Title :
Optimizing energy harvesting parameters using response surface methodology
Author :
Mane, Poorna ; Mossi, Karla ; Green, Christopher
Author_Institution :
Virginia Commonwealth Univ., Richmond, VA
fDate :
3/1/2009 12:00:00 AM
Abstract :
Energy harvesting is a process in which energy that would otherwise be wasted is stored and then used to power a system. Due to their unique properties piezoelectric materials are ideal for energy harvesting applications. In this study a pre-stressed piezoelectric composite was pressure loaded dynamically to harvest energy. The objective of this study was to optimize, using piezoelectric diaphragms, relevant parameters that have an effect on the energy harvesting process. Parameters considered were temperature, pressure, resistance and frequency. Response surface methodology was used to develop models to identify optimal parameter ranges and also to predict power conversion capabilities for specific parameter levels. Power densities of approximately 24.27 muW/mm3 were measured at optimal conditions. The model identified an optimal temperature of 12degC and a pressure of 240 kPa, which are in agreement with experimental results.
Keywords :
composite materials; diaphragms; energy harvesting; optimisation; piezoelectric devices; piezoelectric materials; dynamic pressure loading; energy harvesting parameter optimization; piezoelectric diaphragm; power conversion; power density; pressure 240 kPa; prestressed piezoelectric composite; resistance; response surface methodology; temperature 12 degC; Density measurement; Electrical resistance measurement; Frequency; Optimization methods; Piezoelectric materials; Power conversion; Predictive models; Response surface methodology; Surface resistance; Temperature;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2009.1061