Templates of expected measurement uncertainties

Author:

Neudecker DeniseORCID,Lewis Amanda M.,Matthews Eric F.,Vanhoy Jeffrey,Haight Robert C.,Smith Donald L.,Talou Patrick,Croft Stephen,Carlson Allan D.,Pierson Bruce,Wallner Anton,Al-Adili Ali,Bernstein Lee,Capote Roberto,Devlin Matthew,Drosg Manfred,Duke Dana L.,Finch Sean,Herman Michal W.,Kelly Keegan J.,Koning Arjan,Lovell Amy E.,Marini Paola,Montoya Kristina,Nobre Gustavo P.A.,Paris Mark,Pritychenko Boris,Sjöstrand Henrik,Snyder Lucas,Sobes Vladimir,Solders Andreas,Taieb Julien

Abstract

The covariance committee of CSEWG (Cross Section Evaluation Working Group) established templates of expected measurement uncertainties for neutron-induced total, (n,γ), neutron-induced charged-particle, and (n,xn) reaction cross sections as well as prompt fission neutron spectra, average prompt and total fission neutron multiplicities, and fission yields. Templates provide a list of what uncertainty sources are expected for each measurement type and observable, and suggest typical ranges of these uncertainties and correlations based on a survey of experimental data, associated literature, and feedback from experimenters. Information needed to faithfully include the experimental data in the nuclear-data evaluation process is also provided. These templates could assist (a) experimenters and EXFOR compilers in delivering more complete uncertainties and measurement information relevant for evaluations of new experimental data, and (b) evaluators in achieving a more comprehensive uncertainty quantification for evaluation purposes. This effort might ultimately lead to more realistic evaluated covariances for nuclear-data applications. In this topical issue, we cover the templates coming out of this CSEWG effort–typically, one observable per paper. This paper here prefaces this topical issue by introducing the concept and mathematical framework of templates, discussing potential use cases, and giving an example of how they can be applied (estimating missing experimental uncertainties of 235U(n,f) average prompt fission neutron multiplicities), and their impact on nuclear-data evaluations.

Funder

Advanced Simulation and Computing program at LANL and the DOE Nuclear Criticality Safety Program

Department of Energy National Nuclear Security Administration through the Nuclear Science and Security Consortium

U.S. Department of Energy (DOE) Office of Nuclear Physics

U.S. Department of Energy by Lawrence Livermore National Laboratory

Office of Nuclear Physics, Office of Science of the U.S. Department of Energy

Publisher

EDP Sciences

Subject

General Medicine

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