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March 5, 20262 citationsOpen Access

Influence of Base Plate Preheating on Laser Powder Bed Fusion–Processed EN AW-7075 Aluminium Alloy

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NVNejc VelikajneJMJožef MedvedČDČrtomir Donik

Key Points

  • The aim is to determine how different base plate temperatures affect the laser processing of EN AW 7075 aluminium.
  • Investigated temperatures of plate preheating: 25, 100, 200, and 400 °C.
  • Conducted microstructural characterisation using techniques like LM, SEM, and EBSD.
  • Performed chemical analysis and hardness testing alongside thermal simulations.
  • Moderate preheating (100 °C and 200 °C) did not significantly reduce crack density.
  • At 400 °C, a transition to columnar crack networks occurred with changes in grain orientation.
  • Consistent evaporation of Zn and Mg was recorded, regardless of preheating temperature.

Abstract

The influence of base plate temperature (25, 100, 200, and 400 °C) on the laser powder bed fusion processing of EN AW 7075 was systematically investigated using microstructural characterisation (LM, SEM, EBSD, GROD), chemical analysis, hardness testing, and thermal simulations across a broad range of process parameters. Moderate preheating at 100 °C and 200 °C showed no significant reduction in crack density or changes in grain morphology compared to processing without preheating. At the highest studied temperature—400 °C—a transition to columnar crack networks was observed, accompanied by modified grain orientation, pronounced stress relaxation, and reduced hardness. Independent of preheating temperature, consistent evaporation of Zn (~1 wt.%) and Mg (~0.3 wt.%) occurred during processing. Thermal simulations qualitatively supported the experimental observations, indicating increased thermal retention and displacement with increasing preheating temperature. The results demonstrate that base plate preheating alone is insufficient to suppress hot cracking in EN AW 7075 and may promote alternative crack-growth mechanisms at elevated temperatures, highlighting the need for alternative alloy or process design strategies.

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Cite This Study

Velikajne et al. (2026) studied this question.

synapsesocial.com/papers/69a91e02d6127c7a504c1751https://doi.org/10.3390/ma19050970
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