Synchronous and asynchronous vibration suppression and energy harvesting techniques: Principles, methods and applications

被引:0
|
作者
Fang, Shitong [1 ,2 ]
Peng, Haoxian [1 ,2 ]
Zhang, Cailiang [3 ]
Lai, Zhihui [1 ,2 ]
Zhou, Shengxi [4 ,5 ]
Zhu, Ronghua [3 ]
Liao, Wei-Hsin [6 ]
Inman, Daniel J. [7 ]
机构
[1] Guangdong Key Laboratory of Electromagnetic Control and Intelligent Robots, College of Mechatronics and Control Engineering, Shenzhen University, Shenzhen,518060, China
[2] National Key Laboratory of Green and Long-Life Road Engineering in Extreme Environment (Shenzhen), Shenzhen, Shenzhen,518060, China
[3] Ocean College, Zhejiang University, Zhejiang,316021, China
[4] School of Aeronautics, Northwestern Polytechnical University, Xi'an,710072, China
[5] National Key Laboratory of Strength and Structural Integrity, Xi'an,710072, China
[6] Department of Mechanical and Automation Engineering, The Chinese University of Hong Kong, Hong Kong, NT, Shatin, China
[7] Department of Aerospace Engineering, University of Michigan, Ann Arbor,MI,48109-2140, United States
关键词
Degrees of freedom (mechanics);
D O I
10.1016/j.engstruct.2024.118994
中图分类号
学科分类号
摘要
The simultaneous vibration suppression and energy harvesting (VSAEH) can address both mechanical durability and sustainability, as well as the power need of electronics or sensors. This dual-purpose holds paramount significance across various engineering applications due to its potential to enhance the efficiency, durability, and environmental friendliness of structures subjected to dynamic forces. The main contribution of this work is to clarify the principles of asynchronous and synchronous VSAEH and provide a comprehensive review of the recent studies on these systems. In the review, the nonlinearities that have been used to broaden the frequency bandwidths and achieve superior performances of VSAEH systems are introduced first. For instance, the quasi-zero stiffness (QZS) is utilized to improve the ultra-low-frequency performance, whereas two or multiple stable states are designed to broaden the operating bandwidth. The nonlinear energy sink is used in achieving multiple frequency bandwidths and the synchronous VSAEH function. Based on these advancements, the state-of-the-art research works on the asynchronous and synchronous VSAEH systems are presented, the former of which are normally single-degree-of-freedom structures whereas the latter of which are normally multi-degree-of-freedom structures with the principle of energy localization. Performance analyses and possible applications of different VSAEH designs are provided. The review ends with brief summaries and outlook on future perspectives. This review aims to give a thorough comprehension of VSAEH systems and offer insights at enhancing their performances. © 2024 Elsevier Ltd
引用
收藏
相关论文
共 50 条
  • [21] Piezoelectric vibration energy harvesting by optimized synchronous electric charge extraction
    Wu, Yipeng
    Badel, Adrien
    Formosa, Fabien
    Liu, Weiqun
    Agbossou, Amen E.
    JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 2013, 24 (12) : 1445 - 1458
  • [22] Vibration Energy Harvesting System with MPPT for IoT Applications
    Gou, Wei
    Fan, Shiquan
    Geng, Li
    2018 1ST WORKSHOP ON WIDE BANDGAP POWER DEVICES AND APPLICATIONS IN ASIA (WIPDA ASIA), 2018, : 320 - 323
  • [23] Recent advancement of flow-induced piezoelectric vibration energy harvesting techniques: principles, structures, and nonlinear designs
    Dongxing Cao
    Junru Wang
    Xiangying Guo
    S. K. Lai
    Yongjun Shen
    Applied Mathematics and Mechanics, 2022, 43 : 959 - 978
  • [24] Recent advancement of flow-induced piezoelectric vibration energy harvesting techniques: principles, structures,and nonlinear designs
    Dongxing CAO
    Junru WANG
    Xiangying GUO
    S.K.LAI
    Yongjun SHEN
    Applied Mathematics and Mechanics(English Edition), 2022, 43 (07) : 959 - 978
  • [25] Recent advancement of flow-induced piezoelectric vibration energy harvesting techniques: principles, structures, and nonlinear designs
    Cao, Dongxing
    Wang, Junru
    Guo, Xiangying
    Lai, S. K.
    Shen, Yongjun
    APPLIED MATHEMATICS AND MECHANICS-ENGLISH EDITION, 2022, 43 (07) : 959 - 978
  • [26] Vibration Suppression and Energy Harvesting with a Non-traditional Vibration Absorber: Transient Responses
    Yuan, Miao
    Liu, Kefu
    VIBRATION, 2018, 1 (01): : 105 - 122
  • [27] Enhanced vibration suppression and energy harvesting in fluid-conveying pipes
    Yang Jin
    Tianzhi Yang
    Applied Mathematics and Mechanics, 2023, 44 : 1487 - 1496
  • [28] Modeling of a distributed device for simultaneous reactive vibration suppression and energy harvesting
    Harne, Ryan L.
    Fuller, Chris R.
    JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 2012, 23 (06) : 655 - 664
  • [29] On the use of metasurface for Vortex-Induced vibration suppression or energy harvesting
    Wang, Junlei
    Sun, Shaokang
    Tang, Lihua
    Hu, Guobiao
    Liang, Junrui
    ENERGY CONVERSION AND MANAGEMENT, 2021, 235 (235)
  • [30] CONCURRENT VIBRATION SUPPRESSION AND ENERGY HARVESTING USING FERROFLUIDS: AN EXPERIMENTAL INVESTIGATION
    Alazemi, Saad F.
    Bibo, Amin
    Daqaq, Mohammed F.
    PROCEEDINGS OF THE ASME CONFERENCE ON SMART MATERIALS ADAPTIVE STRUCTURES AND INTELLIGENT SYSTEMS, 2014, VOL 2, 2014,