A new approach to predict creep rupture of Grade 92 steel under multiaxial stress states

被引:14
作者
Alang, N. A. [1 ]
Nikbin, K. [2 ]
机构
[1] Univ Malaysia Pahang, Fac Mech Engn, Pahang 26600, Malaysia
[2] Imperial Coll London, Dept Mech Engn, Exhibit Rd, London SW7 2AZ, England
关键词
Creep damage; Constraints; Ductility; Multiaxial; Notch; Grade; 92; steel; Triaxiality; V-NOTCHED BAR; P92; STEEL; LIFE PREDICTION; BEHAVIOR; DAMAGE; CONSTRAINT; DUCTILITY; CRACKING; STRAINS;
D O I
10.1016/j.ijmecsci.2019.105096
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The extension of the available stress-based predictive models from uniaxial to multiaxial feature is uncertain due to the difficulty to justify the model transferability to the cases which involves complex deformation and fracture mechanisms. This paper presents a new approach to predict the creep rupture life of Grade 92 steel under multiaxial stress state as the case of notched bar samples using Kachanov's Continuum Damage Mechanics (CDM) model. Combining the CDM model with the concept of Hayhurst's representative stress and accounting two extreme conditions; fully dislocation-controlled and diffusion-controlled creep mechanisms provide the bounds for short- and long-term rupture data of notched bar up to 10,000 h. Although the CDM is scientifically relevant and fundamental in their approach, it is generally complex and contains too many variables. Therefore, it needs proper measurements or numerically intensive to make the model acceptable for industrial applications. Alternatively, the recent developed strain-based exponential-type predictive model which links globally uniform failure strain with a multiaxial constraint factor was employed with the intention to reduce the large number of CDM parameters. The approach is relatively simple yet reliable to be used for high temperature creep rupture assessment.
引用
收藏
页数:14
相关论文
共 42 条
[31]  
Parker J, 2004, P 4 INT C ADV MAT TE
[32]  
Perrin I, 2015, TECHNICAL REPORT
[33]  
Prager M., 1994, AM SOC MECH ENG PRES, V288, P401
[34]  
Riedel H., 1987, FRACTURE HIGH TEMPER
[35]   Creep Deformation and Rupture Behaviour of P92 Steel at 923 K [J].
Samuel, E. Isaac ;
Choudhary, B. K. ;
Palaparti, D. P. Rao ;
Mathew, M. D. .
6TH INTERNATIONAL CONFERENCE ON CREEP, FATIGUE AND CREEP-FATIGUE INTERACTION, 2013, 55 :64-69
[36]  
Shigeyama H, 2016, P ASME PRESS VESS PI
[37]  
Shigeyama H, 2015, ASME PRESSURE VESSELS AND PIPING CONFERENCE - 2015, VOL 6A
[38]  
Wasmer K., 2003, PREDICTION CREEP CRA
[39]   A Code of Practice for conducting notched bar creep tests and for interpreting the data [J].
Webster, GA ;
Holdsworth, SR ;
Loveday, MS ;
Nikbin, K ;
Perrin, IJ ;
Purper, H ;
Skelton, RP ;
Spindler, MW .
FATIGUE & FRACTURE OF ENGINEERING MATERIALS & STRUCTURES, 2004, 27 (04) :319-342
[40]  
Wilshire B, 2008, WOODHEAD PUBL MATER, P421, DOI 10.1533/9781845694012.2.421