[1] Fan Y Q, Zhang L H. New development of extra large composite aircraft components application technology: advance of aircraft manufacture technology[J]. Acta Aeronautica et Astronautica Sinica, 30, 534-543(2009).
[2] Xing L Y, Feng Z H, Bao J W et al. Facing opportunity and challenge of carbon fiber and polymer matrix composites industry development[J]. Acta Materiae Compositae Sinica, 37, 2700-2706(2020).
[3] Kong Q Y, Ye B, Deng W Q et al. Probability-based diagnostic imaging method of fatigue damage for carbon fiber reinforced plastic based on ToF damage factor[J]. Laser & Optoelectronics Progress, 58, 1610002(2021).
[4] Salvetti M, Gilioli A, Sbarufatti C et al. Analytical model of the dynamic behaviour of CFRP plates subjected to low-velocity impacts[J]. Composites Part B: Engineering, 142, 47-55(2018).
[5] Tuo H L, Lu Z X, Ma X P et al. An experimental and numerical investigation on low-velocity impact damage and compression-after-impact behavior of composite laminates[J]. Composites Part B: Engineering, 167, 329-341(2019).
[6] Zhan X L, Zhao W T. Classification of carbon fiber reinforced polymer defects based on one-dimensional CNN[J]. Laser & Optoelectronics Progress, 57, 101013(2020).
[7] Cao H Y, Ma M Y, Ding G Q et al. Delamination defects testing and evaluation of composite laminates using phased array ultrasonic technique[J]. Journal of Materials Engineering, 49, 149-157(2021).
[8] Dilonardo E, Nacucchi M, de Pascalis F et al. High resolution X-ray computed tomography: a versatile non-destructive tool to characterize CFRP-based aircraft composite elements[J]. Composites Science and Technology, 192, 108093(2020).
[9] Li K, Gao Y T, Zhang H P et al. Efficient three-dimensional characterization of C/C composite reinforced with densely distributed fibers via X-ray phase-contrast microtomography[J]. Chinese Optics Letters, 19, 073401(2021).
[10] Yang Z W, Zhao Z B, Li Y et al. Infrared radiation characteristics of CFRP laminate surface under compressive fatigue load[J]. Acta Aeronautica et Astronautica Sinica, 42, 524239(2021).
[11] Goossens S, Berghmans F, Khodaei Z F et al. Practicalities of BVID detection on aerospace-grade CFRP materials with optical fibre sensors[J]. Composite Structures, 259, 113243(2021).
[12] Yu J S, Liang D K. Impact load localization by using fiber Bragg gratings based on characteristics of skewness and kurtosis[J]. Acta Optica Sinica, 38, 0328019(2018).
[13] Wang Q S, Mu D, Zhou T Y et al. Terahertz nondestructive test of delamination defects in glass-fiber-reinforced composite materials[J]. Acta Optica Sinica, 41, 1712003(2021).
[14] Almuhammadi K, Yudhanto A, Lubineau G. Real-time electrical impedance monitoring of carbon fiber-reinforced polymer laminates undergoing quasi-static indentation[J]. Composite Structures, 207, 255-263(2019).
[15] Schueler R, Joshi S P, Schulte K. Damage detection in CFRP by electrical conductivity mapping[J]. Composites Science and Technology, 61, 921-930(2001).
[16] Baltopoulos A, Polydorides N, Pambaguian L et al. Damage identification in carbon fiber reinforced polymer plates using electrical resistance tomography mapping[J]. Journal of Composite Materials, 47, 3285-3301(2013).
[17] Nonn S, Schagerl M, Zhao Y J et al. Application of electrical impedance tomography to an anisotropic carbon fiber-reinforced polymer composite laminate for damage localization[J]. Composites Science and Technology, 160, 231-236(2018).
[18] Fan W R, Wang B, Li J Y et al. Damage detection of CFRP structure based on electrical impedance tomography[J]. Journal of Beijing University of Aeronautics and Astronautics, 45, 2177-2183(2019).
[19] Fan W R, Li J Y, Wang B. Electrical impedance tomography based on improved MRNSD algorithm[J]. Journal of Beijing University of Aeronautics and Astronautics, 46, 1564-1573(2020).
[20] Rahimi Y, Wang C, Dong H B et al. A scale-invariant approach for sparse signal recovery[J]. SIAM Journal on Scientific Computing, 41, A3649-A3672(2019).
[21] Wang C, Yan M, Rahimi Y et al. Accelerated schemes for the L1/L2 minimization[J]. IEEE Transactions on Signal Processing, 68, 2660-2669(2020).
[22] Wang C, Tao M, Nagy J G et al. Limited-angle CT reconstruction via the L1/L2 minimization[J]. SIAM Journal on Imaging Sciences, 14, 749-777(2021).
[23] Fan W R, Wang H X, Xue Q et al. Modified sparse regularization for electrical impedance tomography[J]. The Review of Scientific Instruments, 87, 034702(2016).
[24] Geselowitz D B. An application of electrocardiographic lead theory to impedance plethysmography[J]. IEEE Transactions on Bio-Medical Engineering, 18, 38-41(1971).
[25] Wang H X, Fan W R, Hu L. A hybrid reconstruction method in electrical impedance tomography based on GMRES and Tikhonov regularization[J]. Journal of Biomedical Engineering, 26, 701-705(2009).
[26] Li X, Yang F, Yu X et al. Study on the inverse problem of electrical impedance tomography based on self-diagnosis regularization[J]. Journal of Biomedical Engineering, 35, 460-467(2018).
[27] Boyd S, Parikh N, Chu E et al. Distributed optimization and statistical learning via the alternating direction method of multipliers[J]. Foundations and Trends® in Machine Learning, 3, 1-122(2010).
[28] Megali G, Pellicano D, Cacciola M et al. Ec modelling and enhancement signals in CFRP inspection[J]. Progress in Electromagnetics Research M, 14, 45-60(2010).