Integration of Polyimide Flexible PCB Wings in Northeastern Aerobat
Yizhe Xu

TL;DR
This paper presents the integration of polyimide flexible PCBs into the Northeastern Aerobat's membrane wing structure, enhancing its hovering stability in confined spaces through origami-inspired design and feedback stabilization.
Contribution
It introduces a novel wing design using flexible polyimide PCBs and feedback stabilizers, improving collision tolerance and hovering capabilities of bio-inspired drones.
Findings
Successful stable hovering within confined spaces
Enhanced collision tolerance with flexible wing design
Effective feedback stabilization for drone control
Abstract
The principal aim of this Master's thesis is to propel the optimization of the membrane wing structure of the Northeastern Aerobat through origami techniques and enhancing its capacity for secure hovering within confined spaces. Bio-inspired drones offer distinctive capabilities that pave the way for innovative applications, encompassing wildlife monitoring, precision agriculture, search and rescue operations, as well as the augmentation of residential safety. The evolved noise-reduction mechanisms of birds and insects prove advantageous for drones utilized in tasks like surveillance and wildlife observation, ensuring operation devoid of disturbances. Traditional flying drones equipped with rotary or fixed wings encounter notable constraints when navigating narrow pathways. While rotary and fixed-wing systems are conventionally harnessed for surveillance and reconnaissance, the…
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Taxonomy
TopicsRobotic Path Planning Algorithms · Aerospace Engineering and Energy Systems · Biomimetic flight and propulsion mechanisms
