TY - GEN
T1 - Improving a Piezoelectric Energy Harvester Output Using a Synchronized Switch Harvesting Design
AU - Ashford, Marcus
AU - Onyenucheya, Barnard
AU - Zirnheld, Jennifer
AU - Burke, Kevin
N1 - Publisher Copyright:
© 2021 IEEE.
PY - 2021
Y1 - 2021
N2 - The purpose of this work will be to simulate the design of a piezo-electric bi-morph using MULTISIM and then verify that simulation using a lead (Pb) zirconium titanite (PZT) bimorph model to verify the output. Piezoelectric energy harvesters undergo spontaneous polarization, based on existing literature. This suggests that the devices can generate an electrical displacement without an external electric field. A mechanical stimulus can be applied to a piezoelectric bimorph which is configured as a cantilever to achieve high bending moments. During the harvesting process, the bimorph is subject to an energy conversion whose efficiency is governed by the electromechanical coupling factor. Regardless of the coupling factor, the amount of extracted energy is still limited by the electrical losses in the external storage circuit. The harvested power has been shown a large increase using a synchronized switch harvesting (SSH) design. This circuit employs a self-switching inductor in parallel with the piezoelectric device's output to ensure the voltage amplitude always increases in one cycle and that its sign will always match the speed of the bimorph's displacement. Together this maximizes the transferred energy. This design will be simulated using MULTISIM and then applied to a lead (Pb) zirconium titanite (PZT) bimorph model to verify the output.
AB - The purpose of this work will be to simulate the design of a piezo-electric bi-morph using MULTISIM and then verify that simulation using a lead (Pb) zirconium titanite (PZT) bimorph model to verify the output. Piezoelectric energy harvesters undergo spontaneous polarization, based on existing literature. This suggests that the devices can generate an electrical displacement without an external electric field. A mechanical stimulus can be applied to a piezoelectric bimorph which is configured as a cantilever to achieve high bending moments. During the harvesting process, the bimorph is subject to an energy conversion whose efficiency is governed by the electromechanical coupling factor. Regardless of the coupling factor, the amount of extracted energy is still limited by the electrical losses in the external storage circuit. The harvested power has been shown a large increase using a synchronized switch harvesting (SSH) design. This circuit employs a self-switching inductor in parallel with the piezoelectric device's output to ensure the voltage amplitude always increases in one cycle and that its sign will always match the speed of the bimorph's displacement. Together this maximizes the transferred energy. This design will be simulated using MULTISIM and then applied to a lead (Pb) zirconium titanite (PZT) bimorph model to verify the output.
KW - bimorph
KW - piezoelectric
KW - synchronized switch harvesting
UR - https://www.scopus.com/pages/publications/85127283186
U2 - 10.1109/PPC40517.2021.9733126
DO - 10.1109/PPC40517.2021.9733126
M3 - Conference contribution
AN - SCOPUS:85127283186
T3 - IEEE International Pulsed Power Conference
BT - 2021 IEEE Pulsed Power Conference, PPC 2021
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2021 IEEE Pulsed Power Conference, PPC 2021
Y2 - 12 December 2021 through 16 December 2021
ER -