Advancing Tritium Self-Sufficiency in Fusion Power Plants: Insights from the BABY Experiment

Fuente: arXiv
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Main Authors: Delaporte-Mathurin, Remi, Goles, Nikola, Ball, John, Dunn, Collin, Edwards, Emily, Ferry, Sara, Lamere, Edward, Lanzrath, Andrew, Leccacorvi, Rick, Meschini, Samuele, Peterson, Ethan, Segantin, Stefano, Vieira, Rui, Whyte, Dennis, Zhou, Weiyue, Woller, Kevin
Format: Preprint
Published: 2024
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author Delaporte-Mathurin, Remi
Goles, Nikola
Ball, John
Dunn, Collin
Edwards, Emily
Ferry, Sara
Lamere, Edward
Lanzrath, Andrew
Leccacorvi, Rick
Meschini, Samuele
Peterson, Ethan
Segantin, Stefano
Vieira, Rui
Whyte, Dennis
Zhou, Weiyue
Woller, Kevin
author_facet Delaporte-Mathurin, Remi
Goles, Nikola
Ball, John
Dunn, Collin
Edwards, Emily
Ferry, Sara
Lamere, Edward
Lanzrath, Andrew
Leccacorvi, Rick
Meschini, Samuele
Peterson, Ethan
Segantin, Stefano
Vieira, Rui
Whyte, Dennis
Zhou, Weiyue
Woller, Kevin
contents In the pursuit of fusion power, achieving tritium self-sufficiency stands as a pivotal challenge. Tritium breeding within molten salts is a critical aspect of next-generation fusion reactors, yet experimental measurements of \gls{tbr} have remained elusive. Here we present the results of the \gls{baby} experiment, which represents a pioneering effort in tritium research by utilizing high-energy (\SI{14}{\mega\electronvolt}) neutron irradiation of molten salts, a departure from conventional low-energy neutron approaches. Using a small-scale (\SI{100}{\milli\litre}) molten salt tritium breeding setup, we not only simulated, but also directly measured a \gls{tbr}. This innovative approach provides crucial experimental validation, offering insights unattainable through simulation alone. Moreover, our findings reveal a surprising outcome: tritium was predominantly collected as HT, contrary to the expected TF. This underscores the complexity of tritium behavior in molten salts, highlighting the need for further investigation. This work lays the foundation for a more sophisticated experimental setup, including increasing the volume of the breeder, enhancing neutron detection, and refining tritium collection systems. Such improvements are crucial for advancing our understanding of fusion reactor feasibility and paving the way for future experiments.
format Preprint
id arxiv_https___arxiv_org_abs_2412_02721
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Advancing Tritium Self-Sufficiency in Fusion Power Plants: Insights from the BABY Experiment
Delaporte-Mathurin, Remi
Goles, Nikola
Ball, John
Dunn, Collin
Edwards, Emily
Ferry, Sara
Lamere, Edward
Lanzrath, Andrew
Leccacorvi, Rick
Meschini, Samuele
Peterson, Ethan
Segantin, Stefano
Vieira, Rui
Whyte, Dennis
Zhou, Weiyue
Woller, Kevin
Plasma Physics
Nuclear Experiment
In the pursuit of fusion power, achieving tritium self-sufficiency stands as a pivotal challenge. Tritium breeding within molten salts is a critical aspect of next-generation fusion reactors, yet experimental measurements of \gls{tbr} have remained elusive. Here we present the results of the \gls{baby} experiment, which represents a pioneering effort in tritium research by utilizing high-energy (\SI{14}{\mega\electronvolt}) neutron irradiation of molten salts, a departure from conventional low-energy neutron approaches. Using a small-scale (\SI{100}{\milli\litre}) molten salt tritium breeding setup, we not only simulated, but also directly measured a \gls{tbr}. This innovative approach provides crucial experimental validation, offering insights unattainable through simulation alone. Moreover, our findings reveal a surprising outcome: tritium was predominantly collected as HT, contrary to the expected TF. This underscores the complexity of tritium behavior in molten salts, highlighting the need for further investigation. This work lays the foundation for a more sophisticated experimental setup, including increasing the volume of the breeder, enhancing neutron detection, and refining tritium collection systems. Such improvements are crucial for advancing our understanding of fusion reactor feasibility and paving the way for future experiments.
title Advancing Tritium Self-Sufficiency in Fusion Power Plants: Insights from the BABY Experiment
topic Plasma Physics
Nuclear Experiment
url https://arxiv.org/abs/2412.02721