THE EFFECT OF IMMERSION TIME ON THE CORROSION BEHAVIOR OF SUS304 IN BRINE USING HALF-CELL POTENTIAL MEASUREMENT

Authors

  • Saber Rashid Department of Mechanical and Materials Engineering Universiti Kebangsaan Malaysia, Bangi 43600, Selangor, Malaysia
  • N. Islami Department of Mechanical and Materials Engineering Universiti Kebangsaan Malaysia, Bangi 43600, Selangor, Malaysia
  • A. K. Ariffin Department of Mechanical and Materials Engineering Universiti Kebangsaan Malaysia, Bangi 43600, Selangor, Malaysia
  • M. Ridha Department of Mechanical Engineering, Syiah Kuala University Jl. Tgk. Syech Abdul Rauf 7 Banda Aceh, Indonesia
  • S. Fonna Department of Mechanical Engineering, Syiah Kuala University Jl. Tgk. Syech Abdul Rauf 7 Banda Aceh, Indonesia

DOI:

https://doi.org/10.11113/jt.v78.9152

Keywords:

stress corrosion, polarization curve, mechanical loading, Half-cell potential measurements

Abstract

The aim of this study is to investigate the impact of immersion time, at different time values for two cases, with stressed and no stressed on materials. This study is conducted using SUS304 material with the presence of 3.5% NaCl at the range of stresses for the specimens lower than the yield strength.  The geometry of the C-ring specimen was selected for 18.974 mm and 1.244 mm for the outer diameters and the thickness respectively. The immersion time effect was investigated using the half-cell potential measurement following the ASTM G-38 standard. The approach of corrosion environment was applied to resemble the condition of loading history. Three levels of stresses were designed and applied in finite element analysis and the results known as the parameters of stress-corrosion measurement. The ASTM G-38 standard is prominent for making C-ring stress-corrosion for elastic stress analysis. The stress-corrosion test was performed at two parameters, fixed stress and no stress. The value of stresses for fixed stress was chosen for 179.199 MPa, 328.665 MPa and 460.131 MPa, correspondingly. The immersion time were selected from 0, 10 and 30 days. The electrochemical result shows that the immersion time did not affect vastly to the corrosion behavior for no stress-corrosion compared with fixed stress. The corrosion rate increases proportionally with the time immersion increments due to the inability of the steel layer protection to regenerate itself. Subsequently, it is also due to the metal was exposed to plastic deformation that resulting the internal stresses due to the plastic anisotropy of the grains.

References

Gebril, M.A., Aldlemey, M.S., Haider, F.I. and Ali, N. 2014. Effect of Austenizing and Tempering Time on Corrosion Rate of Austenistic Stainless Steel in Oxalic Acid. Advanced Materials Research. 980: 46-51.

Moura V.S., Lima, L.D., Pardal, J.M., Kina, A.Y., Corte, R.R.A. and Taveras, S.S.M. 2008. Influence Of Microstructure On The Corrosion Resistance Of The Duplex Stainless Steel UNS S31803. Materials Characterization. 59(8): 1127-1132.

Aydogdu, G. and M. Aydinol. 2006. Determination Of Susceptibility To Intergranular Corrosion And Electrochemical Reactivation Behaviour of AISI 316L Type Stainless Steel. Corrosion Science. 48 (11): 3565-3583

Tsay, L., Yu, S.C., Chyou, S-D. and Lin, D-Y. 2007. A Comparison Of Hydrogen Embrittlement Susceptibility Of Two Austenitic Stainless Steel Welds. Corrosion Science. 49(10): 4028-4039.

Paredes, E.C., Bautista, A., Alvarez S.M. and Velasco, F. 2012. Influence Of The Forming Process Of Corrugated Stainless Steels On Their Corrosion Behaviour In Simulated Pore Solutions. Corrosion Science. 58: 52-61.

Contreras, A., Hernandez, S.L., Orozco-Cruz, R. and Galvan-Martinez, R. 2012. Mechanical And Environmental Effects On Stress Corrosion Cracking Of Low Carbon Pipeline Steel In A Soil Solution. Materials & Design. 35: 281-289.

Du, X.S., Su, Y.J., Li, X.J., Qiao. L.J. and Chu, W.Y. 2012. Stress Corrosion Cracking Of A537 Steel In Simulated Marine Environments. Corrosion Resistance. 65: 278-287.

Badea, G.E., Caraban, A., Sebesan, M., Dzitac, S., Cret, P. and Setel, A. 2010. Polarisation Measurement Used For Corrosion Rates Determination. Journal of Sustainable Energy. 1(1): 1-4.

ASTM, ASTM: 38. 2001. ASTM International Publisher, West Conshohocken, PA

Butler, B. M., Chopra, M. B., Kassab, A. J. and Chaitanya, V. 2013. Boundary Element Model For Electrochemical Dissolution Under Externally Applied Low Level Stress. Engineering

Downloads

Published

2016-06-21

How to Cite

THE EFFECT OF IMMERSION TIME ON THE CORROSION BEHAVIOR OF SUS304 IN BRINE USING HALF-CELL POTENTIAL MEASUREMENT. (2016). Jurnal Teknologi, 78(6-9). https://doi.org/10.11113/jt.v78.9152