Publications by authors named "Ameeq Farooq"

To protect steel structures, zinc coatings are mostly used as a sacrificial barrier. This research aims to estimate the dissolution tendency of the electroplated and zinc-rich cold galvanized (ZRCG) coatings of a controlled thickness (35 ± 1 μm) applied via brush and dip coating methods on the mild steel. To assess the corrosion behavior of these coated samples in 3.

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In the present study, the effect of post weld heat treatment (PWHT) on the microstructure and corrosion kinetics of butter welded Nickel Alloy 617 and 12Cr steel was investigated. Buttering was carried out on the 12Cr side with the Thyssen 617 filler metal. Furthermore, post weld heat treatment (PWHT) was conducted at 730 °C with a holding time of 4 h followed by furnace cooling.

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Microbiologically influenced corrosion (MIC) or biocrorrosion is a cause of huge economic set back for industries around the globe. The present work deals with the study of corrosion of copper alloy (Cu-Ni 70:30) in the presence of bacterial biofilms produced by Bacillus subtilis strain S1X and Pseudomonas aeruginosa strain ZK. MIC was investigated using electrochemical techniques such as potentiodynamic polarization and electrochemical impedance spectroscopy, and through analytical techniques such as scanning electron microscopy (SEM), Fourier-transform infrared spectroscopy (FTIR), and atomic force microscopy (AFM).

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Synopsis of recent research by authors named "Ameeq Farooq"

  • - Ameeq Farooq's research primarily focuses on the corrosion behavior of various materials, exploring protective coatings and the influence of biological factors on corrosion processes.
  • - Notable studies include comparing the dissolution of zinc coatings on steel in different environments and investigating the effects of post-weld heat treatment on dissimilar welded materials' microstructure and electrochemical properties.
  • - His work also addresses microbiologically influenced corrosion (MIC), highlighting the impact of specific bacterial strains on the corrosion of copper alloys, utilizing advanced electrochemical and analytical techniques for thorough analysis.