Adaptive Glide Slope Control for Parafoil and Payload Aircraft
Author(s) -
Michael B. Ward,
Mark Costello
Publication year - 2013
Publication title -
journal of guidance control and dynamics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.573
H-Index - 143
eISSN - 1533-3884
pISSN - 0731-5090
DOI - 10.2514/1.59260
Subject(s) - payload (computing) , flight test , computer science , work (physics) , control (management) , aerospace engineering , identification (biology) , simulation , control system , control theory (sociology) , engineering , artificial intelligence , mechanical engineering , computer network , network packet , botany , electrical engineering , biology
The invention of the steerable, gliding, ram-air parafoil enabled the possibility of precision, autonomous aerial payload delivery. Research and development work on guided airdrop systems has focused primarily on evolutionary improvements to the guidance algorithm, although the navigation and control algorithms have changed little since the initial autonomous systems were developed. Recent work has demonstrated the potential for dramatic improvements in landing accuracy through the incorporation of canopy incidence variation to achieve glide slope control for parafoils. The current work presents the development of a control law to implement glide slope control on an autonomous airdrop system. Autonomous landings with the control law in both simulation and flight test demonstrate an improvement in landing accuracy by a factor of two, though the improvement can be even greater in especially windy conditions. Finally, the ability to perform in-flight system identification to adapt internal control mappings t...
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