Electrochemical impedance spectroscopic study of passive zirconium - I. High-temperature, dearated aqueous solutions

被引:55
|
作者
Ai, Jiahe [1 ]
Chen, Yingzi
Urquidi-Macdonald, Mirna
Macdonald, Digby D.
机构
[1] Penn State Univ, Ctr Electrochem Sci & Technol, Dept Mat Sci & Engn, University Pk, PA 16802 USA
[2] Penn State Univ, Dept Engn Sci & Mech, University Pk, PA 16802 USA
关键词
D O I
10.1149/1.2374946
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
The development of deterministic models for predicting the accumulation of corrosion damage to zirconium and Zircaloys in boiling water reactor coolant environments requires the acquisition of values for various model parameters. In the present work, the point defect model (PDM) was further developed to account for the properties of passive films comprising oxide barrier layers and porous oxide outer layers that form on zirconium and Zircaloys in high-temperature, deaerated aqueous solutions. The model parameter values were extracted from electrochemical impedance spectroscopic data for zirconium in deaerated, borate buffer solution [0.1 M B(OH)(3) + 0.001 M LiOH, pH 6.94] at 250 degrees C by optimization. The results indicate that the corrosion resistance of zirconium in high-temperature, deaerated aqueous solutions is dominated by the porosity and thickness of the outer layer. The impedance model based on the PDM provides a good account of the growth of the bi-layer passive films described above, and the extracted model parameter values might be used, for example, for predicting the accumulation of general corrosion damage to Zircaloy fuel sheath in BWR operating environments. (c) 2006 The Electrochemical Society.
引用
收藏
页码:C43 / C51
页数:9
相关论文
共 50 条
  • [32] AN ISOTHERMAL FLOW CALORIMETER FOR HIGH-TEMPERATURE AQUEOUS-SOLUTIONS
    CHRISTENSEN, JJ
    BROWN, PR
    IZATT, RM
    THERMOCHIMICA ACTA, 1986, 99 : 159 - 168
  • [33] High-temperature solvolysis of 2′-deoxyribonucleosides in aqueous amine solutions
    Gonzalez-Olvera, Julio C.
    Gonzalez-Jasso, Eva
    Rojas-Molina, Alejandra
    Pless, Reynaldo C.
    NUCLEOSIDES NUCLEOTIDES & NUCLEIC ACIDS, 2019, 38 (09): : 642 - 655
  • [34] GENERALIZED CORRESPONDING STATES AND HIGH-TEMPERATURE AQUEOUS-SOLUTIONS
    SENGERS, JMHL
    GALLAGHER, JS
    JOURNAL OF PHYSICAL CHEMISTRY, 1990, 94 (20): : 7913 - 7922
  • [35] Ⅳ. Electrochemical measurements in various environments ―electrochemical measurements in high temperature aqueous solutions―
    Yashiro, Hitoshi
    Zairyo to Kankyo/ Corrosion Engineering, 2018, 67 (11): : 438 - 441
  • [36] HIGH-TEMPERATURE SPECTRA OF AQUEOUS TRANSITION METAL SALTS .I. PRASEODYMIUM AND NEODYMIUM NITRATE TO 356 DEGREES
    BELL, JT
    THOMPSON, CC
    HELTON, DM
    JOURNAL OF PHYSICAL CHEMISTRY, 1969, 73 (10): : 3338 - &
  • [37] Raman spectroscopic study of aqueous alkali sulfate solutions at high temperature and pressure to yield precipitation
    Matsumoto, Yuta
    Harada, Hiroyuki
    Yui, Kazuko
    Uchida, Hiroshi
    Itatani, Kiyoshi
    Koda, Seiichiro
    JOURNAL OF SUPERCRITICAL FLUIDS, 2009, 49 (03): : 303 - 309
  • [39] Electrochemical behavior of antioxidants: I. Mechanistic study on electrochemical oxidation of gallic acid in aqueous solutions at glassy-carbon electrode
    Abdel-Hamid, Refat
    Newair, Emad F.
    JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 2011, 657 (1-2) : 107 - 112
  • [40] Solvation in high-temperature electrolyte solutions. I. Hydration shell behavior from molecular simulation
    Chialvo, AA
    Cummings, PT
    Simonson, JM
    Mesmer, RE
    JOURNAL OF CHEMICAL PHYSICS, 1999, 110 (02): : 1064 - 1074