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Corrosion resistance of welding joint from titanium in water solution of hydrochloric acid

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
Konferencja
12th International Scientific Conference CAM3S'2006, 27-30th November 2006, Gliwice-Zakopane
Języki publikacji
EN
Abstrakty
EN
Purpose: Most of conducted research in the area of welded joints corrosion are concentrated on determine the corrosion resistance in water solution of hydrochloric acid medium at high temperatures. Recognizing of corrosion mechanisms in liquid mediums can lead to obtain corrosion-proof material e.g. by applying passivation phenomenon. In this paper attention was paid to determine the corrosion resistance of titanium welding joint in corrosive medium of liquid hydrochloric acid with concentration of 6 and 10%. Research of material susceptibility to surface activation in the pipeline of corrosion processes are conducted. Design/methodology/approach: In the corrosion tests electrolyser, potentiostat "Solartron 1285" and computer with "CorrWare 2" software were used. Results of the research were worked out with "CorrView" software. The potentials values were determined in relation to normal hydrogen electrode (NEW). The temperature of the solutions was kept at 20 and 50 degrees centigrade. The recording of potential/density of current - time curve was conducted for 300 s. Findings: The results of research, which were conducted in 6% and 10% HCI solution, show good corrosion resistance of welding joints from titanium Gr1 in temperature 20 degrees centigrade. Tested samples were characterized by susceptibility to surface self-passivation, with the exception of samples tested at temperature of 50 degrees centigrade in HCl water solution. Damages of titanium passive surface during exploitation can lead to short-lived increase of corrosion rate in higher temperatures. Practical implications: Results of corrosion research allow to determine the durability of welded joints in 6% and 10% water solution of hydrochloric acid at temperature 20 and 50 degrees centigrade. Originality/value: The goal of this work was to determine the influence of GTAW welding method on corrosion resistance of welded joints from titanium in 6% and 10% HCl water solutions.
Słowa kluczowe
Rocznik
Strony
147--150
Opis fizyczny
Bibliogr. 15 poz., fot., rys., tab.
Twórcy
autor
autor
autor
  • Faculty of Materials Science and Metallurgy, Silesian University of Technology, ul. Krasińskiego 8, 40-019 Katowice, Poland, stanislaw.lalik@polsl.pl
Bibliografia
  • [1] L.A. Dobrzański, Engineering materials and materials design. Fundamentals of materials science and physical metallurgy, WNT, 2006.
  • [2] L.A. Dobrzański, A. Brytan, M.A. Grande, M. Rosso, E.J. Pallavincini, Properties of vacuum sintered duplex stainless steels, Journal of Materials Processing Technology 162-163 (2005), 286-293.
  • [3] K.J. Van Vliet, Z.F. Wang, CL. Briant, K.S. Kumar, Electro chemical behavior of titanium in saline environments: The effects of temperature, pH, and microstructure, Proc. Int. Conf. Corrosion'98, paper no. 6, 1-6.
  • [4] A. Neville, B.A.B. McDougall, Investigating aspects of tribo-corrosion of titanium it ITS alloys in aggressive process streams, Proc. Int. Conf. Corrosion'02, paper no. 02129.
  • [5] T. Lian, M.T. Whalen, L.L. Wong, Effects of oxide film on the corrosion resistance of titanium Grade 7 in fluoride-containing NaCl brines, Proc. Int. Conf. Corrosion'05. paper no. 05609.
  • [6] Corrosion properties titanium tubing, www.timet.com/cod-p08.htm, 10.10.2006.
  • [7] M. Pourbaix, Atlas of Electrochemical Equilibrium in Aqueous Solutions, Pergamon Press (1966), pp. 228-231.
  • [8] J. Marciniak, Biomaterials, Silesian University of Technology Press, Gliwice, 2002.
  • [9] M. Semlitsch, F. Staub, H. Weber, Biological and Biomechanical Performance of Biomaterials, Elsevier Sci. Publishers B. V., Amsterdam, 1986, 69-73.
  • [10] C.S. Brossia, G.A. Cragnolino, Effects of Environmental and Metalurgical Conditions on the Passive and Localized Dissolutions of Ti-015% Pd, Corrosion, 2001, 768-771.
  • [11] J. Cebulski, R. Michalik, S. Lalik, Assessment of corrosion resistance in liquid media of FeAl intermetallic phase based alloys with varied aluminium content, 11th International Scientific Conference on Contemporary Achievements in Mechanics, Manufacturing and Materials Science СAM3S, 2005, 24-27.
  • [12] G. Matula, L.A. Dobrzański, A. Várez, B. Levenfeld, J.M. Torralba, Comparison of structure and properties of the HS 12-1-5-5 type high-speed steel fabricated using the pressure less forming and PIM methods, Journal of Materials Processing Technology, 2005 230-236.
  • [13] L.A. Dobrzański, K. Gołombek, Structure and properties of the cutting tools made for from cemented carbides and cermets with the TiN+mono, gradient or multi (Ti, Al, Si)N+TiN nanocrystalline coatings. 13th International. Scientific Conference on Achievements in Mechanical and Materials Engineering, Wisla, 2005, 131-136.
  • [14] A. Krauze, A. Ziębowicz, J. Marciniak, Corrosion resistance of intramedullary nails used in elastic osteosynthesis of children 13th Int. Scientific Conf. on Achievements in Mechanical and Materials Engineering, 2005, 335-338.
  • [15] L.A. Dobrzański, M. Drak, J.A. Trzaska, Corrosion resistance of the polymer matrix hard magnetic composite materials Nd-Fe-B. 13th Int. Scient. Conf. on Achievements in Mechanical and Materials Engineering, 2005, 121-126.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BOS5-0018-0026
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