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Effect of Cr on the corrosion behavior of low-C medium-Mn steel in simulated tropical seawater

  • Tao Wang
  • , Yafei Du
  • , Lili Zhang
  • , Cuiwei Du*
  • , Xiaogang Li
  • *Corresponding author for this work
  • University of Science and Technology Beijing
  • National Materials Corrosion and Protection Data Center

Research output: Contribution to journalArticlepeer-review

Abstract

This paper systematically investigates the effect of Cr content on the corrosion behavior of the rust layer and the nanoscale dense microstructure of low-carbon medium-Mn (LCMM) steel. The results revealed that increasing Cr addition effectively reduces the austenite phase fraction while enriching Cr and depleting Mn within the retained austenite. The increase in Cr content reduces the Volta potential difference between austenite and ferrite, thereby decreasing the susceptibility to micro-galvanic corrosion. Moreover, Cr modifies the corrosion product films (CPFs) by promoting the formation of protective α‑FeOOH and thermodynamically stable phases such as Cr(OH)3 and FeCr2O4, while suppressing Mn‑oxide generation. FIB‑TEM analysis further reveals that the dense CPFs formed on the 1.5Cr steel consists of an inner amorphous Al-Cr-Mn‑containing oxide layer embedded with (Fe,Mn,Cr)3O4 nanoparticles, and an outer layer where polycrystalline α‑FeOOH fills the network of nano‑needle‑like Fe3O4. This dual‑layer structure synergistically inhibits Mn dissolution and outward diffusion, suppresses charge transfer, and enhances film compactness, ultimately leading to superior corrosion resistance in Cr‑modified LCMM steels.

Original languageEnglish
Article number113901
JournalCorrosion Science
Volume268
DOIs
StatePublished - 1 Aug 2026
Externally publishedYes

Keywords

  • Corrosion products
  • Cr adding
  • Low-C medium-Mn steel
  • Micro-galvanic coupling
  • XPS

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