Experimental investigation of output performance and fatigue degradation of road piezoelectric energy harvesters embedded in SMA pavements

Road piezoelectric energy harvesting has advanced through transducer optimisation, yet the role of asphalt-mixture design in pavement–harvester coupling remains poorly understood. We compared asphalt–piezoelectric pavement specimens incorporating stone mastic asphalt (SMA) mixtures (SMA-10, SMA-13 and SMA-20) with AC-10 specimens. Embedded lead-free harvesters were tested under cyclic loads of 2–10 kN at 2–10 Hz to quantify electrical output and voltage degradation. Output increased among SMA mixtures with increasing nominal maximum aggregate size, reflecting the effects of aggregate structure, surface-layer stiffness, and mixture composition on pavement–harvester load transfer. SMA-20 achieved a maximum root-mean-square open-circuit voltage of 91.23 V and peak output power of 627.16 mW. After 10 days of intermittent loading, corresponding to approximately 4.32 × 106 laboratory loading cycles, its output voltage decreased by 19.41%. Full-scale field tests reproduced this output ranking under vehicle loading. These results highlight the importance of asphalt-mixture design for energy-harvesting pavement systems.

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Publication Details

Journal
Road Materials and Pavement Design
Published
2026-08-27
DOI
https://doi.org/10.1080/14680629.2026.2725125
Primary Topic
Innovative Energy Harvesting Technologies
Type
article
Field-Weighted Citation Impact
0.00

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article

Experimental investigation of output performance and fatigue degradation of road piezoelectric energy harvesters embedded in SMA pavements

Ziyang Gao, Caijin Wang, Liangfu Xie, Yangyi Tang et al.
Road Materials and Pavement Design
Innovative Energy Harvesting Technologies
article

Experimental investigation of output performance and fatigue degradation of road piezoelectric energy harvesters embedded in SMA pavements

Ziyang Gao, Caijin Wang, Liangfu Xie, Yangyi Tang, Zhiming Liu, Junfeng Ni, Jun Wang, Yuren Lin
article en

Abstract

Road piezoelectric energy harvesting has advanced through transducer optimisation, yet the role of asphalt-mixture design in pavement–harvester coupling remains poorly understood. We compared asphalt–piezoelectric pavement specimens incorporating stone mastic asphalt (SMA) mixtures (SMA-10, SMA-13 and SMA-20) with AC-10 specimens. Embedded lead-free harvesters were tested under cyclic loads of 2–10 kN at 2–10 Hz to quantify electrical output and voltage degradation. Output increased among SMA mixtures with increasing nominal maximum aggregate size, reflecting the effects of aggregate structure, surface-layer stiffness, and mixture composition on pavement–harvester load transfer. SMA-20 achieved a maximum root-mean-square open-circuit voltage of 91.23 V and peak output power of 627.16 mW. After 10 days of intermittent loading, corresponding to approximately 4.32 × 106 laboratory loading cycles, its output voltage decreased by 19.41%. Full-scale field tests reproduced this output ranking under vehicle loading. These results highlight the importance of asphalt-mixture design for energy-harvesting pavement systems.

Road Materials and Pavement Design
Wenzhou University (CN), Xinjiang University (CN)
National Natural Science Foundation of China, Major Scientific and Technological Innovation Project of Shandong Province, Science Fund for Distinguished Young Scholars of Guangxi Province
Affordable and clean energy
Openalex Percentile: Top 19%
Innovative Energy Harvesting Technologies
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