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Article

Vibration Energy Harvesting Characteristics of Pyramid Sandwich Beams Under Periodic Elastic Constraints

1
School of Mechanical, Electrical and Vehicle Engineering, Beijing University of Civil Engineering and Architecture, Beijing 102616, China
2
State Environmental Protection Engineering Research Centre for Urban Noise and Vibration Control, Institute of Urban Safety and Environmental Science, Beijing Academy of Science and Technology, Beijing 100054, China
3
China Electric Power Research Institute Co. Ltd., Beijing 100192, China
4
Beijing Electric Power Corporation, Beijing 100031, China
*
Author to whom correspondence should be addressed.
J. Compos. Sci. 2025, 9(12), 659; https://doi.org/10.3390/jcs9120659 (registering DOI)
Submission received: 29 September 2025 / Revised: 24 November 2025 / Accepted: 25 November 2025 / Published: 1 December 2025
(This article belongs to the Section Composites Modelling and Characterization)

Abstract

Vibration energy harvesting from ambient mechanical sources offers a sustainable alternative to batteries for powering low-power electronics in remote environments, yet challenges persist in achieving broadband efficiency, low-frequency operation, and concurrent vibration suppression. Here, we introduce a pyramidal piezoelectric sandwich beam (PPSB) with periodic elastic constraints, leveraging homogenized lattice truss cores for enhanced electromechanical coupling. Using Lagrange equations, we derive the coupled dynamics, validated against finite element simulations with resonant frequency errors below 3%. Compared to equivalent-stiffness uniform beams, the PPSB exhibits 3.42-fold higher voltage and 11.68-fold greater power output, attributed to optimized strain distribution and resonance amplification. Parametric analyses reveal trade-offs: increasing core thickness or spring stiffness elevates resonant frequencies but reduces voltage peaks due to stiffness–strain imbalances; conversely, a larger beam length, truss radius or tilt angle will reduce the natural frequency while increasing the output through inertia and shear enhancement. Piezoelectric constants and load resistance minimally affect mechanics but optimize electrical impedance matching. This single-phase, geometrically tunable design bridges gaps in multifunctional metamaterials, enabling self-powered sensors with vibration attenuation for aerospace, civil infrastructure, and biomedical applications, paving the way for energy-autonomous systems.
Keywords: vibration energy harvesting; elastically supported piezoelectric sandwich beam; vibration reduction; Lagrange method vibration energy harvesting; elastically supported piezoelectric sandwich beam; vibration reduction; Lagrange method

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MDPI and ACS Style

Xiao, W.; Zhao, J.; Nie, J.; Jiang, S.; Guo, Z.; Shi, L. Vibration Energy Harvesting Characteristics of Pyramid Sandwich Beams Under Periodic Elastic Constraints. J. Compos. Sci. 2025, 9, 659. https://doi.org/10.3390/jcs9120659

AMA Style

Xiao W, Zhao J, Nie J, Jiang S, Guo Z, Shi L. Vibration Energy Harvesting Characteristics of Pyramid Sandwich Beams Under Periodic Elastic Constraints. Journal of Composites Science. 2025; 9(12):659. https://doi.org/10.3390/jcs9120659

Chicago/Turabian Style

Xiao, Weimin, Junjuan Zhao, Jingkai Nie, Shuai Jiang, Zhenkun Guo, and Lei Shi. 2025. "Vibration Energy Harvesting Characteristics of Pyramid Sandwich Beams Under Periodic Elastic Constraints" Journal of Composites Science 9, no. 12: 659. https://doi.org/10.3390/jcs9120659

APA Style

Xiao, W., Zhao, J., Nie, J., Jiang, S., Guo, Z., & Shi, L. (2025). Vibration Energy Harvesting Characteristics of Pyramid Sandwich Beams Under Periodic Elastic Constraints. Journal of Composites Science, 9(12), 659. https://doi.org/10.3390/jcs9120659

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