Abstract: (83 Views)
The influence of different heat treatment parameters, namely solutionizing and artificial
aging conditions, on the microstructure, mechanical hardness, and corrosion resistance of Al-
12Si-Cu alloy are systematically explored in this work. Solution treatment was performed at
two temperatures (500°C and 530°C) and two durations (0.5 and 3 hours), and artificial aging
was made at two temperatures (180°C and 310°C) over two durations (2 and 5 hours).
Optical microscopy also showed interesting microstructural changes with fine grain
refinement and enhanced spheroidization of the coarse eutectic Si phase and a more uniform
distribution of primary intermetallic grains. These structural adjustments were identified as
direct determinants of properties of the material. Maximum microhardness (155 HV) was
achieved at the temperatures of 500°C/3 h solutionizing and 180°C for 5 h aging (S3), which
was ascribed to successful solid solution strengthening and fine precipitation hardening. In
contrast, the lowest hardness (54 HV) was obtained at the values 530°C/3 h + 310°C/5 h (S8),
showing the harmful impact of over-aging at higher temperatures. Analysis of
electrochemical corrosion detected a significant correlation between the corrosion resistance
and treated microstructure, where conditions favoring microstructural refinement resulted in a
decrease in corrosion current density. A Design of Experiments (DOE) method by way of the
Taguchi L8 orthogonal array was used to find out how each parameter contributed relative to
the other variable. The analysis revealed that, whilst the aging temperature was the most
influential factor to the microhardness, the solution time was the controlling factor on the
surface roughness. The results demonstrate a robust determination of the main processing
windows which are known to be crucial to enhance particular properties and verify the
tremendous feasibility of temperature control in heat treatment process optimization in
engineering the necessary trade-off between mechanical strength and corrosion performance
in Al-12Si-Cu alloys.
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Highlights
- A Taguchi L-8 orthogonal array design was systematically employed to optimize the combined influence of solutionizing and artificial aging on Al-12Si-Cu alloy properties.
- Microstructural refinement, particularly eutectic silicon spheroidization, was identified as the key factor that physically disrupts cathodic paths, effectively mitigating corrosion propagation.
- A clear trade-off was established: Maximum microhardness 155 HV was achieved at S3 500C (3h) + 180 C (5 h), while the best corrosion resistance 4.76 mpy required the shorter treatment time of S1.
- ANOVA identified the aging temperature as the most influential factor (contributing over 84 % to microhardness) governing the final balance of mechanical and corrosion properties.