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Performance Enhancement in Borocarburized Low-Carbon Steel by Double Glow Plasma Surface Alloying

机译:双流等离子体表面合金化硼化硼化低碳钢的性能增强

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摘要

In this paper, the performance of low-carbon steel is enhanced after introducing a borocarburized diffusion layer via double glow plasma surface alloying technology. Due to the boron-carbon gradient structure of low-carbon steel, the protective coating exhibits an excellent wear and corrosion resistance. Interestingly, the borocarburized layer consists of a 64 μm carburized layer and a 27 μm boride layer, which plays an effective role in enhancing the microhardness of borocarburized low-carbon steel, exhibiting a 1440 Vickers hardness increase in the surface microhardness of low-carbon steel. The potentiodynamic polarization measurement and impedance measurement results indicate that the boride protective film can effectively prevent aggressive chloride ions from invading the substrate, which indicates an excellent property of corrosion resistance. This systematic study paves a promising way for the future application of hard coatings in severe environments.
机译:在本文中,通过双辉络等离子体表面合金技术引入硼碳融合扩散层后,增强了低碳钢的性能。由于低碳钢的硼 - 碳梯度结构,保护涂层具有出色的耐磨性和耐腐蚀性。有趣的是,硼铜化层由64μm渗碳层和27μm硼化物层组成,它在增强硼化硼化的低碳钢的微硬度方面起着有效作用,在低碳钢的表面微硬度下表现出1440维氏硬度增加。电位动力学偏振测量和阻抗测量结果表明硼化物保护膜可以有效地防止侵蚀性氯离子入侵基材,这表明耐腐蚀性的优异性。这种系统研究为未来在恶劣环境中的硬涂层应用铺平了有希望的方式。

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