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March 29, 2026Metals0 citationsOpen Access

Influence of the Final Annealing Temperature on Al-Fe-Si Alloy Foil Microstructure and Properties

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XZXiuda ZhuCXChangle XiaoXWXiu‐Bin Wang

Key Points

  • The aim is to analyze how varying the final annealing temperature affects the microstructure and mechanical properties of Al-Fe-Si alloy foils.
  • Used scanning electron microscopy (SEM) for microstructural characterization
  • Conducted tensile tests to assess mechanical properties
  • Varied annealing temperatures from 240 °C to 360 °C
  • Measured grain size and anisotropy in tensile strength and elongation
  • Average grain size increased from 5.2 μm to 9.6 μm with rising temperature
  • Tensile strength decreased significantly from 240–300 °C then recovered at higher temperatures
  • Maximum elongation observed at 30–34% in the 45° direction, indicating significant anisotropy
  • Minimal tensile strength and elongation anisotropy achieved at 240 °C

Abstract

This study systematically investigates the effects of the final annealing temperature on the microstructural evolution and mechanical properties of an Al-Fe-Si alloy aluminum foil. Scanning electron microscopy (SEM) characterization and tensile tests are employed for analysis. As the annealing temperature is elevated from 240 °C to 360 °C, the average grain size increases monotonically from 5.2 μm to 9.6 μm. Continuous recrystallization is identified as the predominant grain growth mechanism. Tensile deformation exhibits the homogeneous plastic behavior without localized necking. The tensile strength decreases significantly in the range of 240–300 °C and subsequently undergoes a recovery stage at 300–360 °C. Significant elongation anisotropy is observed. The maximum elongation reaches 30–34% in the 45° direction, relative to the rolling direction (RD), which is approximately 1.5 times that along the RD (0°). Comparative analysis of the anisotropy indices demonstrates that the aluminum foil annealed at 240 °C achieves the minimal tensile strength anisotropy (13.0 MPa) and elongation anisotropy (−4.2%). This indicates an optimal comprehensive mechanical performance. These findings provide a theoretical rationale for the industrial optimization of the annealing processes for Al-Fe-Si alloy foils. They are particularly valuable for balancing microstructural regulation and mechanical property enhancement in lithium-ion battery soft-packaging applications.

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Cite This Study

Zhu et al. (2026) studied this question.

synapsesocial.com/papers/69c8c277de0f0f753b39cb73https://doi.org/10.3390/met16040368
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