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Articles

Development of dynamic method for evaluation of inhibition efficiency on the example of 8-hydroxyquinoline

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Pages 1081-1091 | Received 04 Sep 2017, Accepted 26 Oct 2017, Published online: 06 Nov 2017

References

  • Gerengi H, Mielniczek M, Gece G, et al. Experimental and quantum chemical evaluation of 8-hydroxyquinoline as a corrosion inhibitor for copper in 0.1 M HCl. Ind Eng Chem Res. 2016;55:9614–9624.10.1021/acs.iecr.6b02414
  • Al-Borno A, Islam M, Haleem R. Synergistic effects observed in nitrite – inorganic phosphate inhibitor blends. Corrosion. 1989;45:990–995.10.5006/1.3585018
  • Taylor SR, Chambers BD. Identification and characterization of nonchromate corrosion inhibitor synergies using high-throughput methods. Corrosion. 2008;64:255–270.10.5006/1.3278470
  • Liu XF, Huang SJ, Gu HC. Corrosion protection of an aluminum alloy with nontoxic compound inhibitors in chloride media. Corrosion. 2002;58:826–834.10.5006/1.3287664
  • Toxicological profile for chromium. Rockville (MD): Agency for Toxic Substance. US Public Health Service; 1989. (Report number ATSDR/TP-88/10).
  • Dargahi M, Olsson AL, Tufenkji N, et al. Green technology: tannin-based corrosion inhibitor for protection of mild steel. Corrosion. 2015;71:1321–1329.10.5006/1777
  • Jiang X, Zheng YG, Ke W. Corrosion inhibitor performances for carbon dioxide corrosion of n80 steel under static and flowing conditions. Corrosion. 2005;61:326–334.10.5006/1.3279884
  • Capobianco G, Goatin C, Moretti G, et al. EDTA-hydroxylamine sulfate-Fe2+: an efficient corrosion inhibitor system for an industrial crystallization plant. Corrosion. 1994;50:886–897.10.5006/1.3293479
  • Zhang J, Gong XL, Yu HH, et al. Inhibition behavior of imidazoline phosphate compound inhibitor on Q235 steel in hydrochloric acid medium. Corrosion. 2011;67:045005-1–045005-7.
  • Pournazari SH, Moayed MH, Rahimizadeh M. In situ synthesis of 2-phenylbenzimidazole as an hydrogen sulfide corrosion inhibitor of carbon steel. Corrosion. 2013;69:1195–1204.10.5006/0854
  • Tian H, Cheng YF. Novel inhibitors containing multi-functional groups for pipeline corrosion inhibition in oilfield formation water. Corrosion. 2016;72:472–485.
  • US Congress, Office of Technology Assessment. Environmental policy tools: a user’s guide, OTA-ENV-634. Washington (DC): US Government Printing Office; 1995.
  • Martínez I, Andrade C, Rebolledo N, et al. Corrosion-inhibitor efficiency control: comparison by means of different portable corrosion rate meters. Corrosion. 2010;66:026001–026001-12.
  • Chen T, Moccari A, Macdonald D. Development of controlled hydrodynamic techniques for corrosion testing. Corrosion. 1992;48:239–255.10.5006/1.3315930
  • Stern M, Geary AL. Electrochemical polarisation. 1. A theoretical analysis of the shape of polarization curves. J Electrochem Soc. 1957;104:56–61.10.1149/1.2428496
  • Scully J. Polarization resistance method for determination of instantaneous corrosion rates. Corrosion. 2000;56:199–218.10.5006/1.3280536
  • Darowicki K, Slepski P. Dynamic electrochemical impedance spectroscopy of the first order electrode reaction. J Electroanal Chem. 2003;547:1–8.10.1016/S0022-0728(03)00154-2
  • Darowicki K, Orlikowski J, Arutunow A. Comparative electrochemical analysis of the passive layer cracking process on aluminum alloys performed by means of DC and AC techniques. J Electrochem Soc. 2007;154:C74–C80.10.1149/1.2398880
  • Orlikowski J, Darowicki K, Arutunow A. The effect of strain rate on the passive layer cracking of 304L stainless steel in chloride solutions based on the differential analysis of electrochemical parameters obtained by means of DEIS. J Electroanal Chem. 2005;576:277–285.10.1016/j.jelechem.2004.10.025
  • Darowicki K, Orlikowski J, Arutunow AA. Passive layer cracking studies performed on A95056 aluminum alloy by DEIS and acoustic emission. Electrochem Solid State Lett. 2005;8:B55–B59.10.1149/1.2030468
  • Gerengi H, Jazdzewska A, Kurtay M. A comprehensive evaluation of mimosa extract as a corrosion inhibitor on AA6060 alloy in acid rain solution: part I. Electrochemical AC methods. J Adhes Sci Technol. 2015;29:36–48.
  • Darowicki K, Orlikowski J, Arutunow A. Detection of stress corrosion cracking dynamics by dynamic electrochemical impedance spectroscopy. Corros Eng Sci Technol. 2004;39:255–260.10.1179/147842204X2844
  • Kermannezhad K, Chermahini AN, Momeni MM, et al. Application of amine-functionalized MCM-41 as pH-sensitive nano container for controlled release of 2-mercaptobenzoxazole corrosion inhibitor. Chem Eng J. 2016;306:849–857.10.1016/j.cej.2016.08.004
  • Naik UJ, Jhab PC, Lone MY, et al. Electrochemical and theoretical investigation of the inhibitory effect of two Schiff bases of benzaldehyde for the corrosion of aluminium in hydrochloric acid. J Mol Struct. 2016;1125:63–72.10.1016/j.molstruc.2016.06.054
  • Wang Z, Gong Y, Jing C, et al. Synthesis of dibenzotriazole derivatives bearing alkylene linkers as corrosion inhibitors for copper in sodium chloride solution: a new thought for the design of organic inhibitors. Corros Sci. 2016;113:64–77.10.1016/j.corsci.2016.10.005
  • Gerengi H. Anticorrosive properties of date palm (Phoenix dactylifera L.) fruit juice on 7075 type aluminum alloy in 3.5% NaCl solution. Ind Eng Chem Res. 2012;51:12835–12843.10.1021/ie301771u
  • Lebrini M, Lagrenée M, Traisnel M, et al. Enhanced corrosion resistance of mild steel in normal sulfuric acid medium by 2,5-bis(n-thienyl)-1,3,4-thiadiazoles: electrochemical, X-ray photoelectron spectroscopy and theoretical studies. Appl Surf Sci. 2007;253:9267–9276.10.1016/j.apsusc.2007.05.062
  • Yuce AO, Mert BD, Kardas G, et al. Electrochemical and quantum chemical studies of 2-amino-4-methyl-thiazole as corrosion inhibitor for mild steel in HCl solution. Corros Sci. 2014;83:310–316.10.1016/j.corsci.2014.02.029
  • Umoren SA, Obot IB. Synergistic inhibition between 1-octadecanethiol and iodide ions on X60 pipeline steel for corrosion protection. J Adhes Sci Technol. 2014;28:2054–2068.10.1080/01694243.2014.943873
  • ASTM G3-89(2010), Standard Practice for Conventions Applicable to Electrochemical Measurements in Corrosion Testing, ASTM International, West Conshohocken, PA, 2010, https://www.astm.org
  • El-Egamy SS. Corrosion and corrosion inhibition of Cu–20% Fe alloy in sodium chloride solution. Corros Sci. 2008;50:928–937.10.1016/j.corsci.2007.11.018
  • Teprovich JA Jr, Motyka T, Zidan R. Hydrogen system using novel additives to catalyze hydrogen release from the hydrolysis of alane and activated aluminum. Int J Hydrogen Energy. 2012;37:1594.10.1016/j.ijhydene.2011.10.041
  • Mansfeld F. Tafel slopes and corrosion rates obtained in the pre-Tafel region of polarization curves. Corros Sci. 2005;47:3178–3182.10.1016/j.corsci.2005.04.012
  • Negm NA, Kandile NG, Badr EA, et al. Gravimetric and electrochemical evaluation of environmentally friendly nonionic corrosion inhibitors for carbon steel in 1 M HCl. Corros Sci. 2012;65:94–99.10.1016/j.corsci.2012.08.002
  • Obot IB, Obi-Egbedi NO. Adsorption properties and inhibition of mild steel corrosion in sulphuric acid solution by ketoconazole: experimental and theoretical investigation. Corros Sci. 2010;52:198–204.10.1016/j.corsci.2009.09.002

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