Fabricating TiNiCu Ternary Shape Memory Alloy by Directed Energy Deposition via Elemental Metal Powders

In this paper, a TiNiCu shape memory alloy single-wall structure was fabricated by the directed energy deposition technique with a mixture of elemental Ti, Ni, and Cu powders following the atomic percentage of Ti50Ni45Cu5 to fully utilize the material flexibility of the additive manufacturing proces...

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Main Authors: Yitao Chen, Xinchang Zhang, Mohammad Masud Parvez, Joseph W. Newkirk, Frank Liou
Format: Article
Language:English
Published: MDPI AG 2021-05-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/11/11/4863
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spelling doaj-51095fce748543c68b48713b1ee159842021-06-01T01:06:30ZengMDPI AGApplied Sciences2076-34172021-05-01114863486310.3390/app11114863Fabricating TiNiCu Ternary Shape Memory Alloy by Directed Energy Deposition via Elemental Metal PowdersYitao Chen0Xinchang Zhang1Mohammad Masud Parvez2Joseph W. Newkirk3Frank Liou4Department of Mechanical and Aerospace Engineering, Missouri University of Science and Technology, Rolla, MO 65409, USADepartment of Mechanical and Aerospace Engineering, Missouri University of Science and Technology, Rolla, MO 65409, USADepartment of Mechanical and Aerospace Engineering, Missouri University of Science and Technology, Rolla, MO 65409, USADepartment of Materials Science and Engineering, Missouri University of Science and Technology, Rolla, MO 65409, USADepartment of Mechanical and Aerospace Engineering, Missouri University of Science and Technology, Rolla, MO 65409, USAIn this paper, a TiNiCu shape memory alloy single-wall structure was fabricated by the directed energy deposition technique with a mixture of elemental Ti, Ni, and Cu powders following the atomic percentage of Ti50Ni45Cu5 to fully utilize the material flexibility of the additive manufacturing process to develop ternary shape memory alloys. The chemical composition, phase, and material properties at multiple locations along the build direction were studied, using scanning electron microscopy, energy-dispersive X-ray spectroscopy, X-ray diffraction, Vickers hardness testing, tensile testing, and differential scanning calorimetry. The location-dependent compositions of martensitic TiNi and austenitic TiNi phases, mechanical properties, and functional properties were investigated in detail. Variations were found in atomic compositions of Ti, Ni, and Cu elements along the build direction due to the complex interaction between elemental powders and laser processing. Good correlations were present among the chemical composition, phase constituent, hardness, and feature of phase transformation temperatures at various locations. The ultimate tensile strength of the as-deposited TiNiCu alloy is comparable with the previously reported additively manufactured TiNi binary alloys. By adding Cu, a much lower thermal hysteresis was achieved, which shows good feasibility of fabricating ternary TiNiCu shape memory alloys, using elemental powders in the directed energy deposition to adjust the thermal hysteresis.https://www.mdpi.com/2076-3417/11/11/4863additive manufacturingdirected energy depositionelemental powder blendsshape memory alloysternary TiNi alloysmaterial characterization
collection DOAJ
language English
format Article
sources DOAJ
author Yitao Chen
Xinchang Zhang
Mohammad Masud Parvez
Joseph W. Newkirk
Frank Liou
spellingShingle Yitao Chen
Xinchang Zhang
Mohammad Masud Parvez
Joseph W. Newkirk
Frank Liou
Fabricating TiNiCu Ternary Shape Memory Alloy by Directed Energy Deposition via Elemental Metal Powders
Applied Sciences
additive manufacturing
directed energy deposition
elemental powder blends
shape memory alloys
ternary TiNi alloys
material characterization
author_facet Yitao Chen
Xinchang Zhang
Mohammad Masud Parvez
Joseph W. Newkirk
Frank Liou
author_sort Yitao Chen
title Fabricating TiNiCu Ternary Shape Memory Alloy by Directed Energy Deposition via Elemental Metal Powders
title_short Fabricating TiNiCu Ternary Shape Memory Alloy by Directed Energy Deposition via Elemental Metal Powders
title_full Fabricating TiNiCu Ternary Shape Memory Alloy by Directed Energy Deposition via Elemental Metal Powders
title_fullStr Fabricating TiNiCu Ternary Shape Memory Alloy by Directed Energy Deposition via Elemental Metal Powders
title_full_unstemmed Fabricating TiNiCu Ternary Shape Memory Alloy by Directed Energy Deposition via Elemental Metal Powders
title_sort fabricating tinicu ternary shape memory alloy by directed energy deposition via elemental metal powders
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2021-05-01
description In this paper, a TiNiCu shape memory alloy single-wall structure was fabricated by the directed energy deposition technique with a mixture of elemental Ti, Ni, and Cu powders following the atomic percentage of Ti50Ni45Cu5 to fully utilize the material flexibility of the additive manufacturing process to develop ternary shape memory alloys. The chemical composition, phase, and material properties at multiple locations along the build direction were studied, using scanning electron microscopy, energy-dispersive X-ray spectroscopy, X-ray diffraction, Vickers hardness testing, tensile testing, and differential scanning calorimetry. The location-dependent compositions of martensitic TiNi and austenitic TiNi phases, mechanical properties, and functional properties were investigated in detail. Variations were found in atomic compositions of Ti, Ni, and Cu elements along the build direction due to the complex interaction between elemental powders and laser processing. Good correlations were present among the chemical composition, phase constituent, hardness, and feature of phase transformation temperatures at various locations. The ultimate tensile strength of the as-deposited TiNiCu alloy is comparable with the previously reported additively manufactured TiNi binary alloys. By adding Cu, a much lower thermal hysteresis was achieved, which shows good feasibility of fabricating ternary TiNiCu shape memory alloys, using elemental powders in the directed energy deposition to adjust the thermal hysteresis.
topic additive manufacturing
directed energy deposition
elemental powder blends
shape memory alloys
ternary TiNi alloys
material characterization
url https://www.mdpi.com/2076-3417/11/11/4863
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