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Researcher
- Ying Yang
- Venugopal K Varma
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- Costas Tsouris
- Edgar Lara-Curzio
- Hongbin Sun
- Mahabir Bhandari
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- Gs Jung
- Gyoung Gug Jang
- Hsin Wang
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- Ilias Belharouak
- Isaac Sikkema
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- Joanna Mcfarlane
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- Joseph Olatt
- Keith Carver
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- Marie Romedenne
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- Mingyan Li
- Nate See
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- Sam Hollifield
- Sergey Smolentsev
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- Sunyong Kwon
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- Tim Graening Seibert
- Tyler Gerczak
- Ugur Mertyurek
- Vandana Rallabandi
- Vishaldeep Sharma
- Vittorio Badalassi
- Weicheng Zhong
- Wei Tang
- Xiang Chen
- Yan-Ru Lin

High-gradient magnetic filtration (HGMF) is a non-destructive separation technique that captures magnetic constituents from a matrix containing other non-magnetic species. One characteristic that actinide metals share across much of the group is that they are magnetic.

The invented alloys are a new family of Al-Mg alloys. This new family of Al-based alloys demonstrate an excellent ductility (10 ± 2 % elongation) despite the high content of impurities commonly observed in recycled aluminum.

The invention presented here addresses key challenges associated with counterfeit refrigerants by ensuring safety, maintaining system performance, supporting environmental compliance, and mitigating health and legal risks.

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).

V-Cr-Ti alloys have been proposed as candidate structural materials in fusion reactor blanket concepts with operation temperatures greater than that for reduced activation ferritic martensitic steels (RAFMs).

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

With the ever-growing reliance on batteries, the need for the chemicals and materials to produce these batteries is also growing accordingly. One area of critical concern is the need for high quality graphite to ensure adequate energy storage capacity and battery stability.

Test facilities to evaluate materials compatibility in hydrogen are abundant for high pressure and low temperature (<100C).

A novel approach is presented herein to improve time to onset of natural convection stemming from fuel element porosity during a failure mode of a nuclear reactor.

Fusion reactors need efficient systems to create tritium fuel and handle intense heat and radiation. Traditional liquid metal systems face challenges like high pressure losses and material breakdown in strong magnetic fields.