欢迎登录材料期刊网

材料期刊网

高级检索

The fatigue fracture behavior of four ultrahigh strength steels with different melting processes and therefore different inclusion sizes were studied by using a rotating bar two-point bending fatigue machine in the high-cycle regime up to 107 cycles of loading. The fracture surfaces were observed by field emission scanning electron microscopy (FESEM). It was found that the size of inclusion has significant effect on the fatigue behavior.For AISI 4340 steel in which the inclusion size is smaller than 5.5 μm, all the fatigue cracks except one did not initiated from inclusion but from specimen surface and conventional S-N curve exists. For 65Si2MnWE and Aermet 100 steels in which the average inclusion sizes are 12.2 and 14.9 μm, respectively, fatigue cracks initiated from inclusions at lower stress amplitudes and stepwise S-N curves were observed. The S-N curvedisplays a continuous decline and fatigue failures originated from large oxide inclusion for 60Si2CrVA steel in which the average inclusion size is 44.4 μm. In the case of internal inclusion-induced fractures at cycles beyond about 1×106 for 65Si2MnWE and 60Si2CrVA steels, inclusion was always found inside the fish-eye and a granular bright facet (GBF) was observed in the vicinity around the inclusion. The GBF sizes increasewith increasing the number of cycles to failure Nf in the long-life regime. The values of stress intensity factor range at crack initiation site for the GBF are almost constant with Nf, and are almost equal to that for the surface inclusion and the internal inclusion at cycles lower than about 1×106. Neither fish-eye nor GBF was observed for Aermet 100 steel in the present study.

参考文献

[1] Y.Murakami;S.Kodama;S.Konuma .[J].International Journal of Fatigue,1989,11(05):291.
[2] Y.Murakami;T.Toriyama;Y.Koyasu;S.Nishida .[J].Tetsu To Hagane-Journal of the Iron & Steel Institute of Japan,1993,79(06):678.
[3] Y.Bergengren;M.Larsson;A.Melander .[J].Fatigue & Fracture of Engineering Material & Structure,1995,18(10):1071.
[4] T.Abe;K.Kanazawa .[J].Journal of the Society of Materials Science Japan,1996,45(01):9.
[5] C.S.Lee;K.A.Lee;D.M.Li;S.J.Yoo W.J.Nam .[J].Materials Science and Engineering,1998,A241:30.
[6] D. Y. Wei;J. L. Gu;H. S. Fang .Fatigue behavior of 1500 MPa bainite/martensite duplex-phase high strength steel[J].International Journal of Fatigue,2004(4):437-442.
[7] Z. G. Yang;G. Yao;G. Y. Li .The effect of inclusions on the fatigue behavior of fine-grained high strength 42CrMoVNb[J].International Journal of Fatigue,2004(9):959-966.
[8] J. M. Zhang;J. F. Zhang;Z. G. Yang .Estimation of maximum inclusion size and fatigue strength in high-strength ADF1 steel[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2005(1/2):126-131.
[9] J. S. Park;S. J. Kim;K. H. Kim .A microstructural model for predicting high cycle fatigue life of steels[J].International Journal of Fatigue,2005(9):1115-1123.
[10] Liuding WANG,Laizhu JIANG,Ming ZHU,Xiao LIU,Wangmin ZHOU.Improvement of Toughness of Ultrahigh Strength Steel Aermet 100[J].材料科学技术学报(英文版),2005(05):710-714.
[11] Liuding WANG,Lin Liu,Chengxi AO,Xiaojun LIU,Changle CHEN,Mokuang KANG.Investigation of Transformation for Ultrahigh Strength Steel Aermet 100[J].材料科学技术学报(英文版),2000(05):491-494.
[12] Liuding Wang;Changle Chen;Mokuang Kang .Spinodal decomposition of ultrahigh strength steel 23Co14Ni12Cr3[J].Journal of Materials Science & Technology,1999(6):583-584.
[13] Y.Murakami;M.Takada;T.Toriyama .[J].International Journal of Fatigue,1998,16(09):661.
[14] Q. Y. Wang;J. Y. Berard;A. Dubarre;G. Baudry;S. Rathery;C. Bathias .Gigacycle fatigue of ferrous alloys[J].Fatigue & Fracture of Engineering Materials and Structures,1999(8):667-672.
[15] Y. OCHI;T. MATSUMURA;K. MASAKI .High-cycle rotating bending fatigue property in very long-life regime of high-strength steels[J].Fatigue & Fracture of Engineering Materials and Structures,2002(8/9):823-830.
[16] T. ABE;Y. FURUYA;S. MATSUOKA .Gigacycle fatigue properties of 1800 MPa class spring steels[J].Fatigue & Fracture of Engineering Materials and Structures,2004(2):159-167.
[17] Z.G. Yang;S.X. Li;J.M. Zhang .The fatigue behaviors of zero-inclusion and commercial 42CrMo steels in the super-long fatigue life regime[J].Acta materialia,2004(18):5235-5241.
[18] J.M.Zhang;Z.G.Yang;S.X.Li;G.Y.Li W.J.Hui Y.Q.Weng .[J].ACTA METALLURGICA SINICA,2006,42:259.
[19] J.M. Zhang;S.X. Li;Z.G. Yang .Influence of inclusion size on fatigue behavior of high strength steels in the gigacycle fatigue regime[J].International Journal of Fatigue,2007(4):765-771.
[20] Y. Murakami;T. Nomoto;T. Ueda .Factors influencing the mechanism of superlong fatigue failure in steels[J].Fatigue & Fracture of Engineering Materials and Structures,1999(7):581-590.
[21] K.Shiozawa;Y.Morii;S.Nishino;L.T.Lu .[J].Journal of the Society of Materials Science Japan,2003,52(11):1311.
[22] T. SAKAI;Y. SATO;N. OGUMA .Characteristic S-N properties of high-carbon-chromium-bearing steel under axial loading in long-life fatigue[J].Fatigue & Fracture of Engineering Materials and Structures,2002(8/9):765-773.
[23] K. TANAKA;Y. AKINIWA .Fatigue crack propagation behaviour derived from S-N data in very high cycle regime[J].Fatigue & Fracture of Engineering Materials and Structures,2002(8/9):775-784.
[24] L.T.LU;K.Shinozawa;Y.Morii;S.Nishino .[J].Acta Metallurgica Sinica,2005,41(10):1066.
[25] Y.Murakami;S.Kodama;S.Konuma .[J].Transactions of the Japan Society of Mechanical Engineers,1988,54A:688.
上一张 下一张
上一张 下一张
计量
  • 下载量()
  • 访问量()
文章评分
  • 您的评分:
  • 1
    0%
  • 2
    0%
  • 3
    0%
  • 4
    0%
  • 5
    0%