首页|Enhancement corrosion resistance of mild steel in 15% HC1 solution by a novel bio-based polyurethane for oil well acidizing

Enhancement corrosion resistance of mild steel in 15% HC1 solution by a novel bio-based polyurethane for oil well acidizing

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A novel thermally stable inhibitor was developed based on citric acid and glucose (CAGCI) to inhibit the corrosion of mild steel (MS) in simulated acidic oilfield water for oil well acidizing. All electrochemical measurements were performed in a temperature range of 293-363 K to evaluate the inhibition power of CAGCI. The results of electrochemical tests clearly revealed that CAGCI effectively inhibited MS corrosion via a mixed-type mechanism and 77 x 10~(-4) M of the inhibitor provided the highest inhibition efficiency of 90%, 93.6%, 93.7%, and 89.9% at 293 K, 313 K, 333 K, and 363 K, respectively. In addition, CAGCI provided a total polarization resistance of 416.7 Ω. cm~2 for MS at 293 K and decreased the corrosion rate of the metal 7.6 times compared to blank at 363 K. Moreover, the UV-visible results demonstrated the formation of the Fe~(2+)-CAGCI complex and the results of the surface analysis confirmed the presence of a protective film of CAGCI molecules on the MS surface. Finally, the experimental outcomes were well complemented by results obtained from density-functional study and molecular dynamics (MD) simulation. According to quantum calculations, citric acid and aromatic rings in the structure of CAGCI played the main role in electron exchanges with the MS surface. The results of the MD simulation were also confirmed that a hydrophobic barrier can be formed by CAGCI molecules on the MS surface with a parallel adsorption configuration.

Mild steelCorrosion inhibitorPolyurethaneElectrochemistryMolecular simulation

Alireza Rahimi、Majid Abdouss、Abdolreza Farhadian

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Department of Chemistry, Amirkabir University of Technology (Tehran Polytechnic), 1591639675 Tehran, Iran

Department of Polymer & Materials Chemistry, Faculty of Chemistry and Petroleum Science, Shahid Beheshti University, CC, 1983969411 Tehran, Iran

2022

Journal of industrial and engineering chemistry

Journal of industrial and engineering chemistry

EISCI
ISSN:1226-086X
年,卷(期):2022.113
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