Evolution of microstructure in P91-type steel in high temperature creep

被引:0
作者
Orlová, A [1 ]
Bursík, J [1 ]
Kucharová, K [1 ]
Sklenicka, V [1 ]
机构
[1] Acad Sci Czech Republ, Inst Phys Mat, Brno 61662, Czech Republic
来源
MICROSTRUCTURAL STABILITY OF CREEP RESISTANT ALLOYS FOR HIGH TEMPERATURE PLANT APPLICATIONS | 1998年 / 02期
关键词
D O I
暂无
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The modified 9%Cr P91 steel is one of the materials actually employed in power plant pipework components. The detailed microstructural analysis of a trial melt produced by Vitkovice Steel, Ostrava is reported in the present work. Microstructure evolution during creep at 873 K was investigated by means of transmission electron microscopy (TEM) and computer image analysis on specimens subjects to creep tests conducted up to several predetermined creep life fractions. Two main microstructural elements, namely subgrains and secondary phase particles, were studied quantitatively. The separate contribution of stress free ageing and stress under creep conditions on particle coarsening and subgrain growth is determined. The microstructure evolution consists in a growth of subgrain size and shape changes. This process is retarded by the influence of the dispersed phases that are also subject to further evolution in the course of the creep and annealing process. The smooth increase of subgrain size resulting from stress free ageing is strongly accelerated by the applied stress. Contrary to the subgrain size, the evolution of particle mean size is not monotonic: the initial increase is followed by a final; decrease. Due to this fact, care should be taken over the evaluation of true particle growth rate values.
引用
收藏
页码:89 / 105
页数:17
相关论文
共 50 条
  • [21] High temperature behaviour of P91-steel weldments
    Dogan, B
    Petrovski, B
    CREEP AND FRACTURE OF ENGINEERING MATERIALS AND STRUCTURES, 2001, : 763 - 775
  • [22] Microstructure-sensitive modeling of high temperature creep in grade-91 alloy
    Kumar, Mariyappan Arul
    Capolungo, Laurent
    INTERNATIONAL JOURNAL OF PLASTICITY, 2022, 158
  • [23] CREEP BEHAVIOR AND MICROSTRUCTURE EVOLUTION OF P92 STEEL DURING CREEP TEST AT 873 K
    Zhang, Zuogui
    Shi, Kexian
    Wang, Yanfeng
    Lin, Fusheng
    ENERGY MATERIALS CONFERENCE PROCEEDINGS 2014, 2014, : 333 - 342
  • [24] Ultimate creep load and safety assessment of P91 steel pipe with local wall thinning at high temperature
    Xue, Ji-Lin
    Zhou, Chang-Yu
    Peng, Jian
    INTERNATIONAL JOURNAL OF MECHANICAL SCIENCES, 2015, 93 : 136 - 153
  • [25] The influence of coupling effect between stress and high temperature on the degradation of microstructure and hardness in P91 steel
    Sun, Xiaoxiang
    Wang, Xue
    MATERIALS & DESIGN, 2024, 244
  • [26] IMPROVEMENT OF HIGH TEMPERATURE CREEP STRENGTH OF CONVENTIONAL GRADE 91 STEEL BY THERMOMECHANICAL TREATMENTS
    Hernandez, Rebeca
    Serrano, Marta
    Garcia-Junceda, Andrea
    Onorbe, Elvira
    Vivas, Javier
    PROCEEDINGS OF THE ASME PRESSURE VESSELS AND PIPING CONFERENCE, 2019, VOL 6B, 2019,
  • [27] Evolution of Microstructure during Welding Simulation of Boron Modified P91 Steel
    Akhil Modassir Akhtar
    V. S. Khajuria
    R. K. Kumar
    Shaju K. Gupta
    Physics of Metals and Metallography, 2019, 120 : 672 - 685
  • [28] Evolution of Microstructure during Welding Simulation of Boron Modified P91 Steel
    Akhtar, Modassir
    Khajuria, Akhil
    Kumar, V. S.
    Gupta, R. K.
    Albert, Shaju K.
    PHYSICS OF METALS AND METALLOGRAPHY, 2019, 120 (07) : 672 - 685
  • [29] Creep cavities and carbide evolution in interrupted creep conditions along P91 steel of dissimilar weld joint
    Awale, Deepshree D.
    Dandekar, Tushar R.
    Ballal, Atul R.
    Thawre, Manjusha M.
    JOURNAL OF ADHESION SCIENCE AND TECHNOLOGY, 2024, 38 (23) : 4190 - 4201
  • [30] Evaluation of microstructure degradation during creep of P91 steel using electrochemical detection technique
    Zhu, Lin
    Liu, Xinbao
    Fan, Ping
    Yang, Yang
    Zhang, Kai
    Wang, Kai
    Wang, Lin
    MATERIALS TODAY COMMUNICATIONS, 2023, 34