The prospects of applying ionic modification of nitride coatings to high temperature corrosion processes in the oil and gas industry

K. Kadyrzhanov, A. Kozlovskiy, D. Shlimas, G. Moldabayeva
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Abstract

The use of ion modification methods associated with high-dose irradiation with low-energy ions is one of the promising ways to increase the resistance of materials to external influences, including high-temperature corrosion. The process of ionic modification involves creating a near-surface layer of material with a high dislocation density due to implantation effects. This inhibits destructive processes caused by corrosive oxidation or mechanical influences. In this work, using the ion modification method to improve the resistance to high temperature corrosion, the authors modified nitride coatings of the order of 500 nm thick. The main purpose of using the ion modification method was to increase the strength characteristics of nitride coatings against high-temperature corrosion, as well as to reduce the effects of coating degradation to mechanical softening and wear after corrosion tests. In the course of the studies, it was found that the use of low-energy irradiation with O2+ ions (40 keV) leads to an increase in the stability of strength characteristics during high-temperature corrosion (with prolonged heating in an oxygen-containing environment at a temperature 700 °C), as well as a decrease in wear in comparison with unmodified nitride coatings applied to the surface of 316L steel. The promise of these studies lies in the development of new methods for modifying steel structures, which will improve the efficiency of resistance to corrosion and mechanical damage, as well as increase the wear resistance of the surface under external mechanical influences. The possibility of increasing stability due to deformation inclusions caused by implantation makes it possible to increase corrosion resistance by increasing the resistance of materials to high-temperature oxidation.
将氮化物涂层离子改性应用于石油天然气工业高温腐蚀过程的前景
使用与低能量离子高剂量辐照相关的离子改性方法,是提高材料抗外界影响(包括高温腐蚀)能力的有效途径之一。离子改性过程包括在材料近表面形成一层因植入效应而具有高位错密度的材料层。这可以抑制腐蚀性氧化或机械影响造成的破坏过程。在这项工作中,作者利用离子改性方法提高了氮化物涂层的耐高温腐蚀性能,改性涂层的厚度约为 500 nm。使用离子改性方法的主要目的是提高氮化物涂层抗高温腐蚀的强度特性,以及减少腐蚀试验后涂层降解对机械软化和磨损的影响。在研究过程中发现,使用 O2+ 离子(40 keV)进行低能量辐照可提高高温腐蚀(在温度为 700 °C 的含氧环境中长期加热)过程中强度特性的稳定性,与 316L 钢表面未改性的氮化物涂层相比,磨损也有所减少。这些研究的前景在于开发出改造钢结构的新方法,从而提高抗腐蚀和机械损伤的效率,并增加表面在外部机械影响下的耐磨性。由于植入造成的变形夹杂物可以提高稳定性,因此可以通过提高材料的抗高温氧化能力来增强耐腐蚀性。
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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