Microstructure-sensitive modeling of high temperature creep in grade-91 alloy

被引:23
作者
Kumar, Mariyappan Arul [1 ]
Capolungo, Laurent [1 ]
机构
[1] Mat Sci & Technol Div, Alamos Natl Lab, Los Alamos, NM 87545 USA
关键词
Mechanistic model; Creep; Microstructure; Deformation mechanism; Steels; CRYSTAL PLASTICITY; DAMAGE MODEL; P91; STEEL; BEHAVIOR; DEFORMATION; PRECIPITATION; IRON; POLYCRYSTALS; DISLOCATIONS; FORMULATION;
D O I
10.1016/j.ijplas.2022.103411
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Predicting the effects of microstructure on high-temperature creep responses of steel components is critical to minimize the risks of failure and maximize economic viability in the energy sector. In this work, a recently developed advanced mechanistic constitutive model is employed to study the effect of microstructure on the creep responses and to rationalize experimentally reported variability in the performances of grade-91 alloy. Hundreds of experimental creep tests from the literature are used to assess the predictability of the model. The model proposed is shown to accurately predict the steady-state creep rates and also the less commonly considered, yet important, primary-to-secondary transients for a wide range of creep conditions. Further, the model is capable of extrapolating the creep response of grade 91 alloy even outside of the cali-bration regime. Using this model, the roles of initial microstructure described in terms of grain size, dislocation density, and precipitate content, on the creep responses are investigated. The effect of initial microstructure on the steady-state creep rates and creep-strain is found to vary with stress and temperature. Grain size plays a significant role in the low-stress creep, where the diffusional creep is dominant. On the other hand, the effects of dislocation densities and pre-cipitate content are significant in the dislocation-plasticity-dominated high-stress and tempera-ture regimes. Furthermore, by comparing model predictions against a large experimental creep database, it is found that variability in the creep responses can be rationalized on the basis of differences in the initial microstructure. Overall, this work provides a robust pathway for microstructure-aware engineering design, verification, and validation of metallic components for energy applications.
引用
收藏
页数:16
相关论文
共 90 条
[1]  
Abe F., 2022, CREEP POWER PLANT ST
[2]   Progress in Creep-Resistant Steels for High Efficiency Coal-Fired Power Plants [J].
Abe, Fujio .
JOURNAL OF PRESSURE VESSEL TECHNOLOGY-TRANSACTIONS OF THE ASME, 2016, 138 (04)
[3]   Precipitate design for creep strengthening of 9% Cr tempered martensitic steel for ultra-supercritical power plants [J].
Abe, Fujio .
SCIENCE AND TECHNOLOGY OF ADVANCED MATERIALS, 2008, 9 (01)
[4]   THE KINETICS OF DISLOCATION CLIMB OVER HARD PARTICLES .2. EFFECTS OF AN ATTRACTIVE PARTICLE DISLOCATION INTERACTION [J].
ARZT, E ;
ROSLER, J .
ACTA METALLURGICA, 1988, 36 (04) :1053-1060
[5]   A phenomenological model for predicting long-term high temperature creep life of materials from short-term high temperature creep test data [J].
Ayubali, Arsath Abbasali ;
Singh, Alok ;
Shanmugavel, Balasivanandha Prabu ;
Padmanabhan, K. A. .
INTERNATIONAL JOURNAL OF MECHANICAL SCIENCES, 2021, 202
[6]  
Bacon DJ, 2009, DISCLOC SOLIDS, V15, P1, DOI 10.1016/S1572-4859(09)01501-0
[7]   A study of the creep behavior of modified 9Cr-1Mo steel using continuum-damage modeling [J].
Basirat, M. ;
Shrestha, T. ;
Potirniche, G. P. ;
Charit, I. ;
Rink, K. .
INTERNATIONAL JOURNAL OF PLASTICITY, 2012, 37 :95-107
[8]   A constitutive model for rate dependent and rate independent inelasticity. Application to IN718 [J].
Becker, Martin ;
Hackenberg, Hans-Peter .
INTERNATIONAL JOURNAL OF PLASTICITY, 2011, 27 (04) :596-619
[9]   A mechanistic model for creep lifetime of ferritic steels: Application to Grade 91 [J].
Bieberdorf, Nathan ;
Tallman, Aaron ;
Kumar, M. Arul ;
Taupin, Vincent ;
Lebensohn, Ricardo A. ;
Capolungo, Laurent .
INTERNATIONAL JOURNAL OF PLASTICITY, 2021, 147
[10]  
Bird J.E., 1969, QUANTATIVE RELATION, P255