Experimental investigation and numerical simulation for corrosion rate of amorphous/nano-crystalline coating influenced by temperatures

Hamid Al-Abboodi, Huiqing Fan, Ibtihal A. Mahmood, Mohammed Al-Bahrani

Research output: Contribution to journalArticlepeer-review

5 Scopus citations

Abstract

A high-velocity oxygen fuel (HVOF) system was employed to prepare a Fe49.7Cr18Mn1.9 Mo7.4W1.6B15.2C3.8Si2.4 amorphous coating on mild steel. The electrochemical behavior of the resul-tant coatings, namely as-sprayed coating and vacuum heat-treated coating (at 650C and 800C), were investigated in a 3.5% NaCl solution at variable temperatures using scanning electron microscopy (SEM), electrochemical impedance spectroscopy (EIS), potentiodynamic polarization, optical microscopy (OM), and XRD diffraction. Moreover, COMSOL Multiphysics version 5.5 software were employed for predicting the galvanic corrosion of amorphous material immersed in an aqueous NaCl solution, using the software finite element kit. The experiments demonstrated that the coatings’ pitting resistance was significantly affected by temperature. The results also showed that temperature affected the pitting corrosion rate and changed the shape of the pits. However, the changes were not as extreme as those observed in stainless steel. Furthermore, there was no significant differ-ence between the as-sprayed coating and the vacuum-heat-treated coating at 650C. At low NaCl concentrations at and temperatures below the critical pitting temperature, the resulting pits were significantly small with a hemisphere-like. By contrast, at a higher NaCl concentration at 70C, particularly in the case of heating at 650C, the pits appearing on the Fe-based amorphous coating were vast and sometimes featured a lacy cover.

Original languageEnglish
Article number3298
JournalNanomaterials
Volume11
Issue number12
DOIs
StatePublished - Dec 2021

Keywords

  • COMSOL
  • Corrosion rate
  • HVOF
  • Pitting corrosion
  • Vacuum heat treatment

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