Sum-of-squares optimization;
Nonlinear stability analysis;
Region of attraction;
Autopilot;
NONLINEAR DYNAMICAL-SYSTEMS;
STABILITY REGIONS;
CONTROLLERS;
DOMAINS;
D O I:
10.1007/s42405-018-0008-4
中图分类号:
V [航空、航天];
学科分类号:
08 ;
0825 ;
摘要:
A conventional method of designing a missile autopilot is to linearize the original nonlinear dynamics at several trim points, then to determine linear controllers for each linearized model, and finally implement gain-scheduling technique. The validation of such a controller is often based on linear system analysis for the linear closed-loop system at the trim conditions. Although this type of gain-scheduled linear autopilot works well in practice, validation based solely on linear analysis may not be sufficient to fully characterize the closed-loop system especially when the aerodynamic coefficients exhibit substantial nonlinearity with respect to the flight condition. The purpose of this paper is to present a methodology for analyzing the stability of a gain-scheduled controller in a setting close to the original nonlinear setting. The method is based on sum-of-squares (SOS) optimization that can be used to characterize the region of attraction of a polynomial system by solving convex optimization problems. The applicability of the proposed SOS-based methodology is verified on a short-period autopilot of a skid-to-turn missile.