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Global Journal of Engineering and Technology Advances
International Peer reviewed Engineering Journal || Crossref DOI || Impact Factor 8.6 || ISSN: 2582-5003

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Research & review articles are invited for publication in September 2026 (Vol. 28, Issue 3) || Submission: up to 28th September || Editorial decision: within 48 hrs.

STATIC FIRE TEST METHODOLOGIES FOR SOLID ROCKET MOTOR QUALIFICATION AND PERFORMANCE EVALUATION

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  • STATIC FIRE TEST METHODOLOGIES FOR SOLID ROCKET MOTOR QUALIFICATION AND PERFORMANCE EVALUATION

Ayinde Babatunde Atanda *, Nwisu Blessing Nnenna, John Philip Oluwasegun, Adetoyinbo Kolade Joseph and Maimuna Suleiman

Bola Ahmed Tinubu Centre for space transport and propulsion / National Space Research and Development Agency, Lagos Nigeria.
* Corresponding Author

Research Article

Global Journal of Engineering and Technology Advances, 2026, 28(03), 105–113

Article DOI: 10.30574/gjeta.2026.28.3.0235

DOI url: https://doi.org/10.30574/gjeta.2026.28.3.0235

Received on 27 July 2026; revised on 05 September 2026; accepted on 08 September 2026

Static fire (captive-fired) testing remains the principal ground-based method for verifying that a solid rocket motor (SRM) meets its design, performance, structural, and safety requirements before it is certified for flight. This paper critically reviews the methodologies, instrumentation, data-analysis practices, and standards that govern static fire testing across the development, qualification, and acceptance phases of SRM certification. Drawing on NASA design-criteria documents, U.S. Space Force/Aerospace Corporation and military test standards, peer-reviewed metrology literature, and documented flight-program case studies (the Space Shuttle Redesigned Solid Rocket Motor and the European Vega P80/Zefiro family), the review compares test philosophies, instrumentation and data-acquisition practices, and uncertainty-quantification methods, and evaluates how static fire evidence supports certification and flight-readiness decisions. It identifies persistent limitations — chiefly the difficulty of reproducing flight thermal, vibratory, and aerodynamic environments on the ground, the cost and destructive nature of large-motor testing, and unresolved gaps in automated anomaly detection and model-test correlation — and discusses emerging directions such as digital twins, non-destructive evaluation integration, and data-driven anomaly detection. The paper is confined to test methodology, instrumentation, data evaluation, and certification practice, and does not address propellant formulation, ignition-system design, or motor construction.

Solid Rocket Motor; Static Fire Test; Captive-Fired Testing; Qualification Testing; Acceptance Testing; Certification; Measurement Uncertainty; NASA-STD; Test Instrumentation; Flight Readiness

https://gjeta.com/sites/default/files/fulltext_pdf/GJETA-2026-0235.pdf

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Ayinde Babatunde Atanda, Nwisu Blessing Nnenna, John Philip Oluwasegun, Adetoyinbo Kolade Joseph and Maimuna Suleiman. STATIC FIRE TEST METHODOLOGIES FOR SOLID ROCKET MOTOR QUALIFICATION AND PERFORMANCE EVALUATION. Global Journal of Engineering and Technology Advances, 2026, 28(03), 105–113. Article DOI: https://doi.org/10.30574/gjeta.2026.28.3.0235.

Copyright © Author(s). All rights reserved. This article is published under the terms of the Creative Commons Attribution 4.0 International License (CC BY 4.0), which permits use, sharing, adaptation, distribution, and reproduction in any medium or format, as long as appropriate credit is given to the original author(s) and source, a link to the license is provided, and any changes made are indicated.


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