[1] Ali J B, Chebel-Morello B, Saidi L, et al. Accurate bearing remaining useful life prediction based on Weibull distribution and artificial neural network[J]. Mechanical Systems and Signal Processing, 2015, s 56/57:150-172.
[2] Rai A, Upadhyay S H. A review on signal processing techniques utilized in the fault diagnosis of rolling element bearings[J]. Tribology International, 2016, 96:289-306.
[3] Dong S, Sun D, Tang B, et al. A fault diagnosis method for rotating machinery based on PCA and morlet kernel SVM[J]. Mathematical Problems in Engineering, 2014, 2014(10):1-8.
[4] Noury P, Eriksson K. Determination of stress intensity factors for cracked bridge roller bearings using finite element analyses[J]. Engineering Fracture Mechanics, 2017, 169:67-73.
[5] Deng S, Hua L, Han X, et al. Analysis of surface crack growth under rolling contact fatigue in a linear contact[J]. Tribology Transactions, 2015, 58(3):432-443.
[6] Deng S, Qin X, Huang S. A study on the effect of subsurface crack propagation on rolling contact fatigue in a bearing ring[J]. Journal of Mechanical Science and Technology, 2015, 29(3):1029-1038.
[7] Hua L, Deng S, Han X, et al. Effect of material defects on crack initiation under rolling contact fatigue in a bearing ring[J]. Tribology International, 2013, 66:315-323.
[8] Nejad R M. Using three-dimensional finite element analysis for simulation of residual stresses in railway wheels[J]. Engineering Failure Analysis, 2014(1), 45:449-455.
[9] Nejad R M, Farhangdoost K, Shariati M. Numerical study on fatigue crack growth in railway wheels under the influence of residual stresses[J]. Engineering Failure Analysis, 2015, 52:75-89.
[10] Nejad R M, Shariati M, Farhangdoost K. Effect of wear on rolling contact fatigue crack growth in rails[J]. Tribology International, 2016, 94:118-125.
[11] Paris P C, Erdogan F. A critical analysis of crack propagation laws[J]. Journal of Basic Engineering, 1963, 85(4):528-533.
[12] Rycerz P, Olver A, Kadiric A. Propagation of surface initiated rolling contact fatigue cracks in bearing steel[J]. International Journal of Fatigue, 2017, 97:29-38. |