Skip to main content

Modelling of Bimorph Piezoelectric Elements for Biomedical Devices

  • Conference paper
  • First Online:
Advances in Artificial Systems for Medicine and Education III (AIMEE 2019)

Part of the book series: Advances in Intelligent Systems and Computing ((AISC,volume 1126))

Abstract

The relevance of the use of various functional elements of piezoelectronics in biomedical informational and measuring systems is explained by their high reliability, small dimensions and weight. These aspects greatly facilitate the solution of the problem of miniaturization of such systems. Because of the absence of reliable and valid methods of bimorph piezoelectric transducer’s mathematical model constructing the need is to solve the problem of the excitation of transverse bending oscillations in bimorph piezoelectric element. Construction and features of mathematical description of axisymmetric transverse bending oscillations in bimorph piezoelectric element are considered. The solution of the problem of transverse bending oscillations excitation in bimorph piezoelectric element by the difference of electric potentials is obtained.

This is a preview of subscription content, log in via an institution to check access.

Access this chapter

Chapter
USD 29.95
Price excludes VAT (USA)
  • Available as PDF
  • Read on any device
  • Instant download
  • Own it forever
eBook
USD 129.00
Price excludes VAT (USA)
  • Available as EPUB and PDF
  • Read on any device
  • Instant download
  • Own it forever
Softcover Book
USD 169.99
Price excludes VAT (USA)
  • Compact, lightweight edition
  • Dispatched in 3 to 5 business days
  • Free shipping worldwide - see info

Tax calculation will be finalised at checkout

Purchases are for personal use only

Institutional subscriptions

References

  1. Report “Status of the MEMS Industry 2018”. Yole Development, Lyon, France (2018)

    Google Scholar 

  2. Sharapov, V.: Piezoceramic Sensors. Springer, Heidelberg (2011)

    Chapter  Google Scholar 

  3. Varadan, V., Vinoy, K., Jose, K.: RF MEMS and Their Application. Technosphere, Moscow (2004). (in Russian)

    Google Scholar 

  4. Jivani, R.R., et al.: Biomedical microelectromechanical systems (BioMEMS): revolution in drug delivery and analytical techniques. Saudi Pharm J. 24(1), 1–20 (2016). https://doi.org/10.1016/j.jsps.2013.12.003

    Article  Google Scholar 

  5. Jian, L.: Design of active vibration control system for piezoelectric intelligent structures. Int. J. Educ. Manag. Eng. (IJEME) 2(7), 22–28 (2012). https://doi.org/10.5815/ijeme.2012.07.04

    Article  Google Scholar 

  6. Nakamura, K. (ed.): Ultrasonic Transducers: Materials and Design for Sensors, Actuators and Medical Applications. Woodhead Publishing, Philadelphia (2012)

    Google Scholar 

  7. Vijaya, M.S.: Piezoelectric Materials and Devices: Applications in Engineering and Medical Sciences. CRC Press LLC, Boca Raton (2017)

    Google Scholar 

  8. Petrishchev, O.N., Bazilo, C.V.: Principles of mathematical modeling of transformers that operate on planar axisymmetric vibrations of a piezoceramic disk. Herald Cherkasy State Technol. Univ. 3, 10–20 (2015). (In Russian)

    Google Scholar 

  9. Wu, L., Chure, M.-C., Chen, Y.-C., et al.: Electrode size and dimensional ratio effect on the resonant characteristics of piezoelectric ceramic disk. In: Ceramic Materials – Progress in Modern Ceramics, pp. 25–40. InTech (2012)

    Google Scholar 

  10. Calas, H., Moreno, E., Eiras, J.A., et al.: Model for radial modes in a thin piezoelectric annular array. Jpn. J. Appl. Phys. 47(10), 8057–8064 (2008)

    Article  Google Scholar 

  11. Peerasaksophol, M., Srilomsak, S., Laoratanakul, P., Kulworawanichpong, T.: Design and implementation of ring-dot piezo-electric ballasts for 36-W fluorescent lamps. Eur. J. Sci. Res. 64(2), 189–205 (2011)

    Google Scholar 

  12. Buchacz, A., Placzek, M., Wrobel, A.: Modelling of passive vibration damping using piezoelectric transducers – the mathematical model. Maint. Reliab. 16(2), 301–306 (2014)

    Google Scholar 

  13. Livingston, D., Kumar, K.P., Venugopal, N.: Modelling and simulation of multiple piezoelectric transformer converters. Int. J. Emerg. Technol. Adv. Eng. 3(8), 237–245 (2013)

    Google Scholar 

  14. Petrishchev, O.N., Bazilo, C.V.: Principles and methods of the calculation of transfer characteristics of disk piezoelectric transformers. Part 2: the procedure of calculation of parameters and characteristics of the simplest disk piezoelectric transformer. Herald of Cherkasy State Technological University, no. 4, pp. 10–23 (2015). (in Russian)

    Google Scholar 

  15. Medianyk, V.V., Bondarenko, Yu.Yu., Bazilo, C.V., Bondarenko, M.O.: Research of current-conducting electrodes of elements from piezoelectric ceramics modified by the low-energy ribbon-shaped electron stream. J. Nano-Electron. Phys. 10(6), 06012-1–06012-6 (2017). https://doi.org/10.21272/jnep.10(6).06012

    Article  Google Scholar 

  16. Abramowitz, M., Stegun, I.A.: Handbook of Mathematical Functions with Formulas, Graphs, and Mathematical Tables. Science, Moscow (1979). (in Russian)

    Google Scholar 

  17. Petrishchev, O.N., Bazilo, C.V.: Principles and Methods of Mathematical Modelling of Oscillating Piezoelectric Elements. Gordienko Publ., Cherkasy (2019). (in Russian)

    Google Scholar 

  18. Bazilo, C., Zagorskis, A., Petrishchev, O., Bondarenko, Y., Zaika, V., Petrushko, Y.: Modelling of piezoelectric transducers for environmental monitoring. In: Proceedings of 10th International Conference “Environmental Engineering”, Vilnius Gediminas Technical University, Lithuania (2017). https://doi.org/10.3846/enviro.2017.008

  19. Petrishchev, O.N., Bazilo, C.V.: Methodology of determination of physical and mechanical parameters of piezoelectric ceramics. J. Nano-Electron. Phys. 9(3), 03022-1–03022-6 (2017). https://doi.org/10.21272/jnep.9(3).03022

    Article  Google Scholar 

Download references

Acknowledgements

The research leading to these results was made within the framework of a state budgetary research topic “Development of highly efficient intellectual complex for creation and research of piezoelectric components for instrumentation, medicine and robotics”.

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to Constantine Bazilo .

Editor information

Editors and Affiliations

Rights and permissions

Reprints and permissions

Copyright information

© 2020 The Editor(s) (if applicable) and The Author(s), under exclusive license to Springer Nature Switzerland AG

About this paper

Check for updates. Verify currency and authenticity via CrossMark

Cite this paper

Bazilo, C. (2020). Modelling of Bimorph Piezoelectric Elements for Biomedical Devices. In: Hu, Z., Petoukhov, S., He, M. (eds) Advances in Artificial Systems for Medicine and Education III. AIMEE 2019. Advances in Intelligent Systems and Computing, vol 1126. Springer, Cham. https://doi.org/10.1007/978-3-030-39162-1_14

Download citation

Publish with us

Policies and ethics