Optimization of Laser Direct Structuring Process Parameters for Material Extrusion of Polycarbonate

Cansu Gizem Akagündüz, Emrecan Soylemez*

*Bu çalışma için yazışmadan sorumlu yazar

Araştırma sonucu: Dergiye katkıMakalebilirkişi

5 Atıf (Scopus)

Özet

Laser direct structuring (LDS) is critical in the integration of circuits onto 3D-shaped plastic parts, such as antennas and radio frequency components. The LDS process encompasses three stages: deposition of 3D parts, laser structuring, and metallization. While laser-direct structurable parts have been manufactured through plastic injection molding, material extrusion (MEX) is a favored additive manufacturing process for economic low-volume production and fast prototyping advantages. Although injection-molded LDS literature is available, 3D-printed laser-direct structured components merit further investigation. This study focuses on the MEX of catalyst-loaded polycarbonate (PC) parts and its LDS process. The parameters from the nanosecond fiber laser, including scan speed, power, and frequency, are thoroughly analyzed to understand the surface property changes and metallization performance of the printed PC parts. The single scan track width, which corresponds to the accuracy of conductive path width and metallization thickness, is employed to elucidate the findings. A process map is built to keep the track width constant aimed at enhancing the uniform metallization of intricate components. Thresholds are established, identifying a minimum track width of 22.1 μm and metallization thickness of 2.5 μm. These delineate clusters of process parameters that yield conductivity levels suitable for various applications.

Orijinal dilİngilizce
Makale numarası2300907
DergiAdvanced Engineering Materials
Hacim25
Basın numarası23
DOI'lar
Yayın durumuYayınlandı - Ara 2023

Bibliyografik not

Publisher Copyright:
© 2023 The Authors. Advanced Engineering Materials published by Wiley-VCH GmbH.

Finansman

The authors would like to express their gratitude to Aselsan A.Ş. for funding the experimental setup and providing continuous support throughout the study. Additionally, special thanks are extended to Prof. Dr. Ali Gelir for his support and expertise in conducting sheet resistivity measurements. Furthermore, the authors gratefully acknowledge the unwavering support of 3D3 Technology A.Ş. in the area of rapid prototyping, as well as the valuable assistance provided by FIBERLAST A.Ş. in laser structuring.

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