Ultrasonic-magnetic coaxial hybrid GTAW of Ti-6Al-4 V: Shielding gas flow evolution and joint strength-ductility synergy

This work introduced a novel non-contact ultrasonic-magnetic coaxial hybrid GTAW (U-M-GTAW) process to resolve the inherent trade-off between strength and ductility in the Ti-6Al-4 V joints. A full factorial design was used to systematically investigate the effects of ultrasonic power (900–1200 W) and magnetic field current (3–5 A) on the Ti-6Al-4 V joints. Both multi-physics simulations and experiments reveal that high-power ultrasonic (≥1050 W) excitation induces intense acoustic streaming, triggering laminar flow instability in the shielding gas and forming large-scale asymmetric vortices that ultimately lead to severe environmental oxygen ingress. Oxygen ingress causes severe oxidation of the joint, leading to a sharp decline in mechanical properties. Conversely, the introduction of a 5 A axial magnetic field enables the Lorentz force to substantially bolster the fluid stiffness of the plasma arc, successfully reconstituting a perturbation-resistant shielding gas flow. Under the optimal parameters of 1200 W and 5 A, the synergistic effect of the re-established shielding gas flow and the ultrasonic-magnetic fields achieves a 50.0% increase in the aspect ratio while thoroughly dismantling variant growth heredity, promoting highly uniform nucleation of the α phase. This orientation-randomized microstructural topology effectively dissipates localized stress concentrations, elevating the ultimate tensile strength of the joint to 1137.4 ± 7.5 MPa and achieving an elongation of 10.2 ± 0.3%. By bridging macroscopic hydrodynamics, microstructure, and mechanical properties, this work advances the fundamental understanding of multi-physics hybrid processes in welding and additive manufacturing.

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Publication Details

Journal
Journal of Manufacturing Processes
Published
2026-10-07
DOI
https://doi.org/10.1016/j.jmapro.2026.10.012
Primary Topic
Welding Techniques and Residual Stresses
Type
article
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article

Ultrasonic-magnetic coaxial hybrid GTAW of Ti-6Al-4 V: Shielding gas flow evolution and joint strength-ductility synergy

Chuanchuan Jia, Chao Chen, Shuo Wang, Guorui Sun et al.
Journal of Manufacturing Processes
Welding Techniques and Residual Stresses
article

Ultrasonic-magnetic coaxial hybrid GTAW of Ti-6Al-4 V: Shielding gas flow evolution and joint strength-ductility synergy

Chuanchuan Jia, Chao Chen, Shuo Wang, Guorui Sun, Wenlong Li
article en

Abstract

This work introduced a novel non-contact ultrasonic-magnetic coaxial hybrid GTAW (U-M-GTAW) process to resolve the inherent trade-off between strength and ductility in the Ti-6Al-4 V joints. A full factorial design was used to systematically investigate the effects of ultrasonic power (900–1200 W) and magnetic field current (3–5 A) on the Ti-6Al-4 V joints. Both multi-physics simulations and experiments reveal that high-power ultrasonic (≥1050 W) excitation induces intense acoustic streaming, triggering laminar flow instability in the shielding gas and forming large-scale asymmetric vortices that ultimately lead to severe environmental oxygen ingress. Oxygen ingress causes severe oxidation of the joint, leading to a sharp decline in mechanical properties. Conversely, the introduction of a 5 A axial magnetic field enables the Lorentz force to substantially bolster the fluid stiffness of the plasma arc, successfully reconstituting a perturbation-resistant shielding gas flow. Under the optimal parameters of 1200 W and 5 A, the synergistic effect of the re-established shielding gas flow and the ultrasonic-magnetic fields achieves a 50.0% increase in the aspect ratio while thoroughly dismantling variant growth heredity, promoting highly uniform nucleation of the α phase. This orientation-randomized microstructural topology effectively dissipates localized stress concentrations, elevating the ultimate tensile strength of the joint to 1137.4 ± 7.5 MPa and achieving an elongation of 10.2 ± 0.3%. By bridging macroscopic hydrodynamics, microstructure, and mechanical properties, this work advances the fundamental understanding of multi-physics hybrid processes in welding and additive manufacturing.

Journal of Manufacturing ProcessesVol. 177
Jilin University (CN), Key Laboratory of Automobile Materials, Ministry of Education, Jilin University (CN), Northeast Forestry University (CN)
Openalex Percentile: Top 21%
Welding Techniques and Residual Stresses
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