Second-order homogenization of flexoelectric composites for piezoelectric behavior

Verfasst von

Ranran Zhang, Bin Li, Timon Rabczuk, Xiaolong Fu, Xiaoying Zhuang

Abstract

A second-order multiscale framework has been proposed for designing equivalent piezoelectric behavior by utilizing microscale flexoelectric composites. Unlike conventional homogenization approaches that neglect strain-gradient effects, the proposed method incorporates higher-order electromechanical coupling, enabling a direct and rigorous transfer of flexoelectric responses from the microscale to the macroscale. By combining isogeometric analysis with the finite cell method, a second-order computational homogenization scheme is formulated and implemented, allowing accurate analysis of complex microstructural geometries while maintaining high computational efficiency. High-order periodic boundary conditions consistent with the Hill–Mandel energy equivalence principle are enforced to ensure thermodynamic consistency across scales. Based on a perturbation analysis, closed-form macroscopic constitutive relations are systematically derived, revealing the emergence of equivalent piezoelectricity from flexoelectric composites. Numerical studies demonstrate that microscale dielectric matrices embedded with tetrahedral flexoelectric inclusions can be engineered to exhibit tunable macroscopic piezoelectric properties. A representative volume element analysis further identifies a characteristic microscale length that balances local heterogeneity and global electromechanical response. The proposed framework establishes a unified and predictive pathway for multiscale design of equivalent piezoelectric materials beyond conventional piezoelectric and homogenization theories.

Details

Organisationseinheit(en)
Institut für Photonik
Externe Organisation(en)
Bauhaus-Universität Weimar
Xi'an Modern Chemistry Research Institute
Tongji University
Typ
Artikel
Journal
International Journal of Mechanical Sciences
Band
317
ISSN
0020-7403
Publikationsdatum
01.05.2026
Publikationsstatus
Veröffentlicht
Peer-reviewed
Ja
ASJC Scopus Sachgebiete
Tief- und Ingenieurbau, Allgemeine Materialwissenschaften, Luft- und Raumfahrttechnik, Physik der kondensierten Materie, Meerestechnik, Werkstoffmechanik, Maschinenbau, Angewandte Mathematik
Elektronische Version(en)
https://doi.org/10.1016/j.ijmecsci.2026.111494 (Zugang: Geschlossen )
 

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