Updated Summation Model: An Improved Agreement with the Daya Bay Antineutrino Fluxes.


Journal

Physical review letters
ISSN: 1079-7114
Titre abrégé: Phys Rev Lett
Pays: United States
ID NLM: 0401141

Informations de publication

Date de publication:
12 Jul 2019
Historique:
revised: 02 04 2019
received: 21 01 2019
entrez: 7 8 2019
pubmed: 7 8 2019
medline: 7 8 2019
Statut: ppublish

Résumé

A new summation method model of the reactor antineutrino energy spectrum is presented. It is updated with the most recent evaluated decay databases and with our total absorption gamma-ray spectroscopy measurements performed during the last decade. For the first time, the spectral measurements from the Daya Bay experiment are compared with the antineutrino energy spectrum computed with the updated summation method without any renormalization. The results exhibit a better agreement than is obtained with the Huber-Mueller model in the 2-5 MeV range, the region that dominates the detected flux. A systematic trend is found in which the antineutrino flux computed with the summation model decreases with the inclusion of more pandemonium-free data. The calculated flux obtained now lies only 1.9% above that detected in the Daya Bay experiment, a value that may be reduced with forthcoming new pandemonium-free data, leaving less room for a reactor anomaly. Eventually, the new predictions of individual antineutrino spectra for the ^{235}U, ^{239}Pu, ^{241}Pu, and ^{238}U are used to compute the dependence of the reactor antineutrino spectral shape on the fission fractions.

Identifiants

pubmed: 31386517
doi: 10.1103/PhysRevLett.123.022502
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

022502

Auteurs

M Estienne (M)

SUBATECH, IMT Atlantique, Université de Nantes, CNRS-IN2P3, F-44307 Nantes, France.

M Fallot (M)

SUBATECH, IMT Atlantique, Université de Nantes, CNRS-IN2P3, F-44307 Nantes, France.

A Algora (A)

Instituto de Física Corpuscular, CSIC-Universitat de València, E-46071 València, Spain.
Institute of Nuclear Research of the Hungarian Academy of Sciences, H-4026 Debrecen, Hungary.

J Briz-Monago (J)

SUBATECH, IMT Atlantique, Université de Nantes, CNRS-IN2P3, F-44307 Nantes, France.

V M Bui (VM)

SUBATECH, IMT Atlantique, Université de Nantes, CNRS-IN2P3, F-44307 Nantes, France.

S Cormon (S)

SUBATECH, IMT Atlantique, Université de Nantes, CNRS-IN2P3, F-44307 Nantes, France.

W Gelletly (W)

Department of Physics, University of Surrey, GU2 7XH Guildford, United Kingdom.

L Giot (L)

SUBATECH, IMT Atlantique, Université de Nantes, CNRS-IN2P3, F-44307 Nantes, France.

V Guadilla (V)

SUBATECH, IMT Atlantique, Université de Nantes, CNRS-IN2P3, F-44307 Nantes, France.

D Jordan (D)

Instituto de Física Corpuscular, CSIC-Universitat de València, E-46071 València, Spain.

L Le Meur (L)

SUBATECH, IMT Atlantique, Université de Nantes, CNRS-IN2P3, F-44307 Nantes, France.

A Porta (A)

SUBATECH, IMT Atlantique, Université de Nantes, CNRS-IN2P3, F-44307 Nantes, France.

S Rice (S)

Department of Physics, University of Surrey, GU2 7XH Guildford, United Kingdom.

B Rubio (B)

Instituto de Física Corpuscular, CSIC-Universitat de València, E-46071 València, Spain.

J L Taín (JL)

Instituto de Física Corpuscular, CSIC-Universitat de València, E-46071 València, Spain.

E Valencia (E)

Instituto de Física Corpuscular, CSIC-Universitat de València, E-46071 València, Spain.

A-A Zakari-Issoufou (AA)

SUBATECH, IMT Atlantique, Université de Nantes, CNRS-IN2P3, F-44307 Nantes, France.

Classifications MeSH