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Accelerated Determination of Fatigue Limit and S-N Curve by Means of Thermographic Method for X5CrNi18-10 Steel

   | 07 mar 2016

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1. Amiri M., Khonsari M.M. (2010a), Life prediction of metals undergoing fatigue load based on temperature evolution, Materials Science and Engineering A, Vol. 527, No. 6, 1555–1559.10.1016/j.msea.2009.10.025Search in Google Scholar

2. Amiri M., Khonsari M.M. (2010b), Rapid determination of fatigue failure based on temperature evolution: Fully reversed bending load, International Journal of Fatigue, Vol. 32, No. 2, 382–389.10.1016/j.ijfatigue.2009.07.015Search in Google Scholar

3. Cura F., Curti G., Sesana R. (2005), A new iteration method for the thermographic determination of fatigue limit in steels, International Journal of Fatigue, Vol. 27, No. 4, 453–459.Search in Google Scholar

4. Doudard C., Poncelet M., Calloch S., Boue C., Hild F., Galtier A. (2007), Determination of an HCF criterion by thermal measurements under biaxial cyclic loading, International Journal of Fatigue, Vol. 29, No. 4, 748–757.Search in Google Scholar

5. Fargione G., Geraci A., La Rosa G., Risitano A. (2002), Rapid determination of the fatigue curve by the thermographic method, International Journal of Fatigue, Vol. 24, No. 1, 11–19.Search in Google Scholar

6. Galietti U., Palumbo D., De Finis R., Ancona F. (2014), Fatigue limit evaluation of martensitic steels with thermal methods. The 12th International Conference of Quantitative Infrared Thermography, QIRT, Bordeaux.10.21611/qirt.2014.105Search in Google Scholar

7. Golański G., Mroziński S. (2012), Fatigue life of GX12CrMoVNbN9 -1 cast steel in the energy-based approach, Advanced Materials Research, Vols. 396-398, 446-449.Search in Google Scholar

8. Kaleta J. (1998), The experimental foundations of energetical fatigue hypothesis folmulation, Wrocław University of Technology, Wrocław (in Polish).Search in Google Scholar

9. Kordatos E.Z., Dassios K.G., Aggelis D.G., Matikas T.E. (2013), Rapid evaluation of the fatigue limit in composites using infrared lock-in thermography and acoustic emission, Mechanics Research Communications, Vol. 54, 14–20.Search in Google Scholar

10. La Rosa G., Risitano A. (2000), Thermographic methodology for rapid determination of the fatigue limit of materials and mechanical components, International Journal of Fatigue, Vol. 22, No. 1, 65–73.Search in Google Scholar

11. Li X.D., Zhang H., Wu D.L., Liu X., Liu J.Y. (2012), Adopting lock-in infrared thermography technique for rapid determination of fatigue limit of aluminum alloy riveted component and affection to determined result caused by initial stress, International Journal of Fatigue, Vol. 36, No. 1,18–23.Search in Google Scholar

12. Lipski A. (2014a), Impact of the Strain Rate During Tension Test on 46Cr1 Steel Temperature Change, Key Engineering Materials, Vol. 598, 133-140.10.4028/www.scientific.net/KEM.598.133Search in Google Scholar

13. Lipski A. (2014b), Determination of Fatigue Limit by Locati Method using S-N Curve Determined by Means of Thermographic Method, Solid State Phenomena, Vol. 223, 362-373.10.4028/www.scientific.net/SSP.223.362Search in Google Scholar

14. Lipski A., Boroński D. (2012), Use of Thermography for the Analysis of Strength Properties of Mini-Specimens, Materials Science Forum, Vol. 726, 156-161.Search in Google Scholar

15. Lipski A., Skibicki D. (2012), Variations Of The Specimen Temperature Depending On The Pattern Of The Multiaxial Load - Preliminary Research, Materials Science Forum, Vol. 726, 162-168.Search in Google Scholar

16. Litwinko R., Oliferuk W. (2009), Yield Point Determination Based On Thermomechanical Behaviour Of Polycrystalline Material Under Uniaxial Loading, Acta Mechanica et Automatica, Vol. 3, No. 4, 49-51.Search in Google Scholar

17. Luong M.P. (1995), Infrared thermographic scanning of fatigue in metals, Nuclear Engineering and Design, Vol. 158, No. 2-3, 363-376.Search in Google Scholar

18. Luong M.P. (1998), Fatigue limit evaluation of metals using an infrared thermographic technique, Mechanics of Materials, Vol. 28, No. 1, 155–163.Search in Google Scholar

19. Poncelet M., Doudard C., Calloch S., Weber B., Hild F. (2010), Probabilistic multiscale models and measurements of self-heating under multiaxial high cycle fatigue, Journal of Mechanics and Physics of Solids, Vol. 58, No. 4, 578–593.Search in Google Scholar

20. Skibicki D., Sempruch J., Lipski A., Pejkowski Ł. (2013), Fatigue Life, Fractographic and Thermographic Analysis of Steel X2CrNiMo17-12-2 for Proportional and Non-Proportional Loads, The Tenth International Conference on Multiaxial Fatigue & Fracture, Kyoto (Japan).Search in Google Scholar