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Corrosion Engineering, Science and Technology
The International Journal of Corrosion Processes and Corrosion Control
Volume 53, 2018 - Issue 6
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Original Articles

Atmospheric corrosion of ASTM A-242 and ASTM A-588 weathering steels in different types of atmosphere

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Pages 449-459 | Received 16 Mar 2018, Accepted 13 Jun 2018, Published online: 24 Jul 2018

References

  • American Society for Testing and Materials. Standard specification for high-strength low-alloy structural steel. Philadelphia: ASTM; 2007; Standard No. A-242 / A-242M-04.
  • American Society for Testing and Materials. Standard specification for high-strength low alloy structural steel with 50 ksi [345 MPa] minimum yield point to 4-in. [100 mm] thick. Philadelphia: ASTM; 2005; Standard No. A-588 / A-588M.
  • Morcillo M, Chico B, Díaz I, et al. Atmospheric corrosion data of weathering steels. A review. Corros Sci. 2013;77:6–24. doi: 10.1016/j.corsci.2013.08.021
  • International Standard Organization. Metallic materials – Tensile testing – Part 1: Method of test at room temperature. Geneva: ISO; 2009; Standard No. 6892-1.
  • International Standard Organization. Metallic materials – Vickers hardness test – Part 1: Test method. Geneve: ISO; 2005; Standard No. 6507-1.
  • American Society for Testing and Materials. Standard specification for structural steel for bridges. Philadelphia: ASTM; 2009; Standard No. A709 /A709M.
  • Pickering FB. Physical metallurgy and the design of steels. London: Applied Science Publishers Ltd.; 1978.
  • Steel Structures Painting Council. Pictorial surface preparation standards for painting steel structures. USA: SSPC; 1967; Standard No. SIS 055900.
  • European Committee for Standardization. Corrosion of metals and alloys – Corrosivity of atmospheres – Measurement of environmental parameters affecting corrosivity of atmospheres. Brussels: ISO; 2012; Standard No. 9225.
  • European Committee for Standardization. Corrosion of metals and alloys – Corrosivity of atmospheres – Classification, determination and estimation. Brussels: ISO; 2012; Standard No. 9223.
  • European Committee for Standardization. Corrosion of metals and alloys – Corrosivity of atmospheres – Determination of corrosion rate of standard specimens for the evaluation of corrosivity. Brussels: ISO; 2012; Standard No. 9226.
  • Hara S, Kamimura T, Miyuki H, et al. Taxonomy for protective ability of rust layer using its composition formed on weathering steel bridge. Corros Sci. 2007;49:1131–1142. doi: 10.1016/j.corsci.2006.06.016
  • Guideline for designing and construction of bridges by weathering steel. Technical Report. Tokyo: Kozai Club; 1993.
  • Larrabee CP, Coburn SK. The atmospheric corrosion of steels as influenced by changes in chemical composition. Proceedings of the 1st International Congress on Metallic Corrosion; 1961; London. p. 279–285.
  • Alcántara J, de la Fuente D, Chico B, et al. Marine atmospheric corrosion of carbon steel: A review. Materials. 2017;10(4):406. doi: 10.3390/ma10040406
  • JCPDS. Powder Diffraction File. Swarthmore (PA): International Center for Diffraction Data; 2004.
  • Pearson's Crystal Structure. Database for Inorganic Compounds. Release 2015/2016: Materials Park, ASM International; 2015.
  • Hiller JE. Phasenumwandlungen im Rost. Werkst Korros. 1966;17:943–951. doi: 10.1002/maco.19660171104
  • Ishikawa T, Kondo Y, Yasukawa A, et al. Formation of magnetite in the presence of ferric oxyhydroxides. Corros Sci. 1998;40(7):1239–1251. doi: 10.1016/S0010-938X(98)00045-6
  • Tanaka H, Mishima R, Hatanaka N, et al. Formation of magnetite rust particles by reacting iron powder with artificial α-, β- and γ-FeOOH in aqueous media. Corros Sci. 2014;78(0):384–387. doi: 10.1016/j.corsci.2013.08.023
  • Morcillo M, Chico B, De la Fuente D, et al. On the mechanism of rust exfoliation in marine environments. J Electrochem Soc. 2017;164(2):C8–C16. doi: 10.1149/2.0131702jes
  • Alcántara J, Chico B, Simancas J, et al. An attempt to classify the morphologies presented by different rust phases formed during the exposure of carbon steel to marine atmospheres. Mater Charact. 2016;118:65–78. doi: 10.1016/j.matchar.2016.04.027
  • Barton K. Protection against atmospheric corrosion: theories and methods. London: John Wiley and Sons; 1976.
  • Schikorr G. On the mechanism of atmospheric corrosion of iron. Werkst Korros. 1963;14:63–80. doi: 10.1002/maco.19630140203
  • Barton K, Beranek E. Reaction mechanism of the atmospheric corrosion of metals in moist air contaminated with sulfur dioxide. Werkst Korros. 1959;10:377–383. doi: 10.1002/maco.19590100606
  • Schwertmann U, Taylor RM. The transformation of lepidocrocite to goethite. Clay Miner. 1972;20:151–158. doi: 10.1346/CCMN.1972.0200306
  • Lide DR. CRC Handbook of chemistry and physics. Boston: CRC Press; 1991.
  • Horton JB. The composition, structure and growth of the atmospheric rust on various steels [Doctoral Thesis]. Bethlehem: Lehigh University; 1964.
  • Morcillo M, Wolthuis R, Alcántara J, et al. Scanning electron microscopy/microRaman: A very useful technique for characterizing the morphologies of rust phases formed on carbon steel in atmospheric exposures. Corrosion. 2016;72(8):1044–1054.
  • de la Fuente D, Alcántara J, Chico B, et al. Characterisation of rust surfaces formed on mild steel exposed to marine atmospheres using XRD and SEM/micro-Raman techniques. Corros Sci. 2016;110:253–264. doi: 10.1016/j.corsci.2016.04.034
  • Askey A, Lyon SB, Thompson GE, et al. The corrosion of iron and zinc by atmospheric hydrogen chloride. Corros Sci. 1993;34(2):233–247. doi: 10.1016/0010-938X(93)90004-Z
  • Refait P, Genin JMR. The mechanism of oxidation of ferrous hydroxychloride Β-Fe2(OH)3Cl in aqueous solution: the formation of akaganeite vs goethite. Corros Sci. 1997;39:539–553. doi: 10.1016/S0010-938X(97)86102-1
  • Rémazeilles C, Refait P. Formation, fast oxidation and thermodynamic data of Fe(II) hydroxychlorides. Corros Sci. 2008;50(3):856–864. doi: 10.1016/j.corsci.2007.08.017
  • Rémazeilles C, Refait P. On the formation of β-FeOOH (akaganéite) in chloride-containing environments. Corros Sci. 2007;49(2):844–857. doi: 10.1016/j.corsci.2006.06.003
  • Refait P, Abdelmoula M, Génin JMR. Mechanisms of formation and structure of green rust one in aqueous corrosion of iron in the presence of chloride ions. Corros Sci. 1998;40(9):1547–1560. doi: 10.1016/S0010-938X(98)00066-3
  • Refait P, Génin JMR. The oxidation of ferrous hydroxide in chloride-containing aqueous media and Pourbaix diagrams of green rust one. Corros Sci. 1993;34(5):797–819. doi: 10.1016/0010-938X(93)90101-L

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