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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.

Auxiliary Thrust Jet Engines: Design, Integration, and Performance Analysis

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  • Auxiliary Thrust Jet Engines: Design, Integration, and Performance Analysis

Omaje Vincent chukwubuike 1, *, Solomon Saiki 2, Ndukuba Chidinma Oluebube 3, Sunday Itoro Benjamin 4, Adedeji Adeoye 5 and Halima Yusuf 6

1 Department of manufacturing and lunch services, BATCSTP/NASRDA.
2 Department of rocket system engineering BATCSTP/NASRDA.
3 Department of Structures and Aerodynamic System BATCSTP/NASRDA. 
4 Department of maintenance and infrastructure BAT/CSTP.
5 Department of Rocket Propulsion BATCSTP/NASRDA.
6 Department of space exploration ZASTAL/NASRDA.
* Corresponding Author

Research Article

Global Journal of Engineering and Technology Advances, 2026, 28(03), 125–141

Article DOI: 10.30574/gjeta.2026.28.3.0229

DOI url: https://doi.org/10.30574/gjeta.2026.28.3.0229

Received on 24 July 2026; revised on 01 September 2026; accepted on 03 September 2026

Fixed-wing surveillance aircraft built around electric or small internal-combustion propulsion offer good endurance but are speed-limited, which restricts their ability to reposition rapidly over long standoff distances or evade emerging threats. This paper presents the design, integration methodology, and performance analysis of an auxiliary thrust micro-turbojet engine intended to supplement the primary propulsion system of a long-range, high-speed intelligence, surveillance, and reconnaissance (ISR) aircraft. The proposed architecture retains an efficient primary propulsion system for extended loiter and cruise, while a belly-mounted auxiliary turbojet is engaged during transit, dash, and evasive-maneuver phases to substantially increase true airspeed and reduce time-to-station. A thrust-drag-range simulation model, adapted from the Breguet range equation and a simplified thermodynamic thrust-lapse model, is used to evaluate the performance envelope across altitude, Mach number, and auxiliary-engine duty cycle. Under the first-order model's simplifying assumptions, engaging the auxiliary jet for 20–40% of a representative mission profile is predicted to extend effective mission range by approximately 28–46% relative to an electric-only baseline, at the cost of increased fuel-mass fraction and thermal signature during the dash phase; these figures have not yet been validated against bench or flight-test data. The paper further discusses structural mounting considerations, fuel-system sharing strategies, control-law implications for a dual-propulsion digital electronic control unit (DECU), and the principal design trade-offs of the hybrid configuration. The findings support auxiliary jet augmentation as a viable path to combining long dwell time with high transit speed in medium-class surveillance aircraft platforms.

Auxiliary Thrust, Micro-Turbojet, Hybrid Propulsion, Surveillance Aircraft, ISR, Thrust-Lapse Model, Breguet Range Equation, Dual Propulsion, Aircraft Performance Analysis.

https://gjeta.com/sites/default/files/fulltext_pdf/GJETA-2026-0229.pdf

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Omaje Vincent chukwubuike, Solomon Saiki, Ndukuba Chidinma Oluebube, Sunday Itoro Benjamin, Adedeji Adeoye and Halima Yusuf. AUXILIARY THRUST JET ENGINES: DESIGN, INTEGRATION, AND PERFORMANCE ANALYSIS. Global Journal of Engineering and Technology Advances, 2026, 28(03), 125–141. Article DOI: https://doi.org/10.30574/gjeta.2026.28.3.0229.

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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