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2022 | OriginalPaper | Buchkapitel

Design and Analysis of FEM Novel X-Shaped Broadband Linear Piezoelectric Energy Harvester

verfasst von : M. Krishnasamy, J. R. Shinde, H. P. Mohammad, G. Amarnath, Trupti Ranjan Lenka

Erschienen in: Micro and Nanoelectronics Devices, Circuits and Systems

Verlag: Springer Singapore

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Abstract

This paper presents a novel simulation model of an X-shaped linear piezoelectric energy harvester for wideband applications. Moreover, the physical dimensions and material properties are taken as same as used in nonlinear H-shaped multimodal, which is experimentally analyzed in the literature. The designed FEM harvester model is analyzed for wideband applications in terms of displacement, optimum load resistance, maximum electrical and mechanical output powers, and efficiency. Furthermore, the results show that the novel X-shaped linear piezoelectric energy harvester produces more electrical response and efficiency. Finally, this work can be extended for the development of a numerical model with practical implementation in wideband applications.

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Literatur
3.
Zurück zum Zitat Krishnasamy M, Qian F, Zuo L, Lenka TR (2018) Distributed parameter modeling to prevent charge cancellation for discrete thickness piezoelectric energy harvester. Solid-State Electr 141:74–83CrossRef Krishnasamy M, Qian F, Zuo L, Lenka TR (2018) Distributed parameter modeling to prevent charge cancellation for discrete thickness piezoelectric energy harvester. Solid-State Electr 141:74–83CrossRef
5.
Zurück zum Zitat Mohamed RA, El-Badawy A, Moustafa A, Kirolos A, Soliman M, Abdel-Rahman EM (2020) On Modeling of springless electromagnetic energy harvesters. In: Lacarbonara W, Balachandran B, Ma J, Tenreiro Machado J, Stepan G (eds) New trends in nonlinear dynamics, Springer, Cham. https://doi.org/10.1007/978-3-030-34724-6_16 Mohamed RA, El-Badawy A, Moustafa A, Kirolos A, Soliman M, Abdel-Rahman EM (2020) On Modeling of springless electromagnetic energy harvesters. In: Lacarbonara W, Balachandran B, Ma J, Tenreiro Machado J, Stepan G (eds) New trends in nonlinear dynamics, Springer, Cham. https://​doi.​org/​10.​1007/​978-3-030-34724-6_​16
6.
Zurück zum Zitat Krishnasamy M, Upadrashta D, Yang Y, Lenka TR (2018) Distributed parameter modeling of cutout 2-DOF cantilevered piezo-magneto-elastic energy harvester. IEEE J Microelectromech Syst 27(6):1160–1170CrossRef Krishnasamy M, Upadrashta D, Yang Y, Lenka TR (2018) Distributed parameter modeling of cutout 2-DOF cantilevered piezo-magneto-elastic energy harvester. IEEE J Microelectromech Syst 27(6):1160–1170CrossRef
7.
Zurück zum Zitat Chen J, Wang, ZL (2017) Reviving vibration energy harvesting and self-powered sensing by a triboelectric nano-generator 1(3):480–521 Chen J, Wang, ZL (2017) Reviving vibration energy harvesting and self-powered sensing by a triboelectric nano-generator 1(3):480–521
8.
Zurück zum Zitat Liu H, Tay CJ, Quan C, Kobayashi T, Lee C (2011) Piezoelectric MEMS energy harvester for low-frequency vibrations with wideband operation range and steadily increased output power. J Microelectromech Syst 20(5):1131–1142CrossRef Liu H, Tay CJ, Quan C, Kobayashi T, Lee C (2011) Piezoelectric MEMS energy harvester for low-frequency vibrations with wideband operation range and steadily increased output power. J Microelectromech Syst 20(5):1131–1142CrossRef
9.
Zurück zum Zitat Guilllemet R, Basset P, Galayko D, Cottone F, Marty F, Bourouina T (2013) Wideband MEMS electrostatic vibration energy harvesters based on gap-closing interdigited combs with a trapezoidal cross section. In: 2013 IEEE 26th international conference on micro electro mechanical systems (MEMS), Taipei, Taiwan Guilllemet R, Basset P, Galayko D, Cottone F, Marty F, Bourouina T (2013) Wideband MEMS electrostatic vibration energy harvesters based on gap-closing interdigited combs with a trapezoidal cross section. In: 2013 IEEE 26th international conference on micro electro mechanical systems (MEMS), Taipei, Taiwan
10.
Zurück zum Zitat Li P, Liu Y, Wang Y, Luo C, Li G, Jie H, Liu W, Zhang W (2015) Low-frequency and wideband vibration energy harvester with flexible frame and interdigital structure. AIP Adv 5(4):047151CrossRef Li P, Liu Y, Wang Y, Luo C, Li G, Jie H, Liu W, Zhang W (2015) Low-frequency and wideband vibration energy harvester with flexible frame and interdigital structure. AIP Adv 5(4):047151CrossRef
11.
Zurück zum Zitat Zhang L, Jian L, Takei R, Makimoto N, Itoh T, Kobayashi T (2016) S-shape spring sensor: sensing specific low-frequency vibration by energy harvesting. Rev Sci Instr 87(8):085005CrossRef Zhang L, Jian L, Takei R, Makimoto N, Itoh T, Kobayashi T (2016) S-shape spring sensor: sensing specific low-frequency vibration by energy harvesting. Rev Sci Instr 87(8):085005CrossRef
13.
Zurück zum Zitat Wang D, Lu H, Deng L, Zhang D (2019) An H-shaped two-dimensional piezoelectric vibration energy harvester. Jpn J Appl Phys 58:106506CrossRef Wang D, Lu H, Deng L, Zhang D (2019) An H-shaped two-dimensional piezoelectric vibration energy harvester. Jpn J Appl Phys 58:106506CrossRef
14.
Zurück zum Zitat Toyabur RM, Salauddin M, Cho H, Park JY (2018) A multimodal hybrid energy harvester based on piezoelectric electromagnetic mechanisms for low-frequency ambient vibrations. Energy Convers Manag 168:454–466CrossRef Toyabur RM, Salauddin M, Cho H, Park JY (2018) A multimodal hybrid energy harvester based on piezoelectric electromagnetic mechanisms for low-frequency ambient vibrations. Energy Convers Manag 168:454–466CrossRef
15.
Zurück zum Zitat Krishnasamy M, Lenka TR (2018) Distributed parameter modeling for autonomous charge extraction of various multilevel segmented piezoelectric energy harvesters. Microsyst Technol 24:1577–1587CrossRef Krishnasamy M, Lenka TR (2018) Distributed parameter modeling for autonomous charge extraction of various multilevel segmented piezoelectric energy harvesters. Microsyst Technol 24:1577–1587CrossRef
Metadaten
Titel
Design and Analysis of FEM Novel X-Shaped Broadband Linear Piezoelectric Energy Harvester
verfasst von
M. Krishnasamy
J. R. Shinde
H. P. Mohammad
G. Amarnath
Trupti Ranjan Lenka
Copyright-Jahr
2022
Verlag
Springer Singapore
DOI
https://doi.org/10.1007/978-981-16-3767-4_39