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Researcher
- Chris Tyler
- Corson Cramer
- Steve Bullock
- Justin West
- Ritin Mathews
- Greg Larsen
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- David Olvera Trejo
- J.R. R Matheson
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- Akash Jag Prasad
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- Richard Howard
- Rodney D Hunt
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- Sana Elyas
- Steven Guzorek
- Thomas Butcher
- Tomonori Saito
- Tony Beard
- Tony L Schmitz
- Tyler Gerczak
- Vladimir Orlyanchik

The technologies provide additively manufactured thermal protection system.

System and method for part porosity monitoring of additively manufactured components using machining
In additive manufacturing, choice of process parameters for a given material and geometry can result in porosities in the build volume, which can result in scrap.

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 invention focuses on improving the ceramic yield of preceramic polymers by tuning the crosslinking process that occurs during vat photopolymerization (VP).

Distortion generated during additive manufacturing of metallic components affect the build as well as the baseplate geometries. These distortions are significant enough to disqualify components for functional purposes.

For additive manufacturing of large-scale parts, significant distortion can result from residual stresses during deposition and cooling. This can result in part scraps if the final part geometry is not contained in the additively manufactured preform.

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

In additive manufacturing large stresses are induced in the build plate and part interface. A result of these stresses are deformations in the build plate and final component.

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