An Energy Harvesting Comparison of Piezoelectric and Ionically Conductive Polymers

被引:68
|
作者
Farinholt, Kevin M. [1 ]
Pedrazas, Nicholas A. [1 ]
Schluneker, David M. [1 ]
Burt, David W. [1 ]
Farrar, Charles R. [1 ]
机构
[1] Los Alamos Natl Lab, Engn Inst, Los Alamos, NM 87545 USA
关键词
electroactive polymers; energy harvesting; ionic polymers; PVDF; LINEAR ELECTROMECHANICAL MODEL; TRANSDUCERS;
D O I
10.1177/1045389X08099604
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
With advances in wireless communications and low power electronics there is an ever increasing need for efficient self-contained power systems. Traditional batteries are often selected for this purpose; however, there are limitations due to finite life-spans and the need to periodically recharge or replace the spent power source. One method to address this issue is the inclusion of an energy harvesting strategy that can scavenge energy from the surrounding environment and convert it into usable electrical energy. Since civil, industrial, and aerospace applications are often plagued with an overabundance of ambient vibrations, electromechanical transducers are often considered a viable choice for energy scavengers. In this study, two classes of transducer are considered: the piezoelectric polymer polyvinylidene fluoride and the ionically conductive ionic polymer transducer. Analytical models are formed for each material assuming axial loading and simulation results are compared with experimental results for each test. Each material is then compared to examine the effectiveness of their mechanoelectric conversion properties.
引用
收藏
页码:633 / 642
页数:10
相关论文
共 50 条
  • [21] A review on piezoelectric energy harvesting
    Pradeesh, E. L.
    Udhayakumar, S.
    Vasundhara, M. G.
    Kalavathi, G. K.
    [J]. MICROSYSTEM TECHNOLOGIES-MICRO-AND NANOSYSTEMS-INFORMATION STORAGE AND PROCESSING SYSTEMS, 2022, 28 (08): : 1797 - 1830
  • [22] Piezoelectric Energy Harvesting Solutions
    Calio, Renato
    Rongala, Udaya Bhaskar
    Camboni, Domenico
    Milazzo, Mario
    Stefanini, Cesare
    de Petris, Gianluca
    Oddo, Calogero Maria
    [J]. SENSORS, 2014, 14 (03) : 4755 - 4790
  • [23] Piezoelectric Energy Harvesting Systems
    Uchino, Kenji
    [J]. 17TH INTERNATIONAL CONFERENCE ON MICRO AND NANOTECHNOLOGY FOR POWER GENERATION AND ENERGY CONVERSION APPLICATIONS (POWERMEMS 2017), 2018, 1052
  • [24] Piezoelectric MEMS for energy harvesting
    Sang Gook Kim
    Shashank Priya
    Isaku Kanno
    [J]. MRS Bulletin, 2012, 37 : 1039 - 1050
  • [25] Piezoelectric MEMS for energy harvesting
    Kim, Sang-Gook
    Priya, Shashank
    Kanno, Isaku
    [J]. MRS BULLETIN, 2012, 37 (11) : 1039 - 1050
  • [26] ENERGY HARVESTING WITH A PIEZOELECTRIC THUNDER
    Wang, Fengxia
    Wu, Wei
    Lozowski, Andy
    Alizadehyazdi, Vahid
    Amin, Abedini
    [J]. PROCEEDINGS OF THE ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION, 2015, VOL 4B, 2016,
  • [27] Piezoelectric MEMS for energy harvesting
    Kanno, Isaku
    [J]. 15TH INTERNATIONAL CONFERENCE ON MICRO AND NANOTECHNOLOGY FOR POWER GENERATION AND ENERGY CONVERSION APPLICATIONS (POWERMEMS 2015), 2015, 660
  • [28] Energy harvesting with piezoelectric cantilever
    Yuan, Jiang-bo
    Xie, Tao
    Chen, Wei-shan
    [J]. 2008 IEEE ULTRASONICS SYMPOSIUM, VOLS 1-4 AND APPENDIX, 2008, : 1397 - 1400
  • [29] Piezoelectric Energy Harvesting in Automobiles
    Zhu, Qingyuan
    Li, Yingtai
    He, Yuanqin
    Guan, Mingjie
    [J]. FERROELECTRICS, 2014, 467 (01) : 33 - 41
  • [30] Banana Peel and Conductive Polymers-Based Flexible Supercapacitors for Energy Harvesting and Storage
    Tadesse, Melkie Getnet
    Kasaw, Esubalew
    Fentahun, Biruk
    Loghin, Emil
    Luebben, Joern Felix
    [J]. ENERGIES, 2022, 15 (07)