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However, the temperatures of passive surfaces depend greatly on the input solar energy, thus the heat losses of the passive surfaces will vary with the input energy.
This technique has been extensively employed for the investigation of localized corrosion in passive surfaces like steels and aluminium alloys.
Chloride ions, well-known pitting promoters, were found to facilitate dissolution of passive surfaces, though attenuated by the presence of the naturally-occurring contaminant humic acid.
The model shows an effective way to reduce heat loss from the cavity is to minimize the temperatures of the passive surfaces through manipulation of their radiative surface properties.
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Measurement of the passivating current from titanium microelectrodes in acidic chloride solution shows that the passive surface undergoes transient microscopic breakdown.
In this work, we examine potential passive surface landers to fulfill this goal.
There is an uncertainty in the boundary condition for the depositing species on the passive surface.
A numerical model was proposed to correlate the current transient during loading with mechanical deformation of the passive surface.
The localized current density within the growing pits was ∼105 times higher than that flowing from the remaining passive surface.
The capacitance potential behavior was also consistent with a model consisting of a semiconductor with a passive surface film.
These techniques can provide useful information on the individual depassivation-repassivation transient and its interaction with the surrounding passive surface.
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