Effect of nanograin-boundary networks generation on corrosion of carburized martensitic stainless steel.

Sci Rep

Synchrotron Light Research Institute (Public Organization), 111 University Avenue, Muang District, Nakhon Ratchasima, 30000, Thailand.

Published: February 2018

Martensitic stainless steel parts used in carbonaceous atmosphere at high temperature are subject to corrosion which results in a large amount of lost energy and high repair and maintenance costs. This work therefore proposes a model for surface development and corrosion mechanism as a solution to reduce corrosion costs. The morphology, phase, and corrosion behavior of steel are investigated using GIXRD, XANES, and EIS. The results show formation of nanograin-boundary networks in the protective layer of martensitic stainless steel. This CrO-CrC nanograin mixture on the FeCrO layer causes ion transport which is the main reason for the corrosion reaction during carburizing of the steel. The results reveal the rate determining steps in the corrosion mechanism during carburizing of steel. These steps are the diffusion of uncharged active gases in the stagnant-gas layer over the steel surface followed by the conversion of C into C and O into O at the gas-oxide interface simultaneously with the migration of Cr from the metal-oxide interface to the gas-oxide interface. It is proposed that previous research on AlO coatings may be the solution to producing effective coatings that overcome the corrosion challenges discussed in this work.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5797200PMC
http://dx.doi.org/10.1038/s41598-018-20671-zDOI Listing

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