EPJ Web of Conferences (Jan 2019)

Status of fission fragment observables measured with the LOHENGRIN spectrometer

  • Julien-Laferrière S.,
  • Thombansen L.,
  • Kessedjian G.,
  • Chebboubi A.,
  • Serot O.,
  • Sage C.,
  • Méplan O.,
  • Ramdhane M.,
  • Litaize O.,
  • Bernard D.,
  • Nicholson J.,
  • Blanc A.,
  • Faust H.,
  • Mutti P.,
  • Köster U.,
  • Letourneau A.,
  • Materna T.,
  • Rapala M.

DOI
https://doi.org/10.1051/epjconf/201921104004
Journal volume & issue
Vol. 211
p. 04004

Abstract

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Nuclear fission yields are key parameters to evaluate reactor physics observables, such as fuel inventory, decay heat, spent fuel radiotoxicity, criticality but also for understanding the fission process. Despite a significant effort allocated to measure fission yields during the last decades, the recent evaluated libraries still need improvements in particular in the description of the uncertainties with the associated correlations. Additional kinds of measurements provide complementary information in order to test the models used in the nuclear data evaluation. Moreover, some discrepancies between these libraries must be explained. A common effort by the CEA, the LPSC and the ILL aims at tackling these issues by providing precise measurement of isotopic and isobaric fission yields with the related variance-covariance matrices. Nevertheless, the experimental program represents itself a large range of observables requested by the evaluations: isotopic yields, nuclear charge polarization, odd-even effect, isomeric ratio and their dependency with fission fragment kinetic energy as a probe of the nuclear de-excitation path in the (E*, Jπ) representation. Measurements for thermal neutron induced fission of 241Pu have been carried out at the Institut Laue Langevin using the LOHENGRIN mass spectrometer. Experimental program, observables reachable, results and comparison to model calculations are shown.