TY - JOUR
T1 - Optimized piezoelectric energy harvesting circuit using step-down converter in discontinuous conduction mode
AU - Ottman, Geffrey K.
AU - Hofmann, Heath F.
AU - Lesieutre, George A.
PY - 2003/3
Y1 - 2003/3
N2 - An optimized method of harvesting vibrational energy with a piezoelectric element using a step-down dc-dc converter is presented. In this configuration, the converter regulates the power flow from the piezoelectric element to the desired electronic load. Analysis of the converter in discontinuous current conduction mode results in an expression for the duty cycle-power relationship. Using parameters of the mechanical system, the piezoelectric element, and the converter; the "optimal" duty cycle can be determined where the harvested power is maximized for the level of mechanical excitation. It is shown that, as the magnitude of the mechanical excitation increases, the optimal duty cycle becomes essentially constant, greatly simplifying the control of the step-down converter. The expression is validated with experimental data showing that the optimal duty cycle can be accurately determined and maximum energy harvesting attained. A circuit is proposed which implements this relationship, and experimental results show that the converter increases the harvested power by approximately 325%.
AB - An optimized method of harvesting vibrational energy with a piezoelectric element using a step-down dc-dc converter is presented. In this configuration, the converter regulates the power flow from the piezoelectric element to the desired electronic load. Analysis of the converter in discontinuous current conduction mode results in an expression for the duty cycle-power relationship. Using parameters of the mechanical system, the piezoelectric element, and the converter; the "optimal" duty cycle can be determined where the harvested power is maximized for the level of mechanical excitation. It is shown that, as the magnitude of the mechanical excitation increases, the optimal duty cycle becomes essentially constant, greatly simplifying the control of the step-down converter. The expression is validated with experimental data showing that the optimal duty cycle can be accurately determined and maximum energy harvesting attained. A circuit is proposed which implements this relationship, and experimental results show that the converter increases the harvested power by approximately 325%.
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U2 - 10.1109/TPEL.2003.809379
DO - 10.1109/TPEL.2003.809379
M3 - Article
AN - SCOPUS:0037363135
SN - 0885-8993
VL - 18
SP - 696
EP - 703
JO - IEEE Transactions on Power Electronics
JF - IEEE Transactions on Power Electronics
IS - 2
ER -