Spacecraft crew life support control: systems approach


DOI: 10.34759/trd-2020-113-13

Аuthors

Zaretsky B. F.*, Kurmazenko E. A.**, Proshkin V. Y.***

Scientific Research and Design Institute of Chemical Engineering, NIIchimmash, 14, Bolshaya Novodmitrovskaya str., Moscow, 127015, Russia

*e-mail: bsarezky@mail.ru
**e-mail: e_kurmazenko@niichimmash.ru
***e-mail: v_proshkin@mail.ru

Abstract

Automated control system (ACS) of life support systems complex (LSSC) is being described from the system approach position. The ACS and LSSC constituent parts are being regarded in aggregate and interaction between each other. Accounting for external surroundings, such as systems operating in conjunction with the LSSC, environment, the spacecraft sealed bay, crew and ground-based flight following services, is mandatory.

The effectiveness of the LSSC ACS developing and functioning is being defined by the great number of controversial criteria. The article suggests splitting all criteria into the three groups, so that criteria inside each group would not contradict each other. Three generalized global effectiveness criteria (GEC) were formed on this base. They are

– survivability, incorporating local criteria (LC), such as resource, reliability, etc;

– cost value, incorporating the LC such as energy consumption, weight, servicing time, material costs, etc;

– comfortability, incorporating the LC such as live environment parameters, interaction with crew, accommodation, operating modes, etc.

While extremum searching per each GEC, restrictions are imposed on the two remaining GECs.

The systematic approach sequence while the ACS developing:

– analyzing connections with higher-order system and external surroundings;

– analyzing the variety of effectiveness criteria, and developing the GEC;

– creating hierarchical structure of effectiveness criteria;

– system decomposition by the subsystems of less complexity; optimal solution search for subsystems in the LC structure, following from the hierarchical structure;

– optimal solution search for the entire complex system with ensuring extremum on GEC.

The first and second rank of importance criteria, such as sustainability, cost value and comfortability, were considered in the hierarchical structure of each GEC.

The suggested approaches to ACS for LSSC are realized while the new test bench design. The test bench is universal, and adapted (with minimum necessary changes) for refinement and maintenance of any life supporting system (based on physic-chemical regeneration processes) from the LSSC content. The test bench is described as applied to the oxygen regeneration system. The “Electron-VM” system is based on the oxygen obtaining by the water electrolysis technique, and it has been functioning onboard the International space station since 2000.

Simulation modeling of the ACS functioning, based on the “MARS-500” data, was conducted as a part of the suggested approach presentation.

The considered approach presents a technique for developing the LSSC ACC for a manned space object.

Keywords:

system approach, control, criteria of efficiency, standard bench, simulation modeling

References

  1. Kurmazenko E.A., Bobe L.S., Gavrilov L.I., Kochetkov A.A., Proshkin V.Yu., Khabarovskii N.N. Inzhenernaya ekologiya, 2014, no. 2, pp. 2 - 26.

  2. Bobe L., Kochetkov A., Tsygankov A., Korobkov A., Romanov S., Zeleznyakov A., Andreychuk P., Sinyak Yu.E. Design and Operation of Water Recovery Systems for Space Stations, 46th International Conference on Environmental Systems, Vienna, Austria, 10-14 July 2016, ICES-2016-28, pp. 10.

  3. Guzenberg A.S., Zheleznyakov A.G., Romanov S.Yu., Telegin A.A., Yurgin A.V. Kosmicheskaya tekhnika i tekhnologii, 2015, no. 1, pp. 67 - 80.

  4. Bagdigian R.M., Dake J., Gentry G., Gault M. International Space Station Environmental Control and Life Support System Mass and Crewtime Utilization in Comparison to a Long Duration Human Space Exploration Mission, 45th International Conference on Environmental Systems, Bellevue, Washington, USA, 12-16 July 2015, ICES-2015-094, pp. 16.

  5. Balistreri S.F., Bryant Z.S. International Space Station (ISS) Environmental Control and Life Support (ECLS) System Overview of Events: 2018-2019, 49th International Conference on Environmental Systems, Boston, Massachusetts, USA, 7-11 July 2019, ICES-2019-373, pp. 9.

  6. Carter L., Williamson J., Brow C.A., Bazley J., Gazda D., Schaezler R., Thomas F., Molina S. Status of ISS Water Management and Recovery, 49th International Conference on Environmental Systems, Boston, Massachusetts, USA, 7-11 July 2019, ICES-2019-36, pp. 17.

  7. Anderson M.S., Macatangay A.V., McKinley M.K., Sargusingh M.J., Shaw L.A., Perry J.L., Schneider W.F., Toomarian N., Gatens R.L. NASA Environmental Control and Life Support Technology Development and Maturation for Exploration: 2018 to 2019 Overview, 49th International Conference on Environmental Systems, Boston, Massachusetts, USA, 7-11 July 2019, ICES-2019-297, pp. 16.

  8. Bockstahler K., Hartwich R., Matthias C., Witt J., Hovland S., Laurini D. Status of the Advanced Closed Loop System ACLS for Accommodation on the ISS, 47th International Conference on Environmental Systems, Charleston, South Carolina, USA, 16-20 July, 2017, ICES-2017-135, pp. 11.

  9. Sakai Y., Oka T., Waseda S., Arai T., Suehiro T., Ito T., Shima A., Sakurai M. Development status of air revitalization system in JAXA closed ECLSS for future crew module, 48th International Conference on Environmental Systems, Albuquerque, New Mexico, USA, 8-12 July 2018, ICES-2018-146, pp. 7.

  10. Escobar C.M., Nabity J.A. Past, Present, and Future of Closed Human Life Support Ecosystems - A Review, 47th International Conference on Environmental Systems, Charleston, South Carolina, USA, 16-20 July, 2017, ICES-2017-311, pp. 18.

  11. Fleishman B.S. Osnovy sistemologii (Fundamentals of Systemology), Moscow, Radio i svyaz', 1982, 368 p.

  12. Berezovskii B.A., Baryshnikov Yu.M., Borzenko V.I., Kempner L.M. Mnogokriterial'naya optimizatsiya: matematicheskie aspekty (Multi-criteria optimization: mathematical aspects), Moscow, Nauka, 1989, 128 p.

  13. Strogonova L.B., Stolyarchuk V.A., Makarova S.M., Vasin Yu.A. Trudy MAI, 2013, no. 67. URL: http://trudymai.ru/eng/published.php?ID=41586

  14. Malozemov V.V., Zaretskii B.F. Inzhenernaya ekologiya, 2012, no. 2, pp. 37 - 45.

  15. Zaretskii B.F., Morozov G.I., Kurmazenko E.A., Proshkin V.Yu. Pilotiruemye polety v kosmos, 2015, no. 2, pp. 49 - 66.

  16. Jones H.W. The Recent Large Reduction in Space Launch Cost, 48th International Conference on Environmental Systems, Albuquerque, New Mexico, USA, 8-12 July 2018, ICES-2018-081, pp. 10.

  17. Andreichuk P.O., Bobe L.S. Kosmicheskii forum 2011, posvyashchennyi 50-letiyu poleta v kosmos Yu.A. Gagarina: sbornik materialov, Moscow, IMBP RAN, 2011, pp. 128.

  18. Korotkova T.I. Trudy MAI, 2015, no. 84. URL: http://trudymai.ru/eng/published.php?ID=63279

  19. Proshkin V.Yu., Kurmazenko E.A. Trudy MAI, 2018, no. 98. URL: http://trudymai.ru/eng/published.php?ID=90167

  20. Malozemov V.V. Teplovoi rezhim kosmicheskikh apparatov (Thermal mode of Space Vehicles), Moscow, Mashinostroenie, 1980, 232 p.

  21. Kudryavtseva N.S., Malozemov V.V. Aerospace MAI Journal, 2009, vol. 16, no. 1, pp. 5 - 14.

  22. Kudryavtseva N.S. Aviakosmicheskaya i ekologicheskaya meditsina, 2019, vol. 53, no. 3. pp. 5 - 12.

  23. Zaretskii B.F., Guzenberg A.S., Shangin I.A. Kosmicheskaya tekhnika i tekhnologii, 2019, no. 3, pp. 109 - 120.

  24. Zaretskiy B.F., Gavrilov L.I., Kurmazenko E.A. Crew Life Support System for Interplanetary Vehicles, 39th International Conference on Environmental Systems, Savannah, Georgia, USA, 13-16 July 2009, SAE Technical Paper, 2009-01-2440, pp. 5.

  25. Proshkin V.Yu., Kurmazenko E.A. Pilotiruemye polety v kosmos, 2013, no. 3, pp. 84 - 99.

  26. Kurmazenko E., Khabarovskiy N., Kamaletdinova G., Demin E., Morukov B. Life Support System Virtual Simulators for Mars-500 Ground-Based Experiment, Biomedical Science, Engineering and Technology, Edited by D.N. Ghista, InTech, Croatia, 2012, vol. 22, pp. 535 - 558.

  27. Bobe L.S., Rakov V.V., Arakcheev D.V., Kanaev P.A. Trudy MAI, 2012, no. 52. URL: http://trudymai.ru/eng/published.php?ID=29453

  28. Kogan I.L. Trudy MAI, 2015, no. 82. URL: http://trudymai.ru/eng/published.php?ID=58748

  29. Miyajima H., Abe K., Hirosaki T., Ishikawa Y. Development of Advanced Life Support Systems Control Software Integrating Operators' Empirical Knowledge, 38th International Conference on Environmental Systems, San Francisco, CA, USA, 29 June – 2 Jule 2008, SAE Technical Paper Series, 2008-01-1973, pp. 9.

  30. Nakane M., Ishikawa Y., Miyajima, H. Dynamic Transition to Fallback Operation of Material Circulation Control in Advanced Life Support System using Hierarchical Autonomous Control Method, 45th International Conference on Environmental Systems, Bellevue, Washington, USA, 12-16 July 2015, ICES-2015-16, pp. 6.

  31. Stapleton T., Heldmann M., Torres M., Bowers J., Corallo R. Environmental Control and Life Support for Deep Space Travel, 48th International Conference on Environmental Systems, Albuquerque, New Mexico, USA, 8-12 July 2018, ICES-2018-343, pp. 11.

  32. Jones H.W. Controls and Automation Research in Space Life Support, 49th International Conference on Environmental Systems, Boston, Massachusetts, USA, 7-11 July 2019, ICES-2019-12, pp. 12.


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