Project Grant 2339665
- Grant Award Summary The National Science Foundation's Division of Mathematical Sciences awarded a CAREER grant of $224,733 to the University of California, Davis, effective August 1, 2025, through July 31, 2030, under the Mathematical and Physical Sciences program (CFDA 47.049). This project grant supports fundamental research on boundary layers and hydrodynamic stability in viscous fluid flows governed by the Navier-Stokes equations. The investigator will develop systematic mathematical...
- The National Science Foundation's Engineering program (CFDA 47.041) awarded $316,858 to the University of Colorado on July 1, 2025, for a collaborative research project on passive laminar flow control via phononic subsurfaces (PSubs). The project, scheduled for completion on June 30, 2028, will develop architected material units designed to passively suppress flow instabilities and maintain laminar flow conditions on sea and air vehicle surfaces, thereby reducing drag and fuel consumption. The...
- This $585,000 five-year faculty early career development (CAREER) award from the National Science Foundation (NSF) Engineering program (CFDA 47.041) supports research to characterize turbulence and wind loads in urban environments. The goal is to advance fundamental understanding of turbulence behavior in densely populated areas and improve analytical models for predicting wind-loading on low-rise structures. The project will utilize wind tunnel experiments and computational fluid dynamics...
- This two-year, $400,138 project grant from the National Science Foundation Division of Chemical, Bioengineering, Environmental, and Transport Systems will fund research into instabilities in suspension flows. The University of Illinois will conduct laboratory experiments and apply existing theory to explore suspension flows in structured channels. Researchers will characterize the laminar steady state as a function of Reynolds number for specified particle sizes and volume fractions. They will...
- This Project Grant award from the National Science Foundation (NSF) Engineering Directorate (CFDA 47.041) provides $523,552 to the University of Texas at Austin to develop advanced computational models for simulating complex turbulent fluid flows. The research aims to create reliable, broadly applicable turbulence models for use in Large Eddy Simulation (LES) to enable more practical and accurate simulations across fields like aeronautics, propulsion, power generation, and wind energy. In...
- The National Science Foundation (NSF) Engineering program (CFDA 47.041) has awarded a $349,999 Project Grant to the University of Texas at Austin to develop reliable Reynolds Averaged Navier-Stokes (RANS) turbulence models that can generalize to complex turbulent flows. The objective is to improve the predictive capabilities of computational fluid dynamics simulations, which have applications in aerospace, automotive, power generation, and wind energy sectors. The approach involves developing...
- The University of Illinois was awarded a three-year, $355,159 Project Grant from the National Science Foundation Division of Chemical, Bioengineering, Environmental, and Transport Systems under the Engineering (47.041) federal grant program. The grant will fund research to uncover the self-sustaining cycle in the outer region of turbulent boundary layers. The University of Illinois will conduct the research from June 2021 through May 2024 in Urbana, Illinois. The goal of the NSF Engineering...
- This $173,392 two-year Project Grant from the National Science Foundation's Integrative Activities program (CFDA 47.083) supports research and training focused on developing predictive computational fluid dynamics models for flow control via anisotropic surface textures. The University of Mississippi awardee will collaborate with Stanford University's Center for Turbulence Research to generate unprecedented datasets of flows over movable microstructures and gain new understanding of nonlinear...
- This Project Grant award for $257,457 from the National Science Foundation (NSF) Division of Mathematical Sciences supports research by the University of Alabama at Birmingham (UAB) to investigate three key problems in fluid mechanics. The overarching objective is to utilize a novel mathematical framework developed by the Principal Investigator to study the spatial intermittency of turbulent flows, which is critical for understanding phenomena like vortex structures in turbulence. The three...
- This National Science Foundation Project Grant of $274,932 will fund research at Embry-Riddle Aeronautical University from July 2022 through June 2025 to understand interactions between hair-like microstructures and turbulent wall flows. The research will focus on characterizing the coupled dynamics between arrays of flexible micropillars and background turbulence using advanced multi-scale flow diagnostic tools. Insights gained from simultaneous measurements of micropillar motion and...
CAREER: TURBULENCE IN A RAPIDLY CHANGING WORLD -THE FLOW OF AIR OR WATER VERY NEAR THE SURFACE OF VEHICLES IS COMPLEX AND IS CRUCIAL TO THE PERFORMANCE OF A VEHICLE. THESE BOUNDARY LAYER FLOWS ARE A MAJOR SOURCE OF DRAG AND, ESPECIALLY DURING MANEUVERS, CONTROL HOW CLOSELY THE FLOW?S PATH FOLLOWS THE GEOMETRY OF THE VEHICLE, WHICH CAN DRAMATICALLY CHANGE THE FORCES THAT THE VEHICLE EXPERIENCES. WHILE SIGNIFICANT PRIOR WORK HAS BEEN DONE ON BOUNDARY LAYER FLOWS FOR LARGE VEHICLES UNDER CONSTANT WIND CONDITIONS, AND ON BOUNDARY LAYER FLOWS FOR VERY SMALL VEHICLES DURING UNSTEADY MANEUVERS, LITTLE WORK HAS BEEN DONE ON BOUNDARY LAYER FLOWS FOR LARGE VEHICLES UNDER UNSTEADY CONDITIONS. TO DESIGN AND SAFELY MANEUVER LARGE VEHICLES IN GUSTY OR WAVY CONDITIONS, MORE FUNDAMENTAL KNOWLEDGE IS NEEDED ABOUT HOW THEIR BOUNDARY LAYERS RESPOND TO ACCELERATIONS AND DECELERATIONS. THIS PROJECT CREATES NEW EXPERIMENTAL CAPABILITIES AND USES THOSE CAPABILITIES TO STUDY BOUNDARY LAYERS ACCELERATING AND DECELERATING TO FUNDAMENTALLY UNDERSTAND CHANGES IN BEHAVIOR DUE TO UNSTEADINESS. THE WORK WILL INTEGRATE THE FINDINGS INTO COURSES AT THE UNIVERSITY OF ILLINOIS URBANA-CHAMPAIGN AND WILL BENEFIT INCARCERATED STUDENTS AT THE DANVILLE CORRECTIONAL CENTER THROUGH A MATH TUTORING PROGRAM WITH THE EDUCATION JUSTICE PROJECT. THE PROJECT WILL ADVANCE KNOWLEDGE AND EXPERIMENTAL CAPABILITIES FOR ACCELERATING BOUNDARY LAYERS. THERE IS A THRESHOLD ON THE RATE OF FLOW ACCELERATION, BELOW WHICH THE FLOW CAN BE PREDICTED WITHOUT ACCOUNTING FOR THE ACCELERATION, AND ABOVE WHICH THE ACCELERATION QUALITATIVELY CHANGES THE PHYSICAL BEHAVIOR. THE PROJECT WILL QUANTIFY THAT THRESHOLD AND ITS DEPENDENCE ON FLOW PARAMETERS FOR THREE CONFIGURATIONS. THE FLOW RESPONDS DIFFERENTLY TO ACCELERATIONS AND DECELERATIONS AND THE PROJECT WILL QUANTIFY AND UNDERSTAND THESE DIFFERENT EFFECTS ON THE BOUNDARY LAYER. FINALLY, AFTER AN ACCELERATION THE FLOW RECOVERS TO A STEADY STATE; THE PROJECT WILL QUANTIFY THE NATURE OF THAT RECOVERY. TOGETHER, THE UNDERSTANDING AND OBSERVATION OF THRESHOLDS, HYSTERESIS, AND RECOVERY WILL FORM A BASIS FOR SCIENTIFIC UNDERSTANDING AND PREDICTION OF ACCELERATING TURBULENT BOUNDARY LAYERS. THE PROJECT WILL ALSO ADVANCE THE STATE-OF-THE-ART IN EXPERIMENTAL CAPABILITIES FOR STUDYING TEMPORALLY ACCELERATING BOUNDARY LAYERS. USING NOVEL, RAPIDLY RECONFIGURABLE GEOMETRIES THE PROJECT WILL GENERATE HIGH-REYNOLDS NUMBER, UNSTEADY FLOW CONDITIONS. SCIENTIFIC FINDINGS WILL BE SHARED AS PART OF A NATO ADVANCED VEHICLE TECHNOLOGIES WORKING GROUP. THE PROGRAM ALSO SUPPORTS THE FORMATION OF A TIERED MATH TEACHING PROGRAM AT DANVILLE CORRECTIONAL CENTER FOR INCARCERATED STUDENTS. 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 | $105.6k | 6/9/25 | ||
| Not listed | $410.4k | 11/28/23 |