Corrosion Protective Performance of "Green" Organic Compounds and Organosilane Films on Steel
暂无分享,去创建一个
[1] W. Ke,et al. Insight into atmospheric corrosion evolution of mild steel in a simulated coastal atmosphere , 2021, Journal of Materials Science & Technology.
[2] S. Wan,et al. Investigation on initial atmospheric corrosion of copper and inhibition performance of 2-phenyl imidazoline based on electrical resistance sensors , 2021 .
[3] Ashish Kumar,et al. Sustainable Inhibitors for Corrosion Mitigation in Aggressive Corrosive Media: A Comprehensive Study , 2021, Journal of Bio- and Tribo-Corrosion.
[4] V. Vorobyova,et al. Evaluation of Reducing Ability and Antioxidant Activity of Fruit Pomace Extracts by Spectrophotometric and Electrochemical Methods , 2020, Journal of analytical methods in chemistry.
[5] V. Vorobyova,et al. Valorization of Food Waste to Produce Eco-Friendly Means of Corrosion Protection and “Green” Synthesis of Nanoparticles , 2020 .
[6] Qin Li,et al. Green inhibitors for steel corrosion in acidic environment: state of art , 2020 .
[7] L. Gao,et al. Vapor phase assembly of benzotriazole and octadecylamine complex films on aluminum alloy surface , 2020, Journal of Coatings Technology and Research.
[8] A. Miralrio,et al. Plant Extracts as Green Corrosion Inhibitors for Different Metal Surfaces and Corrosive Media: A Review , 2020, Processes.
[9] K. Shrivas,et al. Phytochemical screening and determination of phenolics and flavonoids in Dillenia pentagyna using UV-vis and FTIR spectroscopy. , 2020, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[10] M. Skiba,et al. Green Synthesis of Silver Nanoparticles Using Waste Products (Apricot and Black Currant Pomace) Aqueous Extracts and Their Characterization , 2020 .
[11] V. Vorobyova,et al. Raphanus sativus L. Extract as a Scale and Corrosion Inhibitor for Mild Steel in Tap Water , 2020 .
[12] Zibo Pei,et al. Understanding environmental impacts on initial atmospheric corrosion based on corrosion monitoring sensors , 2020 .
[13] L. Gao,et al. Vapor phase assembly of urea–amine compounds and their protection against the atmospheric corrosion of carbon steel , 2020, Journal of Coatings Technology and Research.
[14] R. Suleiman,et al. A critical review on the recent studies on plant biomaterials as corrosion inhibitors for industrial metals , 2019, Journal of Industrial and Engineering Chemistry.
[15] M. Maleeva,et al. Synthesis of thin organic layers containing silane coupling agents and azole on the surface of mild steel. Synergism of inhibitors for corrosion protection of underground pipelines , 2019, Progress in Organic Coatings.
[16] E. Alibakhshi,et al. Assessment of the smart self-healing corrosion protection properties of a water-base hybrid organo-silane film combined with non-toxic organic/inorganic environmentally friendly corrosion inhibitors on mild steel , 2019, Journal of Cleaner Production.
[17] Guohua Zhao,et al. Sustainable valorisation of tomato pomace: A comprehensive review , 2019, Trends in Food Science & Technology.
[18] A. S. Luyt,et al. Kinetics of Alkoxysilanes and Organoalkoxysilanes Polymerization: A Review , 2019, Polymers.
[19] M. Skiba,et al. A novel eco-friendly vapor phase corrosion inhibitor of mild steel , 2019, Pigment & Resin Technology.
[20] E. Alibakhshi,et al. Evaluation of the corrosion protection performance of mild steel coated with hybrid sol-gel silane coating in 3.5 wt.% NaCl solution , 2018, Progress in Organic Coatings.
[21] M. Skiba,et al. Grape Pomace Extract as Green Vapor Phase Corrosion Inhibitor , 2018, Chemistry & Chemical Technology.
[22] E. Ebenso,et al. An overview on plant extracts as environmental sustainable and green corrosion inhibitors for metals and alloys in aggressive corrosive media , 2018, Journal of Molecular Liquids.
[23] M. Skiba,et al. A comprehensive study of grape pomace extract and its active components as effective vapour phase corrosion inhibitor of mild steel , 2018, International Journal of Corrosion and Scale Inhibition.
[24] E. Ebenso,et al. Volatile corrosion inhibitors for ferrous and non-ferrous metals and alloys: A review , 2018, International Journal of Corrosion and Scale Inhibition.
[25] P. Mahanwar,et al. Recent developments in the volatile corrosion inhibitor (VCI) coatings for metal: a review , 2018, Journal of Coatings Technology and Research.
[26] M. Skiba,et al. 4-HYDROXY-3-METHOXYBENZALDEHYDE AS A VOLATILE INHIBITOR ON THE ATMOSPHERIC CORROSION OF CARBON STEEL , 2018 .
[27] E. Alibakhshi,et al. Corrosion Inhibition Performance and Healing Ability of a Hybrid Silane Coating in the Presence of Praseodymium (III) Cations , 2018 .
[28] E. Alibakhshi,et al. Fabrication and characterization of layered double hydroxide/silane nanocomposite coatings for protection of mild steel , 2017 .
[29] C. Simmons,et al. Valorization of tomato pomace by sequential lycopene extraction and anaerobic digestion , 2017 .
[30] G. Vasyliev. Polarization Resistance Measurement in Tap Water: The Influence of Rust Electrochemical Activity , 2017, Journal of Materials Engineering and Performance.
[31] Yu. S. Herasymenko,et al. Corrosion Meters of New Generation Based on the Improved Method of Polarization Resistance , 2017, Materials Science.
[32] O. Chyhyrynets,et al. Study of the Mechanism of Action of the Isopropanol Extract of Rapeseed Oil Cake on the Atmospheric Corrosion of Copper , 2016, Materials Science.
[33] B. Ramezanzadeh,et al. Hybrid silane coating reinforced with silanized graphene oxide nanosheets with improved corrosion protective performance , 2016 .
[34] B. Ramezanzadeh,et al. Studying various mixtures of 3-aminopropyltriethoxysilane (APS) and tetraethylorthosilicate (TEOS) silanes on the corrosion resistance of mild steel and adhesion properties of epoxy coating , 2015 .
[35] A. Tsivadze,et al. Formation of organosilicon self–organizing nanolayers on an iron surface from vapor phase and their effect on corrosion behavior of metal , 2015, Protection of Metals and Physical Chemistry of Surfaces.
[36] O. Chyhyrynets,et al. Mechanism of Formation of the Protective Films on Steel by Volatile Compounds of Rapeseed Cake , 2015, Materials Science.
[37] V. Vorobyova,et al. A Study of Rape-Cake Extract as Eco-Friendly Vapor Phase Corrosion Inhibitor , 2014 .
[38] O. Chyhyrynets,et al. Anticorrosion Properties of the Extract of Rapeseed Oil Cake as a Volatile Inhibitor of the Atmospheric Corrosion of Steel , 2013, Materials Science.
[39] A. Motalebi,et al. Improvement of corrosion performance of 316L stainless steel via PVTMS/henna thin film , 2012 .
[40] S. Trasatti,et al. Aniline-based silane as a primer for corrosion inhibition of aluminium , 2012 .
[41] L. Bazzi,et al. Argan hulls extract: green inhibitor of mild steel corrosion in 1 M HCl solution , 2012, Research on Chemical Intermediates.
[42] Y. Kuznetsov,et al. Formation of protective nano-layers on metals formed by N-benzylbenzylidenimine and (3-aminopropyl)-triethoxysilane from gas-vapor phase , 2011 .
[43] M. Natesan,et al. Thyme extract of thymus vulgar L. as volatile corrosioninhibitor for mild steel in NaCl environment , 2008 .
[44] M. Natesan,et al. Natural thyme as volatile corrosion inhibitor for mild steel in HCI environment , 2008 .
[45] N. Palaniswamy,et al. Wood bark oils as vapour phase corrosion inhibitors for metals in NaCl and SO2 environments , 2005 .
[46] A. Franquet,et al. Composition and thickness of non-functional organosilane films coated on aluminium studied by means of infra-red spectroscopic ellipsometry , 2003 .
[47] M. Petrunin,et al. The Effect of Surface Siloxane Layers on the Penetration of Hydrogen into Iron , 2001 .