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April 26, 2026Transactions of Nonferrous Metals Society of China2 citationsOpen Access

Comparative evaluation of microstructure, mechanical properties, and strengthening mechanisms in cast and selective laser melted AlSi10Mg alloys with direct aging treatment

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ASA. SATHISHKUMARRSR. SoundararajanSSS. Sivasankaran

Key Points

  • This research aims to compare the microstructures and mechanical properties of cast and selective laser melted AlSi10Mg alloys with direct aging treatment.
  • Microstructural characterization using SEM and EBSD
  • Comparison of mechanical properties between heat-treated and non-heat-treated alloys
  • Fracture surface analysis and EBSD texture analysis conducted post-tensile testing.
  • DA treatment resulted in a 9.24% increase in yield strength (DA-B) versus non-heat-treated alloy (NHT-AB)
  • Ultimate tensile strength improved by 5.56% in the DA-treated alloy
  • SLM alloys predominantly exhibited ductile fracture, while cast samples showed mixed ductile-brittle behavior.

Abstract

The impact of selective laser melting (SLM) and direct aging (DA) heat treatment on the microstructure and mechanical properties of AlSi10Mg alloys was investigated. Microstructural characterization using SEM and EBSD revealed that SLM alloys exhibited a fine-grained cellular structure with α (Al) and Si-enriched phases, whereas cast alloys displayed a coarse eutectic Si morphology. Subsequent DA treatment demonstrated a 9.24% higher yield strength and a 5.56% improvement in ultimate tensile strength of the DA-B AlSi10Mg alloy when compared to the non-heat-treated alloy (NHT-AB), indicating significant improvements due to the DA process. Fracture surface analysis indicated predominantly ductile fracture in SLM alloys, contrasting with mixed ductile−brittle behavior in cast samples. Furthermore, EBSD texture analysis indicated a grain elongation in necked regions of SLM alloys after tensile deformation. The precipitation strengthening significantly contributes to the enhanced strength of the SLM alloys followed by the cell boundary strengthening. These findings highlight the potential of SLM and DA for producing high-performance AlSi10Mg components for aerospace, automotive, and rapid prototyping applications.

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Cite This Study

SATHISHKUMAR et al. (2026) studied this question.

synapsesocial.com/papers/69edac2e4a46254e215b3e78https://doi.org/10.1016/s1003-6326(25)66990-1
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