The 2021 IAEA software intercomparison for k0‑INAA

dc.contributor.authorBLAAUW, MENNOpt_BR
dc.contributor.authorD'AGOSTINO, GIANCARLOpt_BR
dc.contributor.authorDI LUZIO, MARCOpt_BR
dc.contributor.authorDUNG, HO MANHpt_BR
dc.contributor.authorJACIMOVIC, RADOJKOpt_BR
dc.contributor.authorDIAS, MAURO da S.pt_BR
dc.contributor.authorSEMMLER, RENATOpt_BR
dc.contributor.authorVAN SLUIJS, ROBBERTpt_BR
dc.contributor.authorBARRADAS, NUNO P.pt_BR
dc.coverageInternacional
dc.date.accessioned2023-08-30T18:34:00Z
dc.date.available2023-08-30T18:34:00Z
dc.date.issued2023pt_BR
dc.description.abstractIn order to establish the variation between results in mass fractions due to software implementation, as measured by the k0-method for INAA, the IAEA has organized a software intercomparison. A complete set of test spectra and associated information was assembled. Efficiency curves, neutron spectrum parameters, correction factors and mass fractions were calculated with the participating programs (k0-IPEN, k0-INRIM, k0-DALAT, k0-IAEA and KayWin) using identical peak areas. In this paper, we report on the observed discrepancies, causes, remedies and future software developments. The test data, as well as intermediate results and observed mass fractions of the certified reference material BCR-320R “channel sediment” are available through the IAEA on request. The variations in concentrations attributed to differences between the programs were initially found to be 5.6 and 7.9%, for certified and uncertified concentrations, respectively. After the certified concentrations had been made available to the participants and they had been allowed to improve their programs, the variations found were 2.7 and 3.4%, respectively. The main identified remaining causes of variation are differences in the procedures used for detector efficiency characterisation and neutron spectrum parameter determination.pt_BR
dc.format.extent3387-3400pt_BR
dc.identifier.citationBLAAUW, MENNO; D'AGOSTINO, GIANCARLO; DI LUZIO, MARCO; DUNG, HO MANH; JACIMOVIC, RADOJKO; DIAS, MAURO da S.; SEMMLER, RENATO; VAN SLUIJS, ROBBERT; BARRADAS, NUNO P. The 2021 IAEA software intercomparison for k0‑INAA. <b>Journal of Radioanalytical and Nuclear Chemistry</b>, v. 332, n. 8, p. 3387-3400, 2023. DOI: <a href="https://dx.doi.org/10.1007/s10967-022-08626-1">10.1007/s10967-022-08626-1</a>. Disponível em: http://repositorio.ipen.br/handle/123456789/34185.
dc.identifier.doi10.1007/s10967-022-08626-1pt_BR
dc.identifier.fasciculo8pt_BR
dc.identifier.issn0236-5731
dc.identifier.orcid0000-0001-7733-0153pt_BR
dc.identifier.orcidhttps://orcid.org/0000-0001-7733-0153
dc.identifier.orcidhttps://orcid.org/0000-0003-2478-5757
dc.identifier.percentilfi37.7
dc.identifier.percentilfiCiteScore41.29
dc.identifier.urihttp://repositorio.ipen.br/handle/123456789/34185
dc.identifier.vol332pt_BR
dc.relation.ispartofJournal of Radioanalytical and Nuclear Chemistry
dc.rightsopenAccesspt_BR
dc.subjectge semiconductor detectors
dc.subjectinterlaboratory comparisons
dc.subjectneutron activation analysis
dc.subjectneutron flux
dc.subjecttriga type reactors
dc.titleThe 2021 IAEA software intercomparison for k0‑INAApt_BR
dc.typeArtigo de periódicopt_BR
dspace.entity.typePublication
ipen.autorRENATO SEMMLER
ipen.autorMAURO DA SILVA DIAS
ipen.codigoautor833
ipen.codigoautor1292
ipen.contributor.ipenauthorRENATO SEMMLER
ipen.contributor.ipenauthorMAURO DA SILVA DIAS
ipen.date.recebimento23-08
ipen.identifier.fi1.5
ipen.identifier.fiCiteScore2.8
ipen.identifier.ipendoc29809
ipen.identifier.iwosWoSpt_BR
ipen.range.fi1.500 - 2.999
ipen.range.percentilfi25.00 - 49.99
ipen.type.genreArtigo
relation.isAuthorOfPublicationf95a9324-04eb-409b-86b2-97eaa10134f2
relation.isAuthorOfPublication58653850-db59-4051-aa72-5c32a5f6670e
relation.isAuthorOfPublication.latestForDiscovery58653850-db59-4051-aa72-5c32a5f6670e
sigepi.autor.atividadeSEMMLER, RENATO:833:310:Npt_BR
sigepi.autor.atividadeDIAS, MAURO da S.:1292:310:Npt_BR

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