[HTML][HTML] On the current research progress of metallic materials fabricated by laser powder bed fusion process: a review

W Abd-Elaziem, S Elkatatny, AE Abd-Elaziem… - Journal of Materials …, 2022 - Elsevier
Laser powder bed fusion (LPBF) is the most common metal additive manufacturing
technique. Following pre-programmed designs, it employs a high-power density laser …

Fabrication of NiTi through additive manufacturing: A review

M Elahinia, NS Moghaddam, MT Andani… - Progress in Materials …, 2016 - Elsevier
Nickel-titanium (NiTi) is an attractive alloy due to its unique functional properties (ie, shape
memory effect and superelasticity behaviors), low stiffness, biocompatibility, damping …

Laser powder bed fusion of defect-free NiTi shape memory alloy parts with superior tensile superelasticity

L Xue, KC Atli, C Zhang, N Hite, A Srivastava, AC Leff… - Acta Materialia, 2022 - Elsevier
Laser powder bed fusion is a promising additive manufacturing technique for the fabrication
of NiTi shape memory alloy parts with complex geometries that are otherwise difficult to …

Stable tensile recovery strain induced by a Ni4Ti3 nanoprecipitate in a Ni50. 4Ti49. 6 shape memory alloy fabricated via selective laser melting

HZ Lu, HW Ma, WS Cai, X Luo, Z Wang, CH Song… - Acta Materialia, 2021 - Elsevier
We report a stable tensile recovery strain induced by a Ni 4 Ti 3 nanoprecipitate in a Ni 50.4
Ti 49.6 shape memory alloy (SMA) fabricated via selective laser melting (SLM), followed by …

A review of powder additive manufacturing processes for metallic biomaterials

WSW Harun, M Kamariah, N Muhamad, SAC Ghani… - Powder Technology, 2018 - Elsevier
Metal additive manufacturing (metal-AM) has undergone a remarkable evolution over the
past three decades. It was first used solely as an innovative resource of the prototype. Due to …

Wire and arc additive manufacturing of a Ni-rich NiTi shape memory alloy: Microstructure and mechanical properties

Z Zeng, BQ Cong, JP Oliveira, WC Ke, N Schell… - Additive …, 2020 - Elsevier
Abstract Wire and Arc Additive Manufacturing (WAAM) was used for fabrication of NiTi parts
using a commercialy available Ni-rich NiTi wire as the feedstock material. The as-built parts …

[HTML][HTML] Additive manufacturing of shape memory alloys: A review with emphasis on powder bed systems

AN Alagha, S Hussain, W Zaki - Materials & Design, 2021 - Elsevier
The ability of shape memory alloys (SMAs) to recover inelastic strains larger than any other
metallic alloy has prompted their use in a wide range of applications. However, for the most …

Evolution of crystallographic orientation, precipitation, phase transformation and mechanical properties realized by enhancing deposition current for dual-wire arc …

J Wang, Z Pan, Y Wang, L Wang, L Su, D Cuiuri… - Additive …, 2020 - Elsevier
Ni-rich NiTi alloys were deposited using the in-situ alloying wire arc additive manufacturing
(WAAM) method, with varying deposition currents from 80 A to 120 A. The effects of …

Controlling martensitic transformation characteristics in defect-free NiTi shape memory alloys fabricated using laser powder bed fusion and a process optimization …

L Xue, KC Atli, S Picak, C Zhang, B Zhang, A Elwany… - Acta Materialia, 2021 - Elsevier
Abstract Laser Powder Bed Fusion (L-PBF) was utilized to fabricate fully dense, near-
equiatomic (Ni 50.1 Ti 49.9) and Ni-rich NiTi (Ni 50.8 Ti 49.2) shape memory alloy (SMA) …

On the effects of selective laser melting process parameters on microstructure and thermomechanical response of Ni-rich NiTi

S Saedi, NS Moghaddam, A Amerinatanzi, M Elahinia… - Acta Materialia, 2018 - Elsevier
Any variation in the processing parameters of selective laser melting fabrication could
impact the performance of the final product. This study is concentrated on the effects of laser …