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◆ Rapid Prototyping Journal2026-06-16· Materials science

Remelting-induced enhancement of mechanical properties in SS316L/IN625 functionally graded materials produced by selective laser melting

Omid Rohani Raftar, Mohsen Khajehzadeh, Mohammad Reza Razfar

原始摘要(英文原文)· Original abstract
Purpose This study aims to enhance the mechanical performance and structural integrity of SS316L/IN625 functionally graded materials (FGMs) fabricated via selective laser melting (SLM). Building on the development of a custom multi-powder SLM platform, the research investigates how layer-wise re-melting influences densification, interfacial bonding and overall mechanical reliability in multi-material additive manufacturing. Design/methodology/approach A custom-built SLM platform capable of depositing six discrete compositional gradients from SS316L to IN625 was used. Each deposited layer underwent in-situ laser re-melting under optimized parameters to promote defect healing and compositional homogeneity. The fabricated FGMs were characterized through optical and scanning electron microscopy (SEM), electron backscatter diffraction (EBSD), X-ray diffraction (XRD) and energy-dispersive spectroscopy (EDS). Mechanical behavior was evaluated through hardness mapping and tensile, compression and shear tests to establish quantitative process–structure–property relationships. Findings Layer-wise re-melting markedly improved densification and metallurgical bonding, reducing lack-of-fusion porosity and producing smoother melt-pool boundaries and more continuous columnar growth at interfaces. XRD confirmed partial carbide dissolution and solute retention within the γ matrix, while EDS showed a controlled, near-linear compositional gradient. Surface roughness decreased by 16%, and hardness increased consistently across the graded regions. Mechanically, re-melting enhanced ultimate tensile strength (+8.7%), total elongation (+22.7%), ultimate shear strength (+16.2%) and compressive proof stress (+5.1%) relative to non-remelted samples, demonstrating concurrent gains in both strength and ductility. Originality/value This work introduces a robust fabrication strategy that integrates multi-powder deposition with in-situ layer-wise re-melting to achieve superior microstructural continuity and mechanical performance in metal FGMs. The findings provide a validated framework for tailoring graded metallic components with improved density, bonding integrity and surface quality – offering practical advantages for aerospace, marine and high-temperature applications.
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Remelting-induced enhancement of mechanical properties in SS316L/IN625 functionally graded materials produced by selective laser melting — 科研速览 Science Skim