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Non-muscle Powered Actuation Inspired by Cellular Morphology and Hydraulics of the Venus Flytrap

摘要Bio-inspired and bio-hybrid principles are used to design robots that imitate biological systems.Animals and insects are commonly selected as the prototype in this context due to their mobility.However,plants have been found to grow slowly but move rapidly based on hydraulics and mechanics.The Venus flytrap(Dionaea muscipula)is an example of a carnivorous plant that eats insects,but the mechanism underlying its quick predation behavior has not been adequately explored in research.It is particularly important to determine how cells of this plant are grouped together,from the level of the cell to that of the tissue as well as from the microscopic to the macroscopic scale,such that they can perform this motion without the help of muscles.In this study,we map the cellular characteristics and cell distribution of the Venus flytrap.We propose an area-weighted central point to describe a units-driven principle of actuation and develop a compu-tational model to verify it.We fabricate and test a physical model that patterned the cellular structure of the Venus flytrap to explore this mechanism by using chemically fixed and immobile samples.The hydrogel-based actuator replicates the deformation of the plant cell under turgor pressure.The statistical results show that the area-weighted center of the plant involves a shift,and this distribution actuates the bending-induced deformation of its lobes.

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作者 Xiangli Zeng [1] Yingzhe Wang [1] Keisuke Morishima [1] 学术成果认领
作者单位 Department of Mechanical Engineering,The University of Osaka,2-1 Yamada-Oka,Suita,Osaka 565-0871,Japan [1]
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DOI 10.1007/s42235-025-00828-z
发布时间 2026-04-30(万方平台首次上网日期,不代表论文的发表时间)
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仿生工程学报(英文版)

仿生工程学报(英文版)

2026年23卷2期

828-841页

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