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Columns were upgraded by means of FRP jacketing after being conditioned to accelerated electrochemical corrosion, and were subsequently tested to failure under concentric compression; some specimens were subjected to a repeated cycle of corrosion conditioning after jacketing and prior to mechanical testing.
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Influence of epoxy coating and coating thickness, external loads and loading type as well as fatigue loading cycles on corrosion behavior of reinforcing bars in test specimens is discussed.
It was observed that, after 14 cycles of accelerated corrosion tests, the corrosion degree of FM-cooled rebar is the slightest and most of the initial scale remains undamaged.
When RC test specimens containing epoxy-coated reinforcing bars with 600 μm nominal coating thickness were subjected to fatigue load with longer loading cycles, larger reduction of corrosion resistance of epoxy-coated reinforcing bars is presented under the case of larger localized crack width and lower crack spacing in RC test specimen.
Two different accelerated corrosion tests (14 cycles of dry/wet alternated corrosion tests and long-term immersion tests) were carried out to accelerate the corrosion process.
The mass gain measurements were performed after each cycle to establish the kinetics of corrosion using the thermogravimetric technique.
The weight change measurements were performed after each cycle to establish the kinetics of corrosion using thermogravimetric technique.
The mass gain measurements were performed after each cycle to establish the kinetics of corrosion using thermogravimetric technique.
However, for the composite coatings produced using the bipolar waveform with the higher cathodic duty cycle of 40%, the maximum corrosion protection was achieved at long term immersion.
During the wet cycle, pore volumes get saturated, and the rate of corrosion increases as the resistivity of the specimen decreases.
His battery was on the verge of corrosion.
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