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Toward structurally-integrated locally resonant metamaterials for vibration attenuation

机译:走向结构集成的局部共振超材料以减少振动

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In this contribution, we explore the use of locally resonant metamaterials for multi-functional structural load-bearing concepts using analytical, numerical, and experimental techniques. Locally resonant metamaterials exhibit bandgaps at wavelengths much larger than the lattice dimension. This is a promising feature for low-frequency vibration attenuation. The presented work aims to investigate highly integrated structural concepts and experimentally validated prototypes for vibration reduction in load-bearing applications. The goal is to explore and extend the design space of lightweight structural systems, by designing multi-functional periodic structural elements, preserving structural stiffness while concurrently enabling sufficiently wideband damping performance over a target frequency range of interest. Following a generalized theoretical modeling framework for bandgap design and analysis in finite structures, the focus is placed on the design, fabrication, and analysis of a load-carrying frame development with internally resonant components. Finite-element modeling is employed to design and analyze the frequency response of the frame and simplified analytical solution is compared with this numerical solution. Experimental validations are presented for a 3D-printed prototype. The effects of various parameters are reported both based on numerical and experimental findings.
机译:在这项贡献中,我们使用分析,数值和实验技术探索了局部共振超材料在多功能结构承重概念中的使用。局部共振超材料在比晶格尺寸大得多的波长处显示出带隙。这是低频振动衰减的有前途的功能。提出的工作旨在研究高度集成的结构概念和经过实验验证的原型,以减少承重应用中的振动。目的是通过设计多功能周期性结构元件,在保持目标结构频率范围的同时,同时实现足够的宽带阻尼性能的同时,通过设计多功能周期性结构元件来探索和扩展轻型结构系统的设计空间。在用于有限结构中带隙设计和分析的通用理论建模框架之后,重点放在具有内部谐振组件的承载框架开发的设计,制造和分析上。采用有限元建模来设计和分析框架的频率响应,并将简化的解析解与该数值解进行比较。提出了针对3D打印原型的实验验证。根据数值和实验结果,报告了各种参数的影响。

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