Abstract
The availability of reliable fatigue data is of continuous and often urgent need. The paper to be presented therefore intends to show how the potential of non-destructive testing methods, digitisation in metrology as well as signal processing can be combined in order to achieve a significant gain in information concerning the fatigue behaviour combined with a reduction of required experimental effort and cost. The new SteBLife approach is an enhanced short-time calculation method developed at the Chair of Non-Destructive Testing and Quality Assurance at Saarland University, which takes into account that a material’s elastic-plastic reaction and hence relationship is non-linear. With respect to a test strategy, the number of fatigue experiments required to determine a material’s complete S-N-curve can be limited to three to five tests only (SteBLifemtc, mtc: multiple tests, trend curve and SteBLifemsb, msb: multiple tests, scatter bands) in cases that mean values and/or complete scatter bands of S-N-curves are required. If a trend S-N-curve is sufficient, the effort can be reduced to one single test only (SteBLifestc, stc: single test, trend curve) with a special step-shaped specimen. This leads to a significant improvement in efficiency when compared to the conventional way an S-N-curve is determined where a minimum of 15 fatigue tests is required. Within the work to be presented the SteBLife method is demonstrated for normalized SAE 1045 (C45E) steel.
Publisher
Trans Tech Publications, Ltd.
Subject
Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science
Reference11 articles.
1. R.W. Landgraf, J. Morrow, T. Endo, Determination of the cyclic stress-strain curve J. Mater. 4 (1) (1969) 176–188.
2. G. Meneghetti, Analysis of the fatigue strength of a stainless steel based on the energy dissipation, Int J Fatigue 29;1 (2007) 81–94.
3. O. Plekhov, T. Palin-Luc, N. Saintier, S. Uvarov, O. Naimark, Fatigue crack initiation and growth in a 35CrMo4 steel investigated by infrared thermography, Fatigue Fract Eng M 28;1-2(2005) 169–178.
4. B. Sun, L. Yang, Y. Guo, A high-cycle fatigue accumulation model based on electrical resistance for structural steels, Fatigue Fract Eng M 30;11 (2007) 1052–1062.
5. I. Altpeter, R. Tschuncky, K. Hällen, G. Dobmann, C. Boller, M. Smaga, A. Sorich, D. Eifler, Early detection of damage in thermo-cyclically loaded austenitic materials, 16th Int. Workshop on Electromagnetic Non-destructive Evaluation (ENDE), 10.-12. March, India, (2011).
Cited by
2 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献