Optical energy harvesting in a smart materials-based micro-actuator using a vertical multi-junction PV cell

Author(s):  
Georgina Abi Sejaan ◽  
Frederic Lamarque ◽  
Nemr El Hajj ◽  
Joseph Al Assad ◽  
Hani Al Hajjar
2021 ◽  
pp. 2100864
Author(s):  
Susmriti Das Mahapatra ◽  
Preetam Chandan Mohapatra ◽  
Adrianus Indrat Aria ◽  
Graham Christie ◽  
Yogendra Kumar Mishra ◽  
...  

2021 ◽  
Author(s):  
Shen Shen ◽  
Lei Wu ◽  
Shengyi Yang ◽  
Qin Yang ◽  
Jiangtao Liu ◽  
...  

2017 ◽  
Vol 16 (5s) ◽  
pp. 1-20 ◽  
Author(s):  
Jaehyun Park ◽  
Hitesh Joshi ◽  
Hyung Gyu Lee ◽  
Sayfe Kiaei ◽  
Umit Y. Ogras

2012 ◽  
Vol 614-615 ◽  
pp. 1410-1415
Author(s):  
Shi Sha Zhu ◽  
Xue Peng Qian ◽  
You Hang Zhou

In recent years, with the development of smart materials as well as smart structure technologies, and the research on piezoelectric energy harvesting technology deepens, the low power application circuit along with highly-efficient storage circuit optimization and design has become one of the essential parts in this field. The author made a systematic conclusion on the piezoelectric energy harvesting circuit, and put forwards a feasible plan for sustainable research in the future.


2018 ◽  
Vol 29 (11) ◽  
pp. 2528-2543 ◽  
Author(s):  
Andrew J Lee ◽  
Daniel J Inman

The elastic instabilities associated with buckling in bistable structures have been harnessed toward energy-based and motion-based applications, with significant research toward energy harvesting and morphing. Often combined with smart materials, structural prototypes are designed with a single application in mind. Recently, a novel method of inducing bistability was proposed by bonding two piezoelectrically actuated macro fiber composites in a [Formula: see text] layup and releasing the voltage post cure to yield two cylindrically stable configurations. Since the macro fiber composites are simultaneously the actuator and host structure, the resulting efficiencies enable this bistable laminate to be multifunctional, with both broadband energy harvesting and snap-through morphing capabilities. This article experimentally characterizes the vibration-based energy harvesting performance of the laminate to enable morphing. Through frequency sweeps across the first two modes of both states, the laminate exhibits broadband cross-well dynamics that are exploited for improved power generation over linear resonant harvesters. Besides single-well oscillations, snap-throughs are observed in intermittencies and subharmonic, chaotic, and limit cycle oscillations. The maximum power output of each regime and their charge durations of an energy harvesting module are assessed. The laminate’s capabilities are then bridged by utilizing harvested energy in the charged module to initiate snap-through actuation.


2011 ◽  
pp. 81-123
Author(s):  
María Teresa Penella-López ◽  
Manuel Gasulla-Forner

2016 ◽  
Vol 4 (5) ◽  
pp. 297-312 ◽  
Author(s):  
Ronald Sabo ◽  
Aleksey Yermakov ◽  
Chiu Tai Law ◽  
Rani Elhajjar

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