Characterization of stress corrosion crack growth of 304 stainless steel by electrochemical noise and scanning Kelvin probe

Ru Zhao , Zheng Zhang , Jiang-bo Shi , Lei Tao , Shi-zhe Song

Journal of Central South University ›› 2010, Vol. 17 ›› Issue (1) : 13 -18.

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Journal of Central South University ›› 2010, Vol. 17 ›› Issue (1) : 13 -18. DOI: 10.1007/s11771-010-0003-9
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Characterization of stress corrosion crack growth of 304 stainless steel by electrochemical noise and scanning Kelvin probe

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Abstract

The fatigue pre-cracking 304 stainless steel (SS) specimens with lengths of 1.002 mm (L-crack) and 0.575 mm (S-crack) were prepared. Their corrosion behavior was studied by electrochemical noise (EN) in 4 mol/L NaCl + 0.01 mol/L Na2S2O3 solution under slow-strain-rate-testing (SSRT) conditions. Moreover, the characteristics of L-crack’s surface morphology and potential distribution with scanning Kelvin probe (SKP) before and after SSRT were also discussed. Compared with S-crack, L-crack is propagated and the features of crack propagation can be obtained. After propagation, the noise amplitudes increase with increasing stress and accelerating corrosion, the white noises at low and high frequencies (WL and WH) of the later stage are one order of magnitude larger than that at early stage in the current power spectral densities (PSDs). The potential PSDs also increase, but WH disappears. In addition, the crack propagation can be demonstrated according to variation of probability distribution, surface morphology and potential distribution.

Keywords

304 stainless steel / fatigue pre-cracking / electrochemical noise / stress corrosion cracking (SCC) / scanning Kelvin probe

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Ru Zhao, Zheng Zhang, Jiang-bo Shi, Lei Tao, Shi-zhe Song. Characterization of stress corrosion crack growth of 304 stainless steel by electrochemical noise and scanning Kelvin probe. Journal of Central South University, 2010, 17(1): 13-18 DOI:10.1007/s11771-010-0003-9

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References

[1]

TurnbullA.. Modeling of environment assisted cracking [J]. Corrosion Science, 1993, 34(6): 921-960

[2]

LebanM., Bajt, LegatA.. Detection and differentiation between cracking processes based on electrochemical and mechanical measurements [J]. Electrochimica Acta, 2004, 49(17/18): 2795-2801

[3]

GirijaS., Kamachi-mudaliU., RajuV. R., DayalR. K., KhatakH. S., RajB.. Determination of corrosion types for AISI type 304L stainless steel using electrochemical noise method [J]. Materials Science and Engineering A, 2005, 407(1/2): 188-195

[4]

Al-mazeediH. A. A., CottisR. A.. A practical evaluation of electrochemical noise parameters as indicators of corrosion type [J]. Electrochimica Acta, 2004, 49(17/18): 2787-2793

[5]

CaoF. H., ZhangZ., ChengY. L., WangJ. M., ZhangJ. Q., CaoC. N.. Electrochemical noise features of pure aluminum during pitting corrosion in neutral NaCl solution [J]. Acta Metallurgica Sinica: English Letters, 2003, 16(1): 22-32

[6]

ZhangT., ShaoY., MengG., WangF. H.. Electrochemical noise analysis of the corrosion of AZ91D magnesium alloy in alkaline chloride solution [J]. Electrochimica Acta, 2007, 53(2): 561-568

[7]

KovačJ., LebanM., LegatA.. Detection of SCC on prestressing steel wire by the simultaneous use of electrochemical noise and acoustic emission measurements [J]. Electrochimica Acta, 2007, 57(27): 7607-7616

[8]

DuranM. G., MacdonaldD. D.. Stress corrosion cracking of sensitized type 304 stainless steel in thiosulphate solution (II): Dynamics of fracture [J]. Corrosion Science, 2006, 48(7): 1608-1622

[9]

KimS. W., KimH. P.. Electrochemical noise analysis of PbSCC of alloy 600 SG tube in caustic environments at high temperature [J]. Corrosion Science, 2009, 51(1): 191-196

[10]

Arganis-juarezC. R., MaloJ. M., UruchurtuJ.. Electrochemical noise measurements of stainless steel in high temperature waters [J]. Nuclear Engineering and Design, 2007, 237(24): 2283-2291

[11]

AnitaT., PujarM. G., ShaikhH., DayalR. K., KhatakH. S.. Assessment of stress corrosion crack initiation and propagation in AISI type 316 stainless steel by electrochemical noise technique [J]. Corrosion Science, 2006, 48(9): 2689-2710

[12]

ShiZ. M., SongG. L., CaoC. N., LinH. C., LuM.. Electrochemical potential noise of 321 stainless steel stressed under constant strain rate testing conditions [J]. Electrochimica Acta, 2007, 52(5): 2123-2133

[13]

NazarovA., ThierryD.. Application of Volta potential mapping to determine metal surface defects [J]. Electrochimica Acta, 2007, 52(27): 7689-7696

[14]

GabrielliC., HuetF., KeddamM., KeddamM., OltraR.. A review of the probabilistic aspects of localized corrosion [J]. Corrosion, 1990, 46(4): 266-278

[15]

RobergeP. R.. Analysis of electrochemical noise by the stochastic process detector method [J]. Corrosion, 1994, 50(7): 502-512

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