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Enabling a Multi-Purpose High-Energy Neutron Source Based on High-Current Compact Cyclotrons

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arxiv 2302.09011 v2 pith:S7TOS6PJ submitted 2023-02-17 physics.acc-ph

classification physics.acc-ph
keywords sourcefusionneedneutroncompacthigh-energytechnologybeen
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The current and future need for high-energy neutrons has been a subject of increasing discussion and concern. Immediate applications for such an intense neutron source include medical isotope production, high-energy physics (HEP) research, and for materials development and to support qualification for fission reactors. Also, and of the utmost importance, is the need for such a source to inform critical gaps in our understanding of the transmutation materials science issues facing fusion power reactors. A 14 MeV fusion prototypical neutron source (FPNS) has been a critical, yet unresolved need of the fusion program for more than 40 years. Given the narrowing timeline for construction of pilot and fusion power plants the urgency and necessity of such a neutron source has become increasingly time sensitive. One possibility to address this need is a scaled-down version of IFMIF technology ("IFMIF-Lite"), operating at 125 mA with the beam and target technology leveraging technology developed under the IFMIF/EVEDA program. Within this white paper, a blueprint of necessary R&D to enable a transformational change in both the capital and operating cost of this IFMIF-Lite driver concept is presented. Enabling this transformation is the replacement of the historic RFQ/LINAC components with multiple compact 35+ MeV D+ drivers, based on compact cyclotrons.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. The MIST-1 and MIST-2 multicusp ion sources for high-current H$_2^+$ beams

    physics.acc-ph 2025-07 conditional novelty 5.0 of 10

    MIST-2, a new multicusp H2+ ion source, achieved about 7 mA total current in first tests, doubling MIST-1's output, but its H2+ fraction is only estimated at about 60%.

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