Increasing Behavior of Strength for Fatigue Fracture of Austenitic Stainless Steel during Fatigue Tests at Elevated Temperature

被引:0
|
作者
Kanazawa, Kenji [1 ]
Sugimoto, Maya [1 ]
机构
[1] Chuo Univ, Bunkyo Ku, Tokyo 1128551, Japan
来源
关键词
Stainless steel; Fatigue strength; Notch effect; Coaxing effect; Dynamic strain aging;
D O I
暂无
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
In order to clarify notch effect on fatigue strength of an austenitic stainless steel, rotating bending fatigue tests were carried out for smooth and notched specimens at 573K. Clear endurance limits were recognized and the fatigue strength did not decrease continuously with increasing stress concentration factor K(t), notwithstanding any non-propagating crack was not recognized at notch roots for specimens endured at 10(8) stress cycles. According to hardness tests, an area of notch root hardened during fatigue test by dynamic strain aging. The hardening behavior occurred remarkably with increasing K(t). Effects of K(t) and the hardening behavior on fatigue strength canceled each other, and then fatigue strength became insensitive to K(t). Fatigue strength sigma(SIT) obtained by stress increment fatigue tests became higher than the ordinary fatigue strength for each specimen of K(t) that is, the coaxing effect was recognized clearly. This result indicated that the strength for fatigue fracture increased gradually during fatigue test. sigma(SIT) had a peak value at K(t) of 2.0 and it decreased with increasing K(t) sensitively. The increasing behavior of strength for fatigue fracture depended on K(t) and fatigue fracture was controlled by circumstances of hardened material and stress amplitude considering K(t).
引用
收藏
页码:589 / 592
页数:4
相关论文
共 50 条
  • [21] Small fatigue cracks in an austenitic stainless steel
    Lindstedt, U.
    Karlsson, B.
    Nystrom, M.
    Fatigue and Fracture of Engineering Materials and Structures, 1998, 21 (01): : 85 - 98
  • [22] ULTRASONIC FATIGUE OF AN AUSTENITIC STAINLESS-STEEL
    HORSEWELL, A
    HANSSON, I
    FATIGUE OF ENGINEERING MATERIALS AND STRUCTURES, 1979, 2 (01): : 97 - 106
  • [23] Fatigue and corrosion fatigue of high-nitrogen austenitic stainless steel
    Diener, M
    Speidel, MO
    MATERIALS AND MANUFACTURING PROCESSES, 2004, 19 (01) : 111 - 115
  • [24] Fatigue strength of additively manufactured 316L austenitic stainless steel
    Kumar, Punit
    Jayaraj, R.
    Suryawanshi, J.
    Satwik, U. R.
    McKinnell, J.
    Ramamurty, U.
    ACTA MATERIALIA, 2020, 199 (199) : 225 - 239
  • [25] Bending fatigue strength of austenitic stainless steel SUS316 in mercury
    Naoe T.
    Yamaguchi Y.
    Futakawa M.
    Wakui T.
    Zairyo/Journal of the Society of Materials Science, Japan, 2010, 59 (04) : 309 - 314
  • [26] Study on environmental effect on fatigue and creep-fatigue strength of 316FR stainless steel in sodium at elevated temperature
    Date, Shingo
    Ishikawa, Hiroshi
    Otani, Tornorni
    Takahashi, Yukio
    Nakazawa, Takanori
    NUCLEAR ENGINEERING AND DESIGN, 2008, 238 (02) : 353 - 367
  • [27] Fatigue fracture of stainless steel plate
    Dhanrajani, PJ
    BRITISH JOURNAL OF ORAL & MAXILLOFACIAL SURGERY, 2000, 38 (04): : 401 - 402
  • [28] Metastability and fatigue behavior of austenitic stainless steels
    Smaga, Marek
    Boemke, Annika
    Daniel, Tobias
    Klein, Matthias W.
    12TH INTERNATIONAL FATIGUE CONGRESS (FATIGUE 2018), 2018, 165
  • [29] Fatigue strength of ion-nitrided steel at elevated temperature
    Onuki, A
    Numazaki, Y
    ECF 12: FRACTURE FROM DEFECTS, VOLS. I-III, 1998, : 381 - 386
  • [30] Fatigue crack growth resistance of the austenitic stainless steel Alloy 709 at elevated temperatures
    Yu, Suyang
    Yan, Jin
    Li, Hangyue
    Ding, Rengen
    Lall, Amrita
    Rabiei, Afsaneh
    Bowen, Paul
    JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY-JMR&T, 2020, 9 (06): : 12955 - 12969