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A combination of Al diffusion and surface nanocrystallization of carbon steel for enhanced corrosion resistance

机译:铝扩散和碳钢表面纳米化的结合以增强耐腐蚀性

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Surface nanocrystallization is beneficial to the corrosion resistance of passive alloys, but generally has a negative effect on the corrosion behavior of non-passive alloys due to the enhanced surface reactivity. In this study, a combination of Al diffusion treatment and surface nanocrystallization was applied to carbon steel with the aim of exploring an alternative approach to improve the corrosion resistance of non-passive carbon steel. The surface nanocrystallization was achieved by sandblasting and subsequent recovery treatment. The former resulted in severe plastic deformation, while the latter turned high-density dislocation cells into nano-sized grains. The present study demonstrates that the combined Al diffusion and nanocrystallization generated a nanocrystalline Al-containing surface layer on the carbon steel with its surface grain diameter in the range of 10-300 nm. The corrosion resistance of the treated steel was evaluated. It is demonstrated that treated specimens possess increased resistance to corrosion with higher surface electron stability. Surface microstructure of the treated specimens was examined using SEM, AFM, and EDS in order to elucidate the mechanism responsible for the improved corrosion resistance.
机译:表面纳米结晶有利于钝化合金的耐蚀性,但由于增强的表面反应性,通常会对非钝化合金的腐蚀行为产生负面影响。在这项研究中,Al扩散处理和表面纳米结晶的组合被应用于碳钢,目的是探索一种替代方法,以提高非钝化碳钢的耐腐蚀性。通过喷砂和随后的回收处理实现了表面纳米晶化。前者导致严重的塑性变形,而后者则将高密度位错细胞转变为纳米尺寸的晶粒。本研究表明,结合的铝扩散和纳米晶化在碳钢上产生了纳米晶含铝表面层,其表面晶粒直径在10-300 nm范围内。评价处理后的钢的耐腐蚀性。结果表明,经过处理的样品具有更高的表面电子稳定性,从而具有更高的耐腐蚀性。使用SEM,AFM和EDS检查了处理过的样品的表面微观结构,以阐明引起耐蚀性提高的机理。

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