EXPERIMENTAL AND NUMERICAL FATIGUE ANALYSIS OF BRASS SHAFT SPECIMEN UNDER CYCLIC BENDING MOMENTS

Authors:

Haider Abbas Luaibi,Majid Habeeb Faidh - Allah,

DOI NO:

https://doi.org/10.26782/jmcms.2021.03.00001

Keywords:

Fatigue,Cyclic,Endurance limit,Fatigue life,Brass metal,

Abstract

Fatigue is a form of failure that occurs in structures subjected to dynamic and fluctuating stresses, where failure can occur at a stress level significantly lower than the tensile or yield strength of a static load under these circumstances. The term "fatigue" is used because, after a long period of repetitive stress or stress cycling, this form of failure typically occurs. Fatigue is important because it is the single largest cause of metal failure, estimated to account for about 90% of all metal failures; polymers and ceramics (except glasses) are also prone to this form of failure. This research is studying the failure analysis, fatigue life and endurance limit of brass metal experimental and numerical under cyclic bending moments

Refference:

I. A Karolczuk., Macha E. A review of critical plane orientations in multiaxial fatigue failure criteria of metallic materials. Int J Fract 1995; 134:267–304
II. Aldeeb, T., &Abduelmula, M.,“Fatigue Strength of S275 Mild Steel under Cyclic Loading”, International Journal of Materials and Metallurgical Engineering, 12(10), 564-570, 2018
III. Beden, S. M., Abdullah, S., Ariffin, A. K., Al-Asady, N. A., &Rahman, M. M.,“Fatigue Life Assessment of Different Steel-Based Shell Materials under Variable Amplitude Loading”, European Journal of Scientific Research, 29(1), 157-169, 2009
IV. Bahaideen, F. B., Saleem, A. M., Hussain, K., Ripin, Z. M., Ahmad, Z. A., Samad, Z., &Badarulzaman, N. A. “Fatigue Behaviour of Aluminum Alloy at Elevated Temperature”. Modern applied science, 3(4), 52-61, 2009.‏
V. Glinka, G. And Ince, “A Generalized Fatigue Damage Parameter for Multiaxial Fatigue Life Prediction under Proportional and Non-Proportional Loadings”, International Journal of Fatigue, 62, 34-41, 2014
VI. Hantoosh, Z. K.,“Fatigue Life Prediction at Elevated Temperature under Low – High and High – Low Loading Based on Mechanical Properties Damage Model”, 2012Strength Prediction from Early-Age Data”-Technical Paper, Honor Project, Technical Paper, University of Adelaide.
VII. Hussein Y. Mahmood, Khalid A. Sukkar, Wasan K. Mikhelf. : Corrosion Reduction for Brass Alloy by Using Different Nano-Coated Techniques, J. Mech. Cont.& Math. Sci., Vol.-14, No.-3, May-June (2019) pp 30-46
VIII. Kopas, P., Jakubovičová, L., Vaško, M., &Handrik, M.,“Fatigue Resistance of Reinforcing Steel Bars”, Procedia Engineering, 136, 193-197, 2016
IX. Kim, K. S Chen, X., Jin, D., &.,“Fatigue Life Prediction of Type 304 Stainless Steel under Sequential Biaxial Loading”, International Journal of Fatigue, 28(3), 289-299, 2006
X. Lalanne , C.,“Mechanical Vibration and Shock Analysis, Fatigue Damage”, vol. 59, pp: 6-9, 2007
XI. Shreyas, P., Trishul, M. A., Chethan Kumar, R., &KarthikBabu, K. R.,“Design and Fabrication of Dual Specimen Rotating Bending Fatigue Testing Machine”. International Advanced, 2015
XII. Talemi, R. H., Chhith, S., & De Waele, W.,“On Effect of Pre-Bending Process on Low Cycle Fatigue Behaviour of High Strength Steel Using Lock-in Thermography”. Procedia Structural Integrity, 2, 3135-3142, 2016.‏
XIII. Zamen Karm, Hussein Yousif. : Relation Ship Between Hardness And Roughness For dezincification of Brass, J. Mech. Cont.& Math. Sci., Vol.-14, No.-5, September-October (2019) pp 369-378

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