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Portugaliae Electrochimica Acta

versão impressa ISSN 0872-1904

Port. Electrochim. Acta v.27 n.1 Coimbra  2009

 

Malonic Acid as Transporter of Zn2+ Towards

Carbon Steel Surface

 

A. Jayashree,1 F. Rajammal Selvarani,1 J. Wilson Sahayaraj,2 A. John Amalraj,3 S. Rajendran4,*

 

1Department of Chemistry, Holy Cross College, Tiruchirappalli-620 002, Tamil Nadu, India

2Department of Chemistry, Jeppiar College of Engineering, Chennai – 600 119, Tamil Nadu, India

3Department of Chemistry, Loyola College, Chennai, Tamil Nadu, India

4Corrosion Research Centre, Department of Chemistry, GTN Arts College, Dindigul-624 005,Tamil Nadu, India

 

Received 25 July 2008; accepted 27 November 2008

 

Abstract

The inhibition efficiency (IE) of malonic acid (MA)-Zn2+ system in controlling corrosion of carbon steel immersed in well water has been evaluated by weight-loss  method.  The formulation consisting of 50 ppm  of MA and 50 ppm of Zn2+ has 85% IE.  The influence of N-cetyl-N,N,N-trimethylammonium bromide (CTAB) and N-cetyl pyridinium chloride (CPC) on the IE of the MA- Zn2+ system has been studied. At lower pH value (pH=6) IE decreases and in alkaline medium (pH=8) IE increases.  Polarization study reveals that MA-Zn2+ system functions as a mixed inhibitor.  AC impedance spectra reveal that a protective film is formed on the metal surface.  FTIR spectra reveal that the protective film consists of Fe2+-MA complex and Zn(OH)2.

Keywords: carbon steel, corrosion inhibition, malonic acid, well water.

 

 

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Reference

1. A.D. Mercer, 5th European Symp. Corros. Inhibitors (5 SEIC) Ann. Univ. Ferrara, Sez v. Supp, n7 (1980) 563.

2. A.D. Mercer, ASTM Special Technical Publication, ASTM Philadelphia, USA 705 (1980) 53.

3. Chemistry Research for the years 1958, 1951 and 1954. Published by HMSO, London.

4. W. Funke and K. Hamann , Werkstoffe u Korrosion 9 (1958) 202.

5. P. Hersch et al., J. Appl. Chem. 11 (1961) 246.        [ Links ]

6. J.E.O. Mayne and E.M. Ramshaw, J. Appl. Chem. 10 (1980) 419.        [ Links ]

7. N.K. Shmeleva  and V.P. Barannik, Zhur. Priklad. Khim. 36 (1963) 813.

8. E.V. Bogatyreva  and S.A. Balezin, Zhur. Priklad. Khim. 32 (1959) 1071.

9. E.V. Bogatyreva and V.V. Nagaev, Zhur. Priklad. Khim. 35 (1962) 556.

10. E.V. Bogatyreva and S.A. Balezin, Khim. Khim. Tekhnol. n1 (1959).

11. Yu.I. Kuznetsov, S.V. Oleynik, N.N. Adreev  and S.S. Vesely,  6th European Symp. Corros. Inhibitors, (6 SEIC), Ann. Univ. Ferrara, Sez V. Supp n8 (1985) 567.

12. E.V. Bogatyreva and M.A. Karepina, Zhur. Priklad. Khim. 36 (1963) 147.

13. N.G. Klyuchnikov and N.S. Novoshinskaya, Zhur. Priklad. Khim. 36 (1963) 2470.

14. S.S.A. Rehim, S.M. Sayyah and M.M.E. Deeb, Mater. Chem. Phys. 80 (2003) 696.        [ Links ]

15. J.A. Selvi, S. Rajendran and A.J. Amalraj, Indian J. Chem. Techn. 14 (2007) 382.

16. G.R.H. Florence, A.N. Antony, J.W. Sahayaraj, A.J. Amalraj and S. Rajendran, Indian J. Chem. Techn. 12 (2005) 472.

17. G. Wranglen, Introduction to Corrosion and Protection of Metals, Chapman & Hall, London, 1985. p. 236.

18. R.M. Silverstein, G.C. Bassler and T. Morrill, Spectrometric Identification of Organic Compounds, John Wiley & Sons, New York, 1981. p.95.

19. I. Sekine and Y. Hirakwa, Corrosion 42(1986) 276.        [ Links ]

 

* Corresponding author. E-mail address: srmjoany@sify.com

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