Reconfigurable lattice structures with programmable deformation modes under electrothermal actuation

IF 9.4 1区 工程技术 Q1 ENGINEERING, MECHANICAL International Journal of Mechanical Sciences Pub Date : 2025-04-01 DOI:10.1016/j.ijmecsci.2025.110212
Kai Zhang , Jinyu Ji , Dengbao Xiao , Xiaogang Guo , Daining Fang
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Abstract

Reconfigurable structures with programmable deformation behaviors present significant promise in fields of multifunctional antennas, flexible electronic device and soft robotics, for the capability of achieving multiple mechanical responses in a single structure. However, most previous researches have focused primarily on designing some basic deformation modes for the reconfigurable structures (i.e., shrinkage, expansion and simple shear deformation modes), which limits the exploration of a broader range of complex deformation modes in the reconfigurable structures. This study reports the design strategies for a class of reconfigurable three-phase lattice composite structures with programmable deformation modes under electrothermal actuation. The effective strain matrix is defined to characterize the finite deformation of the lattice composite structures. In addition to five basic deformation modes of the lattice composite structures, several coupled deformation modes are achieved in the lattice structures via specific actuation approaches, including bidirectional programmable shrinkage and expansion deformation, the coupled deformation modes of shearing and expansion or shrinkage. The two elements, and even three elements, of the effective strain matrices of the lattice structures are designed simultaneously, significantly enriching the deformation modes of the structures. A large deformation model is developed to describe the multiple deformation behaviors of the lattice composite structures, the accuracy of which is validated by the FEA and experimental results. Moreover, the experiments demonstrate that multiple deformation behaviors could be obtained in a single lattice composite structure by different actuation approaches. Therefore, this study offers insights for further studies into reconfigurable lattice structures with programmable deformation modes, and enhance the potential applications in fields of multifunctional antennas, flexible electronic device and reconfigurable soft robotic.

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电热驱动下具有可编程变形模式的可重构晶格结构
具有可编程变形行为的可重构结构在多功能天线、柔性电子设备和软机器人领域具有重要的应用前景,因为它具有在单个结构中实现多种机械响应的能力。然而,以往的研究大多集中在可重构结构的一些基本变形模式(即收缩、膨胀和简单的剪切变形模式)的设计上,这限制了对可重构结构中更广泛的复杂变形模式的探索。本研究报告了一类具有可编程变形模式的可重构三相晶格复合结构在电热驱动下的设计策略。定义了有效应变矩阵来表征晶格复合材料结构的有限变形。除了晶格复合材料结构的五种基本变形模式外,还通过特定的驱动方式在晶格结构中实现了几种耦合变形模式,包括双向可编程收缩和膨胀变形、剪切和膨胀或收缩的耦合变形模式。同时设计晶格结构有效应变矩阵的两元甚至三元,极大地丰富了晶格结构的变形模式。建立了描述点阵复合材料结构多种变形行为的大变形模型,并通过有限元分析和实验结果验证了该模型的准确性。实验结果表明,采用不同的驱动方式可以在单点阵复合材料结构中获得多种变形行为。因此,该研究为进一步研究具有可编程变形模式的可重构晶格结构提供了见解,并增强了在多功能天线、柔性电子设备和可重构软机器人领域的潜在应用。
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来源期刊
International Journal of Mechanical Sciences
International Journal of Mechanical Sciences 工程技术-工程:机械
CiteScore
12.80
自引率
17.80%
发文量
769
审稿时长
19 days
期刊介绍: The International Journal of Mechanical Sciences (IJMS) serves as a global platform for the publication and dissemination of original research that contributes to a deeper scientific understanding of the fundamental disciplines within mechanical, civil, and material engineering. The primary focus of IJMS is to showcase innovative and ground-breaking work that utilizes analytical and computational modeling techniques, such as Finite Element Method (FEM), Boundary Element Method (BEM), and mesh-free methods, among others. These modeling methods are applied to diverse fields including rigid-body mechanics (e.g., dynamics, vibration, stability), structural mechanics, metal forming, advanced materials (e.g., metals, composites, cellular, smart) behavior and applications, impact mechanics, strain localization, and other nonlinear effects (e.g., large deflections, plasticity, fracture). Additionally, IJMS covers the realms of fluid mechanics (both external and internal flows), tribology, thermodynamics, and materials processing. These subjects collectively form the core of the journal's content. In summary, IJMS provides a prestigious platform for researchers to present their original contributions, shedding light on analytical and computational modeling methods in various areas of mechanical engineering, as well as exploring the behavior and application of advanced materials, fluid mechanics, thermodynamics, and materials processing.
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