19 Fatigue Crack Growth of TC4 Titanium Alloy …
221
5. L. Zhang, L. Qin, Monitoring corrosion of steel bar using acoustic emission, in IOP Conference
Series Materials Science and Engineering (2018), p. 452
6. E.V. Chernyaeva, P.A. Khaimovich, N.A. Shul’gin, Acoustic emission in commercial titanium
after Barocryo deformation. Phys. Metals Metallogr. 115(10), 1012–1016
7. W. Xianghogn, Z. Changming, M. Hanling, Experimental study on fatigue crack growth rate
of hydraulic turbine runner blades based on acoustic emission technology. China Mech. Eng.
07, 94–98 (2009)
8. Li. Lin, An acoustic emission model of fatigue crack growth on the surface of gears. Non-Destr.
Test. 11, 4–7 (2005)
9. C. Mengyu, D. Quan, Z. Zaojiao, Study on acoustic emission of Q345R fatigue crack growth
process. J. Eng. Sci. 37(260)(12), 56–61 (2015)
10. D. Crivelli, J. McCrory, S. Miccoli et al., Gear tooth root fatigue test monitoring with continuous
acoustic emission: advanced signal processing techniques for detection of incipient failure.
Struct. Health Monitor. 17(3), 423–433 (2018)
11. M.Y. Bhuiyan, B. Lin, V. Giurgiutiu, Acoustic emission sensor effect and waveform evolution
during fatigue crack growth in thin metallic plate. J. Intell. Mater. Syst. Struct. 29(7), 1275–1284
(2018)
12. S. Xie, Acoustic emission monitoring of fatigue crack generation and propagation in multilayer tokamak magnet, in Abstract Book of World Conference on Acoustic Emission - 2017.
International Society on Acoustic Emission: Chinese Mechanical Engineering Society (2017),
15
13. General Administration of Quality Supervision of the People’s Republic of Chin, GB/T63982000 Standard Test Method for Fatufue Crack Grouth of Metallic Materials (Standards Press
of China, Beijing, 2001)
14. Z. Wang, G. Hu, H. Yu, Research on Q345B fatigue crack growth based on acoustic emission
technology. J. Nanchang Hangkong Univ. (Natural Science Edition) (4) (2016)
15. Z. Han, H. Luo, Y. Zhang, et al., Effects of micro-structure on fatigue crack propagation and
acoustic emission behaviors in a micro-alloyed steel. Mater. Sci. Eng. A (Struct. Mater. Prop.
Microstruct. Process.), 559(none):534–542 (2013)
16. A. Maslouhi, Fatigue crack growth monitoring in aluminum using acoustic emission and
acousto-ultrasonic methods. Struct. Control Health Monitor. 18(7), 790–806 (2011)
17. Z. Han, H. Luo, J. Cao et al., Acoustic emission during fatigue crack propagation in a microalloyed steel and welds. Mater. Sci. Eng. A 528(25–26), 7751–7756 (2011)
18. J. Cao, H. Luo, Z. Han, Acoustic emission source mechanism analysis and crack length prediction during fatigue crack propagation in 16 Mn steel and welds. Procedia Eng. 27(none),
1524–1537 (2012)
19. C.K. Lee, J.J. Scholey, P.D. Wilcox et al., Guided wave acoustic emission from fatigue crack
growth in aluminium plate. Adv. Mater. Res. 13–14, 23–28 (2006)
20. S. Shi, Z. Han, Quantitative monitoring of brittle fatigue crack growth in railway steel using
acoustic emission. Proc. Inst. Mech. Eng. Part F J. Rail Rapid Transit. (2018)
21. J. Yu, P. Ziehl, B. Zárate, et al., Prediction of fatigue crack growth in steel bridge components
using acoustic emission. J. Constr. Steel Res. 67(8), 1254–1260 (2011)
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