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  4. Pure copper membranes manufactured by green laser powder bed fusion with varying wall-thickness and building orientation: microstructure, properties, and vacuum tightness performance
 
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March 2025
Journal Article
Title

Pure copper membranes manufactured by green laser powder bed fusion with varying wall-thickness and building orientation: microstructure, properties, and vacuum tightness performance

Abstract
The design freedom offered by additive manufacturing opens up possibilities for developing novel vacuum electronic devices and radio-frequency components with integrated functionalities. High purity copper is often chosen for these applications because it combines excellent electrical and thermal conductivity. Laser powder bed fusion systems equipped with high-power green laser sources have been developed to enhance the processability of pure copper, which exhibits a low absorption rate for conventional infrared lasers. In this study, pure copper parts manufactured by green laser powder bed fusion were characterized in terms of density, impurity content, and mechanical and physical properties to assess their suitability for ultra-high vacuum applications. Additionally, vacuum membranes were produced with different wall-thicknesses and building orientations and tested for helium leakage with a detection limit of 10-10 mbarls-1. Further microstructural characterization analyses were conducted on the tested membranes to determine the critical parameters influencing their performance in ultra-high vacuum environments, such as effective wall thickness and laser scan length, and establish the current wall thickness limits for pure copper components manufactured by green laser powder bed fusion.
Author(s)
Romano, Tobia  
Politecnico di Milano  
Ratkus, Andris  
Riga Technical University, Riga Technical University
Gruber, Samira  orcid-logo
Fraunhofer-Institut für Werkstoff- und Strahltechnik IWS  
Pozzi, Matteo
Rösler Italiana S.r.l.
Kos, Hendrik
European Organization for Nuclear Research
Garion, Cedric  
CERN
Rorison, Samuel  
European Organization for Nuclear Research
Lopez, Elena  
Fraunhofer-Institut für Werkstoff- und Strahltechnik IWS  
Torims, Toms  
European Organization for Nuclear Research
Vedani, Maurizio  
Politecnico di Milano
Journal
Vacuum  
Project(s)
Innovation Fostering in Accelerator Science and Technology  
Funder
European Commission  
Open Access
DOI
10.1016/j.vacuum.2024.113995
Additional link
Full text
Language
English
Fraunhofer-Institut für Werkstoff- und Strahltechnik IWS  
Keyword(s)
  • Additive manufacturing

  • Copper

  • Green laser

  • Helium leak test

  • Laser powder bed fusion

  • Ultra-high vacuum

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