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Corrosion Inhibition of Mild Steel by Using Carbimazole/Zn+ System in NaCl Medium

Received: 4 October 2019    Accepted: 31 October 2019    Published: 25 November 2019
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Abstract

The degradation of metallic materials under the effect of the environment is defined as a corrosion process. Under the aggressive environment, corrosion leads to the formation of corrosion products. The use of inhibitor substance is considered as one way to protect the metal surface against corrosion. The inhibitor is chemically adsorbed py the surface of the metal and forms a protective thin film with inhibitor effect. The protection can also be achieved by a combination of inhibitor ions and metallic surface. The current work was evaluated using corrosion inhabitation of carbon steel in NaCl solution by carbimazole\Zn system. The ability of carbomazole as a good corrosion inhibitor is enhanced by the presence of Zn+2 when the concentration of carbomazole increased and this may be attributed to the protective film formed on the metal surface was withstand the continuous attack of corrosive ions. Also, the formation of complex Fe-carbomizole/Zn+2 linkages on the anodic sites of the metal surface during the immersion time may play a role in the improvement in adsorption of inhibiter system via coverage more area of the metal surface which reduced the exposure of anode sites to the corrosive media. By using Langmuir isotherm model to identify the inhibitor mechanism performance, the values of linear correlation coefficient were close to (1) suggested that the adsorption of the studied inhibitors follows Langmuir isotherm model. Generally, values of ΔGads up to -9.7 kJ/mol are attributed to the electrostatic interaction between the inhibitor molecules and the metal surface (physical adsorption), whilst those at -10.6 kJ/mol or a little more negative are consistent with chemical bonding of the inhibitor to the sample (Chemisorption).

Published in American Journal of Mechanical and Materials Engineering (Volume 3, Issue 4)
DOI 10.11648/j.ajmme.20190304.11
Page(s) 70-77
Creative Commons

This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited.

Copyright

Copyright © The Author(s), 2024. Published by Science Publishing Group

Keywords

Corrosion, Inhibitor, Carboimazole/Znsystem, Langmuir

References
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[2] J. R. Donahue, A. B. Lass & J. T. Burns, 2017 “The interaction of corrosion fatigue and stress-corrosion cracking in a precipitation-hardened martensitic stainless steel” npj Materials Degradation, No 1, pp 1-8.
[3] Li, X., Deng, S., Xie, X. & Fu, H., 2014 “Inhibition effect of bamboo leaves’ extract on steel and zinc in citric acid solution”. Corros. Sci. 87, pp 15–26.
[4] J. Hana, C. Chenc, Q. Xuec, Y. Zhengb, S. Tianc, Z. Liuc, J. Shena, M. Zhong, 2018 “Catalyst-free and thermal-induced S→O acetyl migration reaction to generate the polyacrylatepolythiols for anticorrosion use” Polymer 154 (2018), pp 1–7.
[5] M. Lebrini, F. Robert, A. Lecante, & C Roos, 2011 “Corrosion inhibition of C38 steel in 1 M hydrochloric acid medium by alkaloids extract from Oxandraasbeckii plant”. Corros. Sci. No. 53, pp 687–695.
[6] R. T. Loto1, C. A. Loto and T. Fedotova, 2012 “Inhibition Effect of N, N'-Dimethylaminoethanol on the Corrosion of Austenitic Stainless Steel Type 304 in 3M H2SO4” Int. J. Electrochem. Sci., No.7, pp 10763-10778.
[7] B. Lin and Y. Zuo, 2019” Corrosion inhibition of carboxylate inhibitors with different alkylene chain lengths on carbon steel in an alkaline solution” RSC Adv., No. 9, pp7065–7077.
[8] X. Zheng, M. Gong, Q. Li1 & L. Guo, 2018 “ Corrosion inhibition of mild steel in sulfuric acid solution by loquat (Eriobotrya japonica Lindl.) leaves extract” Scientific reports 8, No. 9140, DOI:10.1038/s41598-018-27257-9.
[9] A. Ismail, 2016 “A reviw of green corrosion inhibitor for mild steel in sea water” Journal of Engineering and Applied Sciences, Vol. 11, No. 14, pp 8710- 8714.
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[14] K. Xhanariab, M. Finšgara, 2016 “Organic corrosion inhibitors for aluminum and its alloys in chloride and alkaline solutions: A review” Arabian Journal of Chemistry https://doi.org/10.1016/j.arabjc.2016.08.009.
[15] V. M. Abbasova, H. M. Abd El-Lateefa, L. I. Aliyevaa, E. E. Qasimova, I. T. Ismayilova and M. M. Khalaf, 2013 “A study of the corrosion inhibition of mild steel C1018 in CO2-saturated brine using some novel surfactants based on corn oil” Egyptian Journal of Petroleum, Vol. 22, No. 4, pp451-470.
[16] V. Branzoi, F. Golgovici and F. Branzoi, 2003 “Aluminium corrosion in hydrochloric acid solutions and the effect of some organic inhibitors” Materials Chemistry and Physics, Vol. 78, No 1, 3, pp 122-131
[17] A. A. Atia and M. M. Saleh, 2003 “Inhibition of acid corrosion of steel using cetylpyridinium chloride” Journal of Applied Electrochemistry, Vol. 33, No. 2, pp 171–177.
[18] L. Fu, F. Yi, B. Zengamd and C. Hu, 2018 “Study of Synthesis and Corrosion Inhibition of Novel Mannich and Schiff Bases on Carbon Steel in Acid Solution” Russian Journal of Applied ChemistryMarch 2018, Vol. 91, No. 3, pp 499–509.
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  • APA Style

    Mousa May, Khadeejah Khalifa, Balhassn Ali. (2019). Corrosion Inhibition of Mild Steel by Using Carbimazole/Zn+ System in NaCl Medium. American Journal of Mechanical and Materials Engineering, 3(4), 70-77. https://doi.org/10.11648/j.ajmme.20190304.11

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    ACS Style

    Mousa May; Khadeejah Khalifa; Balhassn Ali. Corrosion Inhibition of Mild Steel by Using Carbimazole/Zn+ System in NaCl Medium. Am. J. Mech. Mater. Eng. 2019, 3(4), 70-77. doi: 10.11648/j.ajmme.20190304.11

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    AMA Style

    Mousa May, Khadeejah Khalifa, Balhassn Ali. Corrosion Inhibition of Mild Steel by Using Carbimazole/Zn+ System in NaCl Medium. Am J Mech Mater Eng. 2019;3(4):70-77. doi: 10.11648/j.ajmme.20190304.11

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  • @article{10.11648/j.ajmme.20190304.11,
      author = {Mousa May and Khadeejah Khalifa and Balhassn Ali},
      title = {Corrosion Inhibition of Mild Steel by Using Carbimazole/Zn+ System in NaCl Medium},
      journal = {American Journal of Mechanical and Materials Engineering},
      volume = {3},
      number = {4},
      pages = {70-77},
      doi = {10.11648/j.ajmme.20190304.11},
      url = {https://doi.org/10.11648/j.ajmme.20190304.11},
      eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.ajmme.20190304.11},
      abstract = {The degradation of metallic materials under the effect of the environment is defined as a corrosion process. Under the aggressive environment, corrosion leads to the formation of corrosion products. The use of inhibitor substance is considered as one way to protect the metal surface against corrosion. The inhibitor is chemically adsorbed py the surface of the metal and forms a protective thin film with inhibitor effect. The protection can also be achieved by a combination of inhibitor ions and metallic surface. The current work was evaluated using corrosion inhabitation of carbon steel in NaCl solution by carbimazole\Zn system. The ability of carbomazole as a good corrosion inhibitor is enhanced by the presence of Zn+2 when the concentration of carbomazole increased and this may be attributed to the protective film formed on the metal surface was withstand the continuous attack of corrosive ions. Also, the formation of complex Fe-carbomizole/Zn+2 linkages on the anodic sites of the metal surface during the immersion time may play a role in the improvement in adsorption of inhibiter system via coverage more area of the metal surface which reduced the exposure of anode sites to the corrosive media. By using Langmuir isotherm model to identify the inhibitor mechanism performance, the values of linear correlation coefficient were close to (1) suggested that the adsorption of the studied inhibitors follows Langmuir isotherm model. Generally, values of ΔGads up to -9.7 kJ/mol are attributed to the electrostatic interaction between the inhibitor molecules and the metal surface (physical adsorption), whilst those at -10.6 kJ/mol or a little more negative are consistent with chemical bonding of the inhibitor to the sample (Chemisorption).},
     year = {2019}
    }
    

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  • TY  - JOUR
    T1  - Corrosion Inhibition of Mild Steel by Using Carbimazole/Zn+ System in NaCl Medium
    AU  - Mousa May
    AU  - Khadeejah Khalifa
    AU  - Balhassn Ali
    Y1  - 2019/11/25
    PY  - 2019
    N1  - https://doi.org/10.11648/j.ajmme.20190304.11
    DO  - 10.11648/j.ajmme.20190304.11
    T2  - American Journal of Mechanical and Materials Engineering
    JF  - American Journal of Mechanical and Materials Engineering
    JO  - American Journal of Mechanical and Materials Engineering
    SP  - 70
    EP  - 77
    PB  - Science Publishing Group
    SN  - 2639-9652
    UR  - https://doi.org/10.11648/j.ajmme.20190304.11
    AB  - The degradation of metallic materials under the effect of the environment is defined as a corrosion process. Under the aggressive environment, corrosion leads to the formation of corrosion products. The use of inhibitor substance is considered as one way to protect the metal surface against corrosion. The inhibitor is chemically adsorbed py the surface of the metal and forms a protective thin film with inhibitor effect. The protection can also be achieved by a combination of inhibitor ions and metallic surface. The current work was evaluated using corrosion inhabitation of carbon steel in NaCl solution by carbimazole\Zn system. The ability of carbomazole as a good corrosion inhibitor is enhanced by the presence of Zn+2 when the concentration of carbomazole increased and this may be attributed to the protective film formed on the metal surface was withstand the continuous attack of corrosive ions. Also, the formation of complex Fe-carbomizole/Zn+2 linkages on the anodic sites of the metal surface during the immersion time may play a role in the improvement in adsorption of inhibiter system via coverage more area of the metal surface which reduced the exposure of anode sites to the corrosive media. By using Langmuir isotherm model to identify the inhibitor mechanism performance, the values of linear correlation coefficient were close to (1) suggested that the adsorption of the studied inhibitors follows Langmuir isotherm model. Generally, values of ΔGads up to -9.7 kJ/mol are attributed to the electrostatic interaction between the inhibitor molecules and the metal surface (physical adsorption), whilst those at -10.6 kJ/mol or a little more negative are consistent with chemical bonding of the inhibitor to the sample (Chemisorption).
    VL  - 3
    IS  - 4
    ER  - 

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Author Information
  • Chemical Engineering Department, Faculty of Energy and Mining Engineering, Sebha University, Sebha, Libya

  • Chemical Engineering Department, Faculty of Energy and Mining Engineering, Sebha University, Sebha, Libya

  • College of Petroleum Engineering, Al-Jafra University, Zalla, Libya

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