English

Airspeed Forward-Invariance for Unpowered Fixed-Wing Aircraft

Robotics 2026-04-28 v1 Systems and Control Systems and Control

Abstract

Autonomous fixed-wing flight is becoming a key capability in aerial robotics, enabling sensing, mobility, and contingency operations across both small-scale Uncrewed Aircraft Systems and large-scale Advanced Air Mobility. During unpowered operation in fixed-wing platforms, airspeed is regulated solely through potential-kinetic energy exchange, making airspeed dynamics highly sensitive to guidance commands, particularly under wind. This paper presents a viability-based airspeed protection for ground-referenced guidance in steady wind, where airspeed evolution depends explicitly on the commanded flight path angle. Leveraging Nagumo's tangency condition, we derive a closed-form, wind-dependent characterization of admissible guidance commands that guarantees forward invariance of a safe airspeed envelope. These conditions are embedded within an offline quadratic programming framework to certify airspeed-safe maneuver primitives for non-ascending flight at the guidance level. The approach is validated using a high-fidelity unpowered fixed-wing aircraft model on gliding trajectories formed by concatenating certified maneuver primitives, demonstrating strict airspeed boundedness. Future work will address unsteady wind fields and flight experiments.

Keywords

Cite

@article{arxiv.2604.22860,
  title  = {Airspeed Forward-Invariance for Unpowered Fixed-Wing Aircraft},
  author = {Huseyin Emre Tekaslan and Ella M. Atkins},
  journal= {arXiv preprint arXiv:2604.22860},
  year   = {2026}
}
R2 v1 2026-07-01T12:34:18.760Z