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Inhibition of Steel Corrosion in Simulated Oilfield Acidizing Medium Using Metallic Soap from Local Biomaterial

Received: 12 February 2017    Accepted: 9 March 2017    Published: 29 November 2017
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Abstract

Metallic soap prepared by saponification of melon seed oil (Cucumeropsis mannii N) with copper (II) salt was investigated as corrosion inhibitor for mild steel corrosion in 1 M hydrochloric acid solution. Results reveal that the metallic soap inhibited the corrosion process by spontaneous physical adsorption of the phytochemicals of the seed oil onto the mild steel surface. The highest inhibition efficiency of 82.7% was obtained at 30°C with 10 g/L of the metallic soap, but this efficiency decreased with increase in temperature. The fractional surface coverage data best fitted into Temkin adsorption model which was used to predict the inhibitor-metal binding strength as a function of temperature. Atomic Absorption Spectrophotometric assessment of copper (II) ion composition in the inhibitor afforded a value within the safe limit for health, environment and personnel. Density functional theorem (DFT) studies provided supportive evidence of possible involvement of the fatty acid phyto-components in the adsorption process. The mechanism of inhibition was also predicted by applying the recent temperature coefficient of inhibition efficiency equation.

Published in International Journal of Oil, Gas and Coal Engineering (Volume 5, Issue 6)
DOI 10.11648/j.ogce.20170506.16
Page(s) 158-166
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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

Adsorption, Bio-Metallic Soap, Melon Seed Oil, Metallic Soap

References
[1] Ashassi-Sorkhabi, H. and Seifzadeh, D. (2006). The inhibition of steel corrosion in hydrochloric acid solution by juice of Prunus cerasus. International J. Electrochem. Sci, 1 (1), 92-6.
[2] Ajayi, O. O., Omotosho, O. A., Ajanaku, K. O. and Olawore, B. O. (2011). Degradation study of Aluminium alloy in 2M hydrochloric acid in the presence of Chromolaena odorata. J. Eng. Appl. Sci, 6 (1), 10-17.
[3] Davis, G. D. and Von Fraunhofer, J. (2003). Tobacco plant extracts as environmentally benign corrosion inhibitors. Mater. Perform, 42 (2), 56-60.
[4] Noor, E. A., and Al-Moubaraki, A. H. (2008). Thermodynamic study of metal corrosion and inhibitor adsorption processes in mild steel/1-methyl-4 [4′(-X)-styryl pyridinium iodides/hydrochloric acid systems. Mater. Chem. Phy, 110 (1), 145-154.
[5] Olivares, O., Likhanova, N. V., Gomez, B., Navarrete, J., Llanos-Serrano, M. E., Arce, E., and Hallen, J. M. (2006). Electrochemical and XPS studies of decylamides of α-amino acids adsorption on carbon steel in acidic environment. Appl. Surf. Sci, 252 (8), 2894-2909.
[6] Umoren, S. A., Ebenso, E. E., and Ogbobe, O. (2009). Synergistic effect of halide ions and polyethylene glycol on the corrosion inhibition of aluminium in alkaline medium. J. Appl. Polym. Sci, 113 (6), 3533-3543.
[7] Ebenso, E. E., and Oguzie, E. E. (2005). Corrosion inhibition of mild steel in acidic media by some organic dyes. Mater. Lett, 59 (17), 2163-2165.
[8] Cicek, V. and Ozdemir, M. (2013). Characterization Studies Of Aqueous Immersion Solutions Of Novel Environmentally Friendly Organometallic Corrosion Inhibitors Used To Cure Mild Steel Substrates In Corrosive Media. Int. J. Eng. Resear. Applica, 3 (1), 1455-1461.
[9] Ituen, E. B., Essien, E. A., Udo, U. E., and Oluwaseyi, O. R. (2014). Experimental and theoretical study of corrosion inhibition effect of Cucumeropsis mannii N. seed oil metallic soap of zinc on mild steel surface in sulphuric acid. Adv. Appl. Sci. Resear, 5 (3), 26-53.
[10] Essien, E. A., Umoren, S. A., Essien, E. E. and Udoh, A. P. (2012). Preparation and evaluation of Cucumeropsis mannii Naud. seed oil metallic soaps as driers in gloss paint. J. Mater. Environ. Sci, 3 (3), 477-484.
[11] Ahamed, H. A. U., Uddin, M. H., Mannan, M. A., Barua, S. and Hoque, M. A. (2014). Studies on the Isolation, Physico-Chemical Characterization and Microbial Activities of Melon (Cucumis melo) Seed Oil. Int. J. Innov. Sci. Res, 11 (1), 105-111.
[12] Neogi, U., Saumya, R., Mishra, R. K. and Raju, K. C. (2008). Lipid content and in vitro antimicrobial activity of oil seeds of some Indian medicinal plants. Current Res. Bacteriol, 1, 1-6.
[13] Ekpunobi, U. E., Chukwuka, M. O., Ogbuagu, A. S., Ofora, P. U., and Ohaekenyem, E. C. (2014). Efficiency of heavy metallic soap produced from naphthalic acid recovered from used lubricating oil in paint formulation. J. Sci. Technol, 1 (5), 298-302.
[14] Owolabi, J. B., Alabi, K. A. and Lajide, L. (2015). Synthesis and characterization of copper metal soaps from Thevetia peruviana and Hura crepitans seed oils. Scientif. Res. Essays, 10 (23), 649-654.
[15] Ituen, E., Akaranta, O., and James, A. (2016). Green anticorrosive oilfield chemicals from 5-hydroxytryptophan and synergistic additives for X80 steel surface protection in acidic well treatment fluids. J. Mol. Liq, 224, 408-419.
[16] Ebenso, E. E. (1998). Inhibition of aluminium (AA3105) Corrosion in HCl by acetamide and thiourea. Nig. Corros. J, 1 (1); 29-44.
[17] Ituen, E. B. and Udo, U. E. (2012). Phytochemical profile, adsorptive and inhibitive behavior of Costus afer extracts on aluminium corrosion in hydrochloric acid. Der Chem. Sin, 3 (6), 1394-1405.
[18] Lawal, A. O. and Audu, A. A. (2011). Analysis of heavy metals found in vegetables from some cultivated irrigated gardens in the Kano metropolis, Nigeria. J. Environ. Chem. Ecotoxicol, 3 (6), 142-148.
[19] El-Naggar, M. M. (2007). Corrosion inhibition of mild steel in acidic medium by some sulfa drugs compounds. Corros. Sci, 49 (5), 2226-2236.
[20] James, A. O. and Akaranta, O. (2014). Corrosion inhibition of aluminium in 2 M. sulphuric acid using acetone extract of red onion skin. Int. J. Appl. Chem. Sci. Res, 2, 1-10.
[21] Popoola, L. T., Grema, A. S., Latinwo, G. K., Gutti, B. and Balogun, A. S. (2013). Corrosion problems during oil and gas production and its mitigation. Int. J. Ind. Chem, 4 (1), 1-15.
[22] Ituen, E., Akaranta, O., James, A. (2016). Evaluation of Performance of Corrosion Inhibitors Using Adsorption Isotherm Models: An Overview. Chem. Sci. Int. J. 18 (1): 1-34.
[23] Ituen, E., Akaranta, O., James, A., and Sun, S. (2016). Green and sustainable local biomaterials for oilfield chemicals: Griffonia simplicifolia extract as steel corrosion inhibitor in hydrochloric acid. Sus. Mat. Technol. 11: 12-18.
[24] Solomon, M. M., Umoren, S. A., Udosoro, I. I. and Udoh, A. P. (2010). Inhibitive and adsorption behaviour of carboxymethyl cellulose on mild steel corrosion in sulphuric acid solution. Corros. Sci, 52 (4), 1317-1325.
[25] Ahamad, I. and Quraishi, M. A. (2010). Mebendazole: new and efficient corrosion inhibitor for mild steel in acid medium. Corros. Sci, 52 (2), 651-656.
[26] Ostovari, A., Hoseinieh, S. M., Peikari, M., Shadizadeh, S. R. and Hashemi, S. J. (2009). Corrosion inhibition of mild steel in 1M HCl solution by henna extract: A. comparative study of the inhibition by henna and its constituents (Lawsone, Gallic acid, α-d-Glucose and Tannic acid). Corros. Sci, 51 (9), 1935-1949.
[27] Martinez, S. and Štern, I. (2001). Inhibitory mechanism of low-carbon steel corrosion by mimosa tannin in sulphuric acid solutions. J. Appl. Electrochem, 31 (9), 973-978.
[28] Grass, G., Rensing, C. and Solioz, M. (2011). Metallic copper as an antimicrobial surface. Appl. Environ. Microbiol, 77 (5), 1541-1547.
[29] Mathews, S., Kumar, R. and Solioz, M. (2015). Copper Reduction and Contact Killing of Bacteria by Iron Surfaces. Appl. Environ. Microbiol, 81 (18), 6399-6403.
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  • APA Style

    Ekemini Ituen, James Asuquo, Edidiong Essien. (2017). Inhibition of Steel Corrosion in Simulated Oilfield Acidizing Medium Using Metallic Soap from Local Biomaterial. International Journal of Oil, Gas and Coal Engineering, 5(6), 158-166. https://doi.org/10.11648/j.ogce.20170506.16

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    ACS Style

    Ekemini Ituen; James Asuquo; Edidiong Essien. Inhibition of Steel Corrosion in Simulated Oilfield Acidizing Medium Using Metallic Soap from Local Biomaterial. Int. J. Oil Gas Coal Eng. 2017, 5(6), 158-166. doi: 10.11648/j.ogce.20170506.16

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    AMA Style

    Ekemini Ituen, James Asuquo, Edidiong Essien. Inhibition of Steel Corrosion in Simulated Oilfield Acidizing Medium Using Metallic Soap from Local Biomaterial. Int J Oil Gas Coal Eng. 2017;5(6):158-166. doi: 10.11648/j.ogce.20170506.16

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  • @article{10.11648/j.ogce.20170506.16,
      author = {Ekemini Ituen and James Asuquo and Edidiong Essien},
      title = {Inhibition of Steel Corrosion in Simulated Oilfield Acidizing Medium Using Metallic Soap from Local Biomaterial},
      journal = {International Journal of Oil, Gas and Coal Engineering},
      volume = {5},
      number = {6},
      pages = {158-166},
      doi = {10.11648/j.ogce.20170506.16},
      url = {https://doi.org/10.11648/j.ogce.20170506.16},
      eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.ogce.20170506.16},
      abstract = {Metallic soap prepared by saponification of melon seed oil (Cucumeropsis mannii N) with copper (II) salt was investigated as corrosion inhibitor for mild steel corrosion in 1 M hydrochloric acid solution. Results reveal that the metallic soap inhibited the corrosion process by spontaneous physical adsorption of the phytochemicals of the seed oil onto the mild steel surface. The highest inhibition efficiency of 82.7% was obtained at 30°C with 10 g/L of the metallic soap, but this efficiency decreased with increase in temperature. The fractional surface coverage data best fitted into Temkin adsorption model which was used to predict the inhibitor-metal binding strength as a function of temperature. Atomic Absorption Spectrophotometric assessment of copper (II) ion composition in the inhibitor afforded a value within the safe limit for health, environment and personnel. Density functional theorem (DFT) studies provided supportive evidence of possible involvement of the fatty acid phyto-components in the adsorption process. The mechanism of inhibition was also predicted by applying the recent temperature coefficient of inhibition efficiency equation.},
     year = {2017}
    }
    

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    T1  - Inhibition of Steel Corrosion in Simulated Oilfield Acidizing Medium Using Metallic Soap from Local Biomaterial
    AU  - Ekemini Ituen
    AU  - James Asuquo
    AU  - Edidiong Essien
    Y1  - 2017/11/29
    PY  - 2017
    N1  - https://doi.org/10.11648/j.ogce.20170506.16
    DO  - 10.11648/j.ogce.20170506.16
    T2  - International Journal of Oil, Gas and Coal Engineering
    JF  - International Journal of Oil, Gas and Coal Engineering
    JO  - International Journal of Oil, Gas and Coal Engineering
    SP  - 158
    EP  - 166
    PB  - Science Publishing Group
    SN  - 2376-7677
    UR  - https://doi.org/10.11648/j.ogce.20170506.16
    AB  - Metallic soap prepared by saponification of melon seed oil (Cucumeropsis mannii N) with copper (II) salt was investigated as corrosion inhibitor for mild steel corrosion in 1 M hydrochloric acid solution. Results reveal that the metallic soap inhibited the corrosion process by spontaneous physical adsorption of the phytochemicals of the seed oil onto the mild steel surface. The highest inhibition efficiency of 82.7% was obtained at 30°C with 10 g/L of the metallic soap, but this efficiency decreased with increase in temperature. The fractional surface coverage data best fitted into Temkin adsorption model which was used to predict the inhibitor-metal binding strength as a function of temperature. Atomic Absorption Spectrophotometric assessment of copper (II) ion composition in the inhibitor afforded a value within the safe limit for health, environment and personnel. Density functional theorem (DFT) studies provided supportive evidence of possible involvement of the fatty acid phyto-components in the adsorption process. The mechanism of inhibition was also predicted by applying the recent temperature coefficient of inhibition efficiency equation.
    VL  - 5
    IS  - 6
    ER  - 

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Author Information
  • Materials and Oilfield Technology Research Group, Department of Chemistry, University of Uyo, Uyo, Nigeria

  • Materials and Oilfield Technology Research Group, Department of Chemistry, University of Uyo, Uyo, Nigeria

  • Department of Environmental Science, Cyprus International University, Mersin, Turkey

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