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On-line Access: 2024-06-27

Received: 2023-03-24

Revision Accepted: 2023-07-31

Crosschecked: 2024-06-27

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Citations:  Bibtex RefMan EndNote GB/T7714

 ORCID:

Min-jia Wang

https://orcid.org/0000-0003-2954-9999

He-dong Li

https://orcid.org/0000-0002-0911-1976

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Journal of Zhejiang University SCIENCE A 2024 Vol.25 No.6 P.502-515

http://doi.org/10.1631/jzus.A2300157


Corrosion behavior and protection mechanism of carbon steel coated with ethylene chlorotrifluoroethylene (ECTFE)


Author(s):  Peihu SHEN, Jun WEN, Biqin DONG, Hedong LI, Minjia WANG

Affiliation(s):  School of Civil Engineering and Architecture, Zhejiang Sci-Tech University, Hangzhou 310018, China; more

Corresponding email(s):   coolwangmin@zstu.edu.cn

Key Words:  Coating, Fluorine resin, Edge corrosion, Corrosive behavior, Electrochemical performance


Peihu SHEN, Jun WEN, Biqin DONG, Hedong LI, Minjia WANG. Corrosion behavior and protection mechanism of carbon steel coated with ethylene chlorotrifluoroethylene (ECTFE)[J]. Journal of Zhejiang University Science A, 2024, 25(6): 502-515.

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doi="10.1631/jzus.A2300157"
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%T Corrosion behavior and protection mechanism of carbon steel coated with ethylene chlorotrifluoroethylene (ECTFE)
%A Peihu SHEN
%A Jun WEN
%A Biqin DONG
%A Hedong LI
%A Minjia WANG
%J Journal of Zhejiang University SCIENCE A
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%I Zhejiang University Press & Springer
%DOI 10.1631/jzus.A2300157

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T1 - Corrosion behavior and protection mechanism of carbon steel coated with ethylene chlorotrifluoroethylene (ECTFE)
A1 - Peihu SHEN
A1 - Jun WEN
A1 - Biqin DONG
A1 - Hedong LI
A1 - Minjia WANG
J0 - Journal of Zhejiang University Science A
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PB - Zhejiang University Press & Springer
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DOI - 10.1631/jzus.A2300157


Abstract: 
Ethylene chlorotrifluoroethylene (ECTFE) coating was applied to the surface of carbon steel through electrostatic spraying and low-temperature heat treatment. The morphology and structure of the coating were analyzed using various characterization techniques. The electrochemical data of the coated steel soaked in 3.5% (mass fraction) NaCl solution for 90 d at different periods were also examined. The findings indicate that the outer surface of the coating remains structurally stable before and after soaking. F can diffuse into the steel substrate, facilitating the bonding between the coating and the steel substrate, but the free F also induces a weakening effect on the crystalline structure. Due to the thickness of the coating edge and the susceptibility to infiltration of the corrosive medium, under-film micro-zone corrosion occurs at a slow rate. After soaking for 90 d, the impedance modulus measures approximately 104 Ω·cm2, and the open circuit potential (OCP) is -0.61 V. The self-corrosion current density is 1.13×10-6 A/cm2, resulting in a calculated coating protection rate of 99.29%. In summary, despite edge corrosion occurring, the ECTFE coating provides excellent corrosion protection.

ECTFE涂层对碳钢的腐蚀行为及防腐机制研究

作者:沈佩浒1,文俊1,董必钦2,李贺东1,王敏嘉1,3
机构:1浙江理工大学,建筑工程学院,中国杭州,310018;2深圳大学,土木与交通工程学院,中国深圳,518061;3浙江省化工研究院有限公司,浙江杭州,310023
目的:钢结构应用广泛,但极易发生腐蚀。本研究旨在通过静电喷涂和低温热处理技术在碳钢表面制备乙烯-三氟氯乙烯(ECTFE)涂层,并对涂层钢的腐蚀行为及耐蚀机理进行深入研究,以揭示在ECTFE涂层保护下碳钢的界面腐蚀演变规律,并为钢结构耐久性技术的提升以及防腐涂层材料的发展提供新的思路。
创新点:1.将半结晶态的ECTFE涂层涂覆于碳钢表面,可对钢结构进行良好的腐蚀防护;2.涂层钢的边缘腐蚀行为会影响附着力,但涂层的致密结构依然能够起到屏障作用。
方法:1.采用静电喷涂结合低温热处理技术在碳钢表面制备ECTFE涂层;2.通过热分析仪TG-DSC确定ECTFE的致密化成型温度,并采用傅里叶变换红外光谱仪、X射线衍射、扫描电子显微镜和能谱仪表征ECTFE涂层钢在3.5%(质量分数)的NaCl溶液中浸泡90d后前后涂层及界面的结构组成、形貌演变及元素分布,同时测试不同浸泡时期涂层钢的开路电位(OCP)、电化学阻抗谱(EIS)和动电位扫描特性。
结论:1.将ECTFE涂层在3.5%的NaCl溶液中浸泡90 d后,其外表面结构稳固;2. F离子能扩散进入钢基体,有助于涂层和钢基体的结合,但会削弱涂层的晶态结构;3.由于涂层边缘较薄,腐蚀介质容易从边缘侵入,造成边缘腐蚀;4.涂层钢在边缘腐蚀的情况下,由于涂层结构致密稳定,所以其依然具有优异的阻隔效果。

关键词:涂层;氟树脂;边缘腐蚀;腐蚀行为;电化学性能

Darkslateblue:Affiliate; Royal Blue:Author; Turquoise:Article

Reference

[1]Abdel-HadyEE, El-ToonyMM, 2015. Grafting of vinyl pyrrolidone/styrene onto ethylene/chlorotrifluoroethylene membrane for proton exchange membrane fuel cell. Electrochimica Acta, 176:472-479.

[2]AlibakhshiE, AkbarianM, RamezanzadehM, et al., 2018. Evaluation of the corrosion protection performance of mild steel coated with hybrid sol-gel silane coating in 3.5 wt.% NaCl solution. Progress in Organic Coatings, 123:190-200.

[3]CaiGY, XiaoS, DengCM, et al., 2021. CeO2 grafted carbon nanotube via polydopamine wrapping to enhance corrosion barrier of polyurethane coating. Corrosion Science, 178:109014.

[4]ChangXT, ChenXQ, ZhangQY, et al., 2021. Alumina nanoparticles-reinforced graphene-containing waterborne polyurethane coating for enhancing corrosion and wear resistance. Corrosion Communications, 4:1-11.

[5]CuiZL, DrioliE, LeeYM, 2014. Recent progress in fluoropolymers for membranes. Progress in Polymer Science, 39(1):164-198.

[6]DoucheD, ElmsellemH, AnouarEH, et al., 2020. Anti-corrosion performance of 8-hydroxyquinoline derivatives for mild steel in acidic medium: gravimetric, electrochemical, DFT and molecular dynamics simulation investigations. Journal of Molecular Liquids, 308:113042.

[7]GhanbariA, Bordbar-KhiabaniA, WarchomickaF, et al., 2023. PEO/polymer hybrid coatings on magnesium alloy to improve biodegradation and biocompatibility properties. Surfaces and Interfaces, 36:102495.

[8]GiannettiE, 2005. Thermal stability and bond dissociation energy of fluorinated polymers: a critical evaluation. Journal of Fluorine Chemistry, 126(4):623-630.

[9]HaeriZ, RamezanzadehB, RamezanzadehM, 2022. Recent progress on the metal-organic frameworks decorated graphene oxide (MOFs-GO) nano-building application for epoxy coating mechanical-thermal/flame-retardant and anti-corrosion features improvement. Progress in Organic Coatings, 163:106645.

[10]HsissouR, BenzidiaB, HajjajiN, et al., 2018. Elaboration and electrochemical studies of the coating behavior of a new nanofunctional epoxy polymer on E24 steel in 3.5% NaCl. Portugaliae Electrochimica Acta, 36(4):259-270.

[11]HsissouR, BenhibaF, EchihiS, et al., 2021. Performance of curing epoxy resin as potential anticorrosive coating for carbon steel in 3.5% NaCl medium: combining experimental and computational approaches. Chemical Physics Letters, 783:139081.

[12]HsissouR, AzogaghM, BenhibaF, et al., 2022a. Insight of development of two cured epoxy polymer composite coatings as highly protective efficiency for carbon steel in sodium chloride solution: DFT, RDF, FFV and MD approaches. Journal of Molecular Liquids, 360:119406.

[13]HsissouR, BenhibaF, El AboubiM, et al., 2022b. Synthesis and performance of two ecofriendly epoxy resins as a highly efficient corrosion inhibition for carbon steel in 1 M HCl solution: DFT, RDF, FFV and MD approaches. Chemical Physics Letters, 806:139995.

[14]Huttunen-SaarivirtaE, YudinVE, MyagkovaLA, et al., 2011. Corrosion protection of galvanized steel by polyimide coatings: EIS and SEM investigations. Progress in Organic Coatings, 72(3):269-278.

[15]KajánekD, HadzimaB, BuhagiarJ, et al., 2019. Corrosion degradation of AZ31 magnesium alloy coated by plasma electrolytic oxidation. Transportation Research Procedia, 40:51-58.

[16]LeiHB, HeDL, GuoYN, et al., 2018. Synthesis and characterization of UV-absorbing fluorine-silicone acrylic resin polymer. Applied Surface Science, 442:71-77.

[17]LiuCB, QianB, HouPM, et al., 2021. Stimulus responsive zeolitic imidazolate framework to achieve corrosion sensing and active protecting in polymeric coatings. ACS Applied Materials & Interfaces, 13(3):4429-4441. https://dx.doi.org/10.1021/acsami.0c22642

[18]LiuG, PanJ, XuXL, et al., 2020. Preparation of ECTFE porous membrane with a green diluent TOTM and performance in VMD process. Journal of Membrane Science, 612:118375.

[19]MOHURD (Ministry of Housing and Urban-Rural Development of the People’s Republic of China), 2009. Corrosion of Metals and Alloys-Electrochemical Test Methods–Guidelines for Conducting Potentiostatic and Potentiodynamic Polarization Measurements, GB/T 24196–2009. National Standards of the People’s Republic of China(in Chinese).

[20]MOHURD (Ministry of Housing and Urban-Rural Development of the People’s Republic of China), 2021. Paints and Varnishes–Cross-Cut Test, GB/T 9286–2021. National Standards of the People’s Republic of China(in Chinese).

[21]MolhiA, HsissouR, DamejM, et al., 2021. Contribution to the corrosion inhibition of C38 steel in 1 M hydrochloric acid medium by a new epoxy resin PGEPPP. International Journal of Corrosion and Scale Inhibition, 10(1):399-418.

[22]PanJ, MaWY, HuangLL, et al., 2021. Fabrication and characterization of ECTFE hollow fiber membranes via low-temperature thermally induced phase separation (L-TIPS). Journal of Membrane Science, 634:119429.

[23]RudnevVS, Vaganov-VilkinsAA, YarovayaTP, et al., 2016. Polytetrafluoroethylene-oxide coatings on aluminum alloys. Surface and Coatings Technology, 307:1249-1254.

[24]SenguptaS, MurmuM, MandalS, et al., 2021. Competitive corrosion inhibition performance of alkyl/acyl substituted 2‍-‍(2-hydroxybenzylideneamino) phenol protecting mild steel used in adverse acidic medium: a dual approach analysis using FMOs/molecular dynamics simulation corroborated experimental findings. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 617:126314.

[25]ShenGZ, ZhangLY, WuW, et al., 2022. Design and fabrication of enhanced corrosion-resistant LDH-Zn-G/Ni dual-layer structural coatings on magnesium alloys. Journal of Alloys and Compounds, 917:165475.

[26]SimoneS, FigoliA, SantoroS, et al., 2012. Preparation and characterization of ECTFE solvent resistant membranes and their application in pervaporation of toluene/water mixtures. Separation and Purification Technology, 90:147-161.

[27]SinghL, DevganK, SamraKS, 2012. Effect of swift heavy ion irradiation on ethylene–chlorotrifluoroethylene copolymer. Radiation Physics and Chemistry, 81(11):1741-1746.

[28]SteffiAP, BalajiR, ChenSM, et al., 2021. Rational construction of SiO2/MoS2/TiO2 composite nanostructures for anti-biofouling and anti-corrosion applications. ChemistrySelect, 6(5):917-927.

[29]SteffiAP, BalajiR, ChandrasekarN, et al., 2022a. High-performance anti-corrosive coatings based on rGO-SiO2-TiO2 ternary heterojunction nanocomposites for superior protection for mild steel specimens. Diamond and Related Materials, 125:108968.

[30]SteffiAP, BalajiR, PrakashN, et al., 2022b. Incorporation of SiO2 functionalized gC3N4 sheets with TiO2 nanoparticles to enhance the anticorrosion performance of metal specimens in aggressive Cl- environment. Chemosphere, 290:133332.

[31]WanS, ChenHK, MaXZ, et al., 2021. Anticorrosive reinforcement of waterborne epoxy coating on Q235 steel using NZ/BNNS nanocomposites. Progress in Organic Coatings, 159:106410.

[32]WangH, XuJH, DuXS, et al., 2021. A self-healing polyurethane-based composite coating with high strength and anti-corrosion properties for metal protection. Composites Part B: Engineering, 225:109273.

[33]WangHH, DuanYH, MaXT, et al., 2021. Polyisocyanate bridged environmental graphene/epoxy nanocomposite coatings with excellent anticorrosion performance. Progress in Organic Coatings, 153:106167.

[34]WangKL, HongS, WeiZ, et al., 2021. Long-term corrosion behavior of HVOF sprayed Cr3C2-NiCr coatings in sulfide-containing 3.5 wt.% NaCl solution. Journal of Materials Research and Technology, 15:3122-3132.

[35]XiangYX, HeY, TangWW, et al., 2021. Fabrication of robust Ni-based TiO2 composite@TTOS superhydrophobic coating for wear resistance and anti-corrosion. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 629:127394.

[36]XuLY, FuXJ, SuHJ, et al., 2022. Corrosion and tribocorrosion protection of AZ31B Mg alloy by a hydrothermally treated PEO/chitosan composite coating. Progress in Organic Coatings, 170:107002.

[37]YanST, TangP, LingZW, et al., 2022. An analytical investigation of the collapse of asymmetrically corroded pipes under external pressure. Journal of Zhejiang University-SCIENCE A (Applied Physics & Engineering), 23(5):358-374.

[38]YangSH, FangH, LiH, et al., 2022. Synthesis of tung oil-based vinyl ester resin and its application for anti-corrosion coatings. Progress in Organic Coatings, 170:106967.

[39]YaoN, ChauJ, EleleE, et al., 2017. Characterization of microporous ECTFE membrane after exposure to different liquid media and radiation. Journal of Membrane Science, 532:89-104.

[40]ZavarehMA, SarhanAADM, ZavarehPA, et al., 2016. Electrochemical corrosion behavior of carbon steel pipes coated with a protective ceramic layer using plasma and HVOF thermal spray techniques for oil and gas. Ceramics International, 42(2):3397-3406.

[41]ZhangWY, ZhangT, ZhuZX, et al., 2022. Corrosion electrochemistry properties of thermally sprayed Zn-Cu-Ti coating in simulated ocean atmosphere. Journal of Materials Research and Technology, 21:3235-3247.

[42]ZhangZQ, LiYL, ZhuXY, et al., 2021. Meso-scale corrosion expansion cracking of ribbed reinforced concrete based on a 3D random aggregate model. Journal of Zhejiang University-SCIENCE A (Applied Physics & Engineering), 22(11):924-940.

[43]ZhaoHR, DingJH, LiuPL, et al., 2021. Boron nitride-epoxy inverse “nacre-like” nanocomposite coatings with superior anticorrosion performance. Corrosion Science, 183:109333.

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