Mechanisms of collision recovery in flying beetles and flapping-wing robots.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 33273101.
- Also identified by DOI 10.1126/science.abd3285.
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Abstract
At rest, beetles fold and tuck their hindwings under the elytra. For flight, the hindwings are deployed through a series of unfolding configurations that are passively driven by flapping forces. The folds lock into place as the wing fully unfolds and thereafter operates as a flat membrane to generate the aerodynamic forces. We show that in the rhinoceros beetle (<i>Allomyrina dichotoma</i>), these origami-like folds serve a crucial shock-absorbing function during in-flight wing collisions. When the wing collides with an object, it collapses along the folds and springs back in place within a single stroke. Collisions are thus dampened, helping the beetle to promptly recover the flight. We implemented this mechanism on a beetle-inspired wing on a flapping-wing robot, thereby enabling it to fly safely after collisions.
Medical subject headings
- Coleoptera
- Flight, Animal
- Robotics