Published July 2012 | Version v1
Journal article

The pizzicato knee-joint energy harvester: characterization with biomechanical data and the effect of backpack load

  • 1. Manufacturing and Materials Department, School of Applied Sciences, Cranfield University, Bedfordshire, MK43 0AL (United Kingdom)
  • 2. Department of Electrical Engineering and Electronics, School of Electrical Engineering and Computer Science, The University of Liverpool, Brownlow Hill, Liverpool L69 3GJ (United Kingdom)
  • 3. Centre for Health, Sport and Rehabilitation Sciences, School of Health Sciences, University of Salford, Frederick Road Campus, Salford, M6 6PU (United Kingdom)

Description

The reduced power requirements of miniaturized electronics offer the opportunity to create devices which rely on energy harvesters for their power supply. In the case of wearable devices, human-based piezoelectric energy harvesting is particularly difficult due to the mismatch between the low frequency of human activities and the high-frequency requirements of piezoelectric transducers. We propose a piezoelectric energy harvester, to be worn on the knee-joint, that relies on the plucking technique to achieve frequency up-conversion. During a plucking action, a piezoelectric bimorph is deflected by a plectrum; when released due to loss of contact, the bimorph is free to vibrate at its resonant frequency, generating electrical energy with the highest efficiency. A prototype, featuring four PZT-5H bimorphs, was built and is here studied in a knee simulator which reproduces the gait of a human subject. Biomechanical data were collected with a marker-based motion capture system while the subject was carrying a selection of backpack loads. The paper focuses on the energy generation of the harvester and how this is affected by the backpack load. By altering the gait, the backpack load has a measurable effect on performance: at the highest load of 24 kg, a minor reduction in energy generation (7%) was observed and the output power is reduced by 10%. Both are so moderate to be practically unimportant. The average power output of the prototype is 2.06 ± 0.3 mW, which can increase significantly with further optimization. (paper)

Availability note (English)

Available from http://dx.doi.org/10.1088/0964-1726/21/7/075023

Additional details

Publishing Information

Journal Title
Smart Materials and Structures (Print)
Journal Volume
21
Journal Issue
7
Journal Page Range
[8 p.]
ISSN
0964-1726