Project Grant 2238705
- 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...
- This $402,712 Project Grant award from the National Science Foundation's Engineering program (CFDA 47.041) is funding a research project at the University of Missouri System to enhance the efficiency and reliability of calcium-based thermochemical energy storage systems. The goal is to improve the understanding of particle behavior and system dynamics in these energy storage technologies, which are critical for advancing renewable energy integration and ensuring a stable energy supply. The...
- The National Science Foundation awarded $168,062 under its Integrative Activities program to Mississippi State University for the project "UNDERSTANDING REACTION-TRANSPORT COUPLING IN HIGH-TEMPERATURE THERMOCHEMICAL ENERGY STORAGE SYSTEMS." The goal of the project is to enhance understanding of reaction-transport coupling in high-temperature thermo-chemical energy storage systems. The Integrative Activities program aims to enhance competitiveness in science and engineering through...
- This National Science Foundation (NSF) Faculty Early Career Development (CAREER) award provides $500,000 over 5 years to the New Jersey Institute of Technology (NJIT) to conduct research, education, and outreach activities in the Engineering program (CFDA 47.041). The project aims to gain fundamental knowledge about the interrelated electrical, chemical, and mechanical behaviors of multiscale active materials for next-generation energy storage applications. Key objectives include studying...
- This National Science Foundation (NSF) Technology, Innovation, and Partnerships (CFDA 47.084) Project Grant award provides $274,723 to Earthen Energy Inc. for the development of a Packed Bed Thermal Energy Storage (PB-TES) system using supercritical carbon dioxide (sCO2) as the heat transfer fluid. The project aims to create a scalable, cost-effective energy storage solution to improve grid stability and enable greater integration of renewable energy sources like wind and solar. Key objectives...
- This Project Grant award from the National Science Foundation (NSF) Engineering program (CFDA 47.041) is funding a $515,926 project led by the University of North Carolina at Charlotte (UNC Charlotte) to develop a comprehensive understanding of how defect-engineered phonon localization and delocalization impacts ion transport in ionic-conducting superlattices. The project aims to combine multiscale structural and transport simulations to bridge the gap between thermal transport and solid-state...
- This $1,600,000 Project Grant award from the National Science Foundation's (NSF) Mathematical and Physical Sciences (CFDA 47.049) program supports collaborative research to develop advanced polymer salogels (polymer gels in inorganic salt hydrates) for thermal energy storage and regulation applications. The research team from Texas A&M Engineering Experiment Station (Tees) aims to address challenges with the fluidity and leakage of inorganic salt hydrates during thermal cycling by using...
- 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 $299,999 federal Project Grant was awarded by the National Science Foundation (NSF) under the Engineering program (CFDA 47.041) to Northwestern University. The grant aims to develop experimental and theoretical knowledge on the performance and impacts of using geothermal structures like building basements, parking garages, and metro stations as thermal batteries for renewable energy storage. This novel approach could enable the widespread decarbonization of buildings and infrastructure...
- This National Science Foundation (NSF) Integrative Activities (CFDA 47.083) project grant award of $292,402 to the University of Oklahoma aims to advance the state-of-the-art in energy storage systems by promoting the understanding of emerging solid-state battery (SSB) technology. The project will develop a holistic multiphysics model to investigate functional connections across different scales in SSB systems, advance nonlinear control theory to safely steer the SSB system, and conduct...
CAREER: NONEQUILIBRIUM EFFECTS IN THERMOCHEMICAL ENERGY STORAGE: LINKING MICROSTRUCTURE TO THERMAL TRANSPORT -DECARBONIZATION OF THE BUILDINGS SECTOR, WHICH CONSUMES OVER A THIRD OF THE PRIMARY ENERGY IN THE UNITED STATES, IS ESSENTIAL TO MEET CLIMATE AND SUSTAINABILITY GOALS. THERMAL LOADS (E.G., SPACE HEATING AND HOT WATER) ACCOUNT FOR A LARGE PORTION OF BUILDING ENERGY USE, AND THIS CAN BE SATISFIED USING A THERMAL BATTERY THAT STORES HEAT TO MATCH DEMAND WITH SUPPLY. AMONG THE DIFFERENT STORAGE MATERIALS, THERMOCHEMICAL SALTS ARE PROMISING FOR STORING RENEWABLE ENERGY AS HEAT AS THEY UNDERGO REVERSIBLE DEHYDRATION-HYDRATION REACTIONS WITH A HIGHER ENERGY DENSITY COMPARED TO PHASE CHANGE OR SENSIBLE STORAGE. HOWEVER, THESE SALT HYDRATES EXPERIENCE STRUCTURAL CHANGES (I.E., MECHANICAL STRESS) AND HYGROTHERMAL INSTABILITIES (E.G., MELTING AND DISSOLUTION) THAT REDUCE THEIR ENERGY DENSITY DURING CYCLING OF THE BATTERY (CHARGE-DISCHARGE). TO THIS END, THE OVERALL RESEARCH GOAL OF THIS PROJECT IS TO PROVIDE A MECHANISTIC UNDERSTANDING OF THE KEY FACTORS GOVERNING THERMOCHEMICAL PHASE TRANSITIONS AND ITS IMPACT ON COUPLED HEAT-AND-MASS TRANSPORT. THIS FUNDAMENTAL KNOWLEDGE WILL ENABLE THE DEVELOPMENT OF REVERSIBLE THERMAL BATTERIES WITH LONG-TERM STABILITY, WHILE TRAINING GRADUATE AND UNDERGRADUATE STUDENTS AT THE INTERSECTION OF MATERIALS AND THERMAL SCIENCE. THE EDUCATIONAL GOAL OF THIS PROJECT IS TO PROVIDE INTERDISCIPLINARY AND EXPERIENTIAL LEARNING OPPORTUNITIES FOR TRADITIONALLY UNDERREPRESENTED STUDENTS IN STEM, AS WELL AS CURRICULUM DEVELOPMENT FOR TEACHERS TO INCREASE LITERACY ABOUT ENERGY STORAGE BROADLY. TO BRIDGE OUR UNDERSTANDING OF THERMOCHEMICAL REACTIONS ACROSS DIFFERENT LENGTH (MOLECULAR, MICRO, AND MACRO) AND TIMESCALES (CHEMICAL REACTION VS. DIFFUSION), THREE RESEARCH OBJECTIVES WILL BE PURSUED: (I) ELUCIDATING THE KINETIC LIMITATIONS ON TRANSPORT USING IN SITU THERMAL ANALYSIS AT DIFFERENT TEMPERATURES AND VAPOR PRESSURES, (II) CORRELATING REACTION REVERSIBILITY WITH STRUCTURAL STABILITY, AND DESIGNING COMPOSITE MATERIALS THAT FACILITATE THERMAL CYCLING, AND (III) DEVELOPING A TRANSIENT AND MULTISCALE MODEL FOR COUPLED THERMAL-FLUID TRANSPORT IN POROUS MEDIA TO PREDICT ENERGY AND POWER DENSITY. THESE OBJECTIVES WILL BE PURSUED IN TANDEM WITH TWO EDUCATION AND OUTREACH EFFORTS TARGETED AT BROADENING AND DEEPENING PARTICIPATION IN STEM: (IV) RECRUITING A DIVERSE POOL OF HIGH SCHOOL STUDENTS AND ESTABLISHING ENGINEERING EDUCATION FOR TEACHERS, AND (V) ENGAGING FIRST GENERATION COLLEGE STUDENTS IN INTERDISCIPLINARY RESEARCH. OVERALL, THIS APPROACH WILL REVEAL STRUCTURE-PROPERTY RELATIONSHIPS UNDER REALISTIC CONDITIONS, WHICH WILL HELP ADDRESS LONG-STANDING QUESTIONS ABOUT THE ENERGY DENSITY AND CYCLABILITY OF SALT HYDRATES FOR THERMAL ENERGY STORAGE. 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 | $130.2k | 6/26/25 | ||
| Not listed | $477.1k | 1/6/23 |