Academic literature on the topic 'Corrosion protection of metal'

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Journal articles on the topic "Corrosion protection of metal"

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Monika, Monika, and Jarosław Frydrych. "Olej ochronny o niskiej lepkości do czasowej ochrony elementów metalowych przed korozją." Nafta-Gaz 76, no. 11 (2020): 864–69. http://dx.doi.org/10.18668/ng.2020.11.12.

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Corrosion of metals is the gradual destruction of metal under the impact of environmental factors. Chemical or electrochemical processes on the surface of the metal cause irreversible changes in the structure of the metal. To prevent this, during storage or transport, the surfaces of metal elements must be protected against environmental factors, which include: high air humidity, acid rain and variable temperature. These factors accelerate the corrosion process, which cannot be eliminated, but can be reduced by protecting metal elements with e.g. protective oils. Some metals have the ability t
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Farag, Ahmed A. "Applications of nanomaterials in corrosion protection coatings and inhibitors." Corrosion Reviews 38, no. 1 (2020): 67–86. http://dx.doi.org/10.1515/corrrev-2019-0011.

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AbstractVarious methodologies are practically used to control corrosion. Coatings are the most widely used to protect metals against corrosion. However, due to the weak resistance of polymer coating against the penetration of corrosive solution to the metal/coating interface, the long-term corrosion resistance of the polymer coating is reduced gradually. Recently, nanoparticles have been added to coatings to improve their chemical, mechanical and optical properties. Nanocoatings either have constituents in the nanoscale or are made out of layers that are under 100 nm. Nanocoatings are used eff
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Patel, Jasbir N., Andre Chang, Haleh Shahbazbegian, and Bozena Kaminska. "Adaptive Corrosion Protection System Using Continuous Corrosion Measurement, Parameter Extraction, and Corrective Loop." International Journal of Corrosion 2016 (2016): 1–11. http://dx.doi.org/10.1155/2016/9679134.

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A simple current-sourced adaptive corrosion protection system (ACPS) along with a technology to extract the protection current from the Tafel plot is presented. For reliable protection of the target metal, first, the Tafel plot of the target metal is obtained. Subsequently, a novel technique proposed in this paper is used to extract the protection current from the Tafel plot. This extracted protection current is fed to the target metal to protect the metal in the existing corrosive environment. This three-part system is adaptively used to update the required protection current to effectively p
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Vujičić, Vladimir. "Metal protection against atmospheric corrosion." Vojnotehnicki glasnik 45, no. 1 (1997): 449–58. http://dx.doi.org/10.5937/vojtehg9704449v.

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Pletnev, Mikhail. "Carbon nanocomposites in the corrosion inhibition." E3S Web of Conferences 225 (2021): 05002. http://dx.doi.org/10.1051/e3sconf/202122505002.

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Metal-carbon nanocomposites have been investigated as additives to enhance the protective effect of corrosion inhibitors. Two inhibitors were used as corrosion inhibitors. Inhibitor VNH-L-113 (1-morpholinomethylcyclohexylamine) belongs to Schiff bases, which are known as corrosion inhibitors in neutral and acidic media. Inhibitor SNPKh-1004 is often used in the practice of corrosion protection in the oil and gas industry. For research, an electrochemical method was applied using corrosion rate meters of the Monicor type. Neutral aqueous solution and water simulating the corrosive environment o
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Konno, Yoshiki, Etsushi Tsuji, Yoshitaka Aoki, Toshiaki Ohtsuka, and Hiroki Habazaki. "Corrosion protection of iron using porous anodic oxide/conducting polymer composite coatings." Faraday Discussions 180 (2015): 479–93. http://dx.doi.org/10.1039/c4fd00232f.

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Conducting polymers (CPs), including polypyrrole, have attracted attention for their potential in the protection of metals against corrosion; however, CP coatings have the limitation of poor adhesion to metal substrates. In this study, a composite coating, comprising a self-organized porous anodic oxide layer and a polypyrrole layer, has been developed on iron. Because of electropolymerization in the pores of the anodic oxide layer, the composite coating showed improved adhesion to the substrate along with prolonged corrosion protection in a NaCl aqueous corrosive environment. The anodic oxide
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Zhang, Xin, Xue Dong Wu, Jian Zhong Li, Hui Wang, Dan Dai, and Zhen Lun Song. "Anticorrosion Behaviors of Quaternary Polyethyleneimine in Acidic Environment." Materials Science Forum 610-613 (January 2009): 136–41. http://dx.doi.org/10.4028/www.scientific.net/msf.610-613.136.

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Polymeric compounds are of great interest as corrosion inhibitors in acidic environment due to their inherent stability. Polymeric film is effectively used for the protection of metals partly owing to their capacity to act as a physical barrier between the metal surface and the corrosive environment. In this paper, a cation polyelectrolyte inhibitor (Quaternary Polyethyleneimine, QPEI) was prepared. The quality and inhibition efficiency of QPEI self-adsorbed films were studied by polarization curve and electrochemical impedance spectroscopy, respectively. The compositions and morphologies of t
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Han, Man Hae, and Han Seung Lee. "An Experimental Study on the Application of Cathodic Protection Method Applying Zn-Al Metal Spray on the RC Structure." Key Engineering Materials 385-387 (July 2008): 665–68. http://dx.doi.org/10.4028/www.scientific.net/kem.385-387.665.

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Cathodic Protection Method was introduced as a corrosion protection method of metals under the ground or sea. Since 1970, it was applied to corrosion protection method of reinforced concrete structures. After 1990, this method has been used around the world, and its usability was proved. But this method has some problems on the aspect of construction and economy. In order to solve these problems, Cathodic Protection Method by using high durable metal spray was developed. First, the specimen was covered with anodic materials (Zn, Al) by using metal spray. And a performance of corrosion protecti
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Leach, J. S. Llewelyn. "Metal Corrosion Damage and Protection Technology." Surface Engineering 6, no. 4 (1990): 255–56. http://dx.doi.org/10.1179/sur.1990.6.4.255.

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Leach, J. S. Llewelyn. "Metal Corrosion Damage And Protection Technology." British Corrosion Journal 25, no. 4 (1990): 254–55. http://dx.doi.org/10.1179/000705990799156319.

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Dissertations / Theses on the topic "Corrosion protection of metal"

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Doherty, Matthew James. "Corrosion protection of metal packaging containers : the role of lacquers." Thesis, University of Oxford, 2004. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.409716.

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Thurber, Casey Ray. "Electrodeposited Metal Matrix Composites for Enhanced Corrosion Protection and Mechanical Properties." Thesis, University of North Texas, 2016. https://digital.library.unt.edu/ark:/67531/metadc849736/.

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In the oil and gas industry, high corrosion resistance and hardness are needed to extend the lifetime of the coatings due to exposure to high stress and salt environments. Electrodeposition has become a favorable technique in synthesizing coatings because of low cost, convenience, and the ability to work at low temperatures. Electrodeposition of metal matrix composites has become popular for enhanced corrosion resistance and hardness in the oil and gas industry because of the major problems that persist with corrosion. Two major alloys of copper-nickel, 90-10 and 70-30, were evaluated for micr
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Gopalakrishna, Jayashri Sham. "Corrosion protection of advanced surface coatings for decorative applications." Swinburne Research Bank, 2008. http://hdl.handle.net/1959.3/35042.

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Thesis (PhD) - Swinburne University of Technology, School of Engineering and Science, 2008.<br>A thesis submitted for the degree of Doctor of Philosophy, School of Engineering and Science, Swinburne University of Technology, 2008. Typescript. Includes bibliographical references (p. 189-204).
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Jadhav, Niteen. "Novel Conducting Polymer Containing Composite Coatings for the Corrosion Protection of Metal Alloys." Diss., North Dakota State University, 2013. https://hdl.handle.net/10365/27037.

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Corrosion is a persistent problem faced by manmade structures made up of metal alloys. Aluminum 2024-T3 is high strength, light weight alloy used in aerospace applications. It suffers from the problem of corrosion due to its composition. Cold rolled steel is employed in structural applications but undergoes severe corrosion when exposed to corrosive conditions. Coatings are one of the best avenues to protect metal alloys from the corrosion. Traditional coating systems such as barrier type coatings, metal rich coatings, and inhibitor containing coatings have their own drawbacks. Conducting poly
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ZHU, DANQING. "CORROSION PROTECTION OF METALS BY SILANE SURFACE TREATMENT." University of Cincinnati / OhioLINK, 2005. http://rave.ohiolink.edu/etdc/view?acc_num=ucin1115992852.

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Xu, Hong. "Magnesium Alloy Particulates used as Pigments in Metal-Rich Primer System for AA2024 T3 Corrosion Protection." Diss., North Dakota State University, 2011. https://hdl.handle.net/10365/28838.

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As an alternative to the present toxic chromate-based coating system now in use, the Mg-rich primer technology has been designed to protect Al alloys (in particular Al 2024 T3) and developed in analogy to Zn-rich primers for steel substrate. As an expansion of this concept, metal-rich primer systems based on Mg alloy particles as pigments were studied. Five different Mg alloy pigments, AM60, AZ91B, LNR91, AM503 and AZG, were characterized by using the same epoxy-polyamide polymer as binder, a same dispersion additive and the same solvent. Different Mg alloy-rich primers were formulated by vary
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Xu, Hong. "Magnesium Alloy Particulates Used as Pigments in Metal-Rich Primer System for AA2024 T3 Corrosion Protection." Diss., North Dakota State University, 2010. https://hdl.handle.net/10365/28378.

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As an alternative to the present toxic chromate-based coating system now in use, the Mg-rich primer technology has been designed to protect A1 alloys (in particular A1 2024 T3) and developed in analogy to Zn-rich primers for steel substrate. As an expansion of this concept, metal-rich primer systems based on Mg alloy particles as pigments were studied. Five different Mg alloy pigments. AM60, A719B, LNR91, AM503 and AZG, were characterized by using the same epoxy-polyamide polymer as binder, a same dispersion additive and the same solvent. Different Mg alloy-rich primers were formulated by vary
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GANDHI, JASPREET SINGH. "ELECTRODEPOSITION OF ORGANOFUNCTIONAL SILANES FOR IMPROVED CORROSION PROTECTION OF METALS." University of Cincinnati / OhioLINK, 2004. http://rave.ohiolink.edu/etdc/view?acc_num=ucin1097867674.

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Jardy, Alain. "Equilibres en solution des diphosphates metalliques : depot et proprietes de films de diphosphates en protection contre la corrosion." Paris 6, 1987. http://www.theses.fr/1987PA066107.

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Determination des constantes des complexes formes entre les ions diphosphate et differents cations metalliques permettant un choix raisonne des conditions optimales de formation d'un depot adherent de diphosphate metallique pour la protection contre la corrosion. Application a la protection d'un acier galvanise au contact des eaux de distribution
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Shah, Kunal G. "Conducting Polymers / Polyimide-Clay Nanocomposite Coatings for Corrosion Protection of AA-2024 Alloy." Cincinnati, Ohio : University of Cincinnati, 2004. http://rave.ohiolink.edu/etdc/view?acc%5Fnum=ucin1083723910.

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Books on the topic "Corrosion protection of metal"

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Metal corrosion damage and protection technology. Allerton Press, 1990.

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Symposium on the Corrosion and Protection of Light Metals (2003 Orlando, Fla.). Corrosion and protection of light metal alloys: Proceedings of the International Symposium. Edited by Buchheit R. G, Electrochemical Society Corrosion Division, and Electrochemical Society Meeting. Electrochemical Society, 2004.

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Corrosion engineering handbook.: Atmospheric and media corrosion of metals. 2nd ed. CRC Press, 2007.

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An introduction to corrosion and protection of metals. Chapman and Hall, 1985.

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Wranglén, Gösta. An Introduction to Corrosion and Protection of Metals. Springer Netherlands, 1985. http://dx.doi.org/10.1007/978-94-009-4850-1.

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Donovan, P. D. Protection of metals from corrosion in storage and transit. E. Horwood, 1986.

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Electrocorrosion and protection of metals: General approach with particular consideration to electrochemical plants. Elsevier, 2008.

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Boy, J. H. Development of new materials and design configurations to improve ceramic anode performance. US Army Corps of Engineers, Construction Engineering Research Laboratory, 1986.

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International Symposium on the Conservation and Restoration of Cultural Property (13th 1989 Tokyo, Japan). Current problems in the conservation of metal antiquities. Tokyo National Research Institute of Cultural Properties, 1993.

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McGill, Galen E. Field application of a thermal-sprayed titanium anode for cathodic protection of reinforcing steel in concrete: Final report. Oregon Dept. of Transportation, Research Unit, 1999.

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Book chapters on the topic "Corrosion protection of metal"

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Wranglén, Gösta. "Corrosion protection by change of the electrode potential metal/corrosive medium." In An Introduction to Corrosion and Protection of Metals. Springer Netherlands, 1985. http://dx.doi.org/10.1007/978-94-009-4850-1_14.

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Gibalenko, O. M., and V. A. Gibalenko. "Corrosion Protection of Metal Structures in Manufacturing Conditions." In Lecture Notes in Civil Engineering. Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-42939-3_5.

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Bocchetta, Patrizia, Katy Voisey, Liana Anicai, Teodor Visan, and Filippo Selleri. "Corrosion Protection of Metal Alloys by Laser Cladding." In Laser Cladding of Metals. Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-53195-9_7.

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Wranglén, Gösta. "Corrosion testing." In An Introduction to Corrosion and Protection of Metals. Springer Netherlands, 1985. http://dx.doi.org/10.1007/978-94-009-4850-1_16.

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Wranglén, Gösta. "Atmospheric corrosion." In An Introduction to Corrosion and Protection of Metals. Springer Netherlands, 1985. http://dx.doi.org/10.1007/978-94-009-4850-1_9.

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Wranglén, Gösta. "Corrosion protection by change in the corrosive medium." In An Introduction to Corrosion and Protection of Metals. Springer Netherlands, 1985. http://dx.doi.org/10.1007/978-94-009-4850-1_13.

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Wranglén, Gösta. "Corrosion protection by change of metal and by design." In An Introduction to Corrosion and Protection of Metals. Springer Netherlands, 1985. http://dx.doi.org/10.1007/978-94-009-4850-1_12.

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Wranglén, Gösta. "Corrosion in soil." In An Introduction to Corrosion and Protection of Metals. Springer Netherlands, 1985. http://dx.doi.org/10.1007/978-94-009-4850-1_10.

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Peter, Anjali, and Sanjay K. Sharma. "Corrosion: Introduction." In Corrosion Protection of Metals and Alloys Using Graphene and Biopolymer Based Nanocomposites. CRC Press, 2020. http://dx.doi.org/10.1201/9781315171364-2.

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Wranglén, Gösta. "Corrosion in dry gases." In An Introduction to Corrosion and Protection of Metals. Springer Netherlands, 1985. http://dx.doi.org/10.1007/978-94-009-4850-1_11.

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Conference papers on the topic "Corrosion protection of metal"

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STRACHOTOVÁ, Kristýna Charlotte, and Milan KOUŘIL. "PROTECTION OF LEAD STORED IN MUSEUM STORAGE CABINETS AGAINST CORROSION BY MEANS OF VAPOUR PHASE CORROSION INHIBITORS." In METAL 2020. TANGER Ltd., 2020. http://dx.doi.org/10.37904/metal.2020.3576.

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Moji, Yukimori. "New Technology Bonding Corrosion Protection and Durability." In Annual Aerospace/Airline Plating and Metal Finishing Forum and Exposition. SAE International, 1985. http://dx.doi.org/10.4271/850703.

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Fernandes, Hugo S. "Protection Coating of Metal Bridges." In IABSE Symposium, Guimarães 2019: Towards a Resilient Built Environment Risk and Asset Management. International Association for Bridge and Structural Engineering (IABSE), 2019. http://dx.doi.org/10.2749/guimaraes.2019.1277.

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&lt;p&gt;"Uncoated steel when in contact with the atmosphere, water and soil is subject to corrosion, which can cause damage. To avoid damage from corrosion, steel structures are usually coated to withstand corrosion stresses over the life of the structure. "- ISO 12944&lt;/p&gt;&lt;p&gt;This paper presents Anticorrosive coating in Metal Bridges including different surface preparations namely by abrasive blasting to grade Sa 2 ½ and very high-pressure water jetting to the grade Wa 2&lt;/p&gt;&lt;p&gt;½.&lt;/p&gt;&lt;p&gt;Depending on the type of surface preparation, different painting schemes
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Gu, Yuan, Ning Li, Fugang Zhang, and Lu Li. "Corrosion and protection of submarine metal components in seawater." In 2009 8th International Conference on Reliability, Maintainability and Safety (ICRMS 2009). IEEE, 2009. http://dx.doi.org/10.1109/icrms.2009.5270040.

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Huang, Chang-shan, Jin-ying Wu, Ming Ding, et al. "Study on Corrosion of Zinc Metal in Acid Environment." In 2018 7th International Conference on Energy and Environmental Protection (ICEEP 2018). Atlantis Press, 2018. http://dx.doi.org/10.2991/iceep-18.2018.198.

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Payer, J. H., K. M. Fink, J. J. Perdomo, R. E. Rodriguez, I. Song, and B. Trautman. "Corrosion and Cathodic Protection at Disbonded Coatings." In 1996 1st International Pipeline Conference. American Society of Mechanical Engineers, 1996. http://dx.doi.org/10.1115/ipc1996-1852.

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The effectiveness of cathodic protection to control corrosion and the resulting corrosion rate of pipelines arc determined by the chemical and electrochemical conditions at local areas along the pipeline. The disbonding of coatings and tapes is also controlled to a large extent by the chemical and electrochemical conditions. Processes that occur on the metal surface and their effect on corrosion and cathodic protection are discussed with respect to real pipeline conditions. Disbonded coatings on steel can interfere with the current distribution from cathodic protection. Shielding the current u
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Xuechao, ZHANG, CHEN Hao, CHENG Lu, YUN Feng, and LV Lei. "Corrosion and Protection of Metal Equipment in West Inner Mongolian Power Grid." In 2020 3rd International Conference on Electron Device and Mechanical Engineering (ICEDME). IEEE, 2020. http://dx.doi.org/10.1109/icedme50972.2020.00014.

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Wood, J. H., A. D. Foster, and P. W. Schilke. "High Temperature Coating for Improved Oxidation/Corrosion Protection." In ASME 1989 International Gas Turbine and Aeroengine Congress and Exposition. American Society of Mechanical Engineers, 1989. http://dx.doi.org/10.1115/89-gt-239.

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As the firing temperatures of land-based gas turbines have increased in recent years, greater demands are being made on component materials. In particular, the increased surface metal temperatures of first stage buckets has shifted the nature of the protection required of bucket coatings from that of strictly high temperature hot corrosion resistance to that of both hot corrosion and oxidation protection. Characteristics of low temperature hot corrosion, high temperature hot corrosion and high temperature oxidation are presented. An overview of GE bucket coating materials is given and related
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Lester, T., S. J. Harris, D. Kingerley, and S. Matthews. "Thermally Sprayed Ternary Materials for Enhanced Corrosion Protection." In ITSC 1997, edited by C. C. Berndt. ASM International, 1997. http://dx.doi.org/10.31399/asm.cp.itsc1997p0183.

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Abstract Thermal spraying has been used to protect many steel structures from aqueous corrosion using Zinc and Aluminium, and to some extent their alloy coatings to provide galvanic protection. The lifetimes of the coatings can approach 50 years even when exposed in severe marine environments. Zinc coatings work by continuously sacrificing themselves and slowly dissipating over time. Aluminium coatings passivate more readily and form a barrier layer, the passivity makes them less able to protect damaged areas and to self heal. A new ternary coating system involving Aluminium, Zinc and Magnesiu
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Chevil, Karina, Abdoulmajid Eslami, Weixing Chen, et al. "Developing Cathodic Protection Based on Disbondment Geometry." In 2012 9th International Pipeline Conference. American Society of Mechanical Engineers, 2012. http://dx.doi.org/10.1115/ipc2012-90675.

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Coating disbondment on pipelines is a common phenomenon that leads to exposure of the pipeline metal to ground water solutions, promoting a corrosive environment which is associated with stress corrosion cracking (SCC). This investigation tracks the corrosion behavior of X-65 steel at different coating disbondments at Open Circuit Potential (OCP) conditions through weight loss tests, as well as SEM analysis. For the weight loss test, X-65 coupons were placed into a vertical coupon holder with varying gap sizes between the coupons and the shielding (2 mm 5 mm, and 10 mm) simulating the coating
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Reports on the topic "Corrosion protection of metal"

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Ang, Caen K., Joseph R. Burns, Kurt A. Terrani, and Yutai Katoh. Examination of Hybrid Metal Coatings for Mitigation of Fission Product Release and Corrosion Protection of LWR SiC/SiC. Office of Scientific and Technical Information (OSTI), 2016. http://dx.doi.org/10.2172/1346647.

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Smith, Charles, Charles Smith, Tom Siewert, Brajendra Mishra, David Olson, and Angelique Lassiegne. Coatings for corrosion protection. National Institute of Standards and Technology, 2005. http://dx.doi.org/10.6028/nist.sp.1035.

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METAL STORM INC ARLINGTON VA. Metal Storm Active Protection System. Defense Technical Information Center, 2007. http://dx.doi.org/10.21236/ada465920.

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Tortorelli, P. F. Corrosion protection of ultrahigh temperature intermetallic alloys. Office of Scientific and Technical Information (OSTI), 1996. http://dx.doi.org/10.2172/450766.

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Enos, David, and Kimberly Martinez. Durability of Corrosion Protection Coatings for Aluminum. Office of Scientific and Technical Information (OSTI), 2017. http://dx.doi.org/10.2172/1505403.

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Lian, T., S. Day, and J. Farmer. CORROSION STUDY OF AMORPHOUS METAL RIBBONS. Office of Scientific and Technical Information (OSTI), 2006. http://dx.doi.org/10.2172/892070.

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Lian, T., S. Day, and J. Farmer. CORROSION RESISTANCE OF STRUCTURAL AMORPHOUS METAL. Office of Scientific and Technical Information (OSTI), 2006. http://dx.doi.org/10.2172/895719.

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Parkhill, Robert M., Nicholas A. Kotov, and Edward T. Knobbe. Investigation of Integrated Coating System for Corrosion Protection. Defense Technical Information Center, 2002. http://dx.doi.org/10.21236/ada409358.

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Turner, J. A., H. Wang, and M. P. Brady. Corrosion Protection of Metallic Bipolar Plates for Fuel Cells. Office of Scientific and Technical Information (OSTI), 2005. http://dx.doi.org/10.2172/15016870.

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Sarin, V., and M. Auger. Corrosion protection of SiC-based ceramics with CVDMullite coatings. Office of Scientific and Technical Information (OSTI), 1997. http://dx.doi.org/10.2172/663380.

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