[1]YE X W, JIN T, YUN C B. A review on deep learning-based structural health monitoring of civil infrastructures[J]. Smart Structures and Systems, 2019, 24(5): 567-585.
[2]SHEKARI M, NADERI G, MOGHARI S, et al. Piezoelectric materials for energy harvesting in wearables[J]. Polymer Engineering & Science, 2025, 65(12): 6451-6478.
[3] CHEN X, YVONNET J, YAO S, et al. Topology optimization of flexoelectric composites using computational homogenization[J]. Computer Methods in Applied Mechanics and Engineering, 2021, 381: 113819.
[4]李贵佳, 全静, 龚红宇, 等.水泥基压电复合材料的研究进展[J]. 材料导报, 2009, 23(23): 52-55.
LI G J, QUAN J, GONG H Y, et al. Research progress in cement-based piezoelectric composites[J]. Materials Reports, 2009, 23(23): 52-55. (in Chinese)
[5]CNEYT A A, OGUZHAN. Piezoelectric materials in civil engineering applications: a review[J]. ACS Omega, 2023, 8(22): 19168-19193.
[6]郑木鹏, 侯育冬, 朱满康, 等. 能量收集用压电陶瓷材料研究进展[J]. 硅酸盐学报, 2016, 44(3): 359-366.
ZHENG M P, HOU Y D, ZHU M K, et al. Research progress on piezoelectric ceramics for energy harvesting[J]. Journal of the Chinese Ceramic Society, 2016, 44(3): 359-366. (in Chinese)
[7]CHANG D, LI R H, ZHANG Z Y, et al. Piezoelectric property of PZT-based relaxor-ferroelectric ceramics enhanced by Sm doping[J]. Journal of Inorganic Materials, 2021, 36(12): 1270-1276.
[8]HABIB M, LOPES I, HORGAN K. A review of ceramic, polymer and composite piezoelectric materials[J]. Journal of Physics D: Applied Physics, 2022, 55(42): 423001.
[9]ZHANG Y M, LIU Z M, DING F, et al. Effect of piezoelectric ceramic particles size gradation on piezoelectric properties of 0-3 cement-based piezoelectric composites[J]. Smart Materials and Structures, 2018, 27(8): 085007.
[10]CHIN-HONG L. Effective properties of 0-3, 1-3, and 2-2 composites based on unified unit-cell micromechanics model[J]. Mechanics Research Communications, 2022, 119: 103807.
[11]WANG H, ZHAO C, LIU W, et al. Advances in triply periodic minimal surface structures for thermal management systems: a comprehensive review[J]. Applied Thermal Engineering, 2025, 279(PB): 127481.
[12]HAN L, CHE S. An overview of materials with triply periodic minimal surfaces and related geometry: from biological structures to self-assembled systems[J]. Advanced Materials, 2018, 30(17): 1705708.
[13]XU H, XIE Y M, CHAN R, et al. Piezoelectric properties of triply periodic minimum surface structures[J]. Composites Science and Technology, 2020, 200: 108417.
[14]XU H, SHANG B, LV X, et al. Effect of bicontinuous minimal surface meso-scale geometry on piezoelectric performances of piezoelectric composites[J]. Materials Today Communications, 2023, 36: 106462.
[15]Al-KETAN O, ABU Al-RUB R K. Multifunctional mechanical metamaterials based on triply periodic minimal surface lattices[J]. Advanced Engineering Materials, 2019, 21(10): 1900524.
[16]ALAM K, ANANTHARAMU S, MAHESH K. A variational level set methodology without reinitialization for the prediction of equilibrium interfaces over arbitrary solid surfaces[J]. Journal of Computational Physics, 2020, 406: 109184.
[17]HU Y, ZHANG Z, ZHANG Y, et al. Torsional mechanical behavior of TPMS porous structures: experimental insights on diamond, gyroid, and schwarz primitive designs[J]. Fatigue & Fracture of Engineering Materials & Structures, 2025, 48(9): 4056-4070.
[18]GU T S, QIN L, ZHU Z Q. Variational principles and size-dependent bounds for piezoelectric inhomogeneous materials with piezoelectric spring-layer imperfect interfaces[J]. Smart Materials and Structures, 2014, 23(5): 055003.
[19]GHAFARI E, YUAN Y, WU C, et al. Evaluation the compressive strength of the cement paste blended with supplementary cementitious materials using a piezoelectric-based sensor[J]. Construction and Building Materials, 2018, 171: 504-510.
基金
辽宁省教育厅基本科研项目(LJ212510151003)