Experimental and Numerical Analysis of Initial Plasticity in P91 Steel Small Punch Creep Samples

被引:0
作者
F. Cortellino
J. P. Rouse
B. Cacciapuoti
W. Sun
T. H. Hyde
机构
[1] University of Nottingham,Department of Mechanical, Materials and Manufacturing Engineering
来源
Experimental Mechanics | 2017年 / 57卷
关键词
Small punch test; Creep; Finite element; Initial plastic strain;
D O I
暂无
中图分类号
学科分类号
摘要
To date, the complex behaviour of small punch creep test (SPCT) specimens has not been completely understood, making the test hard to numerically model and the data difficult to interpret. This paper presents a novel numerical model able to generate results that match the experimental findings. For the first time, pre-strained uniaxial creep test data of a P91 steel at 600 ∘C have been implemented in a conveniently modified Liu and Murakami creep damage model in order to simulate the effects of the initial localised plasticity on the subsequent creep response of a small punch creep test specimen. Finite element (FE) results, in terms of creep displacement rate and time to failure, obtained by the modified Liu and Murakami model are in good agreement with experimental small punch creep test data. The rupture times obtained by the FE calculations which make use of the non-modified creep damage model are one order of magnitude shorter than those obtained by using the modified constitutive model. Although further investigation is needed, this novel approach has confirmed that the effects of initial localised plasticity, taking place in the early stages of small punch creep test, cannot be neglected. The new results, obtained by using the modified constitutive model, show a significant improvement with respect to those obtained by a ’state of the art’ creep damage constitutive model (the Liu and Murakami constitutive model) both in terms of minimum load-line displacement rate and time to rupture. The new modelling method will potentially lead to improved capability for SPCT data interpretation.
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页码:1193 / 1212
页数:19
相关论文
共 111 条
[1]  
Rouse JP(2013)Small punch creep testing: review on modelling and data interpretation Mater Sci Technol 29 1328-1345
[2]  
Cortellino F(2009)A novel, high sensitivity, small specimen creep test Journal of Strain Analysis for Engineering Design 44 171-185
[3]  
Sun W(2008)The small punch creep test: some results from a numerical model J Mater Sci 43 1825-1835
[4]  
Hyde TH(2006)Numerical modelling of small disc creep test Mater Sci Technol 22 1155-1162
[5]  
Shingledecker J(2011)Qualification of p91 welds through small punch creep testing J Nucl Mater 409 124-130
[6]  
Hyde TH(2013)Determination of creep properties of a p91 weldment by small punch testing and a new evaluation approach Mater Sci Eng A 588 125-131
[7]  
Sun W(2014)Using small punch test data to determine creep strain and strength reduction properties for heat affected zones Mater Sci Technol 30 63-66
[8]  
Evans M(1983)Small punch test evaluation of intergranular embrittlement of an alloy steel Scr Metall 17 1443-1447
[9]  
Wang D(2008)Comparison of conventional and small punch creep tests of mechanically alloyed Al–C–O alloys Mater Charact 59 961-964
[10]  
Evans RW(2011)Qualification of P91 welds through small punch creep testing J Nucl Mater 409 124-130