A mathematical model of crevice and pitting corrosion—I. The physical model


Autoria(s): S.M. Sharlanda and P.W. Taskera
Data(s)

1988

Resumo

A predictive and self-consistent mathematical model incorporating the electrochemical, chemical and ionic migration processes characterizing the propagation stage of crevice and pitting corrosion in metals is described. The model predicts the steady-state solution chemistry and electrode kinetics (and hence metal penetration rates) within an active corrosion cavity as a function of the many parameters on which these depend, such as external electrode potential and crevice dimensions. The crevice is modelled as a parallel-sided slot filled with a dilute sodium chloride solution. The cavity propagation rates are found to be faster in the case of a crevice with passive walls than one with active walls. The distribution of current over the internal surface of a crevice with corroding walls can be assessed using this model, giving an indication of the future shape of the cavity. The model is extended to include a solid hydroxide precipitation reaction and considers the effect of consequent changes in the chemical and physical environment within the crevice on the predicted corrosion rates. In this paper, the model is applied to crevice and pitting corrosion in carbon steel.

Identificador

http://ir.yic.ac.cn/handle/133337/3124

http://www.irgrid.ac.cn/handle/1471x/140112

Idioma(s)

英语

Fonte

S.M. Sharlanda and P.W. Taskera.A mathematical model of crevice and pitting corrosion—I. The physical model,Corrosion Science,1988,28(6):603-620

Tipo

期刊论文