Process window for electron beam melting of Ti–42Nb wt.%; Journal of Materials Research and Technology; Vol. 25

Podrobná bibliografie
Parent link:Journal of Materials Research and Technology.— .— Amsterdam: Elsevier Science Publishing Company Inc.
Vol. 25.— 2023.— P. 4457-4478
Další autoři: Grubova I. Yu. Irina Yurievna, Kozadayeva M. Maria, Volkova A. P. Anastasia Petrovna, Khrapov D. Dmitriy, Surmenev R. A. Roman Anatolievich, Коптюг А. В. Андрей Валентинович, Vladesku A. Alina, Tyurin A. I. Aleksandr Ivanovich, Surmeneva M. A. Maria Alexandrovna
Shrnutí:Title screen
Pre-alloyed β-phase Ti˗42Nb alloy was successfully produced for the first time by E-PBF. The study focuses on the determination of the processing parameter window by varying the beam current, beam speed, layer thickness, and line offset to achieve the defect-free manufacturing of new material with desired properties. Overall, 49 regimes were investigated. The Ti˗42Nb powder were characterized using the DSC/TG, XRD, and SEM/EDX analyses to evaluate its suitability for E-PBF manufacturing. The alloys with the best-built quality fall into the narrow zone between the line energies of 0.30 and 0.34 J/mm. The predicted optimal process parameters were I = 4 mA, v = 700–800 mm/s, h = 100 μm, U = 60 kV, and t = 100 μm. Detailed microstructural characterization was carried out to gain insights into the fundamental mechanisms that govern the behavior of the studied alloys. TEM identified the α'' martensitic phase nucleation occurred preferentially at the β grain boundaries. Un-melted ellipsoidal NbC (∼10 μm) particles were detected with no preferential segregation sites. EBSD revealed coarse microstructures and <001> fiber texture, as well as epitaxial grain growth of columnar grains of about 300 μm. The optimal regime demonstrated a texture composed of a high amount of low aspect ratio grains (50%), which yielded a microindentation hardness of 3.0 GPa and a low elastic modulus of 68 GPa. Hence, these results provide opportunities to design novel alloys to be of interest for biomedical applications. Moreover, this study extends the scope of AM by establishing the process parameter window that yields a material with favorable mechanical properties
Текстовый файл
AM_Agreement
Jazyk:angličtina
Vydáno: 2023
Témata:
On-line přístup:https://doi.org/10.1016/j.jmrt.2023.06.234
Médium: Elektronický zdroj Kapitola
KOHA link:https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=684974

MARC

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330 |a Pre-alloyed β-phase Ti˗42Nb alloy was successfully produced for the first time by E-PBF. The study focuses on the determination of the processing parameter window by varying the beam current, beam speed, layer thickness, and line offset to achieve the defect-free manufacturing of new material with desired properties. Overall, 49 regimes were investigated. The Ti˗42Nb powder were characterized using the DSC/TG, XRD, and SEM/EDX analyses to evaluate its suitability for E-PBF manufacturing. The alloys with the best-built quality fall into the narrow zone between the line energies of 0.30 and 0.34 J/mm. The predicted optimal process parameters were I = 4 mA, v = 700–800 mm/s, h = 100 μm, U = 60 kV, and t = 100 μm. Detailed microstructural characterization was carried out to gain insights into the fundamental mechanisms that govern the behavior of the studied alloys. TEM identified the α'' martensitic phase nucleation occurred preferentially at the β grain boundaries. Un-melted ellipsoidal NbC (∼10 μm) particles were detected with no preferential segregation sites. EBSD revealed coarse microstructures and <001> fiber texture, as well as epitaxial grain growth of columnar grains of about 300 μm. The optimal regime demonstrated a texture composed of a high amount of low aspect ratio grains (50%), which yielded a microindentation hardness of 3.0 GPa and a low elastic modulus of 68 GPa. Hence, these results provide opportunities to design novel alloys to be of interest for biomedical applications. Moreover, this study extends the scope of AM by establishing the process parameter window that yields a material with favorable mechanical properties 
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610 1 |a Electron beam additive manufacturing 
610 1 |a Biomaterials 
610 1 |a Beta titanium alloy 
610 1 |a Elastic propertiesMicrostructure 
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701 1 |a Grubova  |b I. Yu.  |c physicist  |c engineer-researcher of Tomsk Polytechnic Universit  |f 1989-  |g Irina Yurievna  |9 16573 
701 1 |a Kozadayeva  |b M.  |c chemist  |c engineer of Tomsk Polytechnic University  |f 1998-  |g Maria  |9 22899 
701 1 |a Volkova  |b A. P.  |c physicist  |c engineer of Tomsk Polytechnic University  |f 1998-  |g Anastasia Petrovna  |9 22611 
701 1 |a Khrapov  |b D.  |c Specialist in the field of nuclear technologies  |c Research Engineer of Tomsk Polytechnic University  |f 1993-  |g Dmitriy  |9 21619 
701 1 |a Surmenev  |b R. A.  |c physicist  |c Associate Professor of Tomsk Polytechnic University, Senior researcher, Candidate of physical and mathematical sciences  |f 1982-  |g Roman Anatolievich  |9 15957 
701 1 |a Коптюг  |b А. В.  |c физик  |c старший научный сотрудник Томского политехнического университета, кандидат физико-математических наук  |f 1956-  |g Андрей Валентинович  |9 22318 
701 1 |a Vladesku  |b A.  |c Romanian specialists in the field of biomaterials  |c researcher of Tomsk Polytechnic University, candidate of biological Sciences  |f 1977-  |g Alina  |9 21177 
701 1 |a Tyurin  |b A. I.  |g Aleksandr Ivanovich 
701 1 |a Surmeneva  |b M. A.  |c specialist in the field of material science  |c engineer-researcher of Tomsk Polytechnic University, Associate Scientist  |f 1984-  |g Maria Alexandrovna  |9 15966 
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