Analysis of PLA Geometric Properties Processed by FFF Additive Manufacturing: Effects of Process Parameters and Plate-Extruder Precision Motion

The evolution of fused filament fabrication (FFF) technology, initially restricted to the manufacturing of prototypes, has led to its application in the manufacture of finished functional products with excellent mechanical properties. However, FFF technology entails drawbacks in aspects, such as dim...

Full description

Bibliographic Details
Main Authors: Eustaquio García Plaza, Pedro José Núñez López, Miguel Ángel Caminero Torija, Jesús Miguel Chacón Muñoz
Format: Article
Language:English
Published: MDPI AG 2019-09-01
Series:Polymers
Subjects:
Online Access:https://www.mdpi.com/2073-4360/11/10/1581
id doaj-ab865155e5ef4e308e28b65d31ebe8a2
record_format Article
spelling doaj-ab865155e5ef4e308e28b65d31ebe8a22020-11-25T00:09:54ZengMDPI AGPolymers2073-43602019-09-011110158110.3390/polym11101581polym11101581Analysis of PLA Geometric Properties Processed by FFF Additive Manufacturing: Effects of Process Parameters and Plate-Extruder Precision MotionEustaquio García Plaza0Pedro José Núñez López1Miguel Ángel Caminero Torija2Jesús Miguel Chacón Muñoz3Energy Research and Industrial Applications Institute (INEI), Higher Technical School of Industrial Engineering, Department Applied Mechanics &amp; Engineering of Projects, University of Castilla-La Mancha, Avda. Camilo José Cela, s/n, 13005 Ciudad Real, SpainEnergy Research and Industrial Applications Institute (INEI), Higher Technical School of Industrial Engineering, Department Applied Mechanics &amp; Engineering of Projects, University of Castilla-La Mancha, Avda. Camilo José Cela, s/n, 13005 Ciudad Real, SpainEnergy Research and Industrial Applications Institute (INEI), Higher Technical School of Industrial Engineering, Department Applied Mechanics &amp; Engineering of Projects, University of Castilla-La Mancha, Avda. Camilo José Cela, s/n, 13005 Ciudad Real, SpainHigher Technical School of Industrial Engineering, IMACI, Department Applied Mechanics &amp; Engineering of Projects, University of Castilla-La Mancha, Avda. Camilo José Cela, s/n, 13005 Ciudad Real, SpainThe evolution of fused filament fabrication (FFF) technology, initially restricted to the manufacturing of prototypes, has led to its application in the manufacture of finished functional products with excellent mechanical properties. However, FFF technology entails drawbacks in aspects, such as dimensional and geometric precision, and surface finish. These aspects are crucial for the assembly and service life of functional parts, with geometric qualities lagging far behind the optimum levels obtained by conventional manufacturing processes. A further shortcoming is the proliferation of low cost FFF 3D printers with low quality mechanical components, and malfunctions that have a critical impact on the quality of finished products. FFF product quality is directly influenced by printer settings, material properties in terms of cured layers, and the functional mechanical efficiency of the 3D printer. This paper analyzes the effect of the build orientation (<i>Bo</i>), layer thickness (<i>Lt</i>), feed rate (<i>Fr</i>) parameters, and plate-extruder movements on the dimensional accuracy, flatness error, and surface texture of polylactic acid (PLA) using a low cost open-source FFF 3D printer. The mathematical modelling of geometric properties was performed using artificial neural networks (ANN). The results showed that thinner layer thickness generated lower dimensional deviations, and feed rate had a minor influence on dimensional accuracy. The flatness error and surface texture showed a quasi-linear behavior correlated to layer thickness and feed rate, with alterations produced by 3D printer malfunctions. The mathematical models provide a comprehensive analysis of the geometric behavior of PLA processing by FFF, in order to identify optimum print settings for the processing of functional components.https://www.mdpi.com/2073-4360/11/10/1581dimensional accuracyflatnesssurface texturefused filament fabrication (fff)polylactic acid (pla)
collection DOAJ
language English
format Article
sources DOAJ
author Eustaquio García Plaza
Pedro José Núñez López
Miguel Ángel Caminero Torija
Jesús Miguel Chacón Muñoz
spellingShingle Eustaquio García Plaza
Pedro José Núñez López
Miguel Ángel Caminero Torija
Jesús Miguel Chacón Muñoz
Analysis of PLA Geometric Properties Processed by FFF Additive Manufacturing: Effects of Process Parameters and Plate-Extruder Precision Motion
Polymers
dimensional accuracy
flatness
surface texture
fused filament fabrication (fff)
polylactic acid (pla)
author_facet Eustaquio García Plaza
Pedro José Núñez López
Miguel Ángel Caminero Torija
Jesús Miguel Chacón Muñoz
author_sort Eustaquio García Plaza
title Analysis of PLA Geometric Properties Processed by FFF Additive Manufacturing: Effects of Process Parameters and Plate-Extruder Precision Motion
title_short Analysis of PLA Geometric Properties Processed by FFF Additive Manufacturing: Effects of Process Parameters and Plate-Extruder Precision Motion
title_full Analysis of PLA Geometric Properties Processed by FFF Additive Manufacturing: Effects of Process Parameters and Plate-Extruder Precision Motion
title_fullStr Analysis of PLA Geometric Properties Processed by FFF Additive Manufacturing: Effects of Process Parameters and Plate-Extruder Precision Motion
title_full_unstemmed Analysis of PLA Geometric Properties Processed by FFF Additive Manufacturing: Effects of Process Parameters and Plate-Extruder Precision Motion
title_sort analysis of pla geometric properties processed by fff additive manufacturing: effects of process parameters and plate-extruder precision motion
publisher MDPI AG
series Polymers
issn 2073-4360
publishDate 2019-09-01
description The evolution of fused filament fabrication (FFF) technology, initially restricted to the manufacturing of prototypes, has led to its application in the manufacture of finished functional products with excellent mechanical properties. However, FFF technology entails drawbacks in aspects, such as dimensional and geometric precision, and surface finish. These aspects are crucial for the assembly and service life of functional parts, with geometric qualities lagging far behind the optimum levels obtained by conventional manufacturing processes. A further shortcoming is the proliferation of low cost FFF 3D printers with low quality mechanical components, and malfunctions that have a critical impact on the quality of finished products. FFF product quality is directly influenced by printer settings, material properties in terms of cured layers, and the functional mechanical efficiency of the 3D printer. This paper analyzes the effect of the build orientation (<i>Bo</i>), layer thickness (<i>Lt</i>), feed rate (<i>Fr</i>) parameters, and plate-extruder movements on the dimensional accuracy, flatness error, and surface texture of polylactic acid (PLA) using a low cost open-source FFF 3D printer. The mathematical modelling of geometric properties was performed using artificial neural networks (ANN). The results showed that thinner layer thickness generated lower dimensional deviations, and feed rate had a minor influence on dimensional accuracy. The flatness error and surface texture showed a quasi-linear behavior correlated to layer thickness and feed rate, with alterations produced by 3D printer malfunctions. The mathematical models provide a comprehensive analysis of the geometric behavior of PLA processing by FFF, in order to identify optimum print settings for the processing of functional components.
topic dimensional accuracy
flatness
surface texture
fused filament fabrication (fff)
polylactic acid (pla)
url https://www.mdpi.com/2073-4360/11/10/1581
work_keys_str_mv AT eustaquiogarciaplaza analysisofplageometricpropertiesprocessedbyfffadditivemanufacturingeffectsofprocessparametersandplateextruderprecisionmotion
AT pedrojosenunezlopez analysisofplageometricpropertiesprocessedbyfffadditivemanufacturingeffectsofprocessparametersandplateextruderprecisionmotion
AT miguelangelcaminerotorija analysisofplageometricpropertiesprocessedbyfffadditivemanufacturingeffectsofprocessparametersandplateextruderprecisionmotion
AT jesusmiguelchaconmunoz analysisofplageometricpropertiesprocessedbyfffadditivemanufacturingeffectsofprocessparametersandplateextruderprecisionmotion
_version_ 1725410215934820352