Characterization of Fatigue Crack Growth in Austenitic Stainless-Steel Alloy 709 at Elevated Temperatures using a Strip-Yield Model

被引:0
|
作者
Potirniche, Gabriel P. [1 ]
Bhandari, Srijan [1 ]
Stephens, Robert R. [1 ]
Shaber, Nicholas [1 ]
机构
[1] Univ Idaho, Mech Engn Dept, 875 Perimeter Dr, 0902, Moscow, ID 83844 USA
关键词
fatigue crack growth; Alloy; 709; strip-yield modeling; compact specimen; DAMAGE ACCUMULATION; CLOSURE;
D O I
10.1520/MPC20230098
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This study presents a comparison between computational simulations and experimental tests of fatigue crack growth (FCG) in austenitic stainless-steel Fe-25Ni-20Cr (Alloy 709) at 550 degrees C, 600 degrees C, and 700 degrees C. FCG tests were conducted in compact, C(T), specimens at load ratios of R = 0.1, R = 0.5, and R = 0.7. Crack growth rates were measured using several monitoring techniques. In parallel with the experimental tests, a strip-yield model for creep-fatigue crack growth (SYM-CFCG) was employed to simulate crack growth under fatigue loading. The SYM-CFCG software predicts the development of plasticity-induced crack closure (PICC) near the tip of a growing crack. Computation of the PICC allows for predictions of crack growth rate at different R ratios. The evolution of crack-tip opening loads is presented for the entire crack growth history. Predictions of crack length evolution as a function of applied load cycles are compared with the experimental results. In addition, predictions of crack growth rates per cycle versus applied stress intensity factor range are also compared with the experimental measurements. In both cases, excellent agreements between experimental data and SYM-CFCG predictions are obtained. The crack growth data presented can represent a guiding criterion in establishing the fatigue service life of engineering components made of Alloy 709.
引用
收藏
页码:1 / 13
页数:14
相关论文
共 50 条
  • [31] INFLUENCE OF CL- CONCENTRATION ON CORROSION FATIGUE CRACK-GROWTH OF AN AUSTENITIC STAINLESS-STEEL
    ENDO, K
    KOMAI, K
    MURAYAMA, S
    BULLETIN OF THE JSME-JAPAN SOCIETY OF MECHANICAL ENGINEERS, 1983, 26 (218): : 1281 - 1287
  • [32] FATIGUE CRACK GROWTH-RATE OF UNSTABLE AUSTENITIC STAINLESS-STEEL TESTED IN ARGON AND HYDROGEN
    SCHUSTER, GBA
    ALTSTETTER, CJ
    JOURNAL OF METALS, 1980, 32 (08): : 75 - 75
  • [33] Fatigue crack growth behavior of a low alloy steel at room and elevated temperatures
    Putatunda, SK
    Schaefer, J
    ANALYSIS OF IN-SERVICE FAILURES AND ADVANCES IN MICROSTRUCTURAL CHARACTERIZATION, 1999, 26 : 283 - 292
  • [34] Refined Model for the Stress-Strain Curve of Austenitic Stainless-Steel Materials at Elevated Temperatures
    Fan, Shenggang
    Ding, Runmin
    Zheng, Jiacheng
    Xie, Fuzhe
    Wu, Qixun
    JOURNAL OF MATERIALS IN CIVIL ENGINEERING, 2020, 32 (04)
  • [35] An assessment of geometry effects on plane stress fatigue crack closure using a modified strip-yield model
    Daniewicz, SR
    Bloom, JM
    INTERNATIONAL JOURNAL OF FATIGUE, 1996, 18 (07) : 483 - 490
  • [36] Fatigue and Creep Crack Propagation in an Austenitic Steel at Elevated Temperatures.
    Lukas, Petr
    Bartos, Josef
    1600, (21):
  • [37] Crack growth predictions using a strip-yield model for variable-amplitude and spectrum loading
    Ziegler, B.
    Yamada, Y.
    Newman, J. C.
    MATERIALWISSENSCHAFT UND WERKSTOFFTECHNIK, 2008, 39 (10) : 711 - 718
  • [38] Modelling of fatigue thresholds for small cracks in a mild steel by "Strip-Yield" model
    Beretta, S.
    Carboni, M.
    Madia, M.
    ENGINEERING FRACTURE MECHANICS, 2009, 76 (10) : 1548 - 1561
  • [39] TENSILE-TORSION RATCHETTING OF AN AUSTENITIC STAINLESS-STEEL AT ELEVATED-TEMPERATURES
    DELOBELLE, P
    LEXCELLENT, C
    ARCHIVES OF MECHANICS, 1988, 40 (5-6): : 557 - 580
  • [40] Estimation of crack growth behavior by a residual stress field using the modified strip-yield model
    Hou, CY
    Charng, JJ
    FATIGUE AND FRACTURE MECHANICS: TWENTY-NINTH VOLUME, 1999, 1332 : 516 - 534