BY PERFORMING A SUITE OF PISTON-CYLINDER EXPERIMENTS AT PRESSURE, TEMPERATURE, FLUID COMPOSITIONS, AND OTHER CONDITIONS RELEVANT FOR CASCADIA SSES. THE PROJECT WILL DETERMINE THE RESULTING COHESION AND PERMEABILITY USING DEFORMATION EXPERIMENTS AND CONTACT AREA USING MICROSCOPY. THE RESULTS WILL PROVIDE QUANTITATIVE CONSTRAINTS ON TIME-DEPENDENT FAULT STRENGTHENING AND PERMEABILITY EVOLUTION. CONSTRAINTS FROM THESE LABORATORY EXPERIMENTS WILL BE USED TO DEVELOP A MATHEMATICAL FRAMEWORK FOR COHESION AND FLUID FLOW. THIS FRAMEWORK WILL BE IMPLEMENTED IN NUMERICAL SIMULATIONS TO DETERMINE THE IMPACT OF RAPID CEMENTATION AND COHESION ON SSES. THE MODELS WILL BE VALIDATED WITH OBSERVABLES INCLUDING PROPAGATION SPEEDS, SPATIAL SCALES, AND TIME SCALES REPRESENTATIVE OF SSES AND SECONDARY FRONTS. THIS PROJECT WILL CATALYZE INTERDISCIPLINARY RESEARCH IN SUBDUCTION ZONE GEOSCIENCE THROUGH THE TRAINING AND MENTORSHIP OF UNDERGRADUATE AND GRADUATE STUDENTS, PLUS POSTDOCTORAL RESEARCHERS IN THE FIELDS OF SEISMOLOGY, ROCK MECHANICS, AND GEOCHEMISTRY. THE TEAM LEADERS WILL ENABLE INTERACTION BETWEEN THE CASCADIA REGION EARTHQUAKE SCIENCE CENTER (CRESCENT) AND SUBDUCTION ZONES IN 4 DIMENSIONS (SZ4D) TO FACILITATE COORDINATION BETWEEN THESE TWO EFFORTS TO ACHIEVE COMMON GOALS RELEVANT TO GEOHAZARDS. THIS PROJECT IS FUNDED BY THE FRONTIER RESEARCH IN EARTH SCIENCE (FRES) PROGRAM AS WELL AS EDUCATION AND HUMAN RESOURCES (ERF) IN SUPPORT OF RESEARCH EXPERIENCES FOR UNDERGRADUATES AND POSTDOCTORAL SCHOLARS. 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 | $518.1k | 9/4/25 | ||
| Not listed | $483.5k | 8/27/25 | ||
| Not listed | $616.0k | 6/29/25 |