水たまり跳躍が水の物理学に新法則を生む(Leaping puddles create new rules for water physics)

2026-02-26 バージニア工科大学

Virginia Techの研究チームは、水たまりを跳び越える際に物体がどのように水面と相互作用するかを解析し、跳躍効率を高める新たな流体力学的知見を示した。高速撮影と実験解析により、着水時の水面変形や反発力の発生メカニズムを詳細に解明。特定の角度や速度条件下では、水の慣性と表面張力が組み合わさり、エネルギー損失を抑えてより高く跳ね上がることが分かった。成果は小型ロボットや水上移動デバイスの設計、バイオミメティクス研究への応用が期待される。

<関連情報>

バブル崩壊による水たまりジャンプとジェット印刷 Bubble-burst-induced Puddle Jumping and Jet Printing

Wenge Huang,Mohammad Shamsodini Lori,Anchenyi Yang,Kai Zhuang,Yuanhao Cheng,Mojun Chen,Chao Sun,Tingzhen Ming,Huachen Cui & Jiangtao Cheng
Nature Communications  Published:26 February 2026
DOI:https://doi.org/10.1038/s41467-026-69512-y

水たまり跳躍が水の物理学に新法則を生む(Leaping puddles create new rules for water physics)

Abstract

Self-propelled droplet jumping has widespread applications in surface cleaning, condensation heat transfer, hydrogen production, and triboelectric nanogenerator due to the passive yet effective cross-interface transfer of mass, momentum, energy and charge, whose rates generally increase with droplet size. However, as droplet size increases, gravity inevitably impedes droplet’s mobility, imposing a capillary length constraint of 2.7 mm for water droplet, beyond which self-propelled jumping remains a persistent challenge. Here, we report passive jumping of water puddle in the unprecedented centimeter scale from a superhydrophobic surface through the burst of an entrained bubble, breaking the capillary length limitation for droplet jumping. By virtue of direct and localized impact at droplet base, the bubble-burst-induced capillary waves play a paradigm-shifting role in shortening the impact duration, depressing droplet spreading, and facilitating momentum transfer. With >90% conversion to droplet jumping momentum, the impacting momentum of capillary waves scales linearly while droplet jumping height scales quadratically with bubble radius. Through studying the synergistic interplay between bubble bursting, fluidic jetting and droplet jumping, this work reveals a previously unexplored mechanism of capillary wave impact in fluid-structure interactions and offers a promising strategy for droplet actuations and the directional printing of particles in additive manufacturing.

0106流体工学
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