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March 14, 2026Applied Sciences2 citationsOpen Access

LPBF AlSi10Mg at the Nanoscale: A Critical Review of Processing–Microstructure–Property Correlations via Nanoindentation

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AAAikaterini ArgyrouLGLeonidas GargalisLKLeonidas Karavias

Key Points

  • This review aims to clarify the correlations between processing parameters and mechanical properties in LPBF AlSi10Mg.
  • Reviewed existing literature on LPBF processing parameters and their effects on microstructure and mechanical properties.
  • Highlighted challenges in interpreting nanoindentation results and current methodologies.
  • Explored underdeveloped areas such as microstructure-mechanical mapping and integration with characterization techniques.
  • Identified relationships between laser processing conditions and local mechanical response.
  • Highlighted the importance of consistent experimental protocols for cross-study comparisons.
  • Provided insights into optimizing process parameters for additively manufactured aluminum alloys.

Abstract

Laser Powder Bed Fusion (LPBF)-processed AlSi10Mg produces highly heterogeneous microstructures, where fine α-Al cells, Si-rich networks, and melt-pool boundaries govern local mechanical behavior. Nanoindentation has emerged as a key tool for probing these variations, yet systematic understanding of the links between processing parameters, microstructure, and nano-mechanical response remains limited. This critical review examines how laser processing parameters influence local mechanical response through their impact on microstructural features. Key challenges in interpreting nanoindentation are highlighted, alongside inconsistencies in experimental protocols and reporting practices that hinder cross-study comparisons. Beyond summarizing existing findings, underexplored aspects of nanoindentation in LPBF AlSi10Mg are identified, including spatially correlated microstructure-mechanical mapping, depth-resolved measurements, and integration with advanced characterization and data-driven approaches. By synthesizing current knowledge and clarifying methodological constraints, this review positions nanoindentation not merely as a descriptive tool, but as a mechanistically informed approach for linking processing conditions, microstructural heterogeneity, and local mechanical response. These insights aim to support more rigorous interpretation of small-scale mechanical data and to guide future studies toward predictive understanding and rational process optimization in additively manufactured aluminum alloys.

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Cite This Study

Argyrou et al. (2026) studied this question.

synapsesocial.com/papers/69b4add218185d8a39801e08https://doi.org/10.3390/app16062730
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