Article, 2024

Effect of grain orientation angles and compressive parameters on the deformation characteristics and corrosion property of 6061 Al alloy

Materials Characterization, ISSN 1873-4189, 1044-5803, Volume 213, Page 114006, 10.1016/j.matchar.2024.114006

Contributors

Ma, Hong [1] [2] Tang, Jiuxing [2] [3] Geng, Pei-Hao 0000-0001-5566-7804 (Corresponding author) [2] [4] Bandaru, Aswani Kumar 0000-0001-9556-9504 (Corresponding author) [5] Qin, Guo-Liang 0000-0002-1144-1990 [2] Luo, Rui [6] Ma, Ninshu 0000-0002-8088-4154 [4] Yip, Wai Sze 0000-0003-2847-6230 [3] To, Su Et 0000-0002-1676-7770 [3]

Affiliations

  1. [1] Technical University of Denmark
  2. [NORA names: DTU Technical University of Denmark; University; Denmark; Europe, EU; Nordic; OECD];
  3. [2] Shandong University
  4. [NORA names: China; Asia, East];
  5. [3] Hong Kong Polytechnic University
  6. [NORA names: China; Asia, East];
  7. [4] Osaka University
  8. [NORA names: Japan; Asia, East; OECD];
  9. [5] University of Limerick
  10. [NORA names: Ireland; Europe, EU; OECD];

Abstract

The influence of grain orientation angle and processing parameters on the compressive flow stress and corrosion behaviour of 6061-T6 Al alloy was investigated in this study by altering the grain orientation angles in relation to the compressive direction. At relatively low processing temperatures (≤ 300 °C), an increase in the grain orientation angle from 0° to 90°reduced flow stress at low strain ranges (< 0.1) due to the facilitated slip of Al grains. As strain and processing temperature increased, changes in orientation angles had a negligible effect on the flow stress, attributed to the enhanced contribution of intermetallic particles (IMPs) and the occurrence of recrystallisation. Microstructural analysis revealed that higher processing temperatures resulted in a diverse range of IMPs, including Mg2Si (β phase) and Al15(Fe,Mn)3Si2 phases. When the Al alloy was compressed at a high strain rate (25 s−1) and processed at 500 °C, submicron-scale β”, β’, and β phases coexisted. Corrosion tests indicated that a wider distribution of Al15(Fe,Mn)3Si2 phases reduced the corrosion resistance of the Al alloy. This led to the formation of connected corrosion sites in specimens compressed at 500 °C, where a larger corrosion area and enhanced charge transfer ability were confirmed by equivalent circuit fitting. However, no significant variation in corrosion resistance was observed for Al alloys with various grain orientation angles, due to similar grain structure and precipitation behaviour at similar processing temperatures.

Keywords

Al alloy, Al grains, Al15(Fe, Al15(Fe,Mn)3Si2 phases, B phase, Mg2Si, Mn)3Si2 phase, ability, alloy, analysis, angle, area, behavior, changes, characteristics, charge transfer ability, circuit, circuit fitting, compression direction, compression parameters, compressive flow stress, corrosion, corrosion area, corrosion behavior, corrosion properties, corrosion resistance, corrosion sites, corrosion tests, deformation, deformation characteristics, direction, distribution, effect, enhanced charge transfer ability, enhanced contribution, fitness, flow, flow stress, formation, grain, grain orientation angle, grain structure, increase, influence, intermetallic particles, low strain range, microstructural analysis, occurrence, orientation, orientation angle, parameters, particles, phase, precipitation, precipitation behavior, process, process parameters, processing temperature, properties, range, recrystallisation, reduced flow stress, resistance, sites, slip, specimens, strain, strain range, stress, structure, study, temperature, test, transfer ability, variation

Funders

  • National Natural Science Foundation of China

Data Provider: Digital Science