Numerical Prediction of the Long Term Creep Crack Growth Behaviour in Type 316H Stainless Steel

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Abstract:

Life assessment of Type 316H stainless steel (SS) is of great concern to industry due to the widespread use of this material in power plant components that often operate at a temperature of around 550 °C. An important issue to be understood and considered in the life assessment of 316H components is the creep deformation and crack growth behaviour of this material in short term and long term operation times. Due to the limited long term test data available in the literature (i.e. [1, ), a new technique have been recently developed to estimate uniaxial creep ductility trends and subsequently creep crack growth (CCG) behaviour of the material at low load levels [. In this new method the creep ductility trends have been estimated as a function of the applied stress normalised by the temperature dependent 0.2% proof stress of the material, σ/σ0.2, to include the plasticity effects on the creep deformation behaviour of the material. These trends have been implemented in finite (FE) simulations to predict the CCG behaviour of 316H in intermediate and long term tests at 550 °C and provisional results are presented in [.

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Key Engineering Materials (Volumes 577-578)

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153-156

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September 2013

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© 2014 Trans Tech Publications Ltd. All Rights Reserved

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[1] Spindler, M. W., The Multiaxial Creep Ductility of Austenitic Stainless Steels, Fatigue and Fracture of Engineering Materials and Structures, 2004, 27(4), pp.273-282.

DOI: 10.1111/j.1460-2695.2004.00732.x

Google Scholar

[2] Dean, D. W. and Gladwin, D. N., Creep Crack Growth Behaviour of Type 316H Steels and Proposed Modifications to Standard Testing and Analysis Methods, The International Journal of Pressure Vessels and Piping, 2007, 84(6), pp.378-395.

DOI: 10.1016/j.ijpvp.2007.01.001

Google Scholar

[3] Mehmanparast, A., The Influence of Inelastic Damage on Creep, Fatigue and Fracture Toughness, Ph.D. Thesis, Department of Mechanical Engineering, Imperial College London, 2012.

Google Scholar

[4] Davies, C. M. and Mehmanparast, A., Creep Crack Growth Modelling in 316H Stainless Steel, in Advanced Materials Modelling for Structures H. Altenbach and S. Kruch, Editors, 2013, Springer.

DOI: 10.1007/978-3-642-35167-9_11

Google Scholar

[5] Mehmanparast, A., Davies, C. M., Dean, D. W. and Nikbin, K. M., The Influence of Pre-Compression on Creep Deformation, Crack Initiation and Growth Behaviour of Type 316H Stainless Steel Submitted to Engineering Fracture Mechanics, (2013)

DOI: 10.1016/j.engfracmech.2013.08.006

Google Scholar

[6] Cocks, A. C. F. and Ashby, M. F., On Creep Fracture by Void Growth, Progress in Material Science, 1982, 27, pp.189-244.

DOI: 10.1016/0079-6425(82)90001-9

Google Scholar

[7] ASTM, E1457-07: Measurement of Creep Crack Growth Rates in Metals, in Annual Book of ASTM Standards, Vol. 03.01, 2007, ASTM International, pp.1012-1035.

Google Scholar