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March 14, 2026Metals0 citationsOpen Access

High-Temperature Corrosion Behavior of C276 Alloy Coating in a Flow Environment Containing HCl

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FZFei ZhaoKSKun Woo SongTTTenghao Tian

Key Points

  • This research aims to evaluate the corrosion resistance of C276 alloy coating at high temperature in hydrochloric acid (HCl) environments.
  • The C276 alloy coating was applied to 304 stainless steel using high-velocity air fuel (HVAF) spraying.
  • Corrosion tests were conducted at 1000 °C with 6% HCl and a flow rate of 30 m/s for 25 minutes.
  • Surface analysis included scanning electron microscopy, energy dispersive spectroscopy, and X-ray diffraction to assess corrosion products and structure.
  • Thermodynamic and kinetic analyses were performed to understand the corrosion mechanism.
  • C276 alloy coating shows significantly better corrosion resistance compared to 304 stainless steel.
  • The average weight gain and growth rate of the corrosion layer on the C276 coating were lower than on stainless steel.
  • Main corrosion products identified include Fe2O3, FeO, FeCl2, NiO, and Cr2O3, with Ni and Cr oxides forming a protective layer.
  • The mechanism involves a ‘chlorination–oxidation’ cycle, with Cl2 acting as a catalyst.

Abstract

To address the corrosion protection issues for hot components of high-end equipment in extreme service environments, the C276 alloy coating was deposited on the surface of 304 stainless steel via high-velocity air fuel (HVAF) spraying. The extreme conditions of 1000 °C temperature, an atmosphere containing 6% HCl, and a flow rate of 30 m/s were simulated in the study using a high-temperature airflow corrosion erosion device. The C276 coating and the 304 stainless steel substrates were subjected to a corrosion test for 25 min. The surface phase composition, element distribution, corrosion product characteristics, and cross-section structure of the samples before and after corrosion were systematically analyzed by means of a scanning electron microscope, an energy dispersive spectrometer, and an X-ray diffractometer. The mechanism of high-temperature chlorination corrosion was deduced through thermodynamic and kinetic analysis. The results show that compared with 304 stainless steel, the C276 alloy coating exhibits better corrosion resistance in an extremely high-temperature environment containing HCl, and the average weight gain and growth rate of the corrosion layer were lower. The main corrosion products on the C276 coating surface are Fe2O3, FeO, FeCl2, NiO, and Cr2O3, among which the oxides of Ni and Cr form a continuous and dense protective oxide layer that effectively inhibits the intrusion of corrosive media. The high-temperature HCl corrosion follows the ‘chlorination–oxidation’ cycle mechanism, and Cl2 plays a catalytic role in the reaction and accelerates the corrosion process.

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Cite This Study

Zhao et al. (2026) studied this question.

synapsesocial.com/papers/69b4fbc1b39f7826a300c2e1https://doi.org/10.3390/met16030315
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