A COMPARISON OF CREEP-FATIGUE ASSESSMENT AND MODELLING METHODS

被引:0
|
作者
Pohja, Rami H. [1 ]
Holmstrom, Stefan B. [2 ]
机构
[1] VTT Tech Res Ctr Finland, Espoo, Finland
[2] Inst Energy & Transport, Joint Res Ctr, Petten, Netherlands
来源
PROCEEDINGS OF THE 22ND INTERNATIONAL CONFERENCE ON NUCLEAR ENGINEERING - 2014, VOL 1 | 2014年
关键词
LOW-CYCLE FATIGUE; BEHAVIOR; STEEL;
D O I
暂无
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Design codes, such as RCC-MRx and ASME III NH, for generation IV nuclear reactors use interaction diagram based method for creep-fatigue assessment. In the interaction diagram the fatigue damage is expressed as the ratio of design cycles over the allowable amount of cycles in service and the creep damage as the ratio of time in service over the design life. With this approach it is assumed that these quantities can be added linearly to represent the combined creep-fatigue damage accumulation. Failure is assumed to occur when the sum of the damage reaches a specified value, usually unity or less. The fatigue damage fraction should naturally be unity when no creep damage is present and creep damage should be unity when no fatigue damage is present. However, strict fatigue limits and safety factors used for creep rupture strengths as well as different approaches to relaxation calculation can cause a situation where creep-fatigue test data plotted according to the design rules are three orders of magnitude away from the interaction diagram unity line. Thus, utilizing the interaction diagram methods for predicting the number of creep-fatigue cycles may be inaccurate and from design point of view these methods may be overly conservative. In this paper the results of creep-fatigue tests carried out for austenitic stainless steel 316 and heat resistant ferritic-martensitic steel P91, which are included in the design codes, such as RCC-MRx, are assessed using the interaction diagram method with different levels of criteria for the creep and fatigue fractions. The test results are also compared against the predictions of a recently developed simplified creep-fatigue model which predicts the creep-fatigue damage as a function of strain range, temperature and hold period duration with little amount of fitting parameters. The Phi-model utilizes the creep rupture strength and ultimate tensile strength (UTS) of the material in question as base for the creep-fatigue prediction. Furthermore, challenge of acquiring representative creep damage fractions from the dynamic material response, i.e. cyclic softening with P91 steel, for the interaction diagram based assessment is discussed.
引用
收藏
页数:10
相关论文
共 50 条
  • [1] Damage Assessment of Similar Martensitic Welds Under Creep, Fatigue, and Creep-Fatigue Loading
    Bender, Thorben
    Klenk, Andreas
    Weihe, Stefan
    JOURNAL OF PRESSURE VESSEL TECHNOLOGY-TRANSACTIONS OF THE ASME, 2023, 145 (04):
  • [2] A robust model for creep-fatigue life assessment
    Holmstrom, S.
    Auerkari, P.
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2013, 559 : 333 - 335
  • [3] Creep and creep-fatigue crack growth
    Saxena, Ashok
    INTERNATIONAL JOURNAL OF FRACTURE, 2015, 191 (1-2) : 31 - 51
  • [4] Creep-fatigue life assessment of cruciform weldments using the linear matching method
    Gorash, Yevgen
    Chen, Haofeng
    INTERNATIONAL JOURNAL OF PRESSURE VESSELS AND PIPING, 2013, 104 : 1 - 13
  • [5] DAMAGE ASSESSMENT OF SIMILAR MARTENSITIC WELDS UNDER CREEP, FATIGUE AND CREEP-FATIGUE LOADING
    Bender, Thorben
    Klenk, Andreas
    Weihe, Stefan
    PROCEEDINGS OF THE ASME 2020 PRESSURE VESSELS & PIPING CONFERENCE (PVP2020), VOL 6, 2020,
  • [6] ANSYS Creep-Fatigue Assessment tool for EUROFER97 components
    Mahler, M.
    Oezkan, F.
    Aktaa, J.
    NUCLEAR MATERIALS AND ENERGY, 2016, 9 : 535 - 538
  • [7] Advances on creep-fatigue damage assessment in notched components
    Barbera, D.
    Chen, H.
    Liu, Y.
    FATIGUE & FRACTURE OF ENGINEERING MATERIALS & STRUCTURES, 2017, 40 (11) : 1854 - 1867
  • [8] Creep-fatigue life assessment for three kinds of solders
    Zhang, Shengde
    Sakane, Masao
    MATERIALS AT HIGH TEMPERATURES, 2012, 29 (04) : 315 - 321
  • [9] Creep-fatigue crack growth rate assessment using ductility damage model
    Shlyannikov, V.
    Tumanov, A.
    Boychenko, N.
    INTERNATIONAL JOURNAL OF FATIGUE, 2018, 116 : 448 - 461
  • [10] Creep-fatigue assessment of martensitic welds based on numerically determined local deformation
    Bender, Thorben
    Klenk, Andreas
    Weihe, Stefan
    MATERIALS TESTING, 2023, 65 (06) : 815 - 823