欢迎登录材料期刊网

材料期刊网

高级检索

采用超声疲劳试验机研究SUJ2轴承钢的超长寿命疲劳。结果表明:对于复合氧化物和 TiCN裂纹源,裂纹从夹杂物与基体界面处萌生;铁、铬合金碳化物裂纹源则为夹杂物本身开裂。颗粒状亮面(GBF)相对尺寸正比于裂纹源处夹杂物边缘的应力强度因子范围1/ΔK2inc ,对于本实验的SUJ2材料,当ΔKinc >8MPa · m1/2时GBF不再形成。通过数据拟合得到了GBF内裂纹扩展规律: areaGBF/ areainc = m1+ m2 Nf m0,证实了Paris公式可以用来描述GBF内的裂纹扩展。

Ultra‐long life fatigue behavior of SUJ2 bearing steel was studied by ultrasonic fatigue tes‐ting machine .T he results show that ,for the crack origin of composite oxide and TiCN ,crack initiates from the interface between inclusion and matrix ,and for the iron‐chromium carbide crack origin ,the inclusion itself cracks .The relative GBF(granular bright facet) size is proportional to 1/ΔK2inc .GBF is no longer formed when ΔKinc>8MPa · m1/2 for SUJ2 bearing steel .The crack propagation rule in GBF is obtained by data fitting ,it is verified that Paris equation w hich can describe the crack grow th in GBF is verified .

参考文献

[1] 洪友士;赵爱国;钱桂安.合金材料超高周疲劳行为的基本特征和影响因素[J].金属学报,2009(7):769-780.
[2] 王清远;刘永杰.结构金属材料超高周疲劳破坏行为[J].固体力学学报,2010(5):496-503.
[3] 鲁连涛;张卫华.金属材料超高周疲劳研究综述[J].机械强度,2005(3):388-394.
[4] 薛红前;陶华.超声疲劳试验方法在铸铝疲劳试验中的应用[J].机械强度,2004(2):203-206.
[5] 胡燕慧;张峥;钟群鹏;韩邦成.金属材料超高周疲劳研究进展[J].机械强度,2009(6):979-985.
[6] Y. MURAKAMI;N.N. YOKOYAMA;J. NAGATA.Mechanism of fatigue failure in ultralong life regime[J].Fatigue & Fracture of Engineering Materials and Structures,20028/9(8/9):735-746.
[7] P. LUKAS;L. KUNZ.Specific features of high-cycle and ultra-high-cycle fatigue[J].Fatigue & Fracture of Engineering Materials and Structures,20028/9(8/9):747-753.
[8] Y. Murakami;T. Nomoto;T. Ueda.Factors influencing the mechanism of superlong fatigue failure in steels[J].Fatigue & Fracture of Engineering Materials and Structures,19997(7):581-590.
[9] 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,20028/9(8/9):765-773.
[10] 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,20028/9(8/9):823-830.
[11] 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,20028/9(8/9):775-784.
[12] Chapetti MD.;Tagawa T.;Miyata T..Ultra-long cycle fatigue of high-strength carbon steels part I: review and analysis of the mechanism of failure[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,20031/2(1/2):227-235.
[13] M. Sander;T. Muller;J. Lebahn.Influence of mean stress and variable amplitude loading on the fatigue behaviour of a high-strength steel in VHCF regime[J].International Journal of Fatigue,2014:10-20.
[14] 李永德;徐娜;郭卫民;吴晓峰;时军波;刘树伟.高压气相热充氢对SUJ2轴承钢超高周疲劳行为的影响[J].材料工程,2014(2):87-93,98.
[15] 李永德;郭卫民;徐娜;吴晓峰;时军波;马虹.SUJ2轴承钢超声疲劳GBF内裂纹扩展规律[J].材料热处理学报,2014(1):49-54.
[16] 张继明;张建锋;杨振国;李守新;惠卫军;翁宇庆.高强钢中最大夹杂物的尺寸估计与疲劳强度预测[J].金属学报,2004(8):846-850.
[17] 李永德 .高强钢的超高周疲劳性能研究及氢对疲劳性能的影响[D].中国科学院研究生院,2009.
[18] 柳洋波 .夹杂物和贝氏体对高强钢的超高周疲劳性能的影响[D].中国科学院研究生院,2011.
[19] 聂义宏;惠卫军;傅万堂;翁宇庆;董瀚.中碳高强度弹簧钢NHS1超高周疲劳破坏行为[J].金属学报,2007(10):1031-1036.
[20] Youshi Hong;Zhengqiang Lei;Chengqi Sun;Aiguo Zhao.Propensities of crack interior initiation and early growth for very-high-cycle fatigue of high strength steels[J].International Journal of Fatigue,2014:144-151.
[21] Z. G. Yang;S. X. Li;Y. B. Liu;Y. D. Li;G. Y. Li;W. J. Hui;Y. Q. Weng.Estimation of the size of GBF area on fracture surface for high strength steels in very high cycle fatigue regime[J].International Journal of Fatigue,20086(6):1016-1023.
[22] ZHOU Chao;ZHANG Yong-jian;HUI Wei-jun;WANG Lei.Influence of Hydrogen on GBF in Very High Cycle Fatigue of High Strength Steel[J].钢铁研究学报(英文版),2013(12):92-97.
[23] 李伟;李强;鲁连涛;谢基龙.GCrl5钢超高周的疲劳行为[J].北京交通大学学报(自然科学版),2008(4):24-27,32.
[24] 鲁连涛;李伟;张继旺;盐泽和章;张卫华.GCr15钢旋转弯曲超长寿命疲劳性能分析[J].金属学报,2009(1):73-78.
[25] 鲁连涛;盐泽和章;姜燕.深层滚压加工对高碳铬轴承钢超长寿命疲劳行为的影响[J].金属学报,2006(5):515-520.
[26] Y. Akiniwa;N. Miyamoto;H. Tsuru.Notch effect on fatigue strength reduction of bearing steel in the very high cycle regime[J].International Journal of Fatigue,200611(11):1555-1565.
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%