Investigation of Intermetallics Formation and Joint Performance of Laser Welded Ni to Al

Author:

Cao Lichao1ORCID,Liu Yongfeng2,Chen Hui-Chi34,Zhang Li5,Sun Hua6,Bi Guijun3ORCID

Affiliation:

1. Institute of Intelligent Manufacturing, Guangdong Academy of Sciences, Guangzhou 510070, China

2. Beijing Engineering Research Center of Monitoring for Construction Safety, Beijing University of Civil Engineering and Architecture, Beijing 100044, China

3. Singapore Institute of Manufacturing Technology, 73 Nanyang Drive, Singapore 637662, Singapore

4. IPG Photonics (Canada) Inc., Kingston, ON K7K 2L9, Canada

5. Guangdong CAS DoFortune Laser Technology Co., Ltd., Foshan 528000, China

6. School of Humanities, Beijing University of Civil Engineering and Architecture, Beijing 100044, China

Abstract

In this paper, laser welding Ni to Al using pulsed wave (PW) and continuous wave (CW) lasers was investigated. Weld quality and strength were evaluated in terms of cross-section examination, intermetallic compounds formation, microhardness, shear test and 90-degree peel test. The results show that deep penetration welding Ni to Al causes high melting pool temperature and severe material mixing, which could result in dominant AlNi3 and AlNi intermetallics (IMCs) in the weld. These IMCs could significantly increase the hardness of the welding zone, but could also lead to the formation of defects, as well as reducing the ability to withstand the shear force and peel force applied to the weld. In comparison, using process optimization to maintain a shallow penetration or form a weld-braze joint, low melting pool temperature and minimum material mixing can be achieved. Hence, low-hardness Al3Ni IMCs are prevalent in the weld. This helps generate a defect-free dissimilar weld joint to withstand higher shear force and peel force. The findings show promising applications, such as the battery management system of electric vehicles, in which joining a Ni adaptor to an Al bus bar is required.

Funder

GDAS’ Project of Science and Technology Development

National Natural Science Foundation of China

Science and Technology Innovation Project of Foshan

Publisher

MDPI AG

Subject

Fluid Flow and Transfer Processes,Computer Science Applications,Process Chemistry and Technology,General Engineering,Instrumentation,General Materials Science

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