Xin Liu , Shuai Chen , Bing Wang , Xiaojun Tan , Bo Cao , Liang Yu
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引用次数: 0
Abstract
Mechanical metamaterials with real-time tunability are an up-and-coming field with great attention. Due to its capability of realizing different mechanical properties, it provides a foundation for the development of intelligent adaptive structures. In this paper, a mechanical metamaterial with real-time tunable bandgap is proposed, exhibiting a wide range of adjustability. With a combination of theory, numerical simulation and experimental studies, the quasi-static mechanical properties and bandgap characteristics of the metamaterial under constant and changeable pressure are investigated, revealing the effect mechanism of cavity pressures on the mechanical properties. The results show that the metamaterial bandgap would move in real time as the cavity pressure changing. Meanwhile, the starting frequency of the bandgap could be varied from 29.6 Hz to 145.83 Hz, with approximately 5 times adjustment. And the bandgap width could be expanded to 5.7 times of the initial state, revealing an excellent wide range of tunable capabilities. Furthermore, the pneumatic actuation is a simple and reliable operation, enabling it to be normally employed in various extreme environments, such as the seabed. The mechanical metamaterials with a wide adjustable bandgap presented in this paper could provide a reference for the field of adaptive structures, offering a promising solution for the design of real-time adjustable mechanical metamaterials.
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.