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Search indexed NASA NTRS and DOE OSTI research on propulsion, heat transfer, battery materials and energy systems. Follow report and document links to the original sources.
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Fabrication and testing of battery separator material for the Jet Propulsion Laboratory
Fabrication and testing of polyethylene battery separator material
Analysis of Surveyor 3 Material and Photographs Returned By Apollo 12
Postflight analysis of parts from Surveyor 3 spacecraft, lunar material, and photographs brought back on Apollo 12 flight
Advanced Materials and Processing Research Directorate
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Characterization of Aluminum-based Materials and Parts Fabricated by MELD
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Versatile Smart Optics Material (SOM) Characterization System
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Multiscale Modeling of Fracture Strength in Fibrous Thermal Protection System Materials
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PAL 2.0: a physics-driven bayesian optimization framework for material discovery
PAL 2.0 provides an efficient discovery tool for advanced functional materials, ameliorating a major bottleneck to enabling advances in next-generation energy, health, and sustainability technologies.
Development and Transition of a Computational Materials Framework to Support Qualification of Additively Manufactured Components
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Integrated Approach to Post-Irradiation Examination of Nuclear Materials at Idaho National Laboratory
Idaho national Laboratory (INL) is the U.S. lead national laboratory for the Department of Energy’s Office of Nuclear Energy (DOE-NE), providing much of the nuclear research, development and demonstration capability needed to move nuclear innovation forward to deployment. INL’s Materials and Fuels Complex hosts a unique combination of personnel, facilities and infrastructure and offers the ability to perform post-irradiation examinations (PIE) of nuclear materials spanning multiple length scales. The ability to combine engineering-scale analysis and sub-microscopic characterization provides valuable insights into fuel and structural material behavior and degradation mechanisms. The holistic approach is used to accelerate these materials demonstration and deployment. Selected studies will be presented, highlighting the impact of these techniques on improving fuel reliability, safety, and efficiency, thereby advancing the development of sustainable and advanced nuclear energy technologies.
Development of battery separator material process Mid-program report
Heat sterilizable battery separator material prepared from low-density polyethylene film
Machine learning-assisted 3D printing of thermoelectric materials of ultrahigh performances at room temperature
Optimizedviamachine learning, extrusion printed thermoelectric materials (BiSbTe) achieve an ultrahighzTof 1.3 at room temperature.
Empirical Model Development for Predicting Shock Response on Composite Materials Subjected to Pyroshock Loading
No abstract available
Silver-Zinc Battery Separator Material Development
Ethylene/acrylic acid separators for silver zinc battery applications
Optoelectronic Characterization of WBG and UWBG Material-based PCSS
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Uniaxial stress effect on the electronic structure of quantum materials
Uniaxial stress has proven to be a powerful experimental tuning parameter for effectively controlling lattice, charge, orbital, and spin degrees of freedom in quantum materials. In addition, its ability to manipulate the symmetry of materials has garnered significant attention. Recent technical progress to combine uniaxial stress cells with quantum oscillation and angle-resolved photoemission techniques allowed to study the electronic structure as function of uniaxial stress. This review provides an overview on experimental advancements in methods and examines studies on diverse quantum materials, encompassing the semimetal WTe2, the unconventional superconductor Sr2RuO4, Fe-based superconductors, and topological materials.
Silver-Zinc Battery Separator Material Development
Ethylene/methyl acrylate copolymer synthesis for silver-zinc battery separators
Coupling Modeling with Experimentation for Aerospace Materials Development
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