Effect of ultrasonic vibration treatment on microstructure evolution and mechanical properties of Cu-TiB2 composites

The distribution of second-phase particles is crucial to the mechanical properties of particulate reinforced copper matrix composites (PRCMCs). Ultrasonic vibration treatment (UVT), as an effective technique to disperse second-phase particles in metallic melts, has been extended to treat PRCMCs usin...

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Published inMaterials characterization Vol. 211; p. 113912
Main Authors Liu, Zhifeng, Zhang, Siruo, Cao, Fei, Jiang, Yihui, Chen, Zongning, Kang, Huijun, Cao, Zhiqiang, Guo, Enyu, Liang, Shuhua, Wang, Tongmin
Format Journal Article
LanguageEnglish
Published Elsevier Inc 01.05.2024
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Summary:The distribution of second-phase particles is crucial to the mechanical properties of particulate reinforced copper matrix composites (PRCMCs). Ultrasonic vibration treatment (UVT), as an effective technique to disperse second-phase particles in metallic melts, has been extended to treat PRCMCs using a SiAlON sonotrode. In this study, systematic experiments have been conducted to explore the effect of UVT on the microstructures and mechanical properties of in situ Cu-TiB2 composites. The results indicated an optimal duration of UVT for 3 min, featured by an improved distribution of TiB2 particles and superior mechanical properties of the as-cast composite. The ultimate tensile strength, yield strength, and elongation exhibited significant increases of 15.7%, 18.1%, and 36.1%, respectively, compared to the as-cast Cu-TiB2 composite without UVT. Furthermore, these experimental composites were subject to rolling deformation. The results once again demonstrated that the as-rolled Cu-TiB2 composite, treated with UVT for 3 min, stood out as the best. The ultimate tensile strength, yield strength, and elongation of the as-rolled Cu-TiB2 composite were 459 MPa, 422 MPa, and 7.0%, respectively. Based on the microstructural observation, the mechanism underlying the UVT-induced enhancement of mechanical properties was discussed in terms of the non-linear effects of ultrasound cavitation on liquid metals. This work can provide a strategy for producing high-performance PRCMCs through UVT. •Cu-1 wt% TiB2 composites are successfully prepared by combining UVT and in-situ synthesis.•UVT can eliminate TiB2 particles from agglomerating and obtain homogeneous microstructure.•Ultrasonic-assisted in situ casting improves both the strength and ductility of Cu-TiB2 composites.•The effect of UVT is positively related to time only in some time ranges.
ISSN:1044-5803
1873-4189
DOI:10.1016/j.matchar.2024.113912