Numerical and Experimental Study of Ti6Al4V Components Manufactured Using Powder Bed Fusion Additive Manufacturing

被引:0
|
作者
Jonas Zielinski
Hans-Wilfried Mindt
Jan Düchting
Johannes Henrich Schleifenbaum
Mustafa Megahed
机构
[1] RWTH Aachen University - Digital Additive Production,
[2] ESI Group,undefined
[3] Fraunhofer Institute for Laser Technology,undefined
来源
JOM | 2017年 / 69卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Powder bed fusion additive manufacturing of titanium alloys is an interesting manufacturing route for many applications requiring high material strength combined with geometric complexity. Managing powder bed fusion challenges, including porosity, surface finish, distortions and residual stresses of as-built material, is the key to bringing the advantages of this process to production main stream. This paper discusses the application of experimental and numerical analysis towards optimizing the manufacturing process of a demonstration component. Powder characterization including assessment of the reusability, assessment of material consolidation and process window optimization is pursued prior to applying the identified optima to study the distortion and residual stresses of the demonstrator. Comparisons of numerical predictions with measurements show good correlations along the complete numerical chain.
引用
收藏
页码:2711 / 2718
页数:7
相关论文
共 50 条
  • [31] A Review of the Fatigue Behaviour of Laser Powder Bed Fusion Ti6Al4V
    Moloi, Tumelo
    Dzogbewu, Thywill Cephas
    Maringa, Maina
    Muiruri, Amos
    METALLURGICAL & MATERIALS ENGINEERING, 2025, 31 (01) : 288 - 310
  • [32] Investigation of the Mechanical Properties of Ti6Al4v Components Made in Additive Manufacturing
    Vassallo, Francesca
    Caputo, Francesco
    Scognamiglio, Ciro
    Lamanna, Giuseppe
    MACROMOLECULAR SYMPOSIA, 2022, 404 (01)
  • [33] Multiphysics Modelling of Laser Powder Bed Fusion Based Additive Manufacturing of Single-Track Build of Ti6Al4V Alloy
    Kumar, Shakti
    Das, Prosenjit
    TRANSACTIONS OF THE INDIAN INSTITUTE OF METALS, 2024, 77 (10) : 2985 - 2994
  • [34] A solidification mode selection process map for laser powder bed fusion additive manufacturing of B-modified Ti6Al4V
    He, Yining
    Webler, Bryan
    ADDITIVE MANUFACTURING, 2022, 59
  • [35] Corrosion behavior of Ti6Al4V alloy for blomedicals application manufactured by Additive Manufacturing
    Testa, C.
    Cabrini, M.
    Lorenzi, S.
    Pastore, T.
    Manfredi, D.
    Lorusso, M.
    Calignano, F.
    Lombardi, M.
    METALLURGIA ITALIANA, 2020, 112 (02): : 6 - 11
  • [36] Laser powder bed fusion of Ti6Al4V lattice structures and their applications
    Dzogbewu, Thywill Cephas
    JOURNAL OF METALS MATERIALS AND MINERALS, 2020, 30 (04): : 68 - 78
  • [37] Numerical Simulation in the Melt Pool Evolution of Laser Powder Bed Fusion Process for Ti6Al4V
    Xu, Yixuan
    Zhang, Dongyun
    Deng, Junyuan
    Wu, Xuping
    Li, Lingshan
    Xie, Yinkai
    Poprawe, Reinhart
    Schleifenbaum, Johannes Henrich
    Ziegler, Stephan
    MATERIALS, 2022, 15 (21)
  • [38] Mechanical properties of wire arc additive manufactured components made of Ti6Al4V
    Staufer H.
    Grunwald R.
    Yosetsu Gakkai Shi/Journal of the Japan Welding Society, 2020, 89 (04): : 252 - 257
  • [39] Additive manufacturing of Ti6Al4V alloy: A review
    Liu, Shunyu
    Shin, Yung C.
    MATERIALS & DESIGN, 2019, 164
  • [40] Manufacturing and Characterization of Ti6Al4V Lattice Components Manufactured by Selective Laser Melting
    Campanelli, Sabina L.
    Contuzzi, Nicola
    Ludovico, Antonio D.
    Caiazzo, Fabrizia
    Cardaropoli, Francesco
    Sergi, Vincenzo
    MATERIALS, 2014, 7 (06): : 4803 - 4822