Evaluation of Polyether Copolymer as Green Scale and Corrosion Inhibitor in Seawater
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Guangqing Liu
Abstract
A novel environmentally friendly type of corrosion and scale inhibitor, maleic anhydride-allylpolyethoxy carboxylate copolymer (ML10), was synthesized and characterized by FT-IR and 1H-NMR spectroscopic techniques. The anti-scale property of ML10 in seawater was also studied by static tests for scale and the scale deposits were analyzed by X-ray diffraction (XRD) and SEM, respectively. The results showed that the scale deposits surface morphology and size were changed in the presence of ML10. The performance of the synthesized copolymer as corrosion inhibitor for mild steel corrosion was evaluated by potentiodynamic polarization and electrochemical impedance spectroscopy (EIS) technique. The experimental results indicate that ML10 has a good corrosion inhibition performance and the inhibition efficiency increases with the increase of the ML10 concentration. The adsorption of ML10 obeys Langmuir adsorption isotherm with relatively high value of free energy of adsorption ΔGadsθ. Scanning electron microscopy (SEM) indicated that the corrosion inhibition is due to the formation of a chemisorbed film on the mild steel.
Kurzfassung
Ein neuartiger umweltfreundlicher Korrosions- und Kalkablagerungsinhibitor, Maleinsäureanhydrid-Allylpolyethoxycarboxylat-Copolymer (ML10), wurde synthetisiert und durch FT-IR- und 1H-NMR-Spektroskopie charakterisiert. Die Antikalkeigenschaft von ML10 in Meerwasser wurde auch durch statische Tests auf Kalk (Kesselstein) untersucht, und die Kesselsteinablagerungen wurden mittels Röntgenbeugung (XRD) bzw. SEM analysiert. Die Ergebnisse zeigten, dass die Morphologie und Größe der Ablagerungsoberflächen in Gegenwart von ML10 verändert wurden. Die Leistung des synthetisierten Copolymers als Korrosionsinhibitor für die Korrosion von Weichstahl wurde durch potentiodynamische Polarisation und elektrochemische Impedanzspektroskopie (EIS) bewertet. Die experimentellen Ergebnisse zeigen, dass ML10 ein guter Korrosionsinhibitor ist und die Inhibierungseffizienz mit zunehmender ML10-Konzentration ansteigt. Die Adsorption von ML10 gehorcht der Langmuir-Adsorptionsisotherme mit einer relativ hohen freien Adsorptionsenergie ΔGadsθ. Die Rasterelektronenmikroskopie (SEM) zeigte an, dass die Korrosionsinhibierung auf die Bildung eines chemisorbierten Films auf dem Baustahl zurückzuführen ist.
References
1. Kucera, J.: Desalination Water From Water, Scrivener Publishing, Wiley, New Jersey, USA, 20143–6. PMid:25006656; 10.1002/9781118904855Search in Google Scholar
2. Wang, H.Zhou, Y.Liu, G.Huang, J.Yao, Q.Ma, S.Cao, K.Liu, Y.Tian, Yu.Wu, W.Sun, W. and Hu, Z.: Tenside. Surfact. Det.51 (2014) 248–256. 10.3139/113.110305Search in Google Scholar
3. Mobin, M. and Noori, S.: Tenside. Surfact. Det.53 (2016) 357–367. 10.3139/113.110442Search in Google Scholar
4. Mobin, M. and Masroor, S.: Tenside. Surfact. Det.53 (2016) 157–167. 10.3139/113.110421Search in Google Scholar
5. Thomas, R. and Umapathyand, M. J.: Tenside. Surfact. Det.52 (2015) 396–405. 10.3139/113.110391Search in Google Scholar
6. Sharma, V.Borse, M.Jauhari, S.Pai, K. B. and Devi, S.: Tenside. Surfact. Det.42 (2005) 163–167. 10.3139/113.100253Search in Google Scholar
7. Liu, G.Xue, M.Liu, Q.Zhou, Y. and Huang, J.: Tenside. Surfact. Det.53 (2016) 235–242. 10.3139/113.110428Search in Google Scholar
8. Achary, G.Naik, Y. A.Kumar, S. V. and Venkatesha, T. V.: Sherigara, B.S. and Appl. Surf. Sci.254 (2008) 5569–5573. 10.1016/j.apsusc.2008.02.103Search in Google Scholar
9. Karthikaiselvi, R.: and Subhashini, S. Arab. J. Chem.10 (2017) S627–S635. 10.1016/j.arabjc.2012.10.024.Search in Google Scholar
10. Biswas, A.Pal, S. and Udayabhanu, G.: Appl. Surf. Sci.353 (2015) 173–183. 10.1016/j.apsusc.2015.06.128Search in Google Scholar
11. Wang, H.Peng, C.Jian, Y.Fang, C.Wang, X.Li, X. and Li, C.: Tenside. Surfact. Det.54 (2017) 238–241. 10.3139/113.110501Search in Google Scholar
12. Benchikh, A.Aitout, R.Makhloufi, L.Benhaddad, L. and Saidani, B.: Desalination249 (2009) 466–474. 10.1016/j.desal.2008.10.024Search in Google Scholar
13. Al-Sabagh, M.Migahed, M. A. and Abd-El-Raouf, M.: Chem. Eng. Comm.199 (2012) 737–750. 10.1080/00986445.2011.596597Search in Google Scholar
14. Al-Hamzah, A. A. and Fellows, C. M.: Desalination359 (2015) 22–25. 10.1016/j.desal.2014.12.027Search in Google Scholar
15. Koelmans, A. A., Vander, H. A., Knijff, L. M. and Aalderink, R. H.: Water. Res.35 (15) (2001) 3517–3536. 10.1016/S0043-1354(01)00095-1Search in Google Scholar
16. Wang, C., Zhu, D. Y. and Wang, X. K. J.: Appl. Polym. Sci.115 (2010) 2149–2155. 10.1002/app.29626Search in Google Scholar
17. Liu, G.Zhou, Y.Huang, J.Yao, Q.Ling, L.Zhang, P.Fu, C.Wu, W.Sun, W. and Hu, Z.: Clean – Soil, Air, Water, 43 (2015) 989–994. 10.1002/clen.201100569Search in Google Scholar
18. Fu, C.Zhou, Y.Liu, G.Huang, J.Sun, W. and Wu, W.: Ind. Eng. Chem. Res.50 (2011)10393–10399. 10.1021/ie200051rSearch in Google Scholar
19. Gao, Y.Fan, L.Ward, L. and Liu, Z.: Desalination365 (2015) 220–226. 10.1016/j.desal.2015.03.006Search in Google Scholar
20. Chen, J.Xu, L.Jian, H.Min, S. and Wu, Q.Desalination358 (2015) 42–48. 10.1016/j.desal.2014.11.010Search in Google Scholar
21. Liu, G.Xue, M.Liu, Q. and Zhou, Y.: Des. Monomers. Polym.20 (2017) 397–405. 10.1080/15685551.2017.1296530Search in Google Scholar PubMed PubMed Central
22. El Dahan, H. A. and Hegazy, H. S.: Desalination127 (2000) 111–118. 10.1016/S0011-9164(99)00196-4Search in Google Scholar
23. HaradaA. and Kataoka K.J: Am Chem Soc121 (1999) 9241–9242. 10.1021/ja9919175Search in Google Scholar
24. HaradaA. and KataokaK.Macromolecules. 31 (1998) 288–294. 10.1021/ma971277vSearch in Google Scholar
25. Vélez, W.Matta, F. and Ziehl, P.: Mater. Struct49 (2016) 507–520. 10.1617/s11527-014-0514-1Search in Google Scholar
26. Mansfeld, F. J.: Solid. State. Electrochem13 (2009) 515–520. 10.1007/s10008-008-0652-xSearch in Google Scholar
27. Rosliza, R.Seninb, H. B. and Nikc, W. B. W.Colloids Surf. A Physicochem. Eng. Asp.315 (2008) 185–189. 10.1016/j.colsurfa.2007.06.061Search in Google Scholar
28. Rosliza, R.Wan, W. B.Nikc, S.Izmand, Y. and Prawoto, Curr.: Appl. Phys10 (2010) 923–929. 10.1016/j.cap.2009.11.074Search in Google Scholar
29. Moradi, M.Duan, J. and Du, X.: Corros. Sci69 (2013) 338–345. 10.1016/j.corsci.2012.12.017Search in Google Scholar
30. Matsuda, S. and Uhlig, H. H.: J. Electrochem. Soc.111 (2) (1964)156–161. 10.1149/1.2426075Search in Google Scholar
31. Amar, H.Braisaz, T. and Villemin, D.: Mater. Chem. Phys110 (2008) 1–6. 10.1016/j.matchemphys.2007.10.001Search in Google Scholar
32. Kumar, C. B. P. and Mohana, K. N.Int. Sch. Res. Notices2013 (2013) 1–9. 10.1093/imrn/rnr226Search in Google Scholar
33. Migahed, M. A.Shaban, M. M.Fadda, A. A.Ali, T. A. and Negm, N. A.RSC Adv.5 (2015) 104480–104492. 10.1039/C5RA15112KSearch in Google Scholar
34. Migahed, M. A.Attia, A. A. and Habib, R. E.: RSC Adv.5 (2015) 57254–57262. 10.1039/C5RA11082CSearch in Google Scholar
35. Morad, M. S.: J. Appl. Electrochem.29 (1999) 619–626. 10.1023/A:1026445521937Search in Google Scholar
36. Abd El-Maksoud, S. A. and Fouda, A. S.: Mater. Chem. Phys.93 (2005) 84–90. 10.1016/j.matchemphys.2005.02.020Search in Google Scholar
37. Ahin, M. S.Bilgic, S. and Yılmaz, H.: Appl. Surf. Sci.195 (2002) 1–7. 10.1016/S0169-4332(01)00783-8Search in Google Scholar
38. Badawi, A. M.Hegazy, M. A.El-Sawy, A. A.Ahmed, H. M. and Kamel, W. M.: Mater. Chem. Phys.124 (2010) 458–465. 10.1016/j.matchemphys.2010.06.066Search in Google Scholar
39. Abdallah, M.: Corros. Sci.44 (2002) 717–728. 10.1016/S0010-938X(01)00100-7Search in Google Scholar
40. Szklarska-Smialowska, Z.: Corros. Sci.18 (1978) 97–101. 10.1016/0010-938X(78)90030-6Search in Google Scholar
© 2019, Carl Hanser Publisher, Munich
Articles in the same Issue
- Contents/Inhalt
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- Review Article
- Characteristic and Application of Anionic Dimeric Surfactants: A Review
- Body Care
- Reduction of Irritation Potential Caused by Anionic Surfactants in the Use of Various Forms of Collagen Derived from Marine Sources in Cosmetics for Children
- Environmental Chemistry
- Optimization of Biosorption Conditions for Surfactant Induced Decolorization by Anaerobic Sludge Granules
- Evaluation of Polyether Copolymer as Green Scale and Corrosion Inhibitor in Seawater
- Physical Chemistry
- Schiff' Bases as Corrosion Inhibitor for Aluminum Alloy in Hydrochloric Acid Medium
- Study on the Synergism of Binary Surfactant Mixtures containing N-lauroyl-N-methyl Taurine Sodium
- Effect of Spacer on Surface Activity and Foam Properties of Betaine Gemini Surfactants
- Study on the Complex System of Sodium Lauryl Diphenyl Ether Disulfonate and Dodecyl Dimethyl Hydroxyethyl Ammonium Chloride
- Synthesis
- Synthesis and Properties of 9,10-Dihydroxystearic Acid Ethoxylate
- Synthesis and Properties of Lauryl Phosphate Monoester
- Novel Surfactants
- Dehydroabietyl Glycidyl Ether Grafted Hydroxyethyl Chitosan: Synthesis, Characterization and Physicochemical Properties
Articles in the same Issue
- Contents/Inhalt
- Contents
- Review Article
- Characteristic and Application of Anionic Dimeric Surfactants: A Review
- Body Care
- Reduction of Irritation Potential Caused by Anionic Surfactants in the Use of Various Forms of Collagen Derived from Marine Sources in Cosmetics for Children
- Environmental Chemistry
- Optimization of Biosorption Conditions for Surfactant Induced Decolorization by Anaerobic Sludge Granules
- Evaluation of Polyether Copolymer as Green Scale and Corrosion Inhibitor in Seawater
- Physical Chemistry
- Schiff' Bases as Corrosion Inhibitor for Aluminum Alloy in Hydrochloric Acid Medium
- Study on the Synergism of Binary Surfactant Mixtures containing N-lauroyl-N-methyl Taurine Sodium
- Effect of Spacer on Surface Activity and Foam Properties of Betaine Gemini Surfactants
- Study on the Complex System of Sodium Lauryl Diphenyl Ether Disulfonate and Dodecyl Dimethyl Hydroxyethyl Ammonium Chloride
- Synthesis
- Synthesis and Properties of 9,10-Dihydroxystearic Acid Ethoxylate
- Synthesis and Properties of Lauryl Phosphate Monoester
- Novel Surfactants
- Dehydroabietyl Glycidyl Ether Grafted Hydroxyethyl Chitosan: Synthesis, Characterization and Physicochemical Properties