A Frequency Up-Converted Hybrid Energy Harvester Using Transverse Impact-Driven Piezoelectric Bimorph for Human-Limb Motion

被引:39
作者
Halim, Miah Abdul [1 ]
Kabir, M. Humayun [2 ]
Cho, Hyunok [3 ]
Park, Jae Yeong [3 ]
机构
[1] Univ Florida, Dept Elect & Comp Engn, Gainesville, FL 32601 USA
[2] Islamic Univ, Dept Elect & Elect Engn, Kushtia 7003, Bangladesh
[3] Kwangwoon Univ, Dept Elect Engn, Seoul 01897, South Korea
关键词
transverse impact; frequency up-conversion; piezoelectric bimorph; human-limb motion; hybrid energy harvester; NANOGENERATOR;
D O I
10.3390/mi10100701
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Energy harvesting from human-body-induced motion is mostly challenging due to the low-frequency, high-amplitude nature of the motion, which makes the use of conventional cantilevered spring-mass oscillators unrealizable. Frequency up-conversion by mechanical impact is an effective way to overcome the challenge. However, direct impact on the transducer element (especially, piezoelectric) increases the risk of damaging it and raises questions on the reliability of the energy harvester. In order to overcome this shortcoming, we proposed a transverse mechanical impact driven frequency up-converted hybrid energy harvester for human-limb motion. It utilizes the integration of both piezoelectric and electromagnetic transducers in a given size that allows more energy to be harvested from a single mechanical motion, which, in turn, further improves the power density. While excited by human-limb motion, a freely-movable non-magnetic sphere exerts transverse impact by periodically sliding over a seismic mass attached to a double-clamped piezoelectric bimorph beam. This allows the beam to vibrate at its resonant frequency and generates power by means of the piezoelectric effect. A magnet attached to the beam also takes part in generating power by inducing voltage in a coil adjacent to it. A mathematical model has been developed and experimentally corroborated. At a periodic limb-motion of 5.2 Hz, maximum 93 mu W and 61 mu W average powers (overall 8 mu W.cm(-3) average power density) were generated by the piezoelectric and the electromagnetic transducers, respectively. Moreover, the prototype successfully demonstrated the application of low-power electronics via suitable AC-DC converters.
引用
收藏
页数:14
相关论文
共 35 条
[1]   A review on energy harvesting approaches for renewable energies from ambient vibrations and acoustic waves using piezoelectricity [J].
Ahmed, Riaz ;
Mir, Fariha ;
Banerjee, Sourav .
SMART MATERIALS AND STRUCTURES, 2017, 26 (08)
[2]   Adaptable piezoelectric hemispherical composite strips using a scalable groove technique for a self-powered muscle monitoring system [J].
Alluri, Nagamalleswara Rao ;
Vivekananthan, Venkateswaran ;
Chandrasekhar, Arunkumar ;
Kim, Sang-Jae .
NANOSCALE, 2018, 10 (03) :907-913
[3]   Energy harvesting vibration sources for microsystems applications [J].
Beeby, S. P. ;
Tudor, M. J. ;
White, N. M. .
MEASUREMENT SCIENCE AND TECHNOLOGY, 2006, 17 (12) :R175-R195
[4]  
Budynas R., 2006, Shigleys mechanical engineering design, eighth
[5]   Powering MEMS portable devices - a review of non-regenerative and regenerative power supply systems with special emphasis on piezoelectric energy harvesting systems [J].
Cook-Chennault, K. A. ;
Thambi, N. ;
Sastry, A. M. .
SMART MATERIALS AND STRUCTURES, 2008, 17 (04)
[6]   Review of magnetostrictive vibration energy harvesters [J].
Deng, Zhangxian ;
Dapino, Marcelo J. .
SMART MATERIALS AND STRUCTURES, 2017, 26 (10)
[7]  
Erturk A., 2009, PhD thesis
[8]   Scavenging energy from ultra-low frequency mechanical excitations through a bi-directional hybrid energy harvester [J].
Fan, Kangqi ;
Liu, Shaohua ;
Liu, Haiyan ;
Zhu, Yingmin ;
Wang, Weidong ;
Zhang, Daxing .
APPLIED ENERGY, 2018, 216 :8-20
[9]   Skin-contact actuated single-electrode protein triboelectric nanogenerator and strain sensor for biomechanical energy harvesting and motion sensing [J].
Gogurla, Narendar ;
Roy, Biswajit ;
Park, Ji-Yong ;
Kim, Sunghwan .
NANO ENERGY, 2019, 62 :674-681
[10]   Low-frequency piezoelectric energy harvesting prototype suitable for the MEMS implementation [J].
Gu, Lei .
MICROELECTRONICS JOURNAL, 2011, 42 (02) :277-282