Multimodal piezoelectric devices optimization for energy harvesting

Authors

  • G Acciani
  • A Dimucci
  • L Lorusso

DOI:

https://doi.org/10.1260/1750-9548.7.3.227

Abstract

The use of the piezoelectric effect to convert ambient vibration into useful electrical energy constitutes one of the most studied areas in Energy Harvesting (EH) research. This paper presents a typical cantilevered Energy Harvester device, which relates the electrical outputs to the vibration mode shape easily. The dynamic strain induced in the piezoceramic layer results in an alternating voltage output. The first six modes of frequencies and the deformation pattern of the beam are carried out basing on an eigenfrequency analysis conducted by the MEMS modules of the COMSOL Multiphysic® v3.5a to perform the Finite Element Analysis of the model. Subsequently, the piezoelectric material is cut around the inflection points to minimize the voltage cancellation effect occurring when the sign changes in the material. This study shows that the voltage produced by the device, increases in as the dimensions of the cuts vary in the piezoelectric layer. Such voltage reaches the optimum amount of piezoelectric material and cuts positioning. This proves that the optimized piezoelectric layer is 16% more efficient than the whole piezoelectric layer.

References

A. Chandrakasan, R. Amirtharajah, J. Goodman, W. Rabiner, "Trends in low power digital signal processing", Proceedings of the 1998 IEEE International Symposium on Circuits and Systems, ISCAS, 98. https://doi.org/10.1109/iscas.1998.699014

C. B. Williams, R. B. Yates, "Analysis of a micro-electric generator for microsystems", Sensors and Actuators A52 (1996) 8-11.

P. Glynn-Jones, S. P. Beeby, N. M. White, "Towards a piezoelectric vibration-powered microgenerator", IEE Proceedings Science Measuring Technologies 148 (2001) 69-72. https://doi.org/10.1049/ip-smt:20010323

Y. B. Jeon, R. Sood, J. Jeong, S. Kim, "MEMS power generator with transverse mode thin film PZT", Sensor and Actuators A122 (2005) 16-22. https://doi.org/10.1016/j.sna.2004.12.032

B. Zheng, C.-J. Chang, H. Chang Gea, "Topology optimization of energy harvesting devices using piezoelectric materials", Struct. Multidisc. Optim. (2009) 38:17-23. https://doi.org/10.1007/s00158-008-0265-0

Metwally R. Emam, "Finite element analysis of composite piezoelectric beam using Comsol", Thesis submitted to the Faculty of Drexel University, Master of Science in Mechanical Engineering, 2008.

A. Erturk, D. J. Inman, "Piezoelectric energy harvesting", a John Wiley and Sons, Ltd., Publication, United Kingdom, 2011.

S. Lee, B. D. Youn, "A new piezoelectric energy harvesting design concept: multimodal energy harvesting skin", IEEE transactions on ultrasonic, ferroelectrics and frequency control, vol.58, No. 3, March 2011. https://doi.org/10.1109/tuffc.2011.5733266

An American National Standard, "IEEE standard on piezoelectricity - ANSI/IEEE Std 176-1987", The institute of Electrical and Electronics Engineers, Inc. New York, USA, 1988.

H. Allik, T. J. R. Hughes, "Finite element method for piezoelectric vibration", Int. Numerical Methods Engineering, vol. 2, n. 2, 157-157, 1970. https://doi.org/10.1002/nme.1620020202

Published

2013-09-30

How to Cite

Acciani, G., Dimucci, A., & Lorusso, L. (2013). Multimodal piezoelectric devices optimization for energy harvesting. The International Journal of Multiphysics, 7(3), 227-244. https://doi.org/10.1260/1750-9548.7.3.227

Issue

Section

Articles