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Real-time corrosion monitoring of AISI 1010 carbon steel with metal surface mapping in sulfolane

  • Andrzej Bak
  • , Bozena Losiewicz
  • , Violetta Kozik
  • , Julian Kubisztal
  • , Paulina Dybal
  • , Aleksandra Swietlicka
  • , Krzysztof Barbusinski
  • , Slawomir Kus
  • , Natalia Howaniec
  • , J. Josef Jampilek
  • University of Silesia in Katowice
  • Honeywell
  • Central Mining Institute
  • Comenius University

Research output: Contribution to journalArticlepeer-review

6 Citations (Scopus)

Abstract

Solvents are widely used in organic synthesis. Sulfolane is a five-membered heterocyclic organosulfur sulfone (R-SO2-R', where R/R' is alkyl, alkenyl, or aryl) and an anthropogenic medium commonly used as industrial extractive solvent in the liquid-liquid and liquid-vapor extraction processes. Under standard conditions sulfolane is not aggressive towards steel, but at higher temperatures and in oxygen, water, or chlorides presence, it can be decomposed into some corrosive (by-)products with generation of SO2 and subsequent formation of corrosive H2SO3. This pilot-case study provides data from laboratory measurements performed in low conductivity sulfolane-based fluids using an industrial multi-electrochemical technique for reliable detection of corrosion processes. In particular, a comprehensive evaluation of the aqueous phase impact on general and localized corrosion of AISI 1010 carbon steel in sulfolane is presented. Assessment of corrosive damage was carried out using an open circuit potential method, potentiodynamic polarization curves, SEM/EDS and scanning Kelvin probe technique. It was found that an increase in the water content (1-3 vol.%) in sulfolane causes a decrease in the corrosion resistance of AISI 1010 carbon steel on both uniform and pitting corrosion due to higher conductance of the sulfolane-based fluids.

Original languageEnglish
Article number3276
JournalMaterials
Volume12
Issue number19
DOIs
Publication statusPublished - 1 Oct 2019

Keywords

  • Aprotic solvent
  • Carbon steel
  • Electrochemical techniques
  • Low-conductivity corrosion rate
  • Real-time corrosion monitoring
  • Sulfolane

ASJC Scopus subject areas

  • General Materials Science
  • Condensed Matter Physics

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