Robust $H_{\infty}$ Loop-Shaping Differential Thrust Control Methodology for Lateral/Directional Stability of an Aircraft with a Damaged Vertical Stabilizer
Long Kim Lu, Kamran Turkoglu

TL;DR
This paper presents a robust control methodology using $H_{ extinfty}$ loop-shaping to enable an aircraft with a damaged vertical stabilizer to maintain stability and control through differential thrust acting as a virtual rudder.
Contribution
It introduces a novel $H_{ extinfty}$ loop-shaping control approach for differential thrust to stabilize damaged aircraft lacking a physical rudder.
Findings
Successful stabilization of damaged aircraft using the proposed control method
Robustness of the control system maintained under uncertainty
Safe landing achieved within control limits
Abstract
The vertical stabilizer is the key aerodynamic surface that provides an aircraft with its directional stability characteristic while ailerons and rudder are the primary control surfaces that give pilots control authority of the yawing and banking maneuvers. Losing the vertical stabilizer will, therefore, result in the consequential loss of lateral/directional stability and control, which is likely to cause a fatal crash. In this paper, we construct a scenario of a damaged aircraft model which has no physical rudder control surface, and then a strategy based on differential thrust is proposed to be utilized as a control input to act as a "virtual" rudder to help maintain stability and control of the damaged aircraft. The loop-shaping approach based robust control system design is implemented to achieve a stable and robust flight envelope, which is aimed to provide a safe…
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Taxonomy
TopicsDynamics and Control of Mechanical Systems · Aerospace Engineering and Control Systems · Guidance and Control Systems
