To read this content please select one of the options below:

Synchronous chemical conversion process on 6061/7075 aluminum alloys and galvanized steel

Xinxiang Li (State Key Laboratory of Special Surface Protection Materials and Application Technology, Wuhan Research Institute of Materials Protection, Wuhan, China)
Wen Zhan (State Key Laboratory of Special Surface Protection Materials and Application Technology, Wuhan Research Institute of Materials Protection, Wuhan, China and Haixi (Fujian)Institute, China Academy of Machinery Science and Technology, Sanming, China)
Xuzheng Qian (College of Mechanical and Electrical Engineering, Huangshan University, Huangshan, China)
Yunhe Zu (State Key Laboratory of Special Surface Protection Materials and Application Technology, Wuhan Research Institute of Materials Protection, Wuhan, China)
Fan Xie (State Key Laboratory of Special Surface Protection Materials and Application Technology, Wuhan Research Institute of Materials Protection, Wuhan, China)
Feng Tian (State Key Laboratory of Special Surface Protection Materials and Application Technology, Wuhan Research Institute of Materials Protection, Wuhan, China)
Xiaohui Liu (State Key Laboratory of Special Surface Protection Materials and Application Technology, Wuhan Research Institute of Materials Protection, Wuhan, China)
Yunhu Ding (State Key Laboratory of Special Surface Protection Materials and Application Technology, Wuhan Research Institute of Materials Protection, Wuhan, China)

Anti-Corrosion Methods and Materials

ISSN: 0003-5599

Article publication date: 8 August 2022

Issue publication date: 13 October 2022

152

Abstract

Purpose

This paper aims to focus the synchronous chemical conversion technology–based titanium/zirconium composite on 6061, 7075 aluminum alloys and galvanized steel.

Design/methodology/approach

The effects of pH, temperature, reaction time and other process parameters on the corrosion resistance of the three metal surface coatings were investigated by copper sulfate drop and electrochemical corrosion performance tests under a certain content of H2TiF6 and H2ZrF6. The surface morphology and element distribution of the conversion coating were analyzed by scanning electron microscope and X-ray photoelectron spectroscopy.

Findings

The results show that the optimal synchronization chemical conversion conditions of 6061/7075 aluminum alloys/galvanized steel are controlled as follows: H2TiF6 2.2 mL/L, H2ZrF6 1 mL/L, pH 3.9, conversion temperature 35°C and conversion time 120 s.

Originality/value

Multi-metals chemical conversion coating can be obtained simultaneously with uniform corrosion resistance and surface morphology. The presence of microdomain features in multiple metals facilitates simultaneous chemical conversion into coatings.

Keywords

Acknowledgements

This study was supported by the National Natural Science Foundation of China (52075391).

Citation

Li, X., Zhan, W., Qian, X., Zu, Y., Xie, F., Tian, F., Liu, X. and Ding, Y. (2022), "Synchronous chemical conversion process on 6061/7075 aluminum alloys and galvanized steel", Anti-Corrosion Methods and Materials, Vol. 69 No. 6, pp. 577-585. https://doi.org/10.1108/ACMM-04-2022-2642

Publisher

:

Emerald Publishing Limited

Copyright © 2022, Emerald Publishing Limited

Related articles