[1] CHEN J Q, DAN H C, DING Y J, et al. New innovations in pavement materials and engineering: A review on pavement engineering research 2021[J]. Journal of Traffic and Transportation Engineering(English Edition), 2021, 8(6): 815-999.
[2]ZHANG L, KAN J W, LIN S J, et al. Design and performance evaluation of a pendulous piezoelectric rotational energy harvester through magnetic plucking of a fan-shaped hanging composite plate[J]. Renewable Energy, 2024, 222: 119796.
[3]LIN S, YANG Z M, ZHANG L, et al. Design, fabrication,and characterization of a deformation-restricted piezoelectric vibration energy harvester triggered by a stopper[J]. Energy, 2024, 312: 133550.
[4]《中国公路学报》编辑部.中国路面工程学术研究综述·2024[J].中国公路学报,2024,37(3):1-81.
Editorial Department of China Journal of Highway and Transport.Review on China's pavement engineering research: 2024[J]. China Journal of Highway and Transport, 2024, 37(3): 1-81.
[5]WANG S, WANG C H, GAO Z W, et al. Design and performance of a cantilever piezoelectric power generation device for real-time road safety warnings[J]. Applied Energy, 2020, 276: 115512.
[6]GIBUS D, MOREL A, GASNIER P, et al. High performance piezoelectric vibration energy harvesting by electrical resonant frequency tuning[J]. Smart Materials and Structures, 2022, 31(12): 125012.
[7]WANG C H, ZHOU R L, WANG S, et al. Structure optimization and performance of piezoelectric energy harvester for improving road power generation effect[J]. Energy, 2023, 270: 126896.
[8]WANG S, WANG C H, YU G X, et al. Development and performance of a piezoelectric energy conversion structure applied in pavement[J]. Energy Conversion and Management, 2020, 207: 112571.
[9]WANG P, PAN J Y, ZHANG H F, et al. Optimal road piezoelectric energy harvester design based on a free-end simply supported beam structure[J]. Journal of Vibration Engineering and Technologies, 2022, 10(6): 2061-2071.
[10]李 辉,许龙舟,毛 鹏,等.悬臂梁压电俘能器结构设计与电学性能有限元分析[J].长安大学学报(自然科学版),2023,43(6):25-36.
LI Hui, XU Long-zhou, MAO Peng, et al. Structural design and electrical properties of cantilever beam piezoelectric energy harvester by finite element analysis[J]. Journal of Chang'an University(Natural Science Edition), 2023, 43(6): 25-36.
[11]KHAZAEE M, HUBER J E, ROSENDAHL L, et al. Four-point bending piezoelectric energy harvester with uniform surface strain toward better energy conversion performance and material usage[J]. Journal of Sound and Vibration, 2023, 548: 117492.
[12]HASANI M, KHAZAEE M, HUBER J E, et al. Design and analytical evaluation of an impact-based four-point bending configuration for piezoelectric energy harvesting[J]. Applied Energy, 2023, 347: 121461.
[13]RAMEGOWDA P C, ISHIHARA D. Accurate finite element modeling of multilayered flexible piezoelectric energy harvesting devices with strong coupling of structure,piezoelectricity, and circuit[J]. International Journal for Computational Methods in Engineering Science and Mechanics, 2024, 25(3): 137-151.
[14]SHIN Y H, JUNG I, NOH M S, et al. Piezoelectric polymer-based roadway energy harvesting via displacement amplification module[J]. Applied Energy, 2018, 216: 741-750.
[15]JEON D H, CHO J Y, JHUN J P, et al. A lever-type piezoelectric energy harvester with deformation-guiding mechanism for electric vehicle charging station on smart road[J]. Energy, 2021, 218: 119540.
[16]王朝辉,王 帅,宋 志,等.基于现场测试的道路压电俘能系统电学性能[J].中国公路学报,2021,34(1):12-23.
WANG Chao-hui, WANG Shuai, SONG Zhi, et al. Electrical performance of road piezoelectric energy-harvesting system based on field test[J]. China Journal of Highway and Transport, 2021, 34(1): 12-23.
[17]DU C, LIU P, YANG H, et al. Finite element modeling and performance evaluation of piezoelectric energy harvesters with various piezoelectric unit distributions[J]. Materials, 2021, 14(6): 1405.
[18]WANG S, WANG C H, YUAN H Z, et al. Design and performance of piezoelectric energy output promotion system for road[J]. Renewable Energy, 2022, 197: 443-451.
[19]WANG C H, CAO H Y, WANG S, et al. Design and testing of road piezoelectric power generation device based on traffic environment applicability[J]. Applied Energy, 2021, 299: 117344.
[20]WANG J, LIU Z M, DING G Y, et al. Watt-level road-compatible piezoelectric energy harvester for LED-induced lamp system[J]. Energy, 2021, 229: 120685.
[21]CHEN C, XU T B, YAZDANI A, et al. A high density piezoelectric energy harvesting device from highway traffic-System design and road test[J]. Applied Energy, 2021, 299: 117331.
[22]汪红兵,孙春华.路面能量采集的多悬臂梁压电俘能器仿真分析[J].公路,2016,61(4):143-148.
WANG Hong-bing, SUN Chun-hua. Simulation on a piezoelectric energy harvester of multiple cantilevers for harvesting vibration energy from pavement[J]. Highway, 2016, 61(4): 143-148.
[23]JUNG I, SHIN Y H, KIM S, et al. Flexible piezoelectric polymer-based energy harvesting system for roadway applications[J]. Applied Energy, 2017, 197: 222-229.
[24]CHEN N, JUNG H J, JABBAR H, et al. A piezoelectric impact-induced vibration cantilever energy harvester from speed bump with a low-power power management circuit[J]. Sensors and Actuators A: Physical, 2017, 254: 134-144.
[25]JASIM A, YESNER G, WANG H, et al. Laboratory testing and numerical simulation of piezoelectric energy harvester for roadway applications[J]. Applied Energy, 2018, 224: 438-447.
[26]SONG G J, CHO J Y, KIM K B, et al. Development of a pavement block piezoelectric energy harvester for self-powered walkway applications[J]. Applied Energy, 2019, 256: 113916.
[27]ISARAKORN D, JAYASVASTI S, PANTHONGSY P, et al. Design and evaluation of double-stage energy harvesting floor tile[J]. Sustainability, 2019, 11(20): 5582.
[28]HONG S D, KIM K B, HWANG W, et al. Enhanced energy-generation performance of a landfilled road-capable piezoelectric harvester to scavenge energy from passing vehicles[J]. Energy Conversion and Management, 2020, 215: 112900.
[29]WANG J, LIU Z M, SHI K X, et al. Development and application performance of road spring-type piezoelectric transducer for energy harvesting[J]. Smart Materials and Structures, 2021, 30(8): 085020.
[30]PHAM T H, BUI T D, DAO T T. A high-reliability piezoelectric tile transducer for converting bridge vibration to electrical energy for smart transportation[J]. Micromachines, 2023, 14(5): 1058.
[31]WANG C H, WANG S, GAO Z W, et al. Effect evaluation of road piezoelectric micro-energy collection-storage system based on laboratory and on-site tests[J]. Applied Energy, 2021, 287: 116581.
[32]ANGHELACHE G, MOISESCU R, SOROHAN S, et al. Measuring system for investigation of tri-axial stress distribution across the tyre-road contact patch[J]. Measurement, 2011, 44(3): 559-568.
[33]TAGHAVIFAR H, MARDANI A. Potential of functional image processing technique for the measurements of contact area and contact pressure of a radial ply tire in a soil bin testing facility[J]. Measurement, 2013, 46(10): 4038-4044.