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Application of Concurrent Engineering for G.O.L.D.S Constellation as a Cyber-Physical System-of-Systems

Published:17 January 2023Publication History

ABSTRACT

The paper’s objective is to describe the application of concurrent engineering to propose a mission control architecture for an open constellation of educational satellites for collecting environmental data. This research methodology considers the knowledge gained from exploratory research carried out through systems engineering case studies to develop artifacts for mission operational concepts. The case study demonstrates a structured analytical approach to the Global Open Collection Data System (G.O.L.D.S), presenting analytical and operational considerations early in the product and organizational lifecycle. The system of systems conceived features the characteristics of the cyber-physical domain, including various activities in different organizations and systems to deliver the desired outcomes. The proposed architecture derives from a concurrent engineering process and facilitates the exchange of services between a multi-segment shared infrastructure (space, ground, and data collection stations) through Application Programming Interfaces (APIs) and users.

References

  1. B. Alkire B. Fox, K. Brancato. 2007. Guidelines and Metrics for Assessing Space System Cost Estimates. RAND Corporation report prepared for the United States Air Force (2007).Google ScholarGoogle Scholar
  2. Andrea Bondavalli, Sara Bouchenak, and Hermann Kopetz (Eds.). 2020. Cyber-Physical Systems of Systems(. ed.). Lecture Notes in Computer Science, Vol. 10099. Springer. https://doi.org/10.1007/978-3-319-47590-5Google ScholarGoogle ScholarCross RefCross Ref
  3. A. Pataricza C. L. G. Batista, F. M. Francisco. 2022. Heterogeneous Federated CubeSat System: problems, constraints and capabilities. (2022).Google ScholarGoogle Scholar
  4. Instituto Nacional de Pesquisas Espaciais. 2022. SINDA - Sistema Integrado de Dados Ambientais. Retrieved July 16, 2022 from http://sinda.crn.inpe.br/PCD/SITE/novo/site/index.phpGoogle ScholarGoogle Scholar
  5. Instituto Federal do Rio Grande do Norte. 2022. Estação Multimissão de Natal - EMMN. Retrieved July 16, 2022 from https://ccsl.ifrn.edu.br/portfolio-de-projetos/emmn/Google ScholarGoogle Scholar
  6. Instituto Federal do Rio Grande do Norte. 2022. Plataforma de Coleta de Dados Ambientais - Samanaú.PCD. Retrieved July 16, 2022 from https://ccsl.ifrn.edu.br/portfolio-de-projetos/samanau/samanau-pcd/Google ScholarGoogle Scholar
  7. Instituto Federal do Rio Grande do Norte. 2022. Plataforma de visualização de dados Samanaú.WEB. Retrieved July 16, 2022 from https://ccsl.ifrn.edu.br/portfolio-de-projetos/samanau/samanau-web/Google ScholarGoogle Scholar
  8. Instituto Federal do Rio Grande do Norte. 2022. Transmisor Satelital Samanaú.TX, Samanaú.TX. Retrieved July 16, 2022 from https://ccsl.ifrn.edu.br/portfolio-de-projetos/samanau/samanau-tx/Google ScholarGoogle Scholar
  9. E. R. Helmeid. 2021. Development of a Hybrid Product Breakdown Structure and Variability Model(INSIGHT, Vol. 24). 22–29.Google ScholarGoogle Scholar
  10. INCOSE. 2015. Systems Engineering Handbook: A Guide for System Life Cycle Processes and Activities (4th. ed.). Wiley.Google ScholarGoogle Scholar
  11. A. A. S. IVO. 2013. A tool for evaluating satellite flight plans using state models. Thesis (MSc in Engineering and Management of Space Systems). Master’s thesis. National Institute of Space Research (INPE), São José dos Campos.Google ScholarGoogle Scholar
  12. G. Loureiro. 1999. A systems engineering and concurrent engineering framework for the integrated development of complex products. Master’s thesis. Loughborough University, Loughborough, UK.Google ScholarGoogle Scholar
  13. G. Loureiro. 2022. CSE201-4 Classes Notes. Classes Notes. National Institute of Space Research (INPE), São José dos Campos, SP – Brazil.Google ScholarGoogle Scholar
  14. R.J Henry M.W. Monaghan, W. Mark. 2013. Development of hybrid product breakdown structure for NASA ground systems(AIAA SPACE 2013 Conference and Exposition). 5404.Google ScholarGoogle Scholar
  15. United Nations/Brazil Symposium on Basic Space Technology. 2018. Creating Novel Opportunities with Small Satellite Space Missions. Retrieved July 16, 2022 from https://www.unoosa.org/oosa/en/ourwork/psa/schedule/2018/symposium_brazil_bsti.htmlGoogle ScholarGoogle Scholar
  16. United Nations Committee on the Peaceful Uses of Outer Space. 2018. Report on the United Nations/Brazil Symposium on Basic Space Technology: Creating Novel Opportunities with Small-Satellite Space Missions. (Oct. 2018).Google ScholarGoogle Scholar
  17. A. Zaidman P. Heck. 2018. A systematic literature review on quality criteria for agile requirements specifications. In Software Quality Journal, Vol. 26. 127–160.Google ScholarGoogle Scholar
  18. Dennis Pfisterer, Mirjana Radonjic-Simic, and Julian Reichwald. 2016. Business Model Design and Architecture for the Internet of Everything. Journal of Sensor and Actuator Networks 5, 2 (2016). https://doi.org/10.3390/jsan5020007Google ScholarGoogle ScholarCross RefCross Ref
  19. Biren Prasad. 1996. CONCURRENT ENGINEERING FUNDAMENTALS - Integrated Product Development. Vol. II. Prentice Hall PTR, Upper Saddle River, New Jersey 07458 – USA.Google ScholarGoogle Scholar
  20. L.K. Bromley S.R. Hirshorn, L.D. Voss. 2017. Nasa systems engineering handbook. Retrieved July 16, 2022 from https://www.nasa.gov/sites/default/files/atoms/files/nasa_systems_engineering_handbook_0.pdfGoogle ScholarGoogle Scholar
  21. R.I. Winner, J.P. Pennell, H.E. Bertrand, and M.M.G. Slusarzuk. 1988. The Role of Concurrent Engineering in Weapon Systems Acquisition. Institute of Defense AnalysesR-338 (1988).Google ScholarGoogle Scholar

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        cover image ACM Other conferences
        LADC '22: Proceedings of the 11th Latin-American Symposium on Dependable Computing
        November 2022
        167 pages
        ISBN:9781450397377
        DOI:10.1145/3569902

        Copyright © 2022 ACM

        © 2022 Association for Computing Machinery. ACM acknowledges that this contribution was authored or co-authored by an employee, contractor or affiliate of a national government. As such, the Government retains a nonexclusive, royalty-free right to publish or reproduce this article, or to allow others to do so, for Government purposes only.

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        • Published: 17 January 2023

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