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Tytuł artykułu

Monitoring of atmospheric corrosion. Examples and their application

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
PL
Możliwości wykorzystania wyników monitorowania korozyjności atmosfery
Języki publikacji
EN
Abstrakty
EN
Concepts of an assessment of corrosion losses in natural environment is briefly overviewed. Selected examples obtained by means of corrosion monitoring are presented. Their applications for prediction and imaging of the corrosion rate of materials in some areas of the country are described. The results obtained by corrosion monitoring can be used as a tool for a choice of materials and protection methods, as well as can help to improve a durability of infrastructure, and cost optimization.
PL
Przedstawiono krótki przegląd koncepcji metod oceny skutków korozji atmosferycznej. Opisano przykłady zastosowania wyników oceny szybkości korozji materiałów do prognozowania i obrazowania korozyjności atmosfery na wybranych obszarach kraju. Wykorzystanie ich do doboru metod ochrony przed korozją infrastruktury może przyczynić się do polepszenia trwałości konstrukcji oraz optymalizacji kosztów.
Rocznik
Tom
Strony
80--85
Opis fizyczny
Bibliogr. 38 poz., rys., tab., wykr.
Twórcy
autor
  • Instytut Mechaniki Precyzyjnej
  • Instytut Mechaniki Precyzyjnej
Bibliografia
  • 1. K. Juda-Rezle, Oddziaływanie zanieczyszczeń powietrza na środowisko, Warszawa, (2000)
  • 2. EPA-600-8-82-029b-Air quality criteria for particulate matter and sulphur oxides, 2, (1982)
  • 3. F. Mansfeld, J.V. Kenkel, Electrochemical monitoring of atmospheric corrosion phenomena, Corrosion Sci., 16, (1976),111
  • 4. F. Mansfeld, Evaluation of electrochemical techniques for monitoring atmospheric corrosion phenomena, Electrochemical Corrosion Testing, ASTM, (1991)
  • 5. F.D. Wall, M.A. Martinez, N.A. Missert, R.G. Copeland, A.C. Kilgo, Characterizing corrosion behavior under atmospheric conditions using electrochemical techniques, Corrosion Science, 1, (2005), 17-32
  • 6. T. Aastrup, C. Leygraf: ”Simultaneous infrared refl ection absorption spectroscopy and quartz crystal microbalance measurements for in situ studies of the metal/atmosphere interface”, J. Electrochem. Soc., 9, (1997), 2986-2994
  • 7. J. W. Spence, F. H. Haynie, Atmospheric Corrosion Model for Galvanized Steel Structures, Corrosion, 48, 12 (1992) 1009-1019
  • 8. S. Feliu, M. Morcillo, ”The Prediction of Atmospheric Corroosion from Meteorological and Pollution Parameters-II Long Term Forecast”, Corrosion Science, 34, 3 (1993) 415-422
  • 9. S.B. Lyon, C.W. Wong, P. Ajiboye, ”An Approach to the modeling of Atmospheric Corrosion, in Atmospheric Corrosion, ASTM STP 1239, Kirk W.W, Lawson H.H., eds. American Society for Testing and Materials, Philadelphia, 1995, 26-37
  • 10. CYTED Program, Subprogram XV.I, Project XV.I, Morcillo M. ”Atmospheric Corrosion in Iberoamerica-MICAT Project”, ASTM STP 1239, Kirk W.W., Lawson, H.H., eds. American Society for Testing and Materials, Philadelphia, (1995), 257-275
  • 11. A.A. Mikhailov, P.V. Strekalov, Yu. M. Panchenko, Atmospheric corrosion in Tropical and Subtropical Climate Zones, Protection of metals, 43,7, (2007), 619-627
  • 12. T.E. Graedel, ”GILDES model studies of aqueous chemistry: I- Formulation and potential applications of the multi-regime model”, Corrosion Science, 38, 12( 1998), 2153-2180
  • 13. L.A. Farrow, T.E. Graedel, C. Leygraf, ”GILDESmodel studies of aqueous chemistry: II – The corrosion of zinc in gaseous exposure chambers”, Corrosion Science, 38, 12 ( 1996) 2181-2199
  • 14. J. Tidblad, T.E. Graedel, ”GILDES model studies of aqueous chemistry: Initial SO2 –induced atmospheric corrosion of copper”, Corrosion Science, 38, 12 (1996) 2201-2224
  • 15. J. Tidblad, T. Aastrup, C. Leygraf, GILDES Model Studies of Aqueous Chemistry VI. Initial SO2 /O3 – and SO2/NO2 – Induced Atmospheric Corrosion of Copper, Corrosion Science, 39, (1997) 2657-2663
  • 16. J. Tidblad, T. E. Graedel, GILDES Model Studies of Aqueous Chemistry V. Initial SO2 Induced Atmospheric Corrosion of Nickel, J.Electrochem Soc.144, (1997) 2986
  • 17. H. Gil, C. Leygraf, J. Tidblad, GILDES Model Simulations of the Atmospheric Corrosion of Zinc Induced by Low Concentrations of Carboxylic Acids, J. Electrochem. Soc. 159, 3, (2001), C123-C128
  • 18. I.S. Cole, D.A. Paterson, W. D. Ganther, “An holistic model for atmospheric corrosion: Part 1 – Theorical framework for the production, transportation and deposition of marine salts”, Corrosion Engineering, Science and Technology, 38, 2,(2003), 129-134
  • 19. I.S. Cole, W.D. Ganther, J.O. Sinclair, D. Lau, D.A. Paterson, ”A study of the wetting of metal surfaces in order to understand the processes controlling atmospheric corrosion”, Journal of the Electrochemical Society, 151, 12, (2004), B627, B635
  • 20. I.S. Cole, W.D. Ganther, D.A. Peterson, A. Bradbury, Corrosion Engineering, Science and Technology, 40, 4, (2005) 328-336
  • 21. I.S Cole, S.A. Peterson, Corrosion Engineering, Science and Technology, 41, 1, 920-06), 67-76
  • 22. J. Cai, R. A. Cottis, S. B. Lyon, ”Phenomenological modelling of atmospheric corrosion using an artifi cial neural network”, Corrosion Science, 41, (1999), 2001-2030
  • 23. S. Pintos, N.V. Queipo, Artifi cial neural network for the MICAT project, Corrosion Science, 42, 1, (2000), 35-52
  • 24. G. Kumar and R.G. Buchheit,Use of Artifi cial Neural Network Models to Predict Coated Component Life from Short-Term Electrochemical Impedance Spectroscopy Measurements CORROSION, 64, 3, (2008), 241-254
  • 25. ISO 9223:2012- Corrosion of metals and alloys – Corrosivity of atmospheres – Classifi - cation, determination and estimation
  • 26. ISO 9224:2012 – Corrosion of metals and alloys – Corrosivity of atmospheres – Guiding values for the corrosivity categories
  • 27. ISO 9224:2012 – Corrosion of metals and alloys – Corrosivity of atmospheres – Measurement of environmental parameters affecting corrosivity of atmospheres
  • 28. ISO 9226:2012 – Corrosion of metals and alloys – Corrosivity of atmospheres Determination of corrosion rate of standard specimens for the evaluation of corrosivity
  • 29. T. Biestek, Badania odporności korozyjnej powłok metalowych prowadzone w IMP, Materiały XXIX Seminarium IMP, Inżynieria Powierzchni – Technologie, Urządzenia, Badania, 1995
  • 30. J. Kobus, J. Andziak, Czynniki decydujące o korozji w Polsce i w Europie, Ochrona przed Koroz., 2003, 46, 3, (62-68)
  • 31. J. Kobus, Korozja cynku a środowisko, Ochrona przed Koroz., 2005, 48, 10, (320-323)
  • 32. J. Kobus, M. Błasiak, C. Pérez, L. Kwiatkowski, Effect of natural conditions on corrosion rates of zinc and zinc coatings, Proceedings of the European Corrosion Congress Eurocorr 2005, Lisbon, Portugal, September 2005
  • 33. J. Kobus, L. Kwiatkowski, Monitorowanie zagrożeń korozyjnych i ich skutków w warunkach korozji atmosferycznej, Inżynieria Powierzchni, 1, (2009), 3-15
  • 34. J. Kobus, Charakterystyka pyłowych zanieczyszczeń powietrza, Ochrona przed Koroz., 2008, 52, 7, (269-274)
  • 35. J. Tidblad, V. Kucera, A. A. Mikhailov, Report No 30 UN/ECE International Co-operative Programme on Effects of Air Pollution on Materials, including Historic and Cultural Monuments ( UN ECE ICP Materials), Stockholm, May 1998
  • 36. V. Kucera, J. Tidblad, K. Kreislova, D. Knotkova, M. Faller, D. Reiss, R. Snethlage, T. Yates, J. Henriksen, M. Schreiner, UN/ECE ICP Materials, Dose – response functions for the multi-pollutant situation, Air& Soil Pollution: Focus, 7, 1-3, (2007), 249-258
  • 37. T.Yates, R.Butlin, J.Medhurst, Proceedings of the UN ECE Workshop on Economic Evaluation of Air Pollution Abatement and Damage to Buildings including Cultural Heritage, Stockholm, 1996
  • 38. J. Tidblad, A.A. Michailov, V. Kucera, Development of dose-response functions for the revision of ISO 9223 and comparison of calculated and experimental data, documents of ISO/TC 156-N384, 2001
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-7ed0897a-f744-402c-850a-7354afb3882e
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