Abstract

The corrosion resistance of homogenized Al-Mg (6.5%) alloy—adding Si, Zn, Mn, and Fe (0.2%) to improve various properties—was observed. Differential scanning calorimetry (DSC) and a JMatPro simulation revealed that the optimal homogenization temperature was 450 °C. The homogenization was carried out at 450 °C for 3, 6, 12, 18, 24, and 30 h in order to view the corrosion resistance change. Corrosion resistance was analyzed by a polarization test in 3.5 wt % NaCl solution. The corrosion resistance improved with increasing homogenization time up to 24 h, but there was no change with longer time periods. To observe the reason for the change in corrosion resistance, scanning electron microscopy coupled with energy dispersive X-ray spectroscopy (SEM-EDS), X-ray diffraction (XRD), and transmission electron microscopy coupled with energy dispersive X-ray spectroscopy (TEM-EDS) analyses were performed. Precipitates containing Mg, such as Al3Mg2 and Mg32(Al, Zn)49, decreased at the grain boundary. After homogenization, the amount of Mg measured by SEM-EDS at the grain boundary decreased from 36% to 8%, while Si increased. Generally, the potential difference between the grain boundary and the grains leads to intergranular corrosion. Reduction of Mg, whose standard electrode potential is lower than that of Al, and an increase of Si, which is present in higher concentration than Al at the grain boundaries, improved the corrosion resistance of 5XXX Al alloy by reducing the intergranular corrosion.

Highlights

  • As the automotive industry has gradually become more sophisticated and subdivided, fuel economy regulations are becoming more stringent to address environmental issues

  • Fuel efficiency improvement technology has been attracting a great deal of attention [1,2]

  • In this study, the corrosion resistance of a new Al alloy was investigated depending on the homogenization time

Read more

Summary

Introduction

Coatings 2018, 8, 39 problem, Zn is added to the Al 5000 series alloy This leads to precipitation of τ(Mg32 (Al, Zn) ). Phases and prevention of β phases at the grain boundaries, thereby improving the corrosion resistance and enhancing the mechanical properties [10]. Mn improves the tensile strength without decreasing the corrosion resistance. Fe prevents adhesion of liquid Al to the mold [12,13] With these many aims, a new complex-composition Al alloy was investigated. Homogenization of the Al alloy distributes the secondary phase and thereby improves the tensile properties [14] and corrosion resistance [15]. In this study, the corrosion resistance of a new Al alloy was investigated depending on the homogenization time

Experimental Details
Results and and Discussion
Chemical
Conclusions
Full Text
Published version (Free)

Talk to us

Join us for a 30 min session where you can share your feedback and ask us any queries you have

Schedule a call