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Electrochemical Behavior of Oxide Films of Stainless Steel in 40 kHz Sonicated Sulphate Electrolytes

Electrochemical Behavior of Oxide Films of Stainless Steel in 40 kHz Sonicated Sulphate Electrolytes
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摘要 This paper describes effects of 40 kHz ultrasound on the oxide films of stainless steel in sulphate electrolytes so as to determine the transmitted power and to characterize mass transfer and peak current density on the electrode surface. Emphasis was mainly laid on electrochemical oxidations and peeling mechanism of oxide films in sonicated sulphate solutions (0.5 and 1.0 mol/L). Polarization voltammetry, current response traces and SEM analysis were carded out in order to provide full information as to oxide films surface. Results shows that the rate of electrochemical oxidation, the shape of polarization curves and the surface micrographs in sonicated sulphate electrolytes are different from those obtained without introduction of ultrasound. It is concluded that ultrasound can change the electro-chemical behavior of oxide films by its cavitaion effects, which would produce transient mechanical impulsive force and enhance electrochemical reactions. This paper describes effects of 40 kHz ultrasound on the oxide films of stainless steel in sulphate electrolytes so as to determine the transmitted power and to characterize mass transfer and peak current density on the electrode surface. Emphasis was mainly laid on electrochemical oxidations and peeling mechanism of oxide films in sonicated sulphate solutions (0.5 and 1.0 mol/L). Polarization voltammetry, current response traces and SEM analysis were carded out in order to provide full information as to oxide films surface. Results shows that the rate of electrochemical oxidation, the shape of polarization curves and the surface micrographs in sonicated sulphate electrolytes are different from those obtained without introduction of ultrasound. It is concluded that ultrasound can change the electro-chemical behavior of oxide films by its cavitaion effects, which would produce transient mechanical impulsive force and enhance electrochemical reactions.
出处 《Chinese Journal of Aeronautics》 SCIE EI CAS CSCD 2007年第2期148-152,共5页 中国航空学报(英文版)
关键词 stainless steel oxide films ELECTROLYSIS ULTRASOUND CAVITATION stainless steel oxide films electrolysis ultrasound cavitation
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参考文献12

  • 1Hu Z Q,Zhang W H.Get rid of oxides of stainless steel.J Surface Technology 1997; 26 (5):20-21.
  • 2Mason T J,Lorimer J P.Sonochemistry.The Applications and Uses of Ultrasound in Chemistry.New York:Wiley,1988.
  • 3Walton D J,Phull S S.Advances in sonochemistry.London:JAI Press,1996.
  • 4Klima J,Bernard C,Degrand C.Sonoelectrochemistry:transient cavitation in acetonitrile in the neighbourhood of a polarized electrode.J Electroanal Chem 1995; 399:147-155.
  • 5Birkin P R,Silva S,Martinez S.A study of the effect of ultrasound on mass transport to a microelectrode.J Electroanal Chem 1996;416(1-2):127.
  • 6Campo F J D,Melville J;Hardcastle J L,et al.Differential pulse and chronoamperometric studies of insonated systems:acoustic streaming and cavitational effects.J Phys Chem 2001; 105 (4):666-674.
  • 7Wang C,Jiang F.The cleaning of oxide films of stainless steel without fluorin.J Plating and Finishing 2000; 22(2):2-23.
  • 8Mason T J,Lorimer J P,Bates D M.Quantifying sonochemistry:casting some light on a 'black art'.J Ultrasonics 1992; 30 (1):40-42.
  • 9Cooper E L,Coury L A Jr.Mass transport in sonovoltammetry with evidence of hydrodynamic modulation from ultrasound.J Electrochem Soc 1998; 45(6):1994-1999.
  • 10Trabelsi F,Lyazidi H A,Berlan J,et al.Electrochemical determination of the active zones in a high-frequency ultrasonic reactor.J Ultrasonics Sonochemistry 1996; 3(6):125-130.

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