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February 8, 2026Materials0 citationsOpen Access

Enhancing the Mechanical Performance of Laser Powder Bed Fusion Prepared 316L Stainless Steel by Deformation Post-Processing at Ambient Temperature

RKRadim KocichVSB - Technical University of OstravaLKLenka KunčickáVSB - Technical University of Ostrava

Key Points

  • To investigate how deformation post-processing at ambient temperature affects the microstructure and mechanical properties of AISI 316L stainless steel manufactured by laser powder bed fusion.
  • Utilized laser powder bed fusion to prepare AISI 316L stainless steel components.
  • Applied rotary swaging with varying degrees to perform deformation post-processing.
  • Evaluated mechanical properties such as tensile strength and elongation after processing.
  • Ultimate tensile strength (UTS) increased from 282 MPa to over 1400 MPa after final swaging.
  • Elongation to failure remained above 30%, indicating maintained plasticity.
  • Post-processing successfully eliminated residual porosity and refined the grain structure.

Abstract

Preparation of metallic materials via laser powder bed fusion has gained high popularity primarily due to the versatility of the processed materials and the complexity of the available component geometries. However, the prepared components feature characteristic shortcomings. Among the ways to successfully reduce/eliminate printing issues and homogenize the properties within additively prepared materials is optimized post-processing. In this study, we present the positive effects of deformation post-processing at ambient (room) temperature on the microstructure and mechanical properties of AISI 316L stainless steel prepared by laser powder bed fusion. The post-processing was performed by the industrially applicable method of rotary swaging, for which varying swaging degrees were applied. The selected swaging degree influenced primarily the interactions between the dynamic strengthening and softening processes and consequently the strength/plasticity ratio, although all the applied swaging degrees successfully eliminated the residual porosity and imparted (sub)structure development and grain refinement. The ultimate tensile strength (UTS) for the original workpiece was 282 MPa, and it increased up to more than 1400 MPa after the final swaging while maintaining favorable plasticity (elongation to failure over 30%). The study thus proposes a way to successfully enhance the performance of additively manufactured AISI 316L steel with the use of a commercially applicable plastic deformation technology.

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Cite This Study

Kocich et al. (2026) studied this question.

synapsesocial.com/papers/698828330fc35cd7a8847780https://doi.org/10.3390/ma19030615
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