Analysis of the effectiveness of methods for ensuring the reliability of a communication satellite transponder
https://doi.org/10.32362/2500-316X-2023-11-1-51-59
Abstract
Objectives. Since the launch of satellite communication systems in practical use, approaches towards enhancing their operational quality and durability have been developing in the direction of increased reliability of airborne transponders. This is mainly achieved by increasing redundancy and using components with a lower failure rate. In this regard, the creation of new technologies and new materials is a particularly promising direction. However, since durability testing of complex systems can take several years, the problem of ensuring an effective combination of redundancy methods and elements having a reduced failure rate remains challenging. The purpose of the work is to analyze the effectiveness of methods for ensuring the reliability of a communication satellite transponder based on a proposed methodology for determining the durability index using a mathematical model of the probability of failure-free operation.
Methods. In order to describe the complex structure of a satellite communication system transponder, a logical- probabilistic method is used, in which the dependence of the system reliability indicators on the reliability indicators of the transponder elements is formulated as a logical function of operability. Mathematical models of system reliability are created on this basis including for redundant systems. Graphs and analytical methods are used to compare different systems.
Results. The influence of various methods for ensuring the redundancy of transponder devices and the use of more reliable components on the reliability and durability indicators is considered. A gamma-percentage resource-based technique for determining the durability indicator based on the constructed mathematical models of the probability of failure-free operation is presented along with a comparative analysis of measures to increase the gamma-percentage resource of the transponder.
Conclusions. The presented method for determining the durability index using a mathematical model of the probability of no-failure operation can be used to determine the time interval within which redundancy increases the probability of no-failure operation as compared with a decrease in the failure rate of elements. On this basis, the most effective combination of redundancy methods and approaches for reducing the failure rate of elements can be identified.
Keywords
About the Authors
T. E. GelfmanRussian Federation
Tatyana E. Gelfman, Associate Professor, Department of Radio Electronic Systems and Complexes, Institute of Radio Electronics and Informatics
78, Vernadskogo pr., Moscow, 119454
Competing Interests:
The authors declare no conflicts of interest
A. P. Pirkhavka
Russian Federation
Alexey P. Pirkhavka, Cand. Sci. (Eng.), Associate Professor, Department of Radio Electronic Systems and Complexes, Institute of Radio Electronics and Informatics
78, Vernadskogo pr., Moscow, 119454
Competing Interests:
The authors declare no conflicts of interest
V. O. Skripachev
Russian Federation
Vladimir O. Skripachev, Cand. Sci. (Eng.), Head of the Department of Radiomonitoring and Remote Sensing of Earth, Associate Professor, Department of Radio Electronic Systems and Complexes, Institute of Radio Electronics and Informatics
78, Vernadskogo pr., Moscow, 119454
Scopus Author ID 35105951000
ResearcherID M-9770-2015
Competing Interests:
The authors declare no conflicts of interest
References
1. Polovko A.M., Gurov S.V. Osnovy teorii nadezhnosti (Fundamentals of Reliability Theory). St. Petersburg: BKHV-Petersburg; 2008. 704 p. (in Russ.). ISBN 978-594157-541-1
2. Gelfman T.E., Pirkhavka A.P. The operational readiness factor of satellite communication networks. Russ. Technol. J. 2022;10(1):35−40 (in Russ.). https://doi.org/10.32362/2500-316X-2022-10-1-35-40
3. Sevastyanov N.N., Andreev A.I. Osnovy upravleniya nadezhnost’yu kosmicheskikh apparatov s dlitel’nymi srokami ehkspluatatsii (Fundamentals of Reliability Management of Spacecraft with Long Service Life). Tomsk: TGU; 2015. 266 p. (in Russ.). ISBN 978-594621-460-5
4. Maral G., Bousquet M., Sun Zh. Satellite Communications Systems: Systems, Techniques and Technology. 6th ed. Wiley & Sons Ltd; 2020. 792 p. ISBN 978-1-119-38208-9
5. Verma A.S., Jaiswal A.K., Kumar M., Nigam G., Srivastava S.K. Measurement of reliability and availability of satellite communication links: Progress and challenges. In: 2013 International Conference on Intelligent Systems and Signal Processing (ISSP). 2013:268–271. https://doi.org/10.1109/ISSP.2013.6526916
6. Elbert B.R. Introduction to Satellite Communication. 3rd ed. Artech House Publishers; 2008. 447 p. ISBN 978-159693-210-4
7. Jung S., Choi J.P. End-to-end reliability of satellite communication network systems. IEEE Systems Journal. 2021;15(1):791–801. https://doi.org/10.1109/jsyst.2020.2980760
8. Mehmet N., Selman D., Hasan H.E., Cenk S. Reliability and cost focused optimization approach for a communication satellite payload redundancy allocation problem. International Journal of Electrical, Electronic and Communication Sciences. 2018;11.0(5). https://doi.org/10.5281/zenodo.1316576
9. Antonov A.V., Nikulin M.S. Statisticheskie modeli v teorii nadezhnosti (Statistical Models in Reliability Theory). Moscow: Abris; 2012. 390 p. (in Russ.). ISBN 978-54372-0009-4
10. Gelfman T.E., Gnuchev O.E., Lobyntsev R.Yu. Reservation methods satellite communication systems. In: Actual Problems and Prospects of Development of Radioengineering and Infocommunication Systems. Proceedings of the III International Scientific and Practical Conference. Moscow: Technological University (MIREA); 2017. P. 366–374 (in Russ.).
11. Yampurin N.P., Baranova A.V. Osnovy nadezhnosti elektronnykh sredstv (Fundamentals of Reliability of Electronic Means). Moscow: Akademiya; 2010. 240 p. (in Russ.). ISBN 978-5-7695-5908-2
12. Bouwmeester J., Menicucci A., Gill E.K.A. Improving CubeSat reliability: Subsystem redundancy or improved testing? Reliab. Eng. Syst. Saf. 2022;220:108288. https://doi.org/10.1016/j.ress.2021.108288
13. Castet J.F., Saleh J.H. Satellite and satellite subsystems reliability: Statistical data analysis and modeling. Reliab. Eng. Syst. Saf. 2009;94(11):1718–1728. https://doi.org/10.1016/j.ress.2009.05.004
14. Kislaev A.G., Khropov A.N. Optimal redundancy as a method for improving the reliability of space communication systems. In: Fundamental Problems of Radioengineering and Device Construction. Proceedings of the International Scientific and Technical Conference “INTERMATIC 2010.” 2010;10(3):109–112 (in Russ.).
15. Gelfman T.E., Pirhavka A.P. Optimal redundancy of a communications satellite transponder. In: Proceedings of the International conference “Radio Electronic Devices and Systems for Infocommunication Technologies,” REDS 2015. Moscow: 2015. Issue LXX. P. 217–220 (in Russ.).
Supplementary files
|
1. Redundancy efficiency ratio | |
Subject | ||
Type | Исследовательские инструменты | |
View
(68KB)
|
Indexing metadata ▾ |
- The influence of various methods for ensuring the redundancy of transponder devices and the use of more reliable components on the reliability and durability indicators is considered.
- A gamma-percentage resource-based technique for determining the durability indicator based on the constructed mathematical models of the probability of failure-free operation is presented along with a comparative analysis of measures to increase the gamma-percentage resource of the transponder.
Review
For citations:
Gelfman T.E., Pirkhavka A.P., Skripachev V.O. Analysis of the effectiveness of methods for ensuring the reliability of a communication satellite transponder. Russian Technological Journal. 2023;11(1):51–59. https://doi.org/10.32362/2500-316X-2023-11-1-51-59