OPTIMIZATION OF THE WARPAGE OF FUSED DEPOSITION MODELING PARTS USING FINITE ELEMENT METHOD
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Syrlybayev, Daniyar
Zharylkassyn, Beibit
Seisekulova, Aidana
Perveen, Asma
Talamona, Didier
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MDPI
Abstract
Fused deposition modeling (FDM) is one of the most affordable and widespread additive
manufacturing (AM) technologies. Despite its simplistic implementation, the physics behind this
FDM process is very complex and involves rapid heating and cooling of the polymer feedstock. As
a result, highly non-uniform internal stresses develop within the part, which can cause warpage
deformation. The severity of the warpage is highly dependent on the process parameters involved,
and therefore, currently extensive experimental studies are ongoing to assess their influence on the
final accuracy of the part. In this study, a thermomechanical Finite Element model of the 3D printing
process was developed using ANSYS. This model was compared against experimental results and
several other analytical models available in the literature. The developed Finite Element Analysis
(FEA) model demonstrated a good qualitative and quantitative correlation with the experimental
results. An L9 orthogonal array, from Taguchi Design of Experiments, was used for the optimization
of the warpage based on experimental results and numerical simulations. The optimum process
parameters were identified for each objective and parts were printed using these process parameters.
Both parts showed an approximately equal warpage value of 320 µm, which was the lowest among
all 10 runs of the L9 array. Additionally, this model is extended to predict the warpage of FDM
printed multi-material parts. The relative percentage error between the numerical and experimental
warpage results for alternating and sandwich specimens are found to be 1.4% and 9.5%, respectively.
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Syrlybayev, D.; Zharylkassyn, B.; Seisekulova, A.; Perveen, A.; Talamona, D. Optimization of the Warpage of Fused Deposition Modeling Parts Using Finite Element Method. Polymers 2021, 13, 3849. https:// doi.org/10.3390/polym13213849
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