Novel design and diagnostics improvements for increased production capacity and improved reliability at the Los Alamos Isotope Production Facility

The Isotope Production Facility (IPF) at Los Alamos National Laboratory (LANL) is used to produce an array of isotopes for medical, global security, and research applications with an intense beam of protons supplied by the linear accelerator at the Los Alamos Neutron Science Center (LANSCE). An Acce...

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Veröffentlicht in:Nuclear instruments & methods in physics research. Section A, Accelerators, spectrometers, detectors and associated equipment Accelerators, spectrometers, detectors and associated equipment, 2019-12, Vol.956 (C)
Hauptverfasser: O’Brien, Ellen Margaret, Baily, Scott A., Birnbaum, Eva R., Chapman, Catherine A. B., Espinoza, Everett A., Faucett, John Allen, Hill, Jeffrey Owen, John, Kevin Dale, Marroquin, Pilar Sotero, McCrady, Rodney Craig, Norman, Deborah E., Nortier, Francois Meiring, O’Hara, James Francis, Olivas, Eric Richard, Patten, Austin Randall, Pieck, Martin, Rybarcyk, Lawrence John, Snyder, Joseph Frank, Swensen, Erik Arnold, Valicenti, Raymond A., Vermeulen, Christiaan, Watkins, Heath Andrew, Woloshun, Keith Albert
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Sprache:eng
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Zusammenfassung:The Isotope Production Facility (IPF) at Los Alamos National Laboratory (LANL) is used to produce an array of isotopes for medical, global security, and research applications with an intense beam of protons supplied by the linear accelerator at the Los Alamos Neutron Science Center (LANSCE). An Accelerator Improvement Project (AIP) was recently conducted at IPF to improve facility reliability and reduce programmatic risk while increasing general isotope production capacity and flexibility. This was accomplished through the installation of an improved beam window assembly, more robust beam diagnostics, an active and adjustable collimator, and a new beam rastering system. This paper will highlight the four exciting innovations and how they were designed, validated, and installed in parallel as well as the significant operational advantages they provide to IPF. Key experiments and the increased currents achieved in routine production runs demonstrating the enhanced capability from the AIP will be presented. As a result, the most notable capability enhancements include irradiations with beam currents ranging from 100 nA experimental runs up to 300 μA on routine production targets and utilization of a range of cylindrical target diameters.
ISSN:0168-9002
1872-9576