Process of Pure Copper Fabricated by Selective Laser Melting (SLM) Technology under Moderate Laser Power with Re-Melting Strategy

Author:

Hu Rong1,Su Kangjing2,Lao Zibin2,Cai Yixun2,Fu Bin3,Yuen Matthew M. F.4,Gao Zhaoli5,Cao Mingxuan2,Wang Ying2

Affiliation:

1. School of Applied Physics and Materials, Wuyi University, Jiangmen 529020, China

2. Department of Intelligent Manufacturing, Wuyi University, Jiangmen 529020, China

3. School of Innovation and Entrepreneurship, Wuyi University, Jiangmen 529020, China

4. Department of Mechanical Engineering, Hong Kong University of Science and Technology, Hong Kong 999077, China

5. Biomedical Engineering Department, The Chinese University of Hong Kong, New Territories, Hong Kong 999077, China

Abstract

Pure copper (Cu) material, because of its high thermal conductivity, can be 3D printed to fabricate effective thermal management components. However, in the selective laser melting (SLM) process, due to copper’s high optical reflectivity, Cu-based parts need to be printed using high laser power. In this study, we demonstrated 3D printing with a re-melting strategy is able to fabricate high-density and low-surface-roughness pure copper parts using only a moderate laser (350 W) power. The effect of the re-scan to initial scan speed ratio on the printing quality resulting from the re-melting strategy is discussed. The re-melting strategy is likened to a localized annealing process that promotes the recrystallization of the newly formed copper microstructures on the re-scan path. Given a hatch spacing of 0.06 mm and a powder layer thickness of 0.05 mm, Cu samples with 93.8% density and low surface roughness (Sa~22.9 μm) were produced using an optimized scan speed of 200 mm/s and a re-scanning speed of 400 mm/s, with a laser power of 350 W. Our work provides an approach to optimize the laser power for printing pure copper 3D parts with high relative density (low porosity) and low surface roughness while ensuring the lifetime stability of the part. The re-melting strategies have broad implications in 3D printing and are particularly relevant for metals with high reflectivity, such as pure copper.

Funder

the Guangdong Province Key Field R&D Program Project

the Wuyi University Scientific Research Foundation

the Jiangmen City Fundamental and Applied Fundamental Research Fund

the Guangdong-Hong Kong-Macao Joint Research and Development Fund of Wuyi University

the Wuyi University Joint Training Postgraduate Demonstration Base Fund

the Key Technology Research projects in Inner Mongolia Autonomous Region

Publisher

MDPI AG

Subject

General Materials Science

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