Innovative Fabrication Design for In Situ Martensite Decomposition and Enhanced Mechanical Properties in Laser Powder Bed Fused Ti6Al4V Alloy

被引:4
|
作者
Farhang, Behzad [1 ]
Tanrikulu, Ahmet Alptug [2 ,3 ]
Ganesh-Ram, Aditya [1 ]
Durlov, Sadman Hafiz [1 ]
Shayesteh Moghaddam, Narges [1 ]
机构
[1] Univ Texas Arlington, Mech & Aerosp Engn, Arlington, TX 76010 USA
[2] Univ Texas Arlington, Mat Sci & Engn, Arlington, TX 76010 USA
[3] Turkish Aerosp Ind, TR-06980 Ankara, Turkiye
来源
JOURNAL OF MANUFACTURING AND MATERIALS PROCESSING | 2023年 / 7卷 / 06期
关键词
laser powder bed fusion; additive manufacturing; border design; Ti6Al4V; martensitic decomposition; microstructure homogeneity; mechanical properties; ADDITIVELY MANUFACTURED TI-6AL-4V; TITANIUM-ALLOYS; HEAT-TREATMENT; PHASE-TRANSFORMATION; TI ALLOYS; MICROSTRUCTURE; BEHAVIOR; FATIGUE; DEFORMATION; PERFORMANCE;
D O I
10.3390/jmmp7060226
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Ti6Al4V alloy (Ti64) is a popular material used in the aerospace, medical, and automotive industries due to its excellent mechanical properties. Laser Powder Bed Fusion (LPBF) is a promising manufacturing technique that can produce complex and net-shaped components with comparable mechanical properties to those produced using conventional manufacturing techniques. However, during LPBF, the rapid cooling of the material can limit its ductility, making it difficult to achieve high levels of ductility while maintaining the required tensile strength for critical applications. To address this challenge, this study presents a novel approach to controlling the microstructure of Ti64 during LPBF by using a border design surrounding the main parts. It is hypothesized that the design induces in situ martensitic decomposition at different levels during the fabrication process, which can enhance the ductility of the material without compromising its tensile strength. To achieve this aim, a series of Ti64 samples were fabricated using LPBF with varying border designs, including those without borders and with gaps from 0.5 to 4 mm. The microstructure, composition, and mechanical properties of the Reference sample were compared with those of the samples fabricated with the surrounding border design. It was found that the latter had a more homogenized microstructure, a higher density, and improvements in both ductility and tensile strength. Moreover, it was discovered that the level of property improvement and martensitic transformation can be controlled by adjusting the gap space between the border and the main part, providing flexibility in the fabrication process. Overall, this study presents a promising approach for enhancing the mechanical properties of Ti64 produced via LPBF, making it more suitable for critical applications in various industries.
引用
收藏
页数:20
相关论文
共 50 条
  • [41] In-situ hydrogen embrittlement evaluation of as-built and heat treated laser powder bed fused Ti-6Al-4V versus conventionally cold rolled Ti-6Al-4V
    Deconinck, Liesbet
    Vidaller, Maria T. Villa
    Quejido, Elena Bernardo
    Jaegle, Eric A.
    Depover, Tom
    Verbeken, Kim
    ADDITIVE MANUFACTURING, 2023, 76
  • [42] The microstructures and mechanical properties of martensite Ti and TiN phases in a Ti6Al4V laser-assisted nitriding layer
    Zhang, Penglin
    Cheng, Qianqian
    Yi, Gewen
    Wang, Wenzhen
    Liu, Yanyan
    MATERIALS CHARACTERIZATION, 2021, 178
  • [43] Impact of Heat Treatment on Microstructure and Mechanical Characteristics of Laser Powder Bed Fused Ti-6Al-4V Alloy: A Comprehensive Investigation
    Rizwee, Mumtaz
    Kumar, Deepak
    Husain, Md Murtuja
    JOURNAL OF MATERIALS ENGINEERING AND PERFORMANCE, 2025,
  • [44] Optimal tensile properties of laser powder bed fusion hereditary basket-weave microstructure in additive manufactured Ti6Al4V
    Lu, S. L.
    Zhang, Z. J.
    Liu, R.
    Zhou, X. H.
    Wang, X. G.
    Zhang, B. N.
    Zhao, X. M.
    Eckert, J.
    Zhang, Z. F.
    ADDITIVE MANUFACTURING, 2022, 59
  • [45] Microstructure and mechanical properties of laser powder bed fusion Ti-6Al-4V after HIP treatments with varied temperatures and cooling rates
    Derimow, Nicholas
    Benzing, Jake T.
    Joress, Howie
    McDannald, Austin
    Lu, Ping
    DelRio, Frank W.
    Moser, Newell
    Connolly, Matthew J.
    Saville, Alec I.
    Kafka, Orion L.
    Beamer, Chad
    Fishel, Ryan
    Sarker, Suchismita
    Hadley, Chris
    Hrabe, Nik
    MATERIALS & DESIGN, 2024, 247
  • [46] Role of laser remelting and heat treatment in mechanical and tribological properties of selective laser melted Ti6Al4V alloy
    Karimi, J.
    Antonov, M.
    Kollo, L.
    Prashanth, K. G.
    JOURNAL OF ALLOYS AND COMPOUNDS, 2022, 897
  • [47] Residual Stress Distribution and Its Effect on Fatigue Crack Path of Laser Powder Bed Fusion Ti6Al4V Alloy
    Sun, Wenbo
    Ma, Yu'e
    Li, Peiyao
    Zhang, Weihong
    AEROSPACE, 2025, 12 (02)
  • [48] Manufacturing and characterization of in-situ alloyed Ti6Al4V(ELI)-3 at.% Cu by laser powder bed fusion
    Vilardell, A. M.
    Yadroitsev, I
    Yadroitsava, I
    Albu, M.
    Takata, N.
    Kobashi, M.
    Krakhmalev, P.
    Kouprianoff, D.
    Kothleitner, G.
    du Plessis, A.
    ADDITIVE MANUFACTURING, 2020, 36
  • [49] Precipitation hardening of laser powder bed fusion Ti-6Al-4V
    Derimow, Nicholas
    Benzing, Jake T.
    Garcia, Jacob
    Levin, Zachary S.
    Lu, Ping
    Moser, Newell
    Beamer, Chad
    Delrio, Frank W.
    Hrabe, Nik
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2025, 921
  • [50] Continuous wave laser welding of Ti6Al4V alloy joints: Microstructure and mechanical properties
    Rominiyi, Azeez Lawan
    Mashinini, Peter Madindwa
    MATERIALS LETTERS, 2023, 336