热蒸汽驱动硅油纸圆盘在表面上的多模态自维持运动

IF 5.6 1区 数学 Q1 MATHEMATICS, INTERDISCIPLINARY APPLICATIONS
Jun Zhao, Zhongrui Zhang, Xiaodie Sun, Wei Zuo, Kai Li
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引用次数: 0

摘要

自我维持运动作为解决复杂问题和应对各种挑战的有力工具,由于其效率,智谋和灵活性,在仿生学,软机器人和能量收集器等各个学科中取得了显著的进步。尽管如此,单模自我维持运动在不同的环境中通常是为特定的任务要求量身定制的,缺乏对环境变化的适应性。为了解决这些限制,本研究旨在开发一种多模态自维持系统,其中硅油盘放置在热蒸汽表面上。硅油盘在热蒸汽的驱动下,可在支撑表面连续自振荡或自翻滚。此外,我们还建立了热-力耦合模型来预测自振荡、自翻滚和静态模式之间的转变。理论结果表明,自振荡的频率随温度和半径的增加而增加。理论预测与实验结果很吻合。硅油盘利用合适的温度场来实现可编程变形,并表现出多模态自我持续运动,具有利用地热和工业废热的潜力,使其成为自主机器人,热机械转换和废热回收的多功能,经济高效和节能的解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multi-modal self-sustained motions of a silicone oil paper disc on a surface driven by hot steam
Self-sustained locomotion, as a potent tool for tackling intricate problems and navigating diverse challenges, has made notable strides across various disciplines such as bionics, soft robotics, and energy harvesters, owing to its efficiency, resourcefulness, and flexibility. Nonetheless, single-mode self-sustained motion in varied environments is typically tailored to specific task requirements and lacks adaptability to environmental shifts. To address these limitations, this study aims to develop a multi-modal self-sustained system, in which, a silicone oil disc is placed on a surface with hot steam. Driven by the hot steam, the silicone oil disc can self-oscillate or self-tumble continuously on the supporting surface. Furthermore, we established a thermo-mechanical coupling model to predict the transitions among self-oscillation, self-tumbling, and static modes. Theoretical findings reveal that the frequency of the self-oscillation increases with an increase in temperature and radius. The theoretical predictions align well with experimental results. The silicone oil disc utilizes a suitable temperature field to achieve programmable deformation and exhibits multi-modal self-sustained motions, with the potential to harness geothermal and industrial waste heat, making it a versatile, cost-effective, and energy-efficient solution for autonomous robotics, thermal-mechanical conversion, and waste heat recovery.
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来源期刊
Chaos Solitons & Fractals
Chaos Solitons & Fractals 物理-数学跨学科应用
CiteScore
13.20
自引率
10.30%
发文量
1087
审稿时长
9 months
期刊介绍: Chaos, Solitons & Fractals strives to establish itself as a premier journal in the interdisciplinary realm of Nonlinear Science, Non-equilibrium, and Complex Phenomena. It welcomes submissions covering a broad spectrum of topics within this field, including dynamics, non-equilibrium processes in physics, chemistry, and geophysics, complex matter and networks, mathematical models, computational biology, applications to quantum and mesoscopic phenomena, fluctuations and random processes, self-organization, and social phenomena.
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