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金属管道内壁电镀工艺优化及涂层性能研究

Optimization of Plating Process on Inner Wall of Metal Pipe and Research on Coating Performance.

作者信息

Zhang Chenming, Li Yongfeng, Xu Xiaochang, Zhang Mingming, Leng Haoyuan, Sun Bin

机构信息

School of Mechanical and Electrical Engineering, Henan Institute of Science and Technology, Xinxiang 453003, China.

出版信息

Materials (Basel). 2023 Mar 31;16(7):2800. doi: 10.3390/ma16072800.

Abstract

An innovative brush plating process for preparing coatings on the inner wall of metal pipes is proposed, which aims to solve the limitations of current electroplating technology and improve the performance of the inner walls of metal pipes. While optimizing the process, the effect of working voltage on the microhardness, thickness, surface morphology, corrosion resistance, and elastoplasticity of the Ni coating on the inner wall of the tube was studied under the new process. The results indicate this technique can produce high-quality coatings on the inner wall of pipes in a simple and efficient manner. As the working voltage increases, the surface quality and comprehensive performance of the coating show an increasing trend followed by a decreasing trend. At 12 V, the coating exhibits the highest surface density and uniformity, the lowest surface roughness, the best corrosion resistance, and the maximum microhardness of 575.8 HV, with a corrosion current density of 1.040 × 10 A·cm, a corrosion rate of 0.122 mm·a, the maximum elastic recovery ratio h/h of 0.36, and the best deformation resistance. This study demonstrated the effectiveness of this method in improving the durability and functionality of metal pipes and its potential for various industrial applications.

摘要

提出了一种用于在金属管内壁制备涂层的创新电刷镀工艺,旨在解决当前电镀技术的局限性并提高金属管内壁的性能。在优化该工艺的过程中,研究了新工艺下工作电压对管内壁镍涂层的显微硬度、厚度、表面形貌、耐腐蚀性和弹塑性的影响。结果表明,该技术能够以简单高效的方式在管内壁制备高质量涂层。随着工作电压的增加,涂层的表面质量和综合性能呈现先上升后下降的趋势。在12V时,涂层具有最高的表面密度和均匀性、最低的表面粗糙度、最佳的耐腐蚀性以及575.8HV的最大显微硬度,腐蚀电流密度为1.040×10A·cm,腐蚀速率为0.122mm·a,最大弹性回复率h/h为0.36,且抗变形能力最佳。本研究证明了该方法在提高金属管耐久性和功能性方面的有效性及其在各种工业应用中的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8974/10095938/bcd84f0a63ae/materials-16-02800-g001.jpg

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