TY - JOUR
T1 - Reconfigurable flight control design for combat flying wing with multiple control surfaces
AU - Wang, Lixin
AU - Wang, Lei
PY - 2012/8
Y1 - 2012/8
N2 - With control using redundant multiple control surface arrangement and large-deflection drag rudders, a combat flying wing has a higher probability for control surface failures. Therefore, its flight control system must be able to reconfigure after such failures. Considering three types of typical control surface failures (lock-in-place (LIP), loss-of-effectiveness (LOE) and float), flight control reconfiguration characteristic and capability of such aircraft types are analyzed. Because of the control surface redundancy, the aircraft using the dynamic inversion flight control law already has a control allocation block. In this paper, its flight control configuration during the above failures is achieved by modifying this block. It is shown that such a reconfigurable flight control design is valid, through numerical simulations of flight attitude control task. Results indicate that, in the circumstances of control surface failures with limited degree and the degradation of the flying quality level, a combat flying wing adopting this flight control reconfiguration approach based on control allocation could guarantee its flight safety and perform some flight combat missions.
AB - With control using redundant multiple control surface arrangement and large-deflection drag rudders, a combat flying wing has a higher probability for control surface failures. Therefore, its flight control system must be able to reconfigure after such failures. Considering three types of typical control surface failures (lock-in-place (LIP), loss-of-effectiveness (LOE) and float), flight control reconfiguration characteristic and capability of such aircraft types are analyzed. Because of the control surface redundancy, the aircraft using the dynamic inversion flight control law already has a control allocation block. In this paper, its flight control configuration during the above failures is achieved by modifying this block. It is shown that such a reconfigurable flight control design is valid, through numerical simulations of flight attitude control task. Results indicate that, in the circumstances of control surface failures with limited degree and the degradation of the flying quality level, a combat flying wing adopting this flight control reconfiguration approach based on control allocation could guarantee its flight safety and perform some flight combat missions.
KW - control allocation
KW - control surface failure
KW - drag rudder
KW - flight control
KW - flying wing
KW - multiple control surfaces
KW - reconfiguration
UR - https://www.scopus.com/pages/publications/84865589776
U2 - 10.1016/S1000-9361(11)60412-3
DO - 10.1016/S1000-9361(11)60412-3
M3 - 文章
AN - SCOPUS:84865589776
SN - 1000-9361
VL - 25
SP - 493
EP - 499
JO - Chinese Journal of Aeronautics
JF - Chinese Journal of Aeronautics
IS - 4
ER -