Laser Cladding Treatment to Enhance the Corrosin Resistance and Surface Hardness by Electrophoretic Coatings to A283 Steel

Shahbaa Ahmed Albayati, Ali Bahari, H. A. Hussien, Haneen M Alsafi, ALI ALjelif, Mahdi Mousavi, Sanaz Soufian
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Abstract

Laser cladding (LC) is a laser-based surface modification technology that has been widely adopted for the development of thin layers that operate under harsh conditions. Corrosion contributes to approximately 50% of oil and refinery equipment failures. These major risks require sophisticated methods to improve oil equipment performance. LC promotes the generation of superior properties on the substrate surface, which improves service life. To reduce corrosion failure and enhance life cycles, we conducted electrophoretic deposition (EPD) of Ti and Ni powders and directly coated them on A283 steel alloy, which was alloyed by ND-YAG LC and the remelted surface of A283 steel alloy. The microstructure, element distribution and phase analysis of the cladding sample were studied by optical microscopy, field-emission scanning electron microscopy, X-ray energy-dispersive spectrometry, atomic force microscopy and X-ray diffraction methods. The results indicated that the coatings with fine metallurgical bonding to the substrate comprised major stable FeTi and FeNi and illustrated two different regions of solidification microstructures. The LC process and powder feeding by EPD were applied, which improved the mechanical properties, corrosion behaviour, phase transformation and structural optimisation of the surface microstructure of the laser mixed zone. Melting of the coated sample showed that the coating produced by laser treatment had a smooth top surface. In addition, we have a proven case of surface treatment with a laser that delivered the required performance. Moreover, this treatment is a more environmentally friendly alternative to traditional surface preparation treatments.
激光熔覆提高A283钢电泳涂层的耐蚀性和表面硬度
激光熔覆(LC)是一种基于激光的表面改性技术,已被广泛应用于在恶劣条件下工作的薄层的开发。大约50%的石油和炼油厂设备故障是由腐蚀造成的。这些主要风险需要复杂的方法来提高石油设备的性能。LC促进基材表面产生优越的性能,从而提高了使用寿命。为了减少腐蚀失效,提高寿命周期,我们将Ti和Ni粉末电泳沉积(EPD)并直接涂覆在A283钢合金上,A283钢合金采用ND-YAG LC合金和A283钢合金的重熔表面。采用光学显微镜、场发射扫描电镜、x射线能量色散光谱、原子力显微镜和x射线衍射等方法对熔覆试样的微观结构、元素分布和物相分析进行了研究。结果表明,与基体有良好冶金结合的涂层主要由稳定的FeTi和FeNi组成,并表现出两个不同的凝固组织区域。采用LC工艺和EPD补粉,改善了激光混合区的力学性能、腐蚀行为、相变和表面组织结构优化。熔覆样品的熔覆结果表明,激光处理后的涂层表面光滑。此外,我们有一个经过验证的激光表面处理案例,可以提供所需的性能。此外,这种处理方法比传统的表面处理方法更环保。
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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