科学者が障害物を乗り越える「奇妙な」物体を創造(Scientists create ‘odd’ objects that adapt and move over obstacles)

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2025-03-12 シカゴ大学

シカゴ大学とアムステルダム大学の物理学者たちは、中央制御装置や「脳」を持たずに、地形に適応し障害物を乗り越えることができる「奇妙な」物体を開発しました。 これらの物体は、モーターで駆動される単純な装置を弾性スプリングで接続した構造で、各構成要素間の非対称かつ非相互的な力の相互作用によって移動します。この設計により、砂の山やボールベアリングのフィールドなどの困難な地形でも容易に移動でき、個々のユニットの半数以上を停止させても全体としての移動が可能でした。この研究は、「アクティブ・メタマテリアル」と呼ばれる分野に属し、ロボットの移動や材料科学、化学などの分野で新たな応用が期待されています。

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活動的な固体の適応的ロコモーション Adaptive locomotion of active solids

Jonas Veenstra,Colin Scheibner,Martin Brandenbourger,Jack Binysh,Anton Souslov,Vincenzo Vitelli & Corentin Coulais
Nature  Published:12 March 2025
DOI:https://doi.org/10.1038/s41586-025-08646-3

科学者が障害物を乗り越える「奇妙な」物体を創造(Scientists create ‘odd’ objects that adapt and move over obstacles)

Abstract

Active systems composed of energy-generating microscopic constituents are a promising platform to create autonomous functional materials that can, for example, locomote through complex and unpredictable environments. Yet coaxing these energy sources into useful mechanical work has proved challenging. Here we engineer active solids based on centimetre-scale building blocks that perform adaptive locomotion. These prototypes exhibit a non-variational form of elasticity characterized by odd moduli, whose magnitude we predict from microscopics using coarse-grained theories and which we validate experimentally. When interacting with an external environment, these active solids spontaneously undergo limit cycles of shape changes, which naturally lead to locomotion such as rolling and crawling. The robustness of the locomotion is rooted in an emergent feedback loop between the active solid and the environment, which is mediated by elastic deformations and stresses. As a result, our active solids are able to accelerate, adjust their gaits and locomote through a variety of terrains with a similar performance to more complex control strategies implemented by neural networks. Our work establishes active solids as a bridge between materials and robots and suggests decentralized strategies to control the nonlinear dynamics of biological systems, soft materials and driven nanomechanical devices.

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