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Proceedings of the National Academy of Sciences of Belarus. Physics and Mathematics Series

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Attenuation of Earth’s radiation belt electrons with protective shields based on composite W-Cu

https://doi.org/10.29235/1561-2430-2020-56-4-488-495

Abstract

For decreasing the radiation effects of the cosmic environment on the electronic components of spacecraft, local protection shields are used. They are manufactured on the basis of materials with high density and large atomic numbers (tungsten, tantalum, the W-Cu composite etc.) and then integrated into the ceramic-and-metal package of electronic components with an insufficient level of radiation resistance. On the basis of the Monte Carlo approach we considered the methods of decreasing the level of the dose absorbed by the crystals of active elements if using the radiation shields based on the W-Cu composite in hybrid metal cases under the action of electrons of a circular orbit with an inclination angle of 30° and an altitude of 8000 km. The electron spectra at the maximum and minimum solar activity were obtained using OMERE 5.3 software. It was established that an increase in the mass thickness of the base and cover of cases with shields up to 1.67 g / cm2 makes it possible to reduce the dose load by 3.5–3.7 times at the minimum and by 3.9–4.1 times at the maximum of solar activity. The optimization of protection by lowering the upper layer of the W-Cu composite to the base to a height of 1.2 mm reduces the absorbed dose by 6.8–9.3 times at the minimum and by 7.6–10.7 times at the maximum solar activity.

About the Authors

H. S. Yakushevich
Scientific and Practical Materials Research Center of the National Academy of Sciences of Belarus
Belarus

Hanna S. Yakushevich – Junior Researcher

19, P. Brovka Str., 220072, Minsk



Y. V. Bogatyrev
Scientific and Practical Materials Research Center of the National Academy of Sciences of Belarus
Belarus

Yrii V. Bogatyrev – Dr. Sc. (Engineering), Сhief Researcher

19, P. Brovka Str., 220072, Minsk



N. A. Vasilenkov
JSC «TESTPRIBOR»
Russian Federation

Nikolaj A. Vasilenkov – Technical Director

7a, Planernaya Str., 125480, Moscow



S. S. Grabchikov
Scientific and Practical Materials Research Center of the National Academy of Sciences of Belarus
Belarus

Sergey S. Grabchikov – Dr. Sc. (Physics and Mathematics), Сhief Researcher

19, P. Brovka Str., 220072, Minsk



S. B. Lastovskii
Scientific and Practical Materials Research Center of the National Academy of Sciences of Belarus
Belarus

Stanislav B. Lastovskii – Ph. D. (Physics and Mathematics), Head of the laboratory

19, P. Brovka Str., 220072, Minsk



A. Y. Maksimov
JSC «TESTPRIBOR»
Russian Federation

Aleksej Y. Maksimov – Chief of the Engineering Department

7a, Planernaya Str., 125480, Moscow



References

1. Efremov G. A., Yepifanovskii I. S., Shiryayev A. V., Zabolotnyi V. T., Mileev V. N., Novikov L. S. New materials of local radiation protection. Fizika i khimiya obrabotki materialov = Physics and Chemistry of Materials Treatment, 2003, no. 1, pp. 34–37 (in Russian).

2. Zabolotnyi V. T., Starostin E. E., Kochetkov A. V. Optimal compositions for local protection of on-board electronics from space radiation. Fizika i khimiya obrabotki materialov = Physics and Chemistry of Materials Treatment, 2008, no. 5, pp.15–18 (in Russian).

3. Vasilenkov N. A., Grabchikov S. S., Maksimov A. Y., Lastovski S. B.Specialized radiation-protective packages for microelectronics products. Tekhnologii v elektronnoi promyshlennosti = Technologies in Electronic Industry, 2015, no. 4, pp. 50–56 (in Russian).

4. Spratt J. P., Passenheim B. C., Leadon R. E., Clark S., Strobel D. J. Effectiveness of IС shielded packages against space radiation. IEEE Transactions on Nuclear Science, 1997, vol. 44, no. 6, pp.2018–2025. https://doi.org/10.1109/23.658984

5. Fan W. C., Drumm C. R., Roeske S. B., Scrivner G. J. Shielding Considerations for Satellite Microelectronics. IEEE Transactions on Nuclear Science, 1996, vol. 43, no. 6, pp. 2790–2796. https://doi.org/10.1109/23.556868

6. Bogatyrev Y. V., Vasilenkov N. A., Grabchikov S. S., Lastovski S. B., Yakushevich H. S., Pankratov P. V. Shields for local radiation protection of microelectronics. Voprosy atomnoi nauki i tekhniki. Ser. Fizika radiatsionnogo vozdeistviya na radioelektronnuyu apparaturu = Problems of atomic science and technology. Series: Physics of radiation effects on electronic equipment, 2014, vol. 4, pp. 53–56 (in Russian).

7. Belousov E. L., Ushkar M. N. Design of Aircraft Communication Equipment Blocks. Nizhny Novgorod, Nizhny Novgorod State Technical University, 2005. 237 p. (in Russian).

8. Chumakov A. I. The Effect of Cosmic Radiation on Integrated Circuits. Moscow, Radio i svyaz’ Publ., 2004. 320 p. (in Russian).

9. Geant4. Geant4 Collaboration. Available at: http://geant4.web.cern.ch (accessed 20 September 2019).

10. OMERE 5.3. TRAD Tests & Radiations. Available at: https://www.trad.fr/en/space/omere-software/ (accessed 15 November 2019).

11. Baranov V. F. Dosimetry of Electron Radiation. Moscow, Atomizdat Publ., 1974. 232 p. (in Russian).


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ISSN 1561-2430 (Print)
ISSN 2524-2415 (Online)