[1] SU Z Q, YE L, LU Y. Guided Lamb waves for identification of damage in composite structures: a review[J]. Journal of Sound and Vibration, 2006, 295(3/4/5): 753-780. [2] 葛邦, 杨涛, 高殿斌, 等. 复合材料无损检测技术研究进展[J]. 玻璃钢/复合材料, 2009(6): 67-71. [3] 常俊杰, 李媛媛. 蜂窝结构复合材料的空气耦合Lamb波检测技术[J]. 复合材料科学与工程, 2020(2): 62-68. [4] 胡亚男, 赵娜, 张旭, 等. 基于概率损伤算法的铝板电磁超声Lamb波扫描成像[J]. 无损检测, 2019, 41(2): 1-7. [5] IJJEH A A, ULLAH S, KUDELA P. Full wavefield processing by using FCN for delamination detection[J]. Mechanical Systems and Signal Processing, 2021, 153: 107537. [6] QING X L, LI W Z, WANG Y S, et al. Piezoelectric transducer-based structural health monitoring for aircraft applications[J]. Sensors, 2019, 19(3): 545-572. [7] 许颖, 陈锐, 卢苗苗, 等. 考虑材料各向异性的纤维增强聚合物基复合材料板损伤Lamb波检测和定位[J]. 复合材料学报, 2019, 36(2): 389-399. [8] SU Z Q, CHENG L, WANG X M, et al. Predicting delamination of composite laminates using an imaging approach[J]. Smart Materials and Structures, 2009, 18(7): 074002. [9] DAI D Y, HE Q B. Structure damage localization with ultrasonic guided waves based on a time-frequency method[J]. Signal Processing, 2014, 96: 21-28. [10] PARK H W, SOHN H, LAW K H, et al. Time reversal active sensing for health monitoring of a composite plate[J]. Journal of Sound and Vibration, 2007, 302(1/2): 50-66. [11] SOHN H, PARK H W, LAW K H, et al. Damage detection in composite plates by using an enhanced time reversal method[J]. Journal of Aerospace Engineering, 2007, 20(3): 141-151. [12] 张海燕, 孙修立, 曹亚萍, 等. 基于时间反转理论的聚焦Lamb波结构损伤成像[J]. 物理学报, 2010, 59(10): 7111-7119. [13] 吕伟, 文学, 付为刚, 等. 基于Lamb波和改进贝叶斯融合算法的CFRP边缘分层损伤分析[J]. 复合材料科学与工程, 2024(5): 114-120. [14] DE FENZA A, SORRENTINO A, VITIELLO P. Application of artificial neural networks and probability ellipse methods for damage detection using Lamb waves[J]. Composite Structures, 2015, 133: 390-403. [15] 刘增华, 王娜, 何存富, 等. 基于压电陶瓷片的Lamb波单模态激励及缺陷检测的实验研究[J]. 北京工业大学学报, 2011, 37(10): 1453-1458. [16] MICHAELS J E, LEE S J, CROXFORD A J, et al. Chirp excitation of ultrasonic guided waves[J]. Ultrasonics, 2013, 53(1): 265-270. [17] MICHAELS T E, MICHAELS J E, LEE S J, et al. Chirp generated acoustic wavefield images[C]//Proceedings Volume 7984, Health Monitoring of Structural and Biological Systems 2011. San Diego: The International Society for Optical Engineering, 2011: 172-182. [18] FENG B, RIBEIRO A L, RAMOS H G. A new method to detect delamination in composites using chirp-excited Lamb wave and wavelet analysis[J]. NDT & E International, 2018, 100: 64-73. [19] NANDYALA A R, DARPE A K, SINGH S P. Damage severity assessment in composite structures using multi-frequency Lamb waves[J]. Structural Health Monitoring, 2022, 21(6): 2834-2850. [20] 郑阳, 何存富, 吴斌. Chirp信号及其在超声导波检测中的应用[J]. 仪器仪表学报, 2013, 34(3): 552-558. [21] GANGADHARAN R, MURTHY C R L, GOPALAKRISHNAN S, et al. Time reversal technique for health monitoring of metallic structure using Lamb waves[J]. Ultrasonics, 2009, 49(8): 696-705. [22] ZENG L, HUANG L P, CAO X W, et al. Determination of Lamb wave phase velocity dispersion using time-frequency analysis[J]. Smart Materials and Structures, 2019, 28(11): 115029. [23] 张海燕, 马世伟, 冯国瑞, 等. 兰姆波结构健康监测中的概率损伤成像[J]. 声学学报, 2012, 37(4): 401-407. [24] FENG B, PASADAS D J, RIBEIRO A L, et al. Localization of defects in woven-fabric type CFRP plate by time of flight of scattering guided wave[C]//2018 IEEE International Instrumentation and Measurement Technology Conference (I2MTC). Houston, TX, USA: IEEE, 2018: 1-6. [25] MARCHI L D, PERELLI A, MARZANI A. A signal processing approach to exploit chirp excitation in Lamb wave defect detection and localization procedures[J]. Mechanical Systems & Signal Processing, 2013, 39(1/2): 20-31. [26] ZHANG S Y, LI C M, YE W J. Damage localization in plate-like structures using time-varying feature and one-dimensional convolutional neural network[J]. Mechanical Systems and Signal Processing, 2021, 147: 107107. |