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May 29, 2026Metals0 citationsOpen Access

Effect of Heat Treatment on the Mechanical Behavior of Porous Stainless Steel Obtained by L-PBF

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JJJ.S. JesusLBLuis Filipe BorregoLVLuis Vilhena

Key Points

  • This research aims to explore how aging heat treatment affects the mechanical properties of porous stainless steel produced by selective laser melting.
  • Manufactured specimens using stainless steel Uddeholm Corrax powders via selective laser melting.
  • Standardized porosity set at about 3% with a VED of 59.01 J/mm3.
  • Evaluated mechanical behavior focusing on compressive and flexural strength, dynamic Young's modulus, and fatigue strain.
  • Heat treatment increases bending strength by approximately 25%.
  • Compressive plateau strength improves by about 17%.
  • No significant effect on dynamic Young's modulus, and similar fatigue strain accumulation across specimens.

Abstract

The increasing demand for porous stainless-steel materials produced by selective laser melting (L-PBF) for biomedical implants, filtration systems, heat exchangers, and energy devices has created an urgent need to improve their mechanical performance. Optimizing process parameters and microstructural properties is therefore critical for enhancing the overall functionality and reliability of L-PBF porous stainless-steel structures. This paper studies the effect of an aging heat treatment on the mechanical properties of L-PBF specimens, manufactured with stainless steel Uddeholm Corrax powders. The porosity was selected to be about 3%, based on manufacturer’s experience on the production injection mold inserts, with the ability to drain air. To reach this porosity, a set of manufacturing variables were selected, quantified in terms of VED (Volumetric Energy Density) of 59.01 J/mm3. The analysis of the mechanical behavior was focused on the compressive and flexural strength, dynamic Young’s modulus and the energy dissipation during earlier fatigue loading cycles. This study concluded that the heat treatment produces a negligible effect on dynamic Young’s modulus and increases the bending strength by about 25% and the compressive plateau strength by about 17%. Both specimens’ batches exhibit similar fatigue strain accumulation for cyclic compressive tests.

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Cite This Study

Jesus et al. (2026) studied this question.

synapsesocial.com/papers/6a192f07fab5b468c44184fchttps://doi.org/10.3390/met16060590
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