多稳态电磁振动能量采集器的对比研究及非线性特性

IF 2.7 3区 材料科学 Q2 ENGINEERING, MECHANICAL
A. A. Zayed, B. E. Saunders, A. Abdelkefi
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引用次数: 0

摘要

对多稳态电磁振动能量采集器的响应进行了非线性表征。通过对收割机的支撑弹簧施加初始压缩,形成几何非线性,并根据几何参数将系统转换为单稳定、双稳定和三稳定配置。考虑阻尼比和激励幅值对系统动力学的影响,结合多稳态能量采集器的低频设计准则,分别研究了单稳态、双稳态和三稳态能量采集器在上扫和下扫激励下的动力学和有效性。此外,本研究还介绍了一种新的方法,用于配置收割机专门捕获预定范围的频率,该频率由非线性系统的线性化频率的选择决定。并对三种收割机的配置进行了比较研究。研究表明,双稳态和三稳态能量收集系统的有效性和动力学特性强烈依赖于输入激励和阻尼。这是由于井内和井间运动的存在,从而导致整个系统的动力学变化。结果表明,由于系统的混沌井间运动,三稳定收割机在超低频率下具有很大的优势。然而,这种三稳定设计很大程度上取决于几个因素,这些因素可能会导致井内运动导致性能下降。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comparative investigation and nonlinear characterization of multi-stable electromagnetic vibration energy harvesters

The nonlinear characterization of the response of a multi-stable electromagnetic vibration energy harvester is performed. By applying an initial compression to the harvester’s supporting springs, a geometrical nonlinearity develops and can transition the system through mono-stable, bi-stable, and tri-stable configurations based on the geometrical parameters. Considering a low frequency design criterion for the multi-stable energy harvester, the dynamics and effectiveness of the mono-, bi-, and tri-stable harvester is studied individually for up- and down-swept excitations considering the influence of the damping ratio and excitation amplitude on the system’s dynamics. Furthermore, this study introduces a novel methodology for configuring the harvester to specifically capture a predetermined range of frequencies, determined by the selection of the linearized frequency of the nonlinear system. A comparative study is carried out among the three harvesters’ configurations as well. It is demonstrated that the effectiveness and dynamics of bi-stable and tri-stable energy harvesting systems are strongly dependent on the input excitation and damping. This is due to the existence of intra-well and inter-well motions and hence the overall system’s dynamics change. The results of the comparisons demonstrate that the tri-stable harvester has great advantage in ultra-low frequencies due to the chaotic inter-well motion of the system. However, this tri-stable design is strongly dependent on several factors that may result in low performance due to the intra-well motion.

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来源期刊
International Journal of Mechanics and Materials in Design
International Journal of Mechanics and Materials in Design ENGINEERING, MECHANICAL-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
6.00
自引率
5.40%
发文量
41
审稿时长
>12 weeks
期刊介绍: It is the objective of this journal to provide an effective medium for the dissemination of recent advances and original works in mechanics and materials'' engineering and their impact on the design process in an integrated, highly focused and coherent format. The goal is to enable mechanical, aeronautical, civil, automotive, biomedical, chemical and nuclear engineers, researchers and scientists to keep abreast of recent developments and exchange ideas on a number of topics relating to the use of mechanics and materials in design. Analytical synopsis of contents: The following non-exhaustive list is considered to be within the scope of the International Journal of Mechanics and Materials in Design: Intelligent Design: Nano-engineering and Nano-science in Design; Smart Materials and Adaptive Structures in Design; Mechanism(s) Design; Design against Failure; Design for Manufacturing; Design of Ultralight Structures; Design for a Clean Environment; Impact and Crashworthiness; Microelectronic Packaging Systems. Advanced Materials in Design: Newly Engineered Materials; Smart Materials and Adaptive Structures; Micromechanical Modelling of Composites; Damage Characterisation of Advanced/Traditional Materials; Alternative Use of Traditional Materials in Design; Functionally Graded Materials; Failure Analysis: Fatigue and Fracture; Multiscale Modelling Concepts and Methodology; Interfaces, interfacial properties and characterisation. Design Analysis and Optimisation: Shape and Topology Optimisation; Structural Optimisation; Optimisation Algorithms in Design; Nonlinear Mechanics in Design; Novel Numerical Tools in Design; Geometric Modelling and CAD Tools in Design; FEM, BEM and Hybrid Methods; Integrated Computer Aided Design; Computational Failure Analysis; Coupled Thermo-Electro-Mechanical Designs.
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