Adaptive inertia tuning of an energy harvester for increasing its operational bandwidth

被引:6
|
作者
Moshrefi-Torbati, Mohamed [1 ]
Hendijanizadeh, Mehdi [1 ]
Sharkh, Suleiman M. [1 ]
机构
[1] Univ Southampton, Mechatron Engn Res Grp, Engn Sci, Southampton SO17 1BJ, Hants, England
来源
X INTERNATIONAL CONFERENCE ON STRUCTURAL DYNAMICS (EURODYN 2017) | 2017年 / 199卷
关键词
Operational bandwidth; Rotational harvester; Variable inertia;
D O I
10.1016/j.proeng.2017.09.463
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
A rotational energy harvesting system comprises a sprung mass coupled to an electrical generator through a motion transmission system such as a ball screw. In this paper, the operational bandwidth of a rotational energy harvester is expanded by varying its moment of inertia and load resistance of the generator. It is shown that the resulting tuneable device produces significantly higher amounts of harvested power. In addition to mass and stiffness, the natural frequency of a rotational device is defined by its moment of inertia, an additional design parameter that enables implementing the approach presented here. This parameter also determines the apparent mass (inertance) of the device, an important factor that allows a small additional mass to increase the apparent mass hugely and hence increase the overall power density of the harvester. It is shown that the system with variable load resistance shows a good performance at frequencies around the natural frequency of the device whereas away from resonance frequencies the system with variable moment of inertia produces more power. The approach described in this paper is a first step in the direction of having an autonomous energy harvester with a wide operational bandwidth. One of the advantages of the presented method is that, unlike some other methods, changing the adjustable parameters (i.e., moment of inertia and load resistance) can be conducted intermittently. In other words, this approach only consumes power during the tuning operations and does not use energy once the harvester is tuned at its optimum conditions. These tuneable rotational systems should be used where the excitation frequency varies slowly (e.g., in marine environment) as any sudden changes in frequency would result in an instantaneous change in the apparent mass and the device may even stall. To implement the device effectively, some kind of predictive control may need to be used that can detect frequency variations fast enough for the inertia to change in a timely manner This aspect that is outside the scope of this paper is currently under investigation. (C) 2017 The Authors. Published by Elsevier Ltd.
引用
收藏
页码:3492 / 3497
页数:6
相关论文
共 50 条
  • [21] A Piezoelectric Energy Harvester Interface Circuit with Adaptive Conjugate Impedance Matching, Self-Startup and 71% Broader Bandwidth
    Cai, Yifeng
    Manoli, Yiannos
    ESSCIRC 2017 - 43RD IEEE EUROPEAN SOLID STATE CIRCUITS CONFERENCE, 2017, : 119 - 122
  • [22] A Fully Integrable RF Energy Harvester with Dynamic Efficiency Tuning
    Sun, Menghan
    Abbott, Derek
    Al-Sarawi, Said F.
    PROCEEDINGS INTERNATIONAL SOC DESIGN CONFERENCE 2017 (ISOCC 2017), 2017, : 61 - 62
  • [23] A Tuning Fork Frequency Up-Conversion Energy Harvester
    Wu, Qinghe
    Gao, Shiqiao
    Jin, Lei
    Zhang, Xiyang
    Yin, Zuozong
    Wang, Caifeng
    SENSORS, 2021, 21 (21)
  • [24] Tuning a resonant energy harvester using a generalized electrical load
    Cammarano, A.
    Burrow, S. G.
    Barton, D. A. W.
    Carrella, A.
    Clare, L. R.
    SMART MATERIALS AND STRUCTURES, 2010, 19 (05)
  • [25] Self-Tuning Electrostatic Energy-Harvester IC
    Torres, Erick O.
    Rincon-Mora, Gabriel A.
    IEEE TRANSACTIONS ON CIRCUITS AND SYSTEMS II-EXPRESS BRIEFS, 2010, 57 (10) : 808 - 812
  • [26] Mass tuning technique for a broadband piezoelectric energy harvester array
    Kouritem, Sallam A.
    Al-Moghazy, Mohamed A.
    Noori, Mohammad
    Altabey, Wael A.
    MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 2022, 181
  • [27] An efficient piezoelectric energy harvester with frequency self-tuning
    Cheng, Yukun
    Wu, Nan
    Wang, Quan
    JOURNAL OF SOUND AND VIBRATION, 2017, 396 : 69 - 82
  • [28] Smart design piezoelectric energy harvester with self-tuning
    Staaf, L. G. H.
    Kohler, E.
    Folkow, P. D.
    Enoksson, P.
    28TH MICROMECHANICS AND MICROSYSTEMS EUROPE WORKSHOP, 2017, 922
  • [29] Magnetic tuning of a kinetic energy harvester using variable reluctance
    Ayala-Garcia, I. N.
    Mitcheson, P. D.
    Yeatman, E. M.
    Zhu, D.
    Tudor, J.
    Beeby, S. P.
    SENSORS AND ACTUATORS A-PHYSICAL, 2013, 189 : 266 - 275
  • [30] A Frequency-Adjustable Tuning Fork Electromagnetic Energy Harvester
    Wu, Qinghe
    Gao, Shiqiao
    Jin, Lei
    Guo, Shengkai
    Yin, Zuozong
    Fu, He
    MATERIALS, 2022, 15 (06)