Characterisation of a knee-joint energy harvester powering a wireless communication sensing node

被引:62
作者
Kuang, Yang [1 ]
Zhu, Meiling [1 ]
机构
[1] Univ Exeter, Coll Engn Math & Phys Sci, Exeter EX4 4QJ, Devon, England
基金
英国工程与自然科学研究理事会;
关键词
piezoelectric energy harvester; wearable; wireless sensor node; human motion; GENERATING ELECTRICITY; WALKING;
D O I
10.1088/0964-1726/25/5/055013
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
Human-based energy harvesters are attractive as sustainable replacements for batteries to power wearable or implantable devices and body sensor networks. In the work presented here, a knee-joint energy harvester (KEH) was introduced to power a customer-built wireless communication sensing node (WCSN). The KEH used a mechanical plucking technique to provide sufficient frequency up-conversion-from a few Hz to the resonant frequency of the KEH-so as to generate the high power required. It was actuated by a knee-joint simulator, which reproduced the knee-joint motion of human gaits at a walking frequency of 0.9 Hz. The energy generated was first stored in a reservoir capacitor and then released to the WCSN in a burst mode with the help of an energy aware interface. The WCSN was deployed with a three-axis accelerometer, a temperature sensor, and a light detector for data sensing. A Jennic microcontroller was utilised to collect and transmit the measured data to a base station placed at a distance of 4 m. The energy generation by the KEH and the energy distribution in the system was characterised in real time by an in-house-built set-up. The results showed that the KEH generated an average power output of 1.76 mW when powering the WCSN. After charging the reservoir capacitor for 28.4 s, the KEH can power the WCSN for a 46 ms period every 1.25 s. The results also clearly illustrated how the energy generated by the KEH was distributed in the system and highlighted the importance of using a high performance power management approach to improve the performance of the whole system.
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页数:11
相关论文
共 19 条
[1]   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)
[2]   Biomechanical energy harvesting: Generating electricity during walking with minimal user effort [J].
Donelan, J. M. ;
Li, Q. ;
Naing, V. ;
Hoffer, J. A. ;
Weber, D. J. ;
Kuo, A. D. .
SCIENCE, 2008, 319 (5864) :807-810
[3]   A flexible hybrid strain energy harvester using piezoelectric and electrostatic conversion [J].
Eun, Youngkee ;
Kwon, Dae-Sung ;
Kim, Min-Ook ;
Yoo, Ilseon ;
Sim, Jaesam ;
Ko, Hee-Jin ;
Cho, Kyung-Ho ;
Kim, Jongbaeg .
SMART MATERIALS AND STRUCTURES, 2014, 23 (04)
[4]   Parasitic power harvesting in shoes [J].
Kymissis, J ;
Kendall, C ;
Paradiso, J ;
Gershenfeld, N .
SECOND INTERNATIONAL SYMPOSIUM ON WEARABLE COMPUTERS - DIGEST OF PAPERS, 1998, :132-139
[5]  
Marsic V. A., 2012, Wireless Sensor Communication System With Low Power Consumption for Energy Harvesting Technology
[6]  
Murray R, 2009, SPIE SMART STRUCTURE
[7]   Electrostatic micro power generation from low-frequency vibration such as human motion [J].
Naruse, Y. ;
Matsubara, N. ;
Mabuchi, K. ;
Izumi, M. ;
Suzuki, S. .
JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2009, 19 (09)
[8]   A piezoelectric frequency up-converting energy harvester with rotating proof mass for human body applications [J].
Pillatsch, Pit ;
Yeatman, Eric M. ;
Holmes, Andrew S. .
SENSORS AND ACTUATORS A-PHYSICAL, 2014, 206 :178-185
[9]   The pizzicato knee-joint energy harvester: characterization with biomechanical data and the effect of backpack load [J].
Pozzi, Michele ;
Aung, Min S. H. ;
Zhu, Meiling ;
Jones, Richard K. ;
Goulermas, John Y. .
SMART MATERIALS AND STRUCTURES, 2012, 21 (07)
[10]   Characterization of a rotary piezoelectric energy harvester based on plucking excitation for knee-joint wearable applications [J].
Pozzi, Michele ;
Zhu, Meiling .
SMART MATERIALS AND STRUCTURES, 2012, 21 (05)