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February 5, 2026Materials2 citationsOpen Access

Tailoring Microstructure and Mechanical Properties of the Al-7Si-0.35Mg-0.35Fe Alloy by Cr Addition: A Study on Fe-Rich Phase Modification

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CLChiteng LeWLWenjun LiuTYTiancai Yin

Key Points

  • The aim is to modify the Fe-rich phases and assess their impact on the mechanical properties of Al-7Si-0.35Mg-0.35Fe alloy through Cr addition.
  • Investigated Al-7Si-0.35Mg-0.35Fe alloy with varying Cr content (0–0.25 wt%)
  • Analyzed microstructural changes in Fe-rich phases
  • Measured mechanical properties including ultimate tensile strength and elongation
  • Secondary dendrite arm spacing significantly refined upon Cr addition
  • Fe-rich phases transitioned from needle-like to blocky morphology with increasing Cr content
  • 0.20Cr alloy exhibited 65% increase in sphericity and 84% reduction in equivalent diameter
  • Ultimate tensile strength and elongation of 0.20Cr alloy increased by approximately 19% and 107% compared to 0Cr alloy

Abstract

Fe-rich phases are unavoidable intermetallic compounds in aluminum alloys, particularly in recycled aluminum. Their needle-like morphology not only impairs the mechanical performance of the alloy by disrupting the continuity of the matrix but also significantly reduces the allowable addition of recycled aluminum materials. Based on this, this study focuses on the Al-7Si-0.35Mg-0.35Fe alloy with a high Fe content. The Cr was introduced to modify the characteristics of the Fe-rich phase, and the microstructural evolution and mechanical properties of the aluminum alloy with different Cr content (0–0.25 wt.%) were investigated. Experimental results show that the secondary dendrite arm spacing of the alloy is significantly refined after Cr addition. Meanwhile, the Fe-rich phase gradually transitions from β-Al5FeSi with needle-like morphology to α-Al15(Fe,Cr)3Si2 with short rod-like or blocky morphology as the Cr content increases. Notably, the Fe-rich phase in the 0.20Cr alloy exhibits an approximately 65% increase in sphericity and an 84% reduction in equivalent diameter compared to those in the 0Cr alloy. The morphological blunting and dispersed distribution of Fe-rich phases lead to a broad effective Cr addition range of 0.05–0.20 wt% in the alloy. Among them, the 0.20Cr alloy exhibited the best comprehensive mechanical properties, with its ultimate tensile strength and elongation approximately 19% and 107% higher than those of the 0Cr alloy, respectively. Furthermore, the fracture morphology and the relationship between the Fe-rich phase and microcracks in Al-7Si-0.35Mg-0.35Fe alloys with different Cr contents were also analyzed.

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Cite This Study

Le et al. (2026) studied this question.

synapsesocial.com/papers/6984360af1d9ada3c1fb59b0https://doi.org/10.3390/ma19030593
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