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Self-healing polymers using electrosprayed microcapsules containing oil: Molecular dynamics simulation and experimental studies

机译:使用电喷雾微胶囊含有油的自愈聚合物:分子动力学模拟和实验研究

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In the present study, a group of microcapsule-based smart coatings has been investigated to decrease the corrosion rate in oil and gas transmission lines. The microcapsules are made of epoxy resin and self-healing materials such as oil, which acts as a repairing agent. In this study, the parameters affecting the coating performance such as agitation rate in the micro capsulation process, microcapsule size, and percentage of microcapsule used in the coating structure have been investigated and optimized. Also, other properties of the smart coating, such as the ability to protect against corrosion and adhesion of the coating to the substrate, are examined by Scanning Electron Microscopy (SEM), X-ray Diffraction (XRD) analysis, and pull-off test. The use of microcapsules indicates that as the microcapsules become smaller, the corrosion resistance, as well as the adhesion of the coating to the substrate, is improved. Also, the use of microcapsules in the structure improves the protective capability significantly. The best percentage of microcapsules is the sample with 40 wt%, which increases the corrosion resistance of the coating, although the polymers increase the results of electrochemical and water absorption tests. The formation of microcracks is a serious problem in the use of polymers composites. The creation and spread of these microcracks cause the destruction of these materials and reduces the lifetime of the polymeric material. Above for the synthesis of microcapsules, the method of preparing self-healing polymers and adding them to the containing 40% of microcapsules may provide a suitable coating for carbon steels of oil and gas industries along with a suitable model of its molecular dynamics simulation (MDs). (C) 2020 Elsevier B.V. All rights reserved.
机译:在本研究中,研究了一组基于微胶囊的智能涂层,以降低油气输送管线中的腐蚀速率。微胶囊由环氧树脂和油等自愈合材料制成,油起到修复剂的作用。在本研究中,研究并优化了影响涂层性能的参数,如微胶囊化过程中的搅拌速度、微胶囊尺寸和用于涂层结构的微胶囊百分比。此外,还通过扫描电子显微镜(SEM)、X射线衍射(XRD)分析和拉脱试验检查了智能涂层的其他性能,例如防腐蚀能力和涂层与基材的附着力。微胶囊的使用表明,随着微胶囊变得更小,涂层的耐腐蚀性以及与基体的附着力都得到了改善。此外,在该结构中使用微胶囊显著提高了保护能力。微胶囊的最佳百分比为40 wt%的样品,这增加了涂层的耐腐蚀性,尽管聚合物增加了电化学和吸水测试的结果。微裂纹的形成是聚合物复合材料使用中的一个严重问题。这些微裂纹的产生和扩展会导致这些材料的破坏,并缩短聚合物材料的寿命。对于微胶囊的合成,制备自愈合聚合物并将其添加到含有40%微胶囊的溶液中的方法可以为石油和天然气工业的碳钢提供合适的涂层,以及其分子动力学模拟(MDs)的合适模型。(C) 2020爱思唯尔B.V.版权所有。

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