PSI - Issue 5

Shun-Peng Zhu et al. / Procedia Structural Integrity 5 (2017) 967–972

972

Shun-Peng Zhu/ Structural Integrity Procedia 00 (2017) 000 – 000

6

References [1] L. Chen, Y. Liu, L. Xie. Power-exponent function model for low-cycle fatigue life prediction and its applications - Part II: life prediction of turbine blades under creep-fatigue interaction. International Journal of Fatigue, 2007, 29(1): 10-19. [2] C. Booysen, P.S. Heyns, M.P. Hindley, R. Scheepers. Fatigue life assessment of a low pressure steam turbine blade during transient resonant conditions using a probabilistic approach. International Journal of Fatigue, 2015, 73: 17-26. [3] S.P. Zhu, H.Z. Huang, W. Peng, H.K. Wang, S. Mahadevan. Probabilistic Physics of Failure-based framework for fatigue life prediction of aircraft gas turbine discs under uncertainty. Reliability Engineering & System Safety, 2016, 146: 1-12. [4] S.P. Zhu, H.Z. Huang, R. Smith, V. Ontiveros, L. He, M. Modarres. Bayesian framework for probabilistic low cycle fatigue life prediction and uncertainty modeling of aircraft turbine disk alloys. Probabilistic Engineering Mechanics, 2013, 34: 114-122. [5] J. Zhao, J. Tang, H.C. Wu. A reliability assessment method in strain-based fatigue life analysis. Journal of Pressure Vessel Technology, 1998, 120(1): 99-104. [6] H. Gao, C. Fei, G. Bai, L. Ding. Reliability-based low-cycle fatigue damage analysis for turbine blade with thermo-structural interaction. Aerospace Science and Technology, 2016, 49: 289-300. [7] C.G. Bucher, A fast and efficient response surface approach for structural reliability problems. Structural Safety, 1990, 7(1): 57-66. [8] L. Faravelli. Response-surface approach for reliability analysis. Journal of Engineering Mechanics, ASCE, 1989, 115(12): 2763-2781. [9] N. Gayton, J.M. Bourient, M. Lemaire. CQ2RS: a new statistical approach to the response surface method for reliability analysis. Structural Safety, 2003, 25(1): 99-121. [10] G. Falsone, N. Impollonia. About the accuracy of a novel response surface method for the analysis of finite element modeled uncertain structures. Probabilistic Engineering Mechanics, 2004, 19: 53-63. [11] S. Gupta, C.S. Manohar. An improved response surface method for the determination of failure probability and importance measures. Structural Safety, 2004, 26(2): 123-139. [12] A. Olsson, G. Sandberg, O. Dahlblom. On Latin hypercube sampling for structural reliability analysis. Structural Safety, 2003, 25: 47-68. [13] S.S. Manson, Behavior of materials under conditions of thermal stress, National Advisory Commission on Aeronautics. Report 1170, Lewis Flight Propulsion Laboratory, Cleveland, 1954. [14] L.F. Coffin, A study of the effects of cyclic thermal stress on a ductile metal, Transactions of the American Society for Mechanical Engineering, 1954, 76: 931–950. [15] A. Fatemi and D. F. Socie. A critical plane approach to multiaxial fatigue damage including out-of-phase loading. Fatigue & Fracture of Engineering Materials & Structures, 1988, 11(3): 149-165. [16] D. F. Socie and G. B. Marquis, Multiaxial fatigue. SAE Inc., 2000. [17] N. E. Dowling, Mechanical behavior of materials-engineering methods for deformation, fracture, and fatigue, 2nd Ed. NJ: Prentice Hall, 1998. [18] S. Beretta, S. Foletti, E. Rusconi, A. Riva, and D. Socie, A log-normal format for failure probability under LCF: Concept, validation and definition of design curve. International Journal of Fatigue, 2016, 82: 2-11. [19] C.L. Liu, Z.Z. Lu, Y.L. Xu, Z.F. Yue. Reliability analysis for low cycle fatigue life of the aeronautical engine turbine disc structure under random environment. Materials Science and Engineering A, 2005, 395: 218-225. [20] J. L. Chaboche and G. Rousselier. On the Plastic and Viscoplastic Constitutive Equations, Part I and II, Journal of Pressure Vessel Technology, 1983, 105(2): 153-164. [21] C. O. Frederick and P. J. Armstrong, Amathematical representation of the multiaxial Bauschinger effect, Materials at High Temperatures, 2007, 24(1): 1-26. [22] J. L. Chaboche, A review of some plasticity and viscoplasticity constitutive theories, International Journal of Plasticity, 2008, 24(10): 1642–1693. [23] H.Z. Huang, J. Gong, Ming J. Zuo, S.P. Zhu, Q. Liao. Fatigue life estimation of an aircraft engine under different load spectrums. International Journal of Turbo & Jet Engines, 2012, 29(4): 259-267. [24] Z.Y. Yu, S.P. Zhu, Q. Liu, Y. Liu. A new energy-critical plane damage parameter for multiaxial fatigue life prediction of turbine blades. Materials, 2017, 10(5): 513.

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