Enhancement of harvesting capability of coupled nonlinear energy harvesters through high energy orbits

被引:9
|
作者
Malaji, P., V [1 ]
Friswell, M., I [2 ]
Adhikari, S. [2 ]
Litak, G. [3 ]
机构
[1] BLDEAs VP Dr PG Halakatti Coll Engn & Technol, Vijayapur 586101, India
[2] Swansea Univ, Coll Engn, Swansea SA1 8EN, W Glam, Wales
[3] Lublin Univ Technol, Nadbystrzycka 36, PL-20618 Lublin, Poland
关键词
PENDULUMS; BEAM;
D O I
10.1063/5.0014426
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Mechanical coupling in similar energy harvesters has the potential to enhance their broadband harvesting capability. However, often the performance of one harvester dominates the other, and the coupling transfers energy from the high frequency harvester to the low frequency harvester, thus reducing the capability of the high frequency harvester. Hence, researchers have proposed using the high frequency harvester only as an auxiliary oscillator to save the material cost. This paper investigates the possibility of enhancing the energy harvesting capability of both coupled harvesters. A torsionally coupled electromagnetic pendulum harvester system is considered, which is suitable for low frequency (<5 Hz) applications. The harmonic balance method is used to identify possible multiple solutions, and high magnitude solutions are observed to coexist with low magnitude solutions. These high energy solutions, which are often missed in the numerical simulation, can be attained by a careful choice of initial conditions or energy input. The simulation results show that more energy can be harvested over a wider range of frequencies by ensuring that the response occurs in the high energy orbits. The results show an enhancement of the bandwidth by 54% and 140% for the low and high frequency harvesters, respectively, with the optimum initial conditions. Moreover, an isolated frequency island is reported, which occurs due to the coupling of the nonlinear harvesters.
引用
收藏
页数:6
相关论文
共 50 条
  • [21] Ambient vibration energy harvesters: A review on nonlinear techniques for performance enhancement
    Ngan Tran
    Ghayesh, Mergen H.
    Arjomandi, Maziar
    INTERNATIONAL JOURNAL OF ENGINEERING SCIENCE, 2018, 127 : 162 - 185
  • [22] Attaining the high-energy orbit of nonlinear energy harvesters by load perturbation
    Wang, Jiahua
    Liao, Wei-Hsin
    ENERGY CONVERSION AND MANAGEMENT, 2019, 192 : 30 - 36
  • [23] Energy harvesting in a coupled system using nonlinear impact
    Vijayan, K. (k.vijayan@swansea.ac.uk), 1600, SAGE Publications Ltd (05):
  • [24] Investigation of coupled lever-bistable nonlinear energy harvesters for enhancement of inter-well dynamic response
    Yang, Kai
    Fei, Fei
    An, Haichao
    NONLINEAR DYNAMICS, 2019, 96 (04) : 2369 - 2392
  • [25] Investigation of coupled lever-bistable nonlinear energy harvesters for enhancement of inter-well dynamic response
    Kai Yang
    Fei Fei
    Haichao An
    Nonlinear Dynamics, 2019, 96 : 2369 - 2392
  • [26] Enhancement on Energy Extraction from Magnetic Energy Harvesters
    Moon, Jinyeong
    Leeb, Steven B.
    2015 IEEE ENERGY CONVERSION CONGRESS AND EXPOSITION (ECCE), 2015, : 427 - 433
  • [27] Multi-magnet coupled bistable piezoelectric energy harvesters for performance enhancement
    Wang, Min
    Wu, Hao
    Zhang, Jingyu
    Yang, Yang
    Ding, Jiheng
    Sun, Yi
    Pu, Huayan
    Peng, Yan
    Luo, Jun
    Wang, Biao
    ENERGY, 2024, 306
  • [28] Inertial Kinetic Energy Harvesters for Wearables: The Benefits of Energy Harvesting at the Foot
    Beach, Christopher
    Casson, Alexander J.
    IEEE ACCESS, 2020, 8 : 208136 - 208148
  • [29] Energy harvesting properties of the functionally graded flexoelectric microbeam energy harvesters
    Qi, Lu
    ENERGY, 2019, 171 : 721 - 730
  • [30] Piezoelectric monolayers as nonlinear energy harvesters
    Lopez-Suarez, Miquel
    Pruneda, Miguel
    Abadal, Gabriel
    Rurali, Riccardo
    NANOTECHNOLOGY, 2014, 25 (17)