Journalartikel

Design, construction and cooling system performance of a prototype cryogenic stopping cell for the Super-FRS at FAIR


AutorenlisteRanjan, M.; Dendooven, P.; Purushothaman, S.; Dickel, T.; Reiter, M. P.; Ayet, S.; Haettner, E.; Moore, I. D.; Kalantar-Nayestanaki, N.; Geissel, H.; Plass, W. R.; Schaefer, D.; Scheidenberger, C.; Schreuder, F.; Timersma, H.; Van de Walle, J.; Weick, H.

Jahr der Veröffentlichung2015

Seiten87-97

ZeitschriftNuclear Instruments and Methods in Physics Research. Section A: Accelerators, Spectrometers, Detectors and Associated Equipment

Bandnummer770

ISSN0168-9002

eISSN1872-9576

Open Access StatusGreen

DOI Linkhttps://doi.org/10.1016/j.nima.2014.09.075

VerlagElsevier


Abstract
A cryogenic stopping cell for stopping energetic radioactive ions and extracting them as a low energy beam was developed. This first ever cryogenically operated stopping cell serves as prototype device for the Low-Energy Branch of the Super-FRS at FAIR. The cell has a stopping volume that is 1 m long and 25 cm in diameter. Ions are guided by a DC field along the length of the stopping cell and by a combined RF and DC fields provided by an RE carpet at the exit-hole side. The ultra-high purity of the stopping gas required for optimum ion survival is reached by cryogenic operation. The design considerations and construction of the cryogenic stopping cell, as well as some performance characteristics, are described in detail. Special attention is given to the cryogenic aspects in the design and construction of the stopping cell and the cryocooler-based cooling system. The cooling system allows the operation of the stopping cell at any desired temperature between about 70 K and room temperature. The cooling system performance in realistic on-line conditions at the FRS Ion Catcher Facility at GSI is discussed. A temperature of 110 K at which efficient ion survival was observed is obtained after 10 h of cooling. A minimum temperature of the stopping gas of 72 K was reached. The expertise gained from the design, construction and performance of the prototype cryogenic stopping cell has allowed the development of a Final version for the Low Energy Branch of the Super FRS to proceed. (C) 2014 Elsevier B.V. All rights reserved,



Zitierstile

Harvard-ZitierstilRanjan, M., Dendooven, P., Purushothaman, S., Dickel, T., Reiter, M., Ayet, S., et al. (2015) Design, construction and cooling system performance of a prototype cryogenic stopping cell for the Super-FRS at FAIR, Nuclear Instruments and Methods in Physics Research. Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, 770, pp. 87-97. https://doi.org/10.1016/j.nima.2014.09.075

APA-ZitierstilRanjan, M., Dendooven, P., Purushothaman, S., Dickel, T., Reiter, M., Ayet, S., Haettner, E., Moore, I., Kalantar-Nayestanaki, N., Geissel, H., Plass, W., Schaefer, D., Scheidenberger, C., Schreuder, F., Timersma, H., Van de Walle, J., & Weick, H. (2015). Design, construction and cooling system performance of a prototype cryogenic stopping cell for the Super-FRS at FAIR. Nuclear Instruments and Methods in Physics Research. Section A: Accelerators, Spectrometers, Detectors and Associated Equipment. 770, 87-97. https://doi.org/10.1016/j.nima.2014.09.075



Schlagwörter


CATCHERCryogenic stopping cellFACILITYGAS CELLion catcherION GUIDEPROJECTILE FRAGMENTSRadioactive on beamsSPACE-CHARGESUPER-FRS

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