Numerical Modeling of Distortion of Ti-6Al-4V Components Manufactured Using Laser Powder Bed Fusion

被引:7
|
作者
Ninpetch, Patiparn [1 ]
Kowitwarangkul, Pruet [1 ]
Chalermkarnnon, Prasert [2 ]
Promoppatum, Patcharapit [3 ]
Chuchuay, Piyapat [1 ]
Rattanadecho, Phadungsak [4 ]
机构
[1] King Mongkuts Univ Technol North Bangkok KMUTNB, Sirindhorn Int Thai German Grad Sch Engn TGGS, Bangkok 10800, Thailand
[2] Natl Sci & Technol Dev Agcy NSTDA, Assist Technol & Med Devices Res Ctr, Pathum Thani 12120, Thailand
[3] King Mongkuts Univ Technol Thonburi KMUTT, Fac Engn, Ctr Lightweight Mat Design & Mfg, Dept Mech Engn, Bangkok 10140, Thailand
[4] Thammasat Univ, Dept Mech Engn, Fac Engn, Rangsit Campus, Pathum Thani 12121, Thailand
关键词
additive manufacturing; laser powder bed fusion; tibial component; titanium alloy; numerical modeling; distortion; INHERENT STRAIN METHOD; RESIDUAL-STRESS; DEFORMATION; SIMULATION; PREDICTION; PART; IN718;
D O I
10.3390/met12091484
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The laser powder bed fusion (L-PBF) process is a powder-based additive manufacturing process that can manufacture complex metallic components. However, when the metallic components are fabricated with the L-PBF process, they frequently encounter the residual stress and distortion that occurs due to the cyclic of rapid heating and cooling. The distortion detrimentally impacts the dimensional and geometrical accuracy of final built parts in the L-PBF process. The purpose of this research was to explore and predict the distortion of Ti-6Al-4V components manufactured using the L-PBF process by using numerical modeling in Simufact Additive 2020 FP1 software. Firstly, the numerical model validation was conducted with the twin-cantilever beam part. Later, studies were carried out to examine the effect of component sizes and support-structure designs on the distortion of tibial component produced by the L-PBF process. The results of this research revealed a good agreement between the numerical model and experiment data. In addition, the platform was extended to predict the distortion in the tibial component. Large distortion arose near the interface between the tibial tray and support structure due to the different stiffness between the solid bulk and support structure. The distortion of the tibial component increased with increasing component size according to the surface area of the tibial tray, and with increasing thickness of the tibial tray. Furthermore, the support-structure design plays an important role in distortion reduction in the L-PBF process. For example, the maximum distortion of the tibial component was minimized up to 44% when a block support-structure design with a height of 2.5 mm was used instead of the lattice-based support. The present study provides useful information to help the medical sector to manufacture effective medical components and reduce the chance of part failure from cracking in the L-PBF process.
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页数:15
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