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Researcher
- Brian Post
- Peter Wang
- Andrzej Nycz
- Blane Fillingim
- Chris Masuo
- Sudarsanam Babu
- Thomas Feldhausen
- Ahmed Hassen
- Anees Alnajjar
- J.R. R Matheson
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- Lauren Heinrich
- Peeyush Nandwana
- Yousub Lee
- Adam Stevens
- Alex Roschli
- Amit Shyam
- Brian Gibson
- Callie Goetz
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- Christopher Fancher
- Christopher Hobbs
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- Liam White
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- Mariam Kiran
- Matt Kurley III
- Michael Borish
- Nageswara Rao
- Rangasayee Kannan
- Richard Howard
- Ritin Mathews
- Rodney D Hunt
- Roger G Miller
- Ryan Dehoff
- Ryan Heldt
- Sarah Graham
- Scott Smith
- Sheng Dai
- Steven Guzorek
- Thomas Butcher
- Tyler Gerczak
- Vlastimil Kunc
- William Carter
- William Peter
- Yukinori Yamamoto

Here we present a solution for practically demonstrating path-aware routing and visualizing a self-driving network.

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).

This manufacturing method uses multifunctional materials distributed volumetrically to generate a stiffness-based architecture, where continuous surfaces can be created from flat, rapidly produced geometries.

The lack of real-time insights into how materials evolve during laser powder bed fusion has limited the adoption by inhibiting part qualification. The developed approach provides key data needed to fabricate born qualified parts.

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

A valve solution that prevents cross contamination while allowing for blocking multiple channels at once using only one actuator.

Electrochemistry synthesis and characterization testing typically occurs manually at a research facility.

Materials produced via additive manufacturing, or 3D printing, can experience significant residual stress, distortion and cracking, negatively impacting the manufacturing process.

This work seeks to alter the interface condition through thermal history modification, deposition energy density, and interface surface preparation to prevent interface cracking.

Additive manufacturing (AM) enables the incremental buildup of monolithic components with a variety of materials, and material deposition locations.