Project Grant 2442297
- This National Science Foundation Project Grant award of $941,186 provides funding from February 15, 2022 through January 31, 2027 to support research and education activities focused on developing predictive computational models for fiber-reinforced silica aerogel composites used in building insulation components. Funded under the Engineering (47.041) program, the award will allow the awardee, the Research Foundation for the State University of New York on behalf of the State University of New...
- The National Science Foundation (NSF) awarded a $300,000 EAGER (Early-Concept Grants for Exploratory Research) project grant under CFDA 47.041 (Engineering) to the University of Texas at Austin. The objective of this 2-year research effort, which commenced on May 1, 2024, is to develop a new class of porous nanolattice coatings with ultra-low thermal conductivity and low solar absorption. These advanced materials are essential for long-duration storage of high-temperature solar and industrial...
- This $452,715 Project Grant award from the National Science Foundation (NSF) Engineering program (CFDA 47.041) supports the development of 3D architectures that embed porous gas adsorbent materials inside high thermal conductivity substrates. The goal is to improve thermal control and enhance gas sorption performance for applications such as air purification, carbon capture, molecular sensing, gas separations, and catalysis. The key research objectives include developing methodologies to...
- This three-year, $141,442 National Science Foundation project grant supports research at William Marsh Rice University to experimentally and numerically study oscillating multiphase flows and heat transfer in porous media. The research aims to improve understanding of these phenomena to enhance energy technologies like geothermal systems, carbon storage, batteries, and hydraulic fracturing. The university will develop experimental platforms using neutron imaging at Oak Ridge National...
- The National Science Foundation awarded a $410,808 CAREER grant to the Trustees of the Stevens Institute of Technology to develop advanced mathematical and computational models for improving the accuracy, speed, and applicability of radiation heat transfer estimations in complex porous media. The 5-year project (1/1/2024 - 12/31/2028) aims to establish a novel analytical framework that combines abstraction models representing macro-scale configurations with regression models based on...
- This $383,762 Project Grant, awarded by the National Science Foundation's Division of Chemical, Bioengineering, Environmental, and Transport Systems under the Engineering program (CFDA 47.041), supports a CAREER award at the University of Illinois focused on advancing nanoscale radiative heat transfer research. The four-year project, which commenced July 1, 2025 and concludes June 30, 2029, will deliver a novel experimental technique enabling the study of near-field radiative heat transfer...
- The National Science Foundation awarded Aeroshield Materials Inc. a $256,000 Project Grant under the Engineering federal grant program (CFDA 47.041) for the period of February 15, 2021 through March 31, 2022. The grant funds the "SBIR PHASE I: DEFECT-FREE MANUFACTURING OF ULTRA-CLEAR MONOLITHIC SILICA AEROGELS FOR INSULATED GLASS UNITS" project. Aeroshield Materials Inc. will develop manufacturing techniques to produce ultra-clear monolithic silica aerogels for use in insulated glass...
- This Project Grant award from the National Science Foundation's (NSF) Integrative Activities program (CFDA 47.083) provides $1,452,420 to Prairie View A&M University to investigate the unique thermo-physical behaviors of ferro-nanofluids and how external magnetic fields influence their properties like thermal conductivity, viscosity, and heat transfer. The research aims to uncover the underlying mechanisms that cause the anomalous transport behaviors observed in these fluids, which have...
- The National Science Foundation (NSF) awarded a $1,000,000 Project Grant under the Engineering program (CFDA 47.041) to the University of California, Los Angeles (UCLA) to enable the synthesis, characterization, and demonstration of new classes of mesoporous photonic metamaterials. The goal is to achieve highly tailored control of spectral emissivity over infrared wavelengths in order to more effectively manage radiative heat transfer in building environments and improve energy efficiency. Key...
- This $234,696 National Science Foundation Project Grant, funded through the Engineering program (CFDA 47.041), will support research into cross-plane heat conduction in two-dimensional materials under large compressive strain. Over a two-year period from June 2022 to May 2025, researchers at the University of Nevada, Reno will conduct experimental and computational studies of heat transfer across layers in three material systems - pristine MoS2, twisted MoS2, and graphite - under high...
CAREER: MULTISCALE CHARACTERIZATION OF HEAT TRANSFER IN NANOPOROUS MATERIALS ASSISTED BY MACHINE LEARNING -AEROGELS ARE NANOPOROUS MATERIALS COMPOSED MOSTLY OF AIR TRAPPED INSIDE A WEB-LIKE NANOPOROUS STRUCTURE. THESE MATERIALS HAVE A VERY LOW THERMAL CONDUCTIVITY, WHICH MAKES THEM POTENTIALLY USEFUL IN THERMAL INSULATION APPLICATIONS. IMPROVED MATERIALS FOR THERMAL INSULATION COULD LEAD TO SIGNIFICANT ENERGY SAVINGS IN THE US. HOWEVER, THE COMPLEXITY OF AEROGELS AT THE NANOSCALE PRESENTS CHALLENGES TO DESCRIBING AND MANIPULATING HEAT TRANSFER INSIDE THE MATERIAL, WHICH COULD LIMIT ITS POTENTIAL USE IN PRACTICE. THIS PROJECT WILL USE COMPUTATIONAL SIMULATIONS TO BETTER UNDERSTAND THE RELATIONSHIPS BETWEEN THE STRUCTURE OF AEROGELS AND THEIR PHYSICAL PROPERTIES, WHICH COULD PROVIDE DESIGNERS WITH KNOWLEDGE TO OPTIMIZE THEIR BEHAVIOR. RESULTS FROM THE PROJECT WILL YIELD DIRECT ECONOMIC BENEFITS SUCH AS ENERGY-EFFICIENT NANOMATERIALS, AS WELL AS SOCIETAL BENEFITS IN AGRICULTURAL, ENVIRONMENTAL, AND HEALTHCARE APPLICATIONS. EDUCATIONAL ACTIVITIES SUPPORTED BY THE PROJECT WILL RAISE NANOTECHNOLOGY AWARENESS ACROSS EDUCATIONAL LEVELS AND HELP EXPAND THE FUTURE SCIENCE AND ENGINEERING WORKFORCE. AEROGELS' PROPERTIES, SUCH AS PORE SIZE, POROSITY, AND SOLID-NETWORK, CAN BE TAILORED DURING SYNTHESIS, BUT PREDICTING THE RESULTING HEAT TRANSFER BEHAVIOR IS CHALLENGING DUE TO THE NANOSCALE SIZE OF THE POROUS SYSTEM AND THE SOLID SKELETON. CURRENT THEORIES FAIL TO EXPLAIN NANOSCALE HEAT TRANSFER ACCURATELY, AND EXPERIMENTAL METHODS LACK PRECISE STRUCTURE-PROPERTY CORRELATION. TO ADDRESS THIS KNOWLEDGE GAP, THIS PROJECT WILL PROVIDE A DETAILED CHARACTERIZATION OF TRUE NANOSCALE HEAT TRANSFER BEHAVIOR AS A FUNCTION OF CORRESPONDING PHYSICAL PARAMETERS. THE PORE-LEVEL INTERFACIAL AND NANOSCOPIC TRANSPORT MECHANISMS CONTRIBUTING TO AEROGEL HEAT TRANSFER WILL BE RESOLVED TO OBTAIN A MULTI-SCALE STRUCTURE-PROPERTY CORRELATION FOR AEROGEL DESIGN, ASSISTED BY MACHINE LEARNING. AN ACCURATE DESCRIPTION OF NANOSCALE HEAT TRANSFER MECHANISMS REQUIRES MOLECULAR-LEVEL CALCULATIONS. TO ADDRESS THIS, MOLECULAR DYNAMICS SIMULATIONS WILL BE USED TO ACCURATELY MODEL SOLID AND GAS CONDUCTION AND THEIR COMBINED EFFECTIVE BEHAVIOR, CONSIDERING NANOSCALE MECHANISM. THIS PROJECT WILL ADVANCE KNOWLEDGE ON HEAT TRANSFER BEHAVIOR OF (I) COMPLEX SOLID NANO-NETWORKS WITH STRUCTURAL CHARACTERIZATION, (II) NANO-CONFINED GASES UNDER MOLECULAR SURFACE EFFECTS WITH RAREFACTION CHARACTERIZATION, AND (III) GAS/SOLID INTERFACES. UNLIKE EXISTING LIMITED MACHINE LEARNING STUDIES THAT SUFFER FROM INSUFFICIENT MULTISCALE DATA AND RELATED PHYSICAL DESCRIPTIONS AT THE MOLECULAR-LEVEL, THIS PROJECT WILL USE A NOVEL BOTTOM-UP APPROACH TO TRAIN MACHINE LEARNING ALGORITHMS USING MOLECULAR PORE-LEVEL CALCULATIONS FOR STRUCTURE-PROPERTY PREDICTIONS. 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 | $501.8k | 6/4/25 |