S.R. Blattnig
Langley Research Center
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Featured researches published by S.R. Blattnig.
Life sciences in space research | 2015
S.A. Washburn; S.R. Blattnig; Robert C. Singleterry; S.C. Westover
Many active magnetic shielding designs have been proposed in order to reduce the radiation exposure received by astronauts on long duration, deep space missions. While these designs are promising, they pose significant engineering challenges. This work presents a survey of the major systems required for such unconfined magnetic field design, allowing the identification of key technologies for future development. Basic mass calculations are developed for each system and are used to determine the resulting galactic cosmic radiation exposure for a generic solenoid design, using a range of magnetic field strength and thickness values, allowing some of the basic characteristics of such a design to be observed. This study focuses on a solenoid shaped, active magnetic shield design; however, many of the principles discussed are applicable regardless of the exact design configuration, particularly the key technologies cited.
SAE International Journal of Aerospace | 2008
Tony C. Slaba; John H. Heinbockel; S.R. Blattnig
Exposure estimates inside space vehicles, surface habitats, and high altitude aircraft exposed to space radiation are highly influenced by secondary neutron production. The deterministic transport code HZETRN has been identified as a reliable and efficient tool for such studies, but improvements to the underlying transport models and numerical methods are still necessary. In this paper, the forward-backward (FB) and directionally coupled forward-backward (DC) neutron transport models are derived, numerical methods for the FB model are reviewed, and a computationally efficient numerical solution is presented for the DC model. Both models are compared to the Monte Carlo codes HETCHEDS and FLUKA, and the DC model is shown to agree closely with the Monte Carlo results. Finally, it is found in the development of either model that the decoupling of low energy neutrons from the light ion (A<4) transport procedure adversely affects low energy light ion fluence spectra and exposure quantities. A first order correction is presented to resolve the problem, and it is shown to be both accurate and efficient.
Advances in Space Research | 2007
John E. Nealy; F. A. Cucinotta; John Wilson; F. F. Badavi; Ts.P. Dachev; Borislav Tomov; Simon Walker; G. De Angelis; S.R. Blattnig; William Atwell
Advances in Space Research | 2013
R.B. Norman; Tony C. Slaba; S.R. Blattnig
Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2012
Anne M. Adamczyk; Ryan B. Norman; S.I. Sriprisan; Lawrence W. Townsend; John W. Norbury; S.R. Blattnig; Tony C. Slaba
Advances in Space Research | 2010
Tony C. Slaba; Garry D. Qualls; Martha S. Clowdsley; S.R. Blattnig; Simon Walker; Lisa C. Simonsen
Advances in Space Research | 2012
Ryan B. Norman; S.R. Blattnig; G. De Angelis; F. F. Badavi; John W. Norbury
Nuclear Physics B - Proceedings Supplements | 2007
G. De Angelis; F. F. Badavi; J. Clem; S.R. Blattnig; Martha S. Clowdsley; John E. Nealy; Ram K. Tripathi; John Wilson
Nuclear Physics B - Proceedings Supplements | 2007
G. De Angelis; F. F. Badavi; S.R. Blattnig; Martha S. Clowdsley; John E. Nealy; Garry D. Qualls; Robert C. Singleterry; Ram K. Tripathi; John Wilson
Advances in Space Research | 2014
S.A. Washburn; S.R. Blattnig; Robert C. Singleterry; S.C. Westover