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Open Access

Sensing-actuating performance of flexible piezoelectric composites by component optimization

Yanheng GuoaWeixuan ZhangaKecheng LibDi WubTao LiucWenfeng Zhangc( )Yishou Wanga( )
School of Aerospace Engineering, Xiamen University, Xiamen 361005 China
China Academy of Launch Vehicle Technology, Beijing100076 China
Shanghai Institute of Aerospace Systems Engineering, Shanghai 201108 China
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Abstract

Flexible piezoelectric composite (FPC) materials with strong designability are increasingly utilized in vibration control and structural health monitoring. The sensing and actuating performances of FPCs are directly affected by the several parameters, such as ceramic fiber volume fraction, flexible interdigitated electrode width, electrode spacing, and component thicknesses. These parameters should be optimized in order to make the tradeoff between the sensing-actuation performance and the compliance. This study systematically explored the relationships between material properties (such as electrostrain coefficients, dielectric coupling coefficients, and compliance matrix) and component parameters. A representative volume element (RVE) model at the microscale was employed to investigate the electric field distribution and sensing/actuation effects of FPCs with varying parameter configurations under voltage excitation. This analysis identified optimal component parameter ratios for FPCs, providing a theoretical foundation for their design and fabrication. The study concluded that an FPC with a ceramic fiber volume fraction of 75 %, electrode spacing of 0.1 mm, and electrode width of 0.01 mm achieves optimal sensing and actuation performance while maintaining good compliance. This research offers valuable insights for the development of flexible piezoelectric composites with tailored properties for advanced applications.

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Extreme Materials
Pages 27-41

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Cite this article:
Guo Y, Zhang W, Li K, et al. Sensing-actuating performance of flexible piezoelectric composites by component optimization. Extreme Materials, 2025, 1(2): 27-41. https://doi.org/10.1016/j.exm.2025.05.001

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Received: 18 March 2025
Revised: 13 May 2025
Accepted: 15 May 2025
Published: 22 May 2025
© 2025 INTERNATIONAL SCIENCE ACCELERATOR PTY LTD.

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).