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Analytical Representations for Characterizing the Global Aviation Radiation Environment Based on Model and Measurement Databases

The Nowcast of Atmospheric Ionizing Radiation for Aviation Safety climatological model and the Automated Radiation Measurements for Aerospace Safety (ARMAS) statistical database are presented as polynomial fit equations. Using equations based on altitude, L shell, and geomagnetic conditions an effec...

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Autores principales: Tobiska, W. Kent, Didkovsky, Leonid, Judge, Kevin, Weiman, Seth, Bouwer, Dave, Bailey, Justin, Atwell, Bill, Maskrey, Molly, Mertens, Chris, Zheng, Yihua, Shea, Margaret, Smart, Don, Gersey, Brad, Wilkins, Richard, Bell, Duane, Gardner, Larry, Fuschino, Robert
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6333164/
https://www.ncbi.nlm.nih.gov/pubmed/30686943
http://dx.doi.org/10.1029/2018SW001843
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author Tobiska, W. Kent
Didkovsky, Leonid
Judge, Kevin
Weiman, Seth
Bouwer, Dave
Bailey, Justin
Atwell, Bill
Maskrey, Molly
Mertens, Chris
Zheng, Yihua
Shea, Margaret
Smart, Don
Gersey, Brad
Wilkins, Richard
Bell, Duane
Gardner, Larry
Fuschino, Robert
author_facet Tobiska, W. Kent
Didkovsky, Leonid
Judge, Kevin
Weiman, Seth
Bouwer, Dave
Bailey, Justin
Atwell, Bill
Maskrey, Molly
Mertens, Chris
Zheng, Yihua
Shea, Margaret
Smart, Don
Gersey, Brad
Wilkins, Richard
Bell, Duane
Gardner, Larry
Fuschino, Robert
author_sort Tobiska, W. Kent
collection PubMed
description The Nowcast of Atmospheric Ionizing Radiation for Aviation Safety climatological model and the Automated Radiation Measurements for Aerospace Safety (ARMAS) statistical database are presented as polynomial fit equations. Using equations based on altitude, L shell, and geomagnetic conditions an effective dose rate for any location from a galactic cosmic ray (GCR) environment can be calculated. A subset of the ARMAS database is represented by a second polynomial fit equation for the GCR plus probable relativistic energetic particle (REP; Van Allen belt REP) effective dose rates within a narrow band of L shells with altitudinal and geomagnetic dependency. Solar energetic particle events are not considered in this study since our databases do not contain these events. This work supports a suggestion that there may be a REP contribution having an effect at aviation altitudes. The ARMAS database is rich in Western Hemisphere observations for L shells between 1.5 and 5; there have been many cases of enhanced radiation events possibly related to effects from radiation belt particles. Our work identifies that the combined effects of an enhanced radiation environment in this L shell range are typically 15% higher than the GCR background. We also identify applications for the equations representing the Nowcast of Atmospheric Ionizing Radiation for Aviation Safety and ARMAS databases. They include (i) effective dose rate climatology in comparison with measured weather variability and (ii) climatological and statistical weather nowcasting and forecasting. These databases may especially help predict the radiation environment for regional air traffic management, for airport overflight operations, and for air carrier route operations of individual aircraft.
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spelling pubmed-63331642019-01-23 Analytical Representations for Characterizing the Global Aviation Radiation Environment Based on Model and Measurement Databases Tobiska, W. Kent Didkovsky, Leonid Judge, Kevin Weiman, Seth Bouwer, Dave Bailey, Justin Atwell, Bill Maskrey, Molly Mertens, Chris Zheng, Yihua Shea, Margaret Smart, Don Gersey, Brad Wilkins, Richard Bell, Duane Gardner, Larry Fuschino, Robert Space Weather Research Articles The Nowcast of Atmospheric Ionizing Radiation for Aviation Safety climatological model and the Automated Radiation Measurements for Aerospace Safety (ARMAS) statistical database are presented as polynomial fit equations. Using equations based on altitude, L shell, and geomagnetic conditions an effective dose rate for any location from a galactic cosmic ray (GCR) environment can be calculated. A subset of the ARMAS database is represented by a second polynomial fit equation for the GCR plus probable relativistic energetic particle (REP; Van Allen belt REP) effective dose rates within a narrow band of L shells with altitudinal and geomagnetic dependency. Solar energetic particle events are not considered in this study since our databases do not contain these events. This work supports a suggestion that there may be a REP contribution having an effect at aviation altitudes. The ARMAS database is rich in Western Hemisphere observations for L shells between 1.5 and 5; there have been many cases of enhanced radiation events possibly related to effects from radiation belt particles. Our work identifies that the combined effects of an enhanced radiation environment in this L shell range are typically 15% higher than the GCR background. We also identify applications for the equations representing the Nowcast of Atmospheric Ionizing Radiation for Aviation Safety and ARMAS databases. They include (i) effective dose rate climatology in comparison with measured weather variability and (ii) climatological and statistical weather nowcasting and forecasting. These databases may especially help predict the radiation environment for regional air traffic management, for airport overflight operations, and for air carrier route operations of individual aircraft. John Wiley and Sons Inc. 2018-10-09 2018-10 /pmc/articles/PMC6333164/ /pubmed/30686943 http://dx.doi.org/10.1029/2018SW001843 Text en ©2018. The Authors. This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc-nd/4.0/ License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non‐commercial and no modifications or adaptations are made.
spellingShingle Research Articles
Tobiska, W. Kent
Didkovsky, Leonid
Judge, Kevin
Weiman, Seth
Bouwer, Dave
Bailey, Justin
Atwell, Bill
Maskrey, Molly
Mertens, Chris
Zheng, Yihua
Shea, Margaret
Smart, Don
Gersey, Brad
Wilkins, Richard
Bell, Duane
Gardner, Larry
Fuschino, Robert
Analytical Representations for Characterizing the Global Aviation Radiation Environment Based on Model and Measurement Databases
title Analytical Representations for Characterizing the Global Aviation Radiation Environment Based on Model and Measurement Databases
title_full Analytical Representations for Characterizing the Global Aviation Radiation Environment Based on Model and Measurement Databases
title_fullStr Analytical Representations for Characterizing the Global Aviation Radiation Environment Based on Model and Measurement Databases
title_full_unstemmed Analytical Representations for Characterizing the Global Aviation Radiation Environment Based on Model and Measurement Databases
title_short Analytical Representations for Characterizing the Global Aviation Radiation Environment Based on Model and Measurement Databases
title_sort analytical representations for characterizing the global aviation radiation environment based on model and measurement databases
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6333164/
https://www.ncbi.nlm.nih.gov/pubmed/30686943
http://dx.doi.org/10.1029/2018SW001843
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