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Researcher
- Ryan Dehoff
- Michael Kirka
- Stephen M Killough
- Vincent Paquit
- Adam Stevens
- Ahmed Hassen
- Alex Plotkowski
- Alice Perrin
- Amir K Ziabari
- Amit Shyam
- Andres Marquez Rossy
- Blane Fillingim
- Brian Post
- Bryan Maldonado Puente
- Callie Goetz
- Christopher Hobbs
- Christopher Ledford
- Clay Leach
- Corey Cooke
- David Nuttall
- Diana E Hun
- Eddie Lopez Honorato
- Fred List III
- James Haley
- Keith Carver
- Matt Kurley III
- Nolan Hayes
- Patxi Fernandez-Zelaia
- Peeyush Nandwana
- Peter Wang
- Philip Bingham
- Philip Boudreaux
- Rangasayee Kannan
- Richard Howard
- Rodney D Hunt
- Roger G Miller
- Ryan Heldt
- Ryan Kerekes
- Sally Ghanem
- Sarah Graham
- Singanallur Venkatakrishnan
- Sudarsanam Babu
- Thomas Butcher
- Tyler Gerczak
- Vipin Kumar
- Vlastimil Kunc
- William Peter
- Yan-Ru Lin
- Ying Yang
- Yukinori Yamamoto

A pressure burst feature has been designed and demonstrated for relieving potentially hazardous excess pressure within irradiation capsules used in the ORNL High Flux Isotope Reactor (HFIR).

Sintering additives to improve densification and microstructure control of UN provides a facile approach to producing high quality nuclear fuels.

High strength, oxidation resistant refractory alloys are difficult to fabricate for commercial use in extreme environments.

This invention utilizes new techniques in machine learning to accelerate the training of ML-based communication receivers.

The use of Fluidized Bed Chemical Vapor Deposition to coat particles or fibers is inherently slow and capital intensive, as it requires constant modifications to the equipment to account for changes in the characteristics of the substrates to be coated.

In manufacturing parts for industry using traditional molds and dies, about 70 percent to 80 percent of the time it takes to create a part is a result of a relatively slow cooling process.

Current technology for heating, ventilation, and air conditioning (HVAC) and other uses such as vending machines rely on refrigerants that have high global warming potential (GWP).

This technology combines 3D printing and compression molding to produce high-strength, low-porosity composite articles.