Polyurethane as a versatile polymer for coating and anti-corrosion applications: A review

G. Yeligbayeva, M. Khaldun, Abdassalam A. Alfergani, Zh. Tleugaliyeva, A. Karabayeva, L. Bekbayeva, D. Zhetpisbay, N. Shadin, Z. Atabekova
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Abstract

The development of polyurethane materials and process optimization are currently the subjects of extensive study. Polyurethane is characterized by high physicochemical and operational properties. Polyurethanes have high wear resistance, and oil and gasoline resistance. They have excellent thermophysical and elastic properties. This allows the use of polyurethanes in many industries where materials with high-performance properties are required. Polyurethanes are widely used in many industrial applications, protective coating manufacturing, and anti-corrosion agent applications. A significant number of studies have been conducted to improve the physical, mechanical, and operational properties of polyurethane polymers, in particular the anti-corrosion properties of modified polyurethane coatings. The properties of polyurethane polymers for various applications can be improved by changing monomers and their ratios and the process of preparations. Preparation of polyurethane polymers based on polyols and isocyanate monomers using a polyaddition process in the presence of a catalyst as well as solvents including toluene, xylene, and acetone. There are different factors affecting the physical and mechanical properties of polyurethane polymers were investigated by different techniques. The factors were types of isocyanates, polyols, OCN/OH ratios, solvents, catalysts, and temperatures. Generally, the polyols are responsible for the flexibility of the polyurethane polymers and isocyanates are responsible for the rigidity of the polyurethane polymer and crosslinking between the backbone of the polymer. Because of the flexibility of its chemistry, they may modify the coating's characteristics based on the intended use. The effects of different polyols and polyisocyanates' chemistry are assessed. The hydrophobicity, thermal stability, and mechanical and anti-corrosion properties of polyurethane polymers were investigated. As a result, the properties of polyurethane polymers such as hydrophobicity, thermal stability, and mechanical and anti-corrosion properties were all enhanced when all the above factors. An outline of the most modern, financially successful methods for creating protective polyurethane coatings and using them as anti-corrosion agents is given in this review article.
聚氨酯是一种用于涂料和防腐应用的多功能聚合物:综述
聚氨酯材料的开发和工艺优化是目前广泛研究的课题。聚氨酯具有较高的物理化学和操作性能。聚氨酯具有很高的耐磨性、耐油性和耐汽油性。它们具有优异的热物理性能和弹性性能。因此,聚氨酯可用于许多需要高性能材料的行业。聚氨酯在许多工业应用、保护涂层制造和防腐剂应用中得到广泛应用。为了改善聚氨酯聚合物的物理、机械和操作性能,特别是改性聚氨酯涂层的防腐蚀性能,人们进行了大量的研究。通过改变单体及其比例和制备工艺,可以改善聚氨酯聚合物在各种应用中的性能。聚氨酯聚合物的制备以多元醇和异氰酸酯单体为基础,在催化剂以及甲苯、二甲苯和丙酮等溶剂的存在下采用加成法进行。通过不同的技术对影响聚氨酯聚合物物理和机械性能的不同因素进行了研究。这些因素包括异氰酸酯类型、多元醇、OCN/OH 比率、溶剂、催化剂和温度。一般来说,多元醇负责聚氨酯聚合物的柔韧性,异氰酸酯负责聚氨酯聚合物的刚性和聚合物骨架之间的交联。由于其化学性质的灵活性,它们可以根据预期用途改变涂料的特性。对不同多元醇和多异氰酸酯化学成分的影响进行了评估。研究了聚氨酯聚合物的疏水性、热稳定性、机械性能和防腐性能。结果表明,在上述所有因素的作用下,聚氨酯聚合物的疏水性、热稳定性、机械性能和防腐性能都得到了提高。本综述文章概述了制造聚氨酯保护涂层并将其用作防腐剂的最先进、最成功的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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