Enhanced Mechanical Properties of Ti/Mg Laminated Composites Using a Differential Temperature Rolling Process under a Protective Atmosphere

Author:

Qi Zichen12,Jia Zhengchi1,Wen Xiaoqing3,Xiao Hong2,Liu Xiao4ORCID,Gu Dawei1,Chen Bo1,Jiang Xujian1

Affiliation:

1. College of Mechanical Engineering, Zhejiang University of Technology, Hangzhou 310023, China

2. National Engineering Research Center for Equipment and Technology of Cold Strip Rolling, Yanshan University, Qinhuangdao 066004, China

3. Zhejiang YaTong Advanced Materials Co., Ltd., Hangzhou 310030, China

4. College of Mechanical and Vehicle Engineering, Taiyuan University of Technology, Taiyuan 030024, China

Abstract

Addressing the issue of low bonding strength in Ti/Mg laminated composites due to interfacial oxidation, this study employs a differential temperature rolling method using longitudinal induction heating to fabricate Ti/Mg composite plates. The entire process is conducted under an argon gas protective atmosphere, which prevents interfacial oxidation while achieving uniform deformation. The effects of reduction on the mechanical properties and microstructure of the composite plates are thoroughly investigated. Results indicate that as the reduction increases, the bonding strength gradually increases, mainly attributed to the increased mechanical interlocking area and a broader element diffusion layer. This corresponds to a transition from a brittle to a ductile fracture at the microscopic tensile–shear fracture surface. When the reduction reaches 47.5%, the Ti/Mg interfacial strength reaches 63 MPa, which is approximately a 20% improvement compared to the bonded strength with previous oxidation at the interface. Notably, at a low reduction of 17.5%, the bonding strength is significantly enhanced by about one time. Additionally, it was found that a strong bonded interface at a high reduction is beneficial in hindering the propagation of interfacial cracks during tensile testing, enhancing the ability of the Ti/Mg composite plates to resist interfacial delamination.

Funder

National Key Research and Development Project of China

National Natural Science Foundation of China

Natural Science Foundation of Zhejiang Province

National Key Laboratory of Metal Forming Technology and Heavy Equipment

China Postdoctoral Science Foundation

Special Metallurgical Products, Process Research and Application Technology Services

Publisher

MDPI AG

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