Piezoelectric energy harvesting for bio MEMS applications

被引:103
|
作者
Ramsay, MJ [1 ]
Clark, WW [1 ]
机构
[1] Univ Pittsburgh, Dept Mech Engn, Vibrat & Control Lab, Pittsburgh, PA 15261 USA
关键词
D O I
10.1117/12.429684
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
A simple design study is conducted to investigate the feasibility of using piezoelectric materials in a power supply for an in vivo MEMS application. An analysis is presented comparing the 33- and 31- modes of operation for a piezoelectric generator. It will be shown that a transversely loaded membrane (31-mode) or thin plate element has a mechanical advantage in converting applied pressure to working stress for piezoelectric conversion. A design study is carried out using a square PZT-5A membrane driven by a fluctuating pressure source (blood pressure). The expected power output from a 1 cm(2) plate is calculated for a range of thicknesses, along with the power output from a 9 mum thick plate for a range of areas. Additionally, the feasibility, of providing intermittent power instead of continuous power or increased excitation frequency will be shown. The primary conclusion of this analysis is that an in vivo piezoelectric generator on a size scale of 1 cm(2) may be able to power a A EAE application in the muW power range continuously, and up to the m W range intermittently.
引用
收藏
页码:429 / 438
页数:10
相关论文
共 50 条
  • [21] Plucked piezoelectric bimorphs for energy harvesting applications
    Pozzi, Michele
    Zhu, Meiling
    SMART SENSORS, ACTUATORS, AND MEMS V, 2011, 8066
  • [22] Degradation of Piezoelectric Materials for Energy Harvesting Applications
    Pillatsch, P.
    Shashoua, N.
    Holmes, A. S.
    Yeatman, E. M.
    Wright, P. K.
    14TH INTERNATIONAL CONFERENCE ON MICRO AND NANOTECHNOLOGY FOR POWER GENERATION AND ENERGY CONVERSION APPLICATIONS (POWERMEMS 2014), 2014, 557
  • [23] Piezoelectric energy harvesting systems for biomedical applications
    Panda, Swati
    Hajra, Sugato
    Mistewicz, Krystian
    In-na, Pichaya
    Sahu, Manisha
    Rajaitha, P. Mary
    Kim, Hoe Joon
    NANO ENERGY, 2022, 100
  • [24] Shape Improvement for Piezoelectric Energy Harvesting Applications
    Ben Ayed, Sameh
    Najar, Fehmi
    Abdelkefi, Abdessattar
    2009 3RD INTERNATIONAL CONFERENCE ON SIGNALS, CIRCUITS AND SYSTEMS (SCS 2009), 2009, : 448 - 453
  • [25] THE FEASIBILITY OF PIEZOELECTRIC ENERGY HARVESTING FOR CIVIL APPLICATIONS
    Bos, Simon C.
    ROAD AND RAIL INFRASTRUCTURE II, 2012, : 727 - 732
  • [26] Characterization of piezoelectric nanofibers for energy harvesting applications
    Selleri, Giacomo
    Gasperini, Leonardo
    Zanoni, Michele
    Depalma, Francesco
    Gualandi, Chiara
    Fabiani, Davide
    2022 IEEE CONFERENCE ON ELECTRICAL INSULATION AND DIELECTRIC PHENOMENA (IEEE CEIDP 2022), 2022, : 270 - 273
  • [27] Piezoelectric Energy Harvesting for Civil Engineering Applications
    Shehu, Ledia
    Yeon, Jung Heum
    Song, Yooseob
    ENERGIES, 2024, 17 (19)
  • [28] Electromechanical Modeling of MEMS-Based Piezoelectric Energy Harvesting Devices for Applications in Domestic Washing Machines
    Martinez-Cisneros, Eustaquio
    Velosa-Moncada, Luis A.
    Del Angel-Arroyo, Jesus A.
    Antonio Aguilera-Cortes, Luz
    Arturo Ceron-Alvarez, Carlos
    Herrera-May, Agustin L.
    ENERGIES, 2020, 13 (03)
  • [29] Nonlinear mechanism in MEMS devices for energy harvesting applications
    Ando, B.
    Baglio, S.
    Trigona, C.
    Dumas, N.
    Latorre, L.
    Nouet, P.
    JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2010, 20 (12)
  • [30] Piezoelectric MEMS Energy Harvesting Systems Driven by Harmonic and Random Vibrations
    Blystad, Lars-Cyril Julin
    Halvorsen, Einar
    Husa, Svein
    IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 2010, 57 (04) : 908 - 919