Periodic solutions and bifurcations of a tristable flutter-based energy harvester

被引:6
|
作者
Li, Zhiyuan [1 ]
Zhou, Shuzhe [1 ]
Zhang, Hang [1 ]
Zhou, Shengxi [1 ]
机构
[1] Northwestern Polytech Univ, Sch Aeronaut, Xian 710072, Peoples R China
基金
中国国家自然科学基金;
关键词
Periodic solutions; Bifurcations; Tristable; Flutter -based energy harvester; Incremental harmonic balance; HARMONIC-BALANCE METHOD; DESIGN; AIRFOIL;
D O I
10.1016/j.ast.2023.108815
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
This paper designs a tristable flutter-based energy harvester that can harvest large amplitude interwell windinduced vibration energy. To explore its periodic responses and bifurcation characteristics, the harmonic balance method and the incremental harmonic balance method are employed to solve its approximate solutions by combining the two-point tracing algorithm. By analyzing the incremental harmonic balance solutions, three different response regions and five vibration types are found. The wind tunnel experiment verifies the existence of these vibration types and the correctness of incremental harmonic balance solutions. Five bifurcation points are analyzed using the Floquet theory, and two evolution paths of its periodic solutions are studied. Finally, the influences of the potential well depths on the stable periodic solutions are studied. The shallow potential energy well is beneficial to improving the response stability. This study aims to fill the gap in the semi-analytical and analytical solution of nonlinear flutter-based energy harvesters, contribute to the theoretical analysis of windinduced vibration energy harvesting, and provide more possibilities for the design of high-performance windinduced vibration energy harvesters.
引用
收藏
页数:19
相关论文
共 50 条
  • [31] BIFURCATIONS OF PERIODIC SOLUTIONS FOR PLANE MAPPINGS
    曹进德
    李琼
    Applied Mathematics and Mechanics(English Edition), 1993, (09) : 879 - 885
  • [32] Modeling of pulsating incoming flow using vortex particle methods to investigate the performance of flutter-based energy harvesters
    Chawdhury, Samir
    Milani, Dario
    Morgenthal, Guido
    COMPUTERS & STRUCTURES, 2018, 209 : 130 - 149
  • [33] Global dynamic analysis of a typical tristable piezoelectric energy harvester for performance enhancement
    Cui, Diandian
    Shang, Huilin
    CHAOS SOLITONS & FRACTALS, 2024, 186
  • [34] Dynamic modeling and analysis of a tristable vortex-induced vibration energy harvester
    Ma, Xiaoqing
    Li, Zhiyuan
    Zhang, Hang
    Zhou, Shengxi
    MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 2023, 187
  • [35] On the performance improvement of a flutter based energy harvester by introducing additional wake field
    Agarwal, Ankit
    Purohit, Ashish
    ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2021,
  • [36] Numerical and experimental investigation of piezoelectric energy harvester based on flag-flutter
    Eugeni, Marco
    Elahi, Hassan
    Fune, Federico
    Lampani, Luca
    Mastroddi, Franco
    Romano, Giovanni Paolo
    Gaudenzi, Paolo
    AEROSPACE SCIENCE AND TECHNOLOGY, 2020, 97
  • [37] Output characteristics investigation of airfoil-based flutter piezoelectric energy harvester
    Tian H.
    Shan X.
    Zhang J.
    Sui G.
    Xie T.
    Lixue Xuebao/Chinese Journal of Theoretical and Applied Mechanics, 2021, 53 (11): : 3016 - 3024
  • [38] A Hybrid Energy Harvester Based on Bowtie Periodic Antenna Surface
    Abushab, Mahmoud
    Almoneef, Thamer S.
    Amin, Muhammad
    Siddiqui, Omar F.
    IEEE ACCESS, 2025, 13 : 14417 - 14425
  • [39] A magnetic levitation-based tristable hybrid energy harvester for scavenging energy from low-frequency structural vibration
    Yang, X.
    Wang, C.
    Lai, S. K.
    ENGINEERING STRUCTURES, 2020, 221
  • [40] Modeling and Testing of a Novel Aeroelastic Flutter Energy Harvester
    Bryant, Matthew
    Garcia, Ephrahim
    JOURNAL OF VIBRATION AND ACOUSTICS-TRANSACTIONS OF THE ASME, 2011, 133 (01):