Detail publikačního výsledku

Optimisation of preheating and interpass temperature in WADED magnesium alloy AZ61: A comparative study on microstructure, residual stresses, and internal defects

SLAVÍČEK, J.; ZEMAN, S.; HORYNOVÁ, M.; SENCK, S.; KOUTNÝ, D.

Originální název

Optimisation of preheating and interpass temperature in WADED magnesium alloy AZ61: A comparative study on microstructure, residual stresses, and internal defects

Anglický název

Optimisation of preheating and interpass temperature in WADED magnesium alloy AZ61: A comparative study on microstructure, residual stresses, and internal defects

Druh

Článek WoS

Originální abstrakt

This study examines the effect of base material preheating on Wire Arc Direct Energy Deposition (WA-DED) of AZ61 magnesium alloy. The influence of preheating on the geometry and penetration behaviour of a single deposit was first evaluated and used to define suitable conditions for stabilising layer width in thin-walled structures. Two preheating strategies were examined, demonstrating that preheating the base material to 200◦C combined with the same interpass temperature provides the highest layer width stability and improved layer uniformity. The effect of preheating on residual stress was subsequently assessed through the analysis of base material deformation, revealing a reduction in residual stress of up to 50 % compared with fabrication without preheating. Furthermore, microstructural characterisation and µCT analysis were performed to investigate porosity formation mechanisms in the deposited material. Preheating was found to have a positive effect on wall thickness stabilisation, residual stress reduction, and porosity mitigation. Based on the combined evaluation of geometric stability, residual stress, and internal defects, a temperature of 250◦C was identified as the most suitable preheating and interpass temperature for WA-DED of AZ61 magnesium alloy.

Anglický abstrakt

This study examines the effect of base material preheating on Wire Arc Direct Energy Deposition (WA-DED) of AZ61 magnesium alloy. The influence of preheating on the geometry and penetration behaviour of a single deposit was first evaluated and used to define suitable conditions for stabilising layer width in thin-walled structures. Two preheating strategies were examined, demonstrating that preheating the base material to 200◦C combined with the same interpass temperature provides the highest layer width stability and improved layer uniformity. The effect of preheating on residual stress was subsequently assessed through the analysis of base material deformation, revealing a reduction in residual stress of up to 50 % compared with fabrication without preheating. Furthermore, microstructural characterisation and µCT analysis were performed to investigate porosity formation mechanisms in the deposited material. Preheating was found to have a positive effect on wall thickness stabilisation, residual stress reduction, and porosity mitigation. Based on the combined evaluation of geometric stability, residual stress, and internal defects, a temperature of 250◦C was identified as the most suitable preheating and interpass temperature for WA-DED of AZ61 magnesium alloy.

Klíčová slova

Magnesium alloy, Preheating, Interpass temperature, WADED, WAAM

Klíčová slova v angličtině

Magnesium alloy, Preheating, Interpass temperature, WADED, WAAM

Autoři

SLAVÍČEK, J.; ZEMAN, S.; HORYNOVÁ, M.; SENCK, S.; KOUTNÝ, D.

Vydáno

01.06.2026

Nakladatel

Elsevier BV

Periodikum

Journal of Advanced Joining Processes

Svazek

13

Číslo

100395

Stát

Nizozemsko

Strany od

100395

Strany počet

15

URL

Plný text v Digitální knihovně

BibTex

@article{BUT201858,
  author="Jakub {Slavíček} and  {} and Stanislav {Zeman} and Miroslava {Horynová} and  {} and Daniel {Koutný}",
  title="Optimisation of preheating and interpass temperature in WADED magnesium alloy AZ61: A comparative study on microstructure, residual stresses, and internal defects",
  journal="Journal of Advanced Joining Processes",
  year="2026",
  volume="13",
  number="100395",
  pages="15",
  doi="10.1016/j.jajp.2026.100395",
  issn="2666-3309",
  url="https://www.sciencedirect.com/science/article/pii/S2666330926000233"
}