Functional Polymer Nanocomposites with Increased Anticorrosion Properties and Wear Resistance for Water Transport

被引:5
作者
Buketov, Andriy [1 ]
Sapronov, Oleksandr [1 ]
Klevtsov, Kostyantyn [1 ]
Kim, Boksun [2 ]
机构
[1] Kherson State Maritime Acad, Dept Transport Technol & Mech Engn, Ushakova Ave 20, UA-73003 Kherson, Ukraine
[2] Univ Plymouth, Sch Engn Comp & Math, Drake Circus, Plymouth PL4 8AA, England
关键词
epoxy resin; hardener; nanopowder; filler; corrosion; wear resistance; mechanical characteristics; water transport; GRAPHENE OXIDE; EPOXY; COATINGS; PROTECTION;
D O I
10.3390/polym15163449
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Corrosive destruction and hydroabrasive wear is a serious problem in the operation of machine parts and water transport mechanisms. It is promising to develop new composite materials with improved properties to increase the reliability of transport vehicles. In this regard, the use of new polymer-based materials, which are characterized by improved anticorrosion properties and wear resistance, is promising. In this work, therefore, for the formation of multifunctional protective coatings, epoxy dian oligomer brand ED-20, polyethylene polyamine (PEPA) hardener, a mixture of nanodispersed compounds with a dispersion of 30-90 nm, fillers Agocel S-2000 andWaltrop with a dispersion of 8-12 mu m, and particles of iron slag with a dispersion of 60-63 mu m are used for the formation of multifunctional protective coatings. Using the method of mathematically planning the experiment, the content of additives of different physico-chemical natures in the epoxy binder is optimized to obtain fireproof coatings with improved operational characteristics. A mathematical model is developed for optimizing the content of components in the formation of protective anticorrosion and wear-resistant coatings for means of transport as a result of the complex effect of a mixture of nanodispersed compounds, iron scale, and Waltrop. Based on the mathematical planning of the experiment, new regularities of increasing the corrosion resistance and resources of the means of transport are established through the formation of four different protective coatings, which are tested for resistance to aggressive environments (technical water-CAS No. 7732-18-5, gasoline-CAS No. 64742-82-1, acetone-CAS No. 67-64-1, I-20A lubricant-CAS No. 64742-62-7, sodium solutions-CAS No. 1310-73-2, and sulfuric acid-CAS No. 7664-93-9) and hydroabrasive wear resistances. A study of the change in the permeability index in aggressive environments is additionally carried out, taking into account the rational ratio of dispersive fillers in the epoxy binder, which made it possible to create an effective barrier to the penetration of aggressive water molecules into the base. A decrease in the permeability of protective coatings by 2.0-3.3 times relative to the epoxy matrix is achieved. In addition, the wear resistance of the developed materials under the action of hydroabrasion is investigated. The relative resistance of the CM to the action of hydroabrasion was found by the method of materials and coatings testing on the gas-abrasive wear with a centrifugal accelerator. This method enables one to model the real process of the wear of mechanism parts under the hydroabrasive action. It is shown that the coefficient of the wear resistance of the developed materials is 1.3 times higher than that of the polymer matrix, which indicates the resistance of the composites to the influence of hydroabrasive environment. As a result, modified epoxy composite protective coatings with improved anticorrosion properties and wear resistance under hydroabrasive conditions are developed. It is established that the protective coating filled with particles of a mixture of nanodispersed compounds (30-90 nm), iron scale (60-63 mu m), and Waltrop (8-12 mu m) has the lowest permeability indicators. The permeability in natural conditions of such a coating during the time t = 300 days of the study is chi = 0.5%, which is 3.6 times less than the similar indicators of the epoxy matrix. It is substantiated that the protective coating filled with particles of a mixture of nanodispersed compounds (30-90 nm), iron scale (60-63 mu m), and Agocel S-2000 (8-12 mu m) is characterized by the highest indicators of wear resistance. The coefficient of wear resistance under
引用
收藏
页数:27
相关论文
共 57 条
[1]   Biochar from waste agriculture as reinforcement filer for styrene/butadiene rubber [J].
Abd El-Aziz, Mahmoud E. ;
Shafik, Emad S. ;
Tawfic, Medhat L. ;
Morsi, Samir M. M. .
POLYMER COMPOSITES, 2022, 43 (03) :1295-1304
[2]  
Alshammari F.Z., 2018, Tribol. Ind, V40, P335, DOI DOI 10.24874/TI.2018.40.03.01
[3]   Potential of Natural Fiber Reinforced Polymer Composites in Sandwich Structures: A Review on Its Mechanical Properties [J].
Alsubari, S. ;
Zuhri, M. Y. M. ;
Sapuan, S. M. ;
Ishak, M. R. ;
Ilyas, R. A. ;
Asyraf, M. R. M. .
POLYMERS, 2021, 13 (03) :1-20
[4]   Epoxy resin coatings modified by ionic liquid. Study of abrasion resistance [J].
Aviles, M. D. ;
Saurin, N. ;
Carrion, F. J. ;
Arias-Pardilla, J. ;
Martinez-Mateo, I ;
Sanes, J. ;
Bermudez, M. D. .
EXPRESS POLYMER LETTERS, 2019, 13 (04) :303-310
[5]   Improving the mechanical, wear and anti-corrosion performance of polyester coating on structural steel by graphite addition [J].
Barhoumi, Najoua ;
Ghanem, Abdelkarim ;
Koudhai, Mariem ;
Khlifi, Kaouther ;
Terras, Mohamed Ali .
EXPRESS POLYMER LETTERS, 2022, 16 (05) :476-487
[6]   Investigations on tensile and flexural behaviors of sugarcane fiber/boron nitride/fly ash reinforced polymer matrix composite [J].
Bhardwaj, Pradhyumn ;
Panjabi, Rohit Omprakash ;
Nade, Omkar Ashok ;
Gopalan, Venkatachalam ;
Pragasam, Vignesh ;
Salunke, Dinesh Ramesh .
POLYMER COMPOSITES, 2022, 43 (03) :1730-1741
[7]   Hybrid Coatings of SiO2-Recycled PET Unsaturated Polyester Resin by Sol-Gel Process [J].
Borquez-Mendivil, Adrian ;
Hurtado-Macias, Abel ;
Leal-Perez, Jesus Eduardo ;
Flores-Valenzuela, Joaquin ;
Vargas-Ortiz, Ramon Alvaro ;
Cabrera-Covarrubias, Francisca Guadalupe ;
Almaral-Sanchez, Jorge Luis .
POLYMERS, 2022, 14 (16)
[8]   Dynamics of destruction of epoxy composites filled with ultra-dispersed diamond under impact conditions [J].
Buketov, A., V ;
Sapronov, O. O. ;
Brailo, M., V ;
Maruschak, P. O. ;
Yakushchenko, S., V ;
Panin, S., V ;
Nigalatiy, V. D. .
MECHANICS OF ADVANCED MATERIALS AND STRUCTURES, 2020, 27 (09) :725-733
[9]   Adhesive Pull and Shear Strength of Epoxy Nanocomposite Coatings Filled with Ultradispersed Diamond [J].
Buketov, A. V. ;
Dolgov, N. A. ;
Sapronov, A. A. ;
Nigalatii, V. D. .
STRENGTH OF MATERIALS, 2018, 50 (03) :425-431
[10]   INVESTIGATION OF THE HYDROABRASIVE WEAR OF EPOXY COMPOSITES WITH TWO-COMPONENT FILLER [J].
Buketov, A. V. ;
Sapronov, O. O. ;
Brailo, M. V. ;
Zinchenko, D. O. ;
Nihalatii, V. D. .
MATERIALS SCIENCE, 2017, 53 (01) :62-66