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The analysis of the electrode potential shift in the examination of plastic-covered metal fatigue strength

Wybrane pełne teksty z tego czasopisma
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Purpose: A development of methodology of adhesive force measuring, and at the same time an estimation of its value change in the specifically designated group of materials that are used in technical objects' construction, requires defining the fatigue strength value changes. The one of the elements influencing adhesive force is electrode potential estimation in the relation to the function of adhesive force considering variable layers of the coatings. Design/methodology/approach: This paper describes an issue of electrode potential shift influence on metals' fatigue strength. The issue was presented based on the literature and conducted tests. Findings: The results of the examinations concern electrode potential shift influence on adhesion forces' increase in the materials covered with various coatings in relation to a defined coating thickness. Research limitations/implications: After earlier made tests, when it was forecast that electrode potential influences an increase in fatigue strength. It was formulated for verification of the assumed hypothesis. The tests were conducted on samples of selected metals coated with various configurations of layers. The methodology was limited to the measurement of the research results with a single kind of demonstration (standard) electrode. Practical implications: The results of the tests, in shape of charts representing the shift of electrode potential in relation to time, will allow the authors to resolve next research problem to describe a mechanism of hydrogen absorption by a metal base. This will allow to develop methodology of moist (damp) angle measure. The angle influences adhesion force that is responsible for an increase in fatigue strength. Originality/value: The value of attained results will help to develop general assumptions for methodology of moist (damp) angle measure.
Rocznik
Strony
21--27
Opis fizyczny
Bibliogr. 21 poz.
Twórcy
autor
Bibliografia
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  • [2] H. Conrad, Study into the effects of electric fields and currents on the aging and quench hardening of steels, Final Report, North Carolina State University v. at Raleigh, Report No: ARD-26825.21-MS., January, 1993, 84.
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  • [6] L. Palaghian, S. Ciortan, V. Palade, M. Bucsa, The influence of magnetic field on the fatigue resistance in corrosive environment, Advances in Mechanical Behaviour, Plasticidy and Damage, Proceedings of Euromat 2000, Tours, 2000 1257-1262.
  • [7] M. Szata, Description of development of fatigue cracking in energetic approach, Monograph, University of Technology, Wrocław, 2002 (in Polish).
  • [8] T. Winder, S. Hansen, U. Holzwarth, K. Maier, Sensitivity of positron annihilation to plastic deformation, Physical Review B-Condensed Master 57/9 (1998) 5126-5139.
  • [9] E. Leiva, W. Schmickler, New theories for the electric double layer at a metal/electrolyte solution interface, Proceedings of the Indian National Science Academy (Chemical Science) 97/3-4 (1986) 267-296.
  • [10] L. Ling, M. Qing-Han, Electrochemical properties of mesoporous carbon aerogel electrodes for electric double layer capacitors, Journal of Materials Science 40(2005) 4105-4107.
  • [11] K. Jamroziak, W. Jarguliński, Electrical double layer and adhesive force in fatigue strength of metals coated with plastics, Archives of Materials Science and Engineering 36/2 (2009) 82-88.
  • [12] W. Jarguliński, The Electrostatic Field and Metals’ Durability, Monograph, Tadeusz Kościuszko Military Academy of Land Forces, Wrocław, 2006 (in Polish).
  • [13] K. Jamroziak, W. Jarguliński, Fatigue Life Forecasting of Modern Constructional Materials with The Use of Electric Double Layer, Proceedings of the 9th International Conference, Computer Aided Engineering 2008, Opencast Mining, Issue 4-5, 2008, 148-151 (in Polish).
  • [14] K. Jamroziak, W. Jarguliński, J. Szelka, Electrical double layer and adhesive force in fatigue strength of metals coated with plastics, Journal of Achievements in Materials and Manufacturing Engineering 31/2 (2008) 678-682.
  • [15] J. Mikuła, L.A. Dobrzański, PVD and CVD coating systems on oxide tool ceramics, Journal of Achievements in Materials and Manufacturing Engineering 24/2 (2007) 75-78.
  • [16] E.P.M. Leiva, C. Vazquez, M.I. Rojas, M.M. Mariscal, Computer simulation of the effective double layer occurring on a catalyst surface under electro-chemical promotion conditions, Journal of Applied Electrochemistry 38 (2008) 1065-1073.
  • [17] L.A. Dobrzański, A. Grajcar W. Borek, Hot-working behaviour of high-manganese austenitic steels, Journal of Achievements in Materials and Manufacturing Engineering 31/1 (2008) 7-14.
  • [18] L.A. Dobrzański, R. Honysz, S.D. Fassois, On The Identification of Composite Beam Dynamics Based Upon Experimental Data, Journal of Achievements in Materials and Manufacturing Engineering 16 (2006) 114-123.
  • [19] B.T. Hughes, D.L. James, A. Ibraguimov, S. Liu, H. Temkin, One-dimensional axial simulation of electric double layer overlap effects in devices combining micro- and nanochannels, Microfluid Nanofluid 5/6 (2008) 761-774.
  • [20] K. Jamroziak, W. Jarguliński, Anti-hydrogen coats on metals, Journal of Science, Tadeusz Kościuszko Military Academy of Land Forces, Wrocław, vol. 1, 2009, 96-106 (in Polish).
  • [21] R.R. Salem, Electrodynamics Applied To Electrode Potential and Electrochemical Kinetics. Protection of Metals and Physical Chemistry of Surfaces 45/1 (2009) 113-118.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BSL7-0045-0052
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