Comparative Analysis of Active Impedance Matching Interfaces for Piezoelectric Energy Harvesters

被引:0
作者
Vanderwegen, Amanda [1 ]
Porto, Rodrigo W. [1 ]
Murliky, Lucas [1 ]
Muller, Ivan [1 ]
de Sousa, Fernando R. [2 ]
Brusamarello, Valner J. [1 ]
机构
[1] Univ Fed Rio Grande do Sul, PPGEE, Oswaldo Aranha 99 S 701, BR-90035190 Porto Alegre, RS, Brazil
[2] Univ Fed Santa Catarina, Elect & Elect Dept, Reitor Joao David Ferreira Lima s-n, BR-88040900 Florianopolis, SC, Brazil
关键词
Energy harvesting; Piezoelectricity; Impedance matching; Non-Foster impedance; IMPROVEMENT; OUTPUT;
D O I
10.1007/s40313-024-01121-w
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
This paper conducts a comparative study of the output energy generated by two compensation approaches for piezoelectric energy harvesters. These transducers are typically coupled to a cantilevered beam, and the compensation circuitry enhances the harvester's performance under an input mechanical vibration stimulus. The output power of the piezoelectric transducer relies on both the reflected and intrinsic mechanical impedance, along with the total output load. The electrical equivalent circuit of the structure, incorporating the transducer, is primarily capacitive, leading to an out-of-phase relationship between current and voltage in the electrical domain, resulting in the generation of reactive power and a subsequent reduction in the overall system efficiency. The system's first vibration mode, corresponding to a very low frequency, requires a significant passive inductor for impedance matching to ensure maximum power transfer to the load. In the first approach, a non-Foster circuit is implemented as a reactance for impedance matching, employing a Negative Impedance Converter (NIC) circuit. In another approach, the output of the cantilever beam is assessed using a synchronized switched inductor (SSHI). Both approaches are examined, and their feasibility limits are evaluated, taking into account the energy balance generated by the piezoelectric transducer. Experimental results illustrate that the active matching approach with a non-Foster reactance shows a greater enhancement in energy compared to the SSHI compensation method under conditions of harmonic mechanical oscillations.
引用
收藏
页码:1147 / 1160
页数:14
相关论文
共 51 条
  • [1] Alexander CK., 2013, FUNDAMENTOS CIRCUITO, P874
  • [2] [Anonymous], 1988, IEEE Standard on Piezoelectricity, DOI DOI 10.1109/IEEESTD.1988.79638
  • [3] Comparison of electromagnetic and piezoelectric vibration energy harvesters: Model and experiments
    Arroyo, E.
    Badel, A.
    Formosa, F.
    Wu, Y.
    Qiu, J.
    [J]. SENSORS AND ACTUATORS A-PHYSICAL, 2012, 183 : 148 - 156
  • [4] Piezoelectric energy harvesting using a synchronized switch technique
    Badel, Adrien
    Guyomar, Daniel
    Lefeuvre, Elie
    Richard, Claude
    [J]. JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 2006, 17 (8-9) : 831 - 839
  • [5] Hand-held piezoelectric energy harvesting structure: Design, dynamic analysis, and experimental validation
    Bao, Bin
    Wang, Quan
    Wu, Nan
    Zhou, Shaoyi
    [J]. MEASUREMENT, 2021, 174
  • [6] Semi-active vibration control featuring a self-sensing SSDV approach
    Bao, Bin
    Tang, Wei
    [J]. MEASUREMENT, 2017, 104 : 192 - 203
  • [7] A versatile and fully instrumented test station for piezoelectric energy harvesters
    Batra, A. K.
    Currie, J. R.
    Alomari, A. A.
    Aggarwal, M. D.
    Bowen, C. R.
    [J]. MEASUREMENT, 2018, 114 : 9 - 15
  • [8] An electromagnetic/magnetoelectric transducer based on nonlinear RMSHI circuit for energy harvesting and sensing
    Bradai, Sonia
    Naifar, Slim
    Trigona, Carlo
    Baglio, Salvatore
    Kanoun, Olfa
    [J]. MEASUREMENT, 2021, 177
  • [9] Piezoelectric Energy Harvesting Improvement with Complex Conjugate Impedance Matching
    Brufau-Penella, J.
    Puig-Vidal, M.
    [J]. JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 2009, 20 (05) : 597 - 608
  • [10] Experimental Validation of Energy Harvesting-System Availability Improvement Through Battery Heating
    Cesarini, Daniel
    Jelicic, Vana
    Kuri, Marijan
    Marinoni, Mauro
    Brunelli, Davide
    Bilas, Vedran
    [J]. IEEE SENSORS JOURNAL, 2017, 17 (11) : 3497 - 3506