鳥をモチーフにしたドローン、ジャンプして離陸可能(Bird-inspired drone can jump for take-off)

ad

2024-12-06 スイス連邦工科大学ローザンヌ校(EPFL)

スイス連邦工科大学ローザンヌ校(EPFL)の研究者たちは、鳥類の脚に着想を得たドローン「RAVEN」を開発しました。このドローンは、歩行や障害物の乗り越え、ジャンプによる離陸が可能で、従来の固定翼ドローンがアクセスできなかった環境でも運用できます。RAVENの脚部は、バネとモーターを組み合わせ、鳥の腱や筋肉の動きを模倣しており、軽量化と多機能性を実現しています。この設計により、RAVENは滑走路を必要とせずに離着陸が可能で、災害救助や配送など、複雑な地形での運用が期待されています。

<関連情報>

鳥類に着想を得た多機能脚で地上から空中への高速移動を実現 Fast ground-to-air transition with avian-inspired multifunctional legs

Won Dong Shin,Hoang-Vu Phan,Monica A. Daley,Auke J. Ijspeert & Dario Floreano
Nature  Published:04 December 2024
DOI:https://doi.org/10.1038/s41586-024-08228-9

鳥をモチーフにしたドローン、ジャンプして離陸可能(Bird-inspired drone can jump for take-off)

Abstract

Most birds can navigate seamlessly between aerial and terrestrial environments. Whereas the forelimbs evolved into wings primarily for flight, the hindlimbs serve diverse functions such as walking, hopping and leaping, and jumping take-off for transitions into flight1. These capabilities have inspired engineers to aim for similar multimodality in aerial robots, expanding their range of applications across diverse environments. However, challenges remain in reproducing multimodal locomotion, across gaits with distinct kinematics and propulsive characteristics, such as walking and jumping, while preserving lightweight mass for flight. This trade-off between mechanical complexity and versatility2 limits most existing aerial robots to only one additional locomotor mode3,4,5. Here we overcome the complexity–versatility trade-off with RAVEN (Robotic Avian-inspired Vehicle for multiple ENvironments), which uses its bird-inspired multifunctional legs to jump rapidly into flight, walk on the ground, and hop over obstacles and gaps similar to the multimodal locomotion of birds. We show that jumping for take-off contributes substantially to the initial flight take-off speed6,7,8,9 and, remarkably, that it is more energy efficient than taking off without the jump. Our analysis suggests an important trade-off in mass distribution between legs and body among birds adapted for different locomotor strategies, with greater investment in leg mass among terrestrial birds with multimodal gait demands. Multifunctional robot legs expand the opportunities to deploy traditional fixed-wing aircraft in complex terrains through autonomous take-offs and multimodal gaits.

0301機体システム
ad
ad
Follow
ad
タイトルとURLをコピーしました