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DOE OSTI · 3024134

Nontraditional Sensors for Aqueous Separation Research & Workforce Development

Abstract

Idaho National Laboratory’s (INL) nuclear fuel cycle capabilities enable the deployment of technologies that sustain the current reactor fleet, support demonstration and deployment of new advanced reactors, and facilitate management and disposition of existing and future radiological waste materials. INL focuses on deploying nuclear energy systems with confidence by decreasing proliferation risk through research that demonstrates process transparency and supports safeguards and security by design. An example of these capabilities is the Beartooth test bed, set to begin operations toward the end of fiscal year 2026. Beartooth will include a cascade of centrifugal contactors, glove box lines, and solidification and dissolution equipment to aid in the progression of novel separation techniques and to provide hands-on experience to cultivate and maintain a robust workforce of experts. To support Beartooth’s enhanced instrumentation and monitoring equipment needs, several nontraditional sensors are being considered for future deployment. The non-traditional sensors include accelerometers, acoustic microphones, and infrared cameras. These nontraditional sensors have the potential to not only help monitor the process but also enhance nuclear safeguards.

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BibTeXRIS

Ocampo Giraldo, Luis A, Cardenas, Edna S, Hix, Jay D, Johnson, James T, Walker, Cody McBroom, Lyon, Kevin L. 2024-11-21. Nontraditional Sensors for Aqueous Separation Research & Workforce Development. https://www.osti.gov/biblio/3024134

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