Project Grant 2338313
- Federal Project Grant Award Summary Rutgers, The State University received a $367,874 Project Grant award from the National Science Foundation (NSF) Office of Advanced Cyberinfrastructure under the Computer and Information Science and Engineering (CISE) program (CFDA 47.070), effective September 1, 2025, with completion targeted for December 31, 2028. The award funds a CAREER project to develop open-source, GPU (Graphics Processing Unit)-accelerated computational software infrastructure and...
- This $599,262 National Science Foundation award under the Engineering (47.041) program will fund research at Princeton University from June 2023 to May 2026 to advance knowledge in water-shell structure interaction and enable innovative coastal resilience approaches. The research aims to discover efficient hydrodynamic thin-shell structural forms through integrative modeling, experiments, and machine learning. Specific objectives are to determine forms suited for coastal structures like seawalls...
- This Project Grant award of $420,000 from the National Science Foundation's (NSF) Computer and Information Science and Engineering (CISE) program supports the development of a novel AI surrogate cyberinfrastructure for large-scale spatiotemporal simulations of coastal circulation. The project aims to create AI-powered models that can generate coastal circulation simulations much faster and more efficiently than traditional numerical models, which are costly and time-consuming to run on...
- This $303,940 Project Grant from the National Science Foundation's Engineering program (CFDA 47.041) will fund collaborative research among Columbia University, Stony Brook University, and City College of New York to develop a science-based approach for understanding and predicting flood-borne debris damage to coastal structures under extreme wind and wave conditions. The research will employ computational fluid dynamics, computational solid mechanics, and laboratory experiments to quantify...
- This $499,942 Project Grant award from the National Science Foundation's (NSF) Social, Behavioral, and Economic Sciences (CFDA 47.075) program supports research investigating the impacts of climate change on coastal communities in an urban environment. The key products and services to be delivered under this 3-year award (August 2024 - July 2027) include: Analysis of the alignment between water infrastructure, policies, and practices with emerging climate and environmental challenges such as...
- This $347,172 National Science Foundation project grant supports research at Northeastern University to develop integrated numerical modeling of hurricane impacts on natural and hybrid coastal infrastructure. The Division of Civil, Mechanical, and Manufacturing Innovation award falls under the NSF Engineering program (CFDA 47.041) to foster innovation and excellence in engineering research. Researchers will leverage field data from Hurricanes Laura and Delta in 2020 to model wetland...
- This $134,207 Project Grant award from the National Science Foundation's Geosciences Program (CFDA 47.050) will fund collaborative research to transform the scientific community's understanding and forecasting of coastline changes in response to shifting storm climates and sea-level rise. The project will develop new techniques to downscale global climate model outputs to produce detailed forecasts of the winds, waves, and water levels affecting specific coastlines, such as the Carolina...
- This Project Grant award of $528,090 from the National Science Foundation's (NSF) Engineering program (CFDA 47.041) supports research on housing infrastructure adaptation in coastal communities exposed to natural hazards in a changing climate. The project, titled "CLIMA/COLLABORATIVE RESEARCH: RIDERS ON THE STORM: CLIMATE ADAPTATION OF HOUSING INFRASTRUCTURE FOR RESILIENT COMMUNITIES IN COASTAL CITIES," aims to develop a mathematical framework to analyze the interactions between...
- This three-year, $267,089 project grant from the National Science Foundation's Engineering program (CFDA 47.041) supports research at Stony Brook University to improve understanding and modeling of flood-borne debris impacts on coastal structures. Using computational fluid dynamics, computational solid mechanics, and laboratory experiments, the researchers will quantify critical mechanics processes involved in water-wind-debris-structure interactions. Specific tasks include innovative...
- This National Science Foundation (NSF) Project Grant, awarded under the Geosciences Program (CFDA 47.050), will support collaborative research to transform the understanding of how coastlines respond to shifts in storm climate patterns. The $893,081 award to Duke University, with a project period from August 2024 to July 2027, will develop new approaches to downscale global climate model outputs to forecast the waves and winds affecting specific coastlines, such as the Carolina coastline. This...
CAREER: OPEN-SOURCE GPU-ACCELERATED COMPUTATIONAL INFRASTRUCTURE FOR COASTAL FLUID-STRUCTURE INTERACTION IN EXTREME HYDRODYNAMIC CONDITIONS -THE AVAILABILITY OF WIDELY ACCESSIBLE SOFTWARE AND PROCEDURES FOR PREDICTING THE INTRICATE RESPONSE OF COASTAL STRUCTURES TO CLIMATE-INDUCED EXTREME HYDRODYNAMIC EVENTS IS PARAMOUNT FOR SUPPORTING THE DEVELOPMENT OF CLIMATE-RESILIENT COASTAL COMMUNITIES. HOWEVER, THE CURRENT SCIENTIFIC TOOLBOX FOR EVALUATING THE RESPONSE OF COASTAL STRUCTURAL SYSTEMS TO EXTREME HYDRODYNAMIC LOADS CONSISTS OF EMPIRICAL MODELS LACKING A SOLID THEORETICAL FOUNDATION, OUTDATED DESIGN CODES, AND OVERSIMPLIFIED NUMERICAL FRAMEWORKS THAT MISBEHAVE IN SCENARIOS BEYOND THEIR LIMITED SCOPE. THIS PROJECT AIMS TO ADDRESS THIS DEFICIENCY BY PIONEERING THE DEVELOPMENT OF NOVEL HIGH-FIDELITY, PHYSICS-BASED NUMERICAL METHODOLOGIES, AND OPEN-SOURCE, HIGH-PERFORMANCE COMPUTATIONAL SOFTWARE INFRASTRUCTURE FOR FLUID-STRUCTURE INTERACTION SIMULATION BETWEEN EXTREME HYDRODYNAMIC EVENTS AND COASTAL STRUCTURES. THIS RESEARCH ENABLES THE ADVANCEMENT OF KNOWLEDGE IN THE FIELD OF COASTAL CLIMATE RESILIENCE. IT ALIGNS WITH NSF'S COMMITMENT TO PROMOTING THE PROGRESS OF SCIENCE AND FACILITATING BREAKTHROUGHS IN CLIMATE CHANGE AND RESILIENCE. THE WIDE DISSEMINATION OF THE DEVELOPED COMPUTATIONAL TOOLS HOLDS THE POTENTIAL TO DELIVER SOCIETAL AND ECONOMIC BENEFITS BY ENABLING THE DESIGN OF MORE CLIMATE-RESILIENT COASTAL INFRASTRUCTURE. MOREOVER, IT HAS THE POTENTIAL TO IMPACT MULTIPLE SCIENTIFIC FIELDS THAT INVOLVE FLUID-STRUCTURE INTERACTION. INTEGRATED INTO THIS RESEARCH ARE SEVERAL EDUCATION AND OUTREACH ACTIVITIES THAT INVOLVE TRAINING HIGH-SCHOOL TEACHERS IN CLIMATE RESILIENCE ISSUES, ENGAGING DIVERSE STUDENT COHORTS IN PROJECT PARTICIPATION, AND ENHANCING THE CURRICULUM. THESE ACTIVITIES PROMOTE CLIMATE CHANGE AWARENESS, CULTIVATE INTERDISCIPLINARY AND COMPUTATIONAL THINKING, AND FOSTER DIVERSITY AND INCLUSION. THE TECHNICAL OBJECTIVE OF THIS PROJECT IS THE DEVELOPMENT OF HIGH-FIDELITY, PHYSICS-BASED COMPUTATIONAL TOOLS FOR COASTAL FLUID-STRUCTURE INTERACTION UNDER EXTREME HYDRODYNAMIC EVENTS. THESE TOOLS ADVANCE MATHEMATICAL METHODS, ALGORITHMS, AND COMPUTATIONAL SOFTWARE ON COASTAL CLIMATE RESILIENCE. SPECIFICALLY, THE PROJECT INTRODUCES THE FOLLOWING CYBERINFRASTRUCTURE INNOVATIONS. FIRST, IT EMPLOYS SMOOTHED PARTICLE HYDRODYNAMICS TO SIMULATE VIOLENT FREE-SURFACE FLOWS AND EXTREME STRUCTURAL DEFORMATIONS, INCLUDING FRAGMENTATION. THIS APPROACH DEPARTS FROM PREVIOUS NUMERICAL METHODS ON COASTAL FLUID-STRUCTURE INTERACTION THAT OFTEN RELIED ON MESH-BASED TECHNIQUES OR RIGID BODY ASSUMPTIONS TO REPRESENT SOLID STRUCTURES. FURTHERMORE, IT UTILIZES A NOVEL PRESSURE PROJECTION METHOD THAT FACILITATES AN EFFICIENT AND ACCURATE TWO-WAY COUPLING OF THE FLUID AND STRUCTURAL DOMAINS, LEADING TO HIGH PREDICTIVE ACCURACY. THE RESEARCH ALSO DELVES INTO ADVANCED NUMERICAL APPROACHES FOR MODELING STRUCTURAL DAMAGE AND FRACTURE. THESE INCLUDE PHASE-FIELD, PERIDYNAMICS, AND MICROPLANE MODELS, THAT RESULT IN ADVANCED NUMERICAL CAPABILITIES FOR SIMULATING STRUCTURAL FAILURE. IN ADDITION TO THESE COMPUTATIONAL DEVELOPMENTS, THE PROJECT USES WATER FLUME FACILITIES TO PROVIDE EXPERIMENTAL VALIDATION FOR THE DEVELOPED COMPUTATIONAL TOOLS. LASTLY, THE CULMINATION OF THESE COMPUTATIONAL AND MATHEMATICAL INNOVATIONS, ALONG WITH A SOPHISTICATED PRE-PROCESSING MODULE TAILORED TO CIVIL STRUCTURES, ARE COMBINED TO DEVELOP A GPU-ACCELERATED SOFTWARE PLATFORM MADE AVAILABLE TO THE RESEARCH COMMUNITY THROUGH OPEN-SOURCE CLOUD-BASED REPOSITORIES. 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 | ($368k) | 8/18/25 | ||
| Not listed | $499.5k | 11/20/23 |