Bhaumik, 2008, Fatigue failure of aircraft components, Engng Fail Anal, 15, 675, 10.1016/j.engfailanal.2007.10.001
Okazaki, 2008, Thermo-mechanical fatigue failure of a single crystal Ni-based superalloy, Int J Fatigue, 30, 318, 10.1016/j.ijfatigue.2007.01.044
Staroselsky, 2011, Creep, plasticity, and fatigue of single crystal superalloy, Int J Solids Struct, 48, 2060, 10.1016/j.ijsolstr.2011.03.011
Reed R. P., Smith J. H., Christ B. W. The economic effects of fracture in the United States: Special Publication 647. National Bureau of Standards. Gaithersburg, MD: US Department of Commerce; 1983.
Fatemi, 2011, Multiaxial fatigue: An overview and some approximation models for life estimation, Int J Fatigue, 33, 948, 10.1016/j.ijfatigue.2011.01.003
Paris, 1963, A critical analysis of crack propagation laws, J Basic Engng, 85, 528, 10.1115/1.3656900
Basquin, 1910, The exponential law of endurance tests, American Society for Testing and Materials Proceedings, 10
Wöhler, 1870, Über die Festigkeitsversuche mit Eisen und Stahl, Zeitschrift für Bauwesen, 20, 73
Miner, 1945, Cumulative damage in fatigue, J Appl Mech, 12, A159, 10.1115/1.4009458
Forman, 1967, Numerical analysis of crack propagation in cyclic-loaded structures, J Basic Engng, 89, 459, 10.1115/1.3609637
Hartman, 1970, The effects of environment and load frequency on the crack propagation law for macro fatigue crack growth in aluminium alloys, Engng Fract Mech, 1, 615, 10.1016/0013-7944(70)90003-2
Klesnil, 1972, Influence of strength and stress history on growth and stabilisation of fatigue cracks, Engng Fract Mech, 4, 77, 10.1016/0013-7944(72)90078-1
Lesiuk, 2018, Fatigue crack growth of 42CrMo4 and 41Cr4 steels under different heat treatment conditions, IJSI, 9, 326, 10.1108/IJSI-01-2018-0003
Yokobori, 1973, The influence of temperature and stress intensity factor upon the striation spacing and fatigue crack propagation rate of aluminum alloy, Int J Fract, 9, 489, 10.1007/BF00036333
Chen, 2018, Equivalent surface defect model for fatigue life prediction of steel reinforcing bars with pitting corrosion, Int J Fatigue, 110, 153, 10.1016/j.ijfatigue.2018.01.019
Hawileh, 2010, Low-cycle fatigue life behaviour of BS 460B and BS B500B steel reinforcing bars, Fatigue Fract Engng Mater Struct, 33, 397, 10.1111/j.1460-2695.2010.01452.x
Abdalla, 2011, Modeling and simulation of low-cycle fatigue life of steel reinforcing bars using artificial neural network, J Franklin Inst, 348, 1393, 10.1016/j.jfranklin.2010.04.005
Sun, 2019, Corrosion fatigue life prediction for steel bar in concrete based on fatigue crack propagation and equivalent initial flaw size, Constr Build Mater, 195, 208, 10.1016/j.conbuildmat.2018.11.056
Karolczuk, 2019, Evaluation of the Fatemi-Socie damage parameter for the fatigue life calculation with application of the Chaboche plasticity model, Fatigue Fract Engng Mater Struct, 42, 197, 10.1111/ffe.12895
Curiel FF, Ambriz RR, García MA, Ramírez MC, García S. Smith Watson and Topper Model in the Determination of the Fatigue Life of an Automotive Steel. In: Ambriz RR, Jaramillo D, Plascencia G, Nait Abdelaziz M, editors. Proceedings of the 17th International Conference on New Trends in Fatigue and Fracture. Cham: Springer International Publishing; 2018, p. 197–207.
Carpinteri, 2014, Lifetime estimation in the low/medium-cycle regime using the Carpinteri-Spagnoli multiaxial fatigue criterion, Theor Appl Fract Mech, 73, 120, 10.1016/j.tafmec.2014.06.002
Santecchia, 2016, A review on fatigue life prediction methods for metals, Adv Mater Sci Engng, 2016, 1, 10.1155/2016/9573524
Ayoub, 2010, Multiaxial fatigue life prediction of rubber-like materials using the continuum damage mechanics approach, Procedia Engng, 2, 985, 10.1016/j.proeng.2010.03.107
De Jesus, 2005, Finite element modeling of fatigue damage using a continuum damage mechanics approach, J Press Vessel Technol, 127, 157, 10.1115/1.1858927
Bhattacharya, 1999, A new CDM-based approach to structural deterioration, Int J Solids Struct, 36, 1757, 10.1016/S0020-7683(98)00057-2
Inglis, 1927, Hysteresis and fatigue of Wohler rotating cantilever specimen, Metallurgist, 3, 23
Makkonen, 2009, Predicting the total fatigue life in metals, Int J Fatigue, 31, 1163, 10.1016/j.ijfatigue.2008.12.008
Pugno, 2006, A generalized Paris’ law for fatigue crack growth, J Mech Phys Solids, 54, 1333, 10.1016/j.jmps.2006.01.007
Ghidini, 2009, Fatigue life predictions using fracture mechanics methods, Engng Fract Mech, 76, 134, 10.1016/j.engfracmech.2008.07.008
Newman, 1984, A crack opening stress equation for fatigue crack growth, Int J Fract, 24, R131, 10.1007/BF00020751
Patil, 2019, Geometrical complexity and crack trajectory based fatigue life prediction for a spur gear having tooth root crack, Engng Fail Anal, 105, 444, 10.1016/j.engfailanal.2019.06.093
Buckingham, 1914, On physically similar systems; Illustrations of the use of dimensional equations, Phys Rev, 4, 345, 10.1103/PhysRev.4.345
Bolster, 2011, Dynamic similarity, the dimensionless science, Phys Today, 64, 42, 10.1063/PT.3.1258
Mehdizadeh, 2021, In-situ technique for fatigue life prediction of metals based on temperature evolution, Int J Mech Sci, 192, 10.1016/j.ijmecsci.2020.106113
Rayleigh, 1915, Letters to Editor, Nature, 95, 644, 10.1038/095644b0
Sommerfeld A. Ein Beitrag zur hydrodynamischen Erklärung der turbulenten Flüssigkeitsbewegung. Proceedings of the 4th International Mathematical Congress 1909;3:116–24.
Motte A. The mathematical principles of Natural Philosophy: English Translation of Sir Isaac Newton’s, 3rd Edition. Philosophiæ Naturalis Principia Mathematica 2016.
Fourier, 1878
Jasper, 1923, The value of the energy relation in the testing of ferrous metals at varying ranges of stress and at intermediate and high temperatures, Philos Mag, 46, 609, 10.1080/14786442308634287
Stowell, 1966, A study of the energy criterion for fatigue, Nucl Eng Des, 3, 32, 10.1016/0029-5493(66)90146-4
Kujawski, 1995, A unified approach to mean stress effect on fatigue threshold conditions, Int J Fatigue, 17, 101, 10.1016/0142-1123(95)95888-N
Feltner, 1961, Microplastic strain hysteresis energy as a criterion for fatigue fracture, J Basic Eng Trans, ASME, 83, 15, 10.1115/1.3658884
Barua, 2018, Methodology for stress-controlled fatigue test under in-air and pressurized water reactor coolant water condition and to evaluate the effect of pressurized water reactor water and loading rate on ratcheting, J Press Vessel Technol, 140, 10.1115/1.4039345
Hajshirmohammadi, 2021, An approach for fatigue life prediction based on external heating, Int J Mech Sci, 204, 10.1016/j.ijmecsci.2021.106510
Furuya Y, Nishikawa H, Hirukawa H, Takeuchi E, Nagashima N. Fatigue Data Sheet (FDS); Available from: https://smds.nims.go.jp/MSDS/en/sheet/Fatigue.html#1#1.
Furuya Y, Nishikawa H, Hirukawa H, Takeuchi E, Nagashima N. Data sheets on fatigue crack propagation properties for butt welded joints of SUS304-HP (18Cr-8Ni) hot rolled stainless steel plate - effect of stress ratio. NRIM fatigue data sheet, No. 54 1986. https://doi.org/10.11503/nims.1118.
Furuya Y, Nishikawa H, Hirukawa H, Takeuchi E, Nagashima N. Data sheets on fatigue properties for butt welded joints of SUS304-HP (18Cr-8Ni) hot rolled stainless steel plate - effect of stress ratio. NRIM fatigue data sheet, No. 53 1986. https://doi.org/10.11503/nims.1117.
Tanaka, 1981, Fatigue growth threshold of small cracks, Int J Fract, 17, 519, 10.1007/BF00033345
Plekhov, 2011, A dimensional analysis interpretation to grain size and loading frequency dependencies of the Paris and Wöhler curves, Int J Fatigue, 33, 477, 10.1016/j.ijfatigue.2010.10.001
Alves, 2015, Fatigue life prediction based on crack growth analysis using an equivalent initial flaw size model: application to a notched geometry, Procedia Engng, 114, 730, 10.1016/j.proeng.2015.08.018
Kulkarni, 2006, A probabilistic method to predict fatigue crack initiation, Int J Fract, 137, 9, 10.1007/s10704-005-3074-0
Palmgren, 1924, Die Lebensdauer von Kugellagern: Life Length of Roller Bearings or Durability of Ball Bearings, Zeitschrift des Vereines Deutscher Ingenieure (ZVDI), 14, 339
Oller, 2005, A continuum mechanics model for mechanical fatigue analysis, Comput Mater Sci, 32, 175, 10.1016/j.commatsci.2004.08.001
Pereira HFSG, Jesus AMP de, Fernandes AA, Ribeiro AS. Analysis of fatigue damage under block loading in a low carbon steel. Strain 2008;44(6):429–39. https://doi.org/10.1111/j.1475-1305.2007.00389.x.
Xi, 2008, Strengthening of transmission gear under low-amplitude loads, Mater Sci Engng A, 488, 55, 10.1016/j.msea.2007.10.045
Xi, 2009, Changes in mechanical properties of vehicle components after strengthening under low-amplitude loads below the fatigue limit, Fatigue Fract Engng Mater Struct, 32, 847, 10.1111/j.1460-2695.2009.01391.x
Xi, 2009, Strengthening and damaging under low-amplitude loads below the fatigue limit, Int J Fatigue, 31, 341, 10.1016/j.ijfatigue.2008.08.004
Cheng, 1998, A fatigue damage accumulation model based on continuum damage mechanics and ductility exhaustion, Int J Fatigue, 20, 495, 10.1016/S0142-1123(98)00018-8
Muralidharan, 1988, A modified universal slopes equation for estimation of fatigue characteristics of metals, J Engng Mater Technol, 110, 55, 10.1115/1.3226010
Xue Q, Du X. An improved fatigue life prediction model based on loading sequence. RS 2022;1(1):90–7. https://doi.org/10.1108/RS-04-2022-0015.
Gao, 2015, An improved Corten-Dolan’s model based on damage and stress state effects, J Mech Sci Technol, 29, 3215, 10.1007/s12206-015-0721-x
Furuya Y, Nishikawa H, Hirukawa H, Takeuchi E, Nagashima N. Data sheets on fatigue properties for butt welded joints of SB42 carbon steel plate for boilers and other pressure vessels - effect of stress ratio. NRIM fatigue data sheet, No. 34. 1983. https://doi.org/10.11503/nims.1098.
Furuya, 1984, Data sheets on fatigue crack propagation properties for butt welded joints of SB42 carbon steel plate for boilers and other pressure vessels - effect of stress ratio, NRIM fatigue data sheet, No. 41
Furuya, 1987, Data sheets on fatigue properties for weld and HAZ materials of SB42 (C-Si, 420 N/mm2 TS) carbon steel plate for boilers and other pressure vessels, NRIM fatigue data sheet, No. 57
Furuya, 1991, Data sheets on low-cycle fatigue properties at elevated temperatures for weld and base metals of SB450 carbon steel plate for boilers and other pressure vessels, NRIM fatigue data sheet, No. 67
Furuya, 1994, Data sheets on elevated-temperature fatigue properties for butt welded joints of SB450 carbon steel plate for boilers and other pressure vessels, NRIM fatigue data sheet, No. 79
Furuya, 1994, Data sheets on elevated temperature fatigue crack propagation properties for butt welded joints of SB450 carbon steel plate for boilers and other pressure vessels, NRIM fatigue data sheet, No. 82
Furuya, 1992, Data sheets on elevated-temperature, high-cycle fatigue properties of SCMV2-2 NT (1Cr-0.5Mo) low alloy steel plate for boilers and other pressure vessels, NRIM fatigue data sheet, No. 72
Furuya, 1993, Data sheets on elevated-temperature fatigue properties for butt welded joints of SCMV2-2 NT (1Cr-0.5Mo) low alloy steel plate for boilers and other pressure vessels, NRIM fatigue data sheet, No. 75
Furuya, 1993, Data sheets on low-cycle fatigue properties at elevated temperatures for weld and base metals of SCMV2-2 NT (1Cr-0.5Mo) low alloy steel plate for boilers and other pressure vessels, NRIM fatigue data sheet, No. 77
Furuya, 1994, Data sheets on elevated temperature fatigue crack propagation properties for butt welded joints of SCMV2-2 NT (1Cr-0.5Mo) low alloy steel plate for boilers and other pressure vessels, NRIM fatigue data sheet, No. 81
Furuya, 1978, Data sheets on fatigue properties for butt-welded joints of SM50B high tensile structural steel plates, NRIM fatigue data sheet, No. 5
Furuya, 1979, Data sheets on fatigue properties of non-load-carrying cruciform welded joints of SM50B rolled steel for welded structure - effect of specimen size, NRIM fatigue data sheet, No. 13
Furuya, 1980, Data sheets on fatigue properties for load-carrying cruciform welded joints of SM50B rolled steel for welded structure - effect of specimen size, NRIM fatigue data sheet, No. 18
Furuya, 1980, Data sheets on fatigue properties for non-load-carrying cruciform welded joints of SM50B rolled steel for welded structure - effect of welding procedure, NRIM fatigue data sheet, No. 20
Furuya, 1980, Data sheets on fatigue crack propagation properties for butt welded joints of SM50B rolled steel for welded structure - effect of welding procedure, NRIM fatigue data sheet, No. 21
Furuya, 1981, Data sheets on fatigue properties for butt welded joints of SM50B rolled steel for welded structure - effect of welding procedure, NRIM fatigue data sheet, No. 27
Furuya, 1979, Data sheets on fatigue properties of butt-welded joints of high strength steel (class 800 N/mm2) for welded structure - effect of specimen size, NRIM fatigue data sheet, No. 12
Furuya, 1980, Data sheets on fatigue properties for butt welded joints of high strength steel (class 800 N/mm2) for welded structure - effect of welding procedure, NRIM fatigue data sheet, No. 19
Furuya, 1982, Data sheets on fatigue crack propagation properties for butt welded joints of high strength steel (class 800 N/mm2) for welded structure - effect of welding procedure, NRIM fatigue data sheet, No. 31
Furuya, 1984, Data sheets on fatigue properties for butt welded joints of SPV50 steel plate for pressure vessels - effect of stress ratio, NRIM fatigue data sheet, No. 40
Furuya, 1985, Data sheets on fatigue crack propagation properties for butt welded joints of SPV50 (Si-Mn, 500 N/mm2 YS) steel plate for pressure vessels - effect of stress ratio, NRIM fatigue data sheet, No. 46
Furuya, 1985, Data sheets on fatigue properties for weld and HAZ materials of SPV50 (Si-Mn, 500 N/mm2 YS) steel plate for pressure vessels, NRIM fatigue data sheet, No. 47
Furuya, 1984, Data sheets on elevated-temperature, high-cycle fatigue properties of SUS304-HP (18Cr-8Ni) hot rolled stainless steel plate, NRIM fatigue data sheet, No. 42
Furuya, 1985, Data sheets on elevated-temperature, time dependent low-cycle fatigue properties of SUS304-HP (18Cr-8Ni) hot rolled stainless steel plate, NRIM fatigue data sheet, No. 49
Furuya, 1990, Data sheets on fatigue properties for weld and base metals of SUS304-HP (18Cr-8Ni) hot rolled stainless steel plate, NRIM fatigue data sheet, No. 65