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Paper | Open Access

Overcoming the strength-ductility trade-off in additive manufacturing of titanium alloy by in situ fabrication of heterogeneous lamellar microstructure

Yang Liu1 ( )Kekang Zhang1Tiwen Lu2( )Yixiong Hu1Hongyu Chen1Di Wang3 Mina Zhang4Konrad Kosiba5 Yonggang Wang1( )
Key Laboratory of Impact and Safety Engineering, Ministry of Education, Faculty of Mechanical Engineering & Mechanics, Ningbo University, Ningbo 315211, People’s Republic of China
Key Laboratory of Pressure Systems and Safety, Ministry of Education, School of Mechanical and Power Engineering, East China University of Science and Technology, Shanghai 200237, People’s Republic of China
School of Mechanical and Automotive Engineering, South China University of Technology, Guangzhou 510640, People’s Republic of China
Research Centre for Laser Extreme Manufacturing, Ningbo Institute of Materials Technology & Engineering, Chinese Academy of Sciences, Ningbo 315201, People’s Republic of China
Leibniz Institute for Solid State and Materials Research Dresden, Institute for Complex Materials, Helmholtzstr. 20, 01069 Dresden, Germany
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Abstract

The strength-ductility synergy in heterogeneous materials offers significant advantages, though their scalable and controlled fabrication remains challenging. This study introduces an in situ fabrication strategy for heterogeneous lamellar titanium (HLT) alloy via laser powder bed fusion of a powder mixture consisting of Ti6Al4V (TC4) and 3 wt% Fe. By periodically varying the scanning velocity between layers, a heterogeneous lamellar microstructure is achieved due to the unique Fe distribution originating from the various volumetric energy densities (VEDs). Consequently, the HLT achieves high yield strength (1036 MPa) and ultimate tensile strength (1419 MPa) without compromising uniform elongation (UE), surpassing most TC4 alloys. The high strength may be attributed to precipitation strengthening originating from the nano-sized α and ω precipitates, while the high UE and work hardening arise from the strain-induced martensite (SIM) and strong hetero-deformation induced (HDI) stress. The denser dual-phase interfaces and smaller grains in the low VED layers contribute to the higher sensitivity to the SIM. A strain gradient between soft and hard layers evolves during loading, and it further enhances the HDI strengthening and SIM behavior. Through this work, the in situ fabrication method and the deformation mechanism of lamellar heterostructure could offer valuable reference for the optimization and application of heterogeneous materials.

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International Journal of Extreme Manufacturing

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Cite this article:
Liu Y, Zhang K, Lu T, et al. Overcoming the strength-ductility trade-off in additive manufacturing of titanium alloy by in situ fabrication of heterogeneous lamellar microstructure. International Journal of Extreme Manufacturing, 2026, 8(1). https://doi.org/10.1088/2631-7990/ae0797

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Received: 16 April 2025
Revised: 13 June 2025
Accepted: 16 September 2025
Published: 30 September 2025
© 2025 The Author(s).

Original content from this work may be used under the terms of the Creative Commons Attribution 4.0 licence. Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI.