Literature DB >> 33442335

Evaluating galactic cosmic ray environment models using RaD-X flight data.

R B Norman1, C J Mertens1, T C Slaba1.   

Abstract

Galactic cosmic rays enter Earth's atmosphere after interacting with the geomagnetic field. The primary galactic cosmic rays spectrum is fundamentally changed as it interacts with Earth's atmosphere through nuclear and atomic interactions. At points deeper in the atmosphere, such as at airline altitudes, the radiation environment is a combination of the primary galactic cosmic rays and the secondary particles produced through nuclear interactions. The RaD-X balloon experiment measured the atmospheric radiation environment above 20 km during 2 days in September 2015. These experimental measurements were used to validate and quantify uncertainty in physics-based models used to calculate exposure levels for commercial aviation. In this paper, the Badhwar-O'Neill 2014, the International Organization for Standardization 15390, and the German Aerospace Company galactic cosmic ray environment models are used as input into the same radiation transport code to predict and compare dosimetric quantities to RaD-X measurements. In general, the various model results match the measured tissue equivalent dose well, with results generated by the German Aerospace Center galactic cosmic ray environment model providing the best comparison. For dose equivalent and dose measured in silicon, however, the models were compared less favorably to the measurements.

Entities:  

Year:  2016        PMID: 33442335      PMCID: PMC7802754          DOI: 10.1002/2016SW001401

Source DB:  PubMed          Journal:  Space Weather        ISSN: 1542-7390            Impact factor:   4.456


  5 in total

1.  Galactic cosmic ray flux simulation and prediction.

Authors:  R A Nymmik; M I Panasyuk; A A Suslov
Journal:  Adv Space Res       Date:  1996       Impact factor: 2.152

2.  Cosmic radiation exposure of aircraft crew: compilation of measured and calculated data.

Authors:  Lennart Lindborg; David Bartlett; Peter Beck; Ian McAulay; Klaus Schnuer; Hans Schraube; Frantisek Spurny
Journal:  Radiat Prot Dosimetry       Date:  2004       Impact factor: 0.972

3.  Liulin-type spectrometry-dosimetry instruments.

Authors:  Ts Dachev; Pl Dimitrov; B Tomov; Yu Matviichuk; F Spurny; O Ploc; K Brabcova; I Jadrnickova
Journal:  Radiat Prot Dosimetry       Date:  2010-12-20       Impact factor: 0.972

4.  Precision Measurement of the Proton Flux in Primary Cosmic Rays from Rigidity 1 GV to 1.8 TV with the Alpha Magnetic Spectrometer on the International Space Station.

Authors:  M Aguilar; D Aisa; B Alpat; A Alvino; G Ambrosi; K Andeen; L Arruda; N Attig; P Azzarello; A Bachlechner; F Barao; A Barrau; L Barrin; A Bartoloni; L Basara; M Battarbee; R Battiston; J Bazo; U Becker; M Behlmann; B Beischer; J Berdugo; B Bertucci; G Bigongiari; V Bindi; S Bizzaglia; M Bizzarri; G Boella; W de Boer; K Bollweg; V Bonnivard; B Borgia; S Borsini; M J Boschini; M Bourquin; J Burger; F Cadoux; X D Cai; M Capell; S Caroff; J Casaus; V Cascioli; G Castellini; I Cernuda; D Cerreta; F Cervelli; M J Chae; Y H Chang; A I Chen; H Chen; G M Cheng; H S Chen; L Cheng; H Y Chou; E Choumilov; V Choutko; C H Chung; C Clark; R Clavero; G Coignet; C Consolandi; A Contin; C Corti; E Cortina Gil; B Coste; W Creus; M Crispoltoni; Z Cui; Y M Dai; C Delgado; S Della Torre; M B Demirköz; L Derome; S Di Falco; L Di Masso; F Dimiccoli; C Díaz; P von Doetinchem; F Donnini; W J Du; M Duranti; D D'Urso; A Eline; F J Eppling; T Eronen; Y Y Fan; L Farnesini; J Feng; E Fiandrini; A Fiasson; E Finch; P Fisher; Y Galaktionov; G Gallucci; B García; R García-López; C Gargiulo; H Gast; I Gebauer; M Gervasi; A Ghelfi; W Gillard; F Giovacchini; P Goglov; J Gong; C Goy; V Grabski; D Grandi; M Graziani; C Guandalini; I Guerri; K H Guo; D Haas; M Habiby; S Haino; K C Han; Z H He; M Heil; J Hoffman; T H Hsieh; Z C Huang; C Huh; M Incagli; M Ionica; W Y Jang; H Jinchi; K Kanishev; G N Kim; K S Kim; Th Kirn; R Kossakowski; O Kounina; A Kounine; V Koutsenko; M S Krafczyk; G La Vacca; E Laudi; G Laurenti; I Lazzizzera; A Lebedev; H T Lee; S C Lee; C Leluc; G Levi; H L Li; J Q Li; Q Li; Q Li; T X Li; W Li; Y Li; Z H Li; Z Y Li; S Lim; C H Lin; P Lipari; T Lippert; D Liu; H Liu; M Lolli; T Lomtadze; M J Lu; S Q Lu; Y S Lu; K Luebelsmeyer; J Z Luo; S S Lv; R Majka; C Mañá; J Marín; T Martin; G Martínez; N Masi; D Maurin; A Menchaca-Rocha; Q Meng; D C Mo; L Morescalchi; P Mott; M Müller; J Q Ni; N Nikonov; F Nozzoli; P Nunes; A Obermeier; A Oliva; M Orcinha; F Palmonari; C Palomares; M Paniccia; A Papi; M Pauluzzi; E Pedreschi; S Pensotti; R Pereira; N Picot-Clemente; F Pilo; A Piluso; C Pizzolotto; V Plyaskin; M Pohl; V Poireau; E Postaci; A Putze; L Quadrani; X M Qi; X Qin; Z Y Qu; T Räihä; P G Rancoita; D Rapin; J S Ricol; I Rodríguez; S Rosier-Lees; A Rozhkov; D Rozza; R Sagdeev; J Sandweiss; P Saouter; C Sbarra; S Schael; S M Schmidt; A Schulz von Dratzig; G Schwering; G Scolieri; E S Seo; B S Shan; Y H Shan; J Y Shi; X Y Shi; Y M Shi; T Siedenburg; D Son; F Spada; F Spinella; W Sun; W H Sun; M Tacconi; C P Tang; X W Tang; Z C Tang; L Tao; D Tescaro; Samuel C C Ting; S M Ting; N Tomassetti; J Torsti; C Türkoğlu; T Urban; V Vagelli; E Valente; C Vannini; E Valtonen; S Vaurynovich; M Vecchi; M Velasco; J P Vialle; V Vitale; S Vitillo; L Q Wang; N H Wang; Q L Wang; R S Wang; X Wang; Z X Wang; Z L Weng; K Whitman; J Wienkenhöver; H Wu; X Wu; X Xia; M Xie; S Xie; R Q Xiong; G M Xin; N S Xu; W Xu; Q Yan; J Yang; M Yang; Q H Ye; H Yi; Y J Yu; Z Q Yu; S Zeissler; J H Zhang; M T Zhang; X B Zhang; Z Zhang; Z M Zheng; H L Zhuang; V Zhukov; A Zichichi; N Zimmermann; P Zuccon; C Zurbach
Journal:  Phys Rev Lett       Date:  2015-04-30       Impact factor: 9.161

5.  NAIRAS aircraft radiation model development, dose climatology, and initial validation.

Authors:  Christopher J Mertens; Matthias M Meier; Steven Brown; Ryan B Norman; Xiaojing Xu
Journal:  Space Weather       Date:  2013-10-25       Impact factor: 4.456

  5 in total

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