Browse > Article
http://dx.doi.org/10.3795/KSME-A.2002.26.3.521

Development of a New LCF Life Prediction Model of 316L Stainless Steel at Elevated Temperature  

Hong, Seong-Gu (한국과학기술원 기계공학과)
Lee, Soon-Bok (한국과학기술원 기계공학과)
Publication Information
Transactions of the Korean Society of Mechanical Engineers A / v.26, no.3, 2002 , pp. 521-527 More about this Journal
Abstract
In this paper, tensile behavior and low cycle fatigue behavior of 316L stainless steel which is currently favored structural material for several high temperature components such as the liquid metal cooled fast breeder reactor (LMFBR) were investigated. Research was performed at 55$0^{\circ}C$, $600^{\circ}C$ and $650^{\circ}C$ since working temperature of 316L stainless steel in a real field is from 40$0^{\circ}C$ to $650^{\circ}C$. From tensile tests performed by strain controls with $1{\times}10^{-3}/s,\; l{\times}10^{ -4}/s \;and\; 1{\times}10/^{ -5}/ s $ strain rates at each temperature, negative strain rate response (that is, strain hardening decreases as strain rate increases) and negative temperature response were observed. Strain rate effect was relatively small compared with temperature effect. LCF tests with a constant total strain amplitude were performed by strain control with a high temperature extensometer at R.T, 55$0^{\circ}C$, $600^{\circ}C$, $650^{\circ}C$ and total strain amplitudes of 0.3%~0.8% were used and test strain rates were $1{times}10^{-2} /s,\; 1{times}10^{-3} /s\; and\; 1{times}10^{-4} /s$. A new energy based LCF life prediction model which can explain the effects of temperature, strain amplitude and strain rate on fatigue life was proposed and its excellency was verified by comparing with currently used models.
Keywords
Low Cycle Fatigue; Life Prediction; Elevated Temperature; 316L Stainless Steel;
Citations & Related Records
Times Cited By KSCI : 2  (Citation Analysis)
연도 인용수 순위
1 현중섭, 대한기계학회논문집 A 권, 제 22 권 제 12호, pp. 2093-2099,1998
2 L.F.Coffin, Jr., ASME Trans. 76, 931, 1954
3 J.D.Morrow, ASTM STP 378, pp.45, ASTM, Philadelphia, 1964
4 L.F.Coffin, Jr., ASME STP 520, pp.5, ASTM, Philadelphia, 1973
5 Solomon, H.D. and Tolksdorf, E.D., ASME J. Electron, Packaging. 117, 130, 1995   DOI   ScienceOn
6 X.Q.Shi and H.L.J.Pang, Scripta Materialia, Vol. 41, No. 3,pp. 289-296, 1999   DOI   ScienceOn
7 Sandhya, R., Scripta Materialia, Vol.41, No.9, pp. 921 -927,1999   DOI   ScienceOn
8 Sergio Simon, Carl Hanser Verlag, Munchen, Z. Metallkd, 84, 1993 ,10, pp. 708-715
9 Tarun Goswami, Int. J. Fat., 21, 1999, pp. 55-76   DOI   ScienceOn
10 V.S.Srinivasan, Int. J. Fat., 21, 1999, pp. 11-21   DOI   ScienceOn
11 F. A. Kandil, Int. J. Fat., 21, 1999, pp. 1013-1018   DOI   ScienceOn