Influence of infill density on microstructure and flexural behavior of 3D printed PLA thermoplastic parts processed by fusion deposition modeling

The main goal of the present work was to investigate the influence of infill density (ID) on microstructure and flexural behavior of 3D printed parts by conducting three points bending test (3PBT). Flexural behavior of 3D printed parts is mainly dependent on ID which applied during printing. A therm...

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Main Authors: Bandar Abdullah Aloyaydi, Subbarayan Sivasankaran, Hany Rizk Ammar
Format: Article
Language:English
Published: AIMS Press 2019-01-01
Series:AIMS Materials Science
Subjects:
Online Access:https://www.aimspress.com/article/10.3934/matersci.2019.6.1033/fulltext.html
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author Bandar Abdullah Aloyaydi
Subbarayan Sivasankaran
Hany Rizk Ammar
author_facet Bandar Abdullah Aloyaydi
Subbarayan Sivasankaran
Hany Rizk Ammar
author_sort Bandar Abdullah Aloyaydi
collection DOAJ
description The main goal of the present work was to investigate the influence of infill density (ID) on microstructure and flexural behavior of 3D printed parts by conducting three points bending test (3PBT). Flexural behavior of 3D printed parts is mainly dependent on ID which applied during printing. A thermoplastic of poly-lactic acid (PLA) was selected as material which can be best suitable for artificial tissue/bone engineering applications. Further, most of the artificial bones/tissues are subjected to fail due to bending load. Therefore, the effect of ID on the flexural strength of PLA (Bio-degradable) materials is important; which was addressed through this research work. Here, the PLA material was printed using fusion deposition modeling (FDM) by varying ID (40, 60, 80, and 100%). The 3D printed cylindrical specimen of 15 mm in diameter and 30 mm span was used. The bending responses in terms of bending stress-strain and bending force-deflection at each ID were investigated and reported. Furthermore, the fracture bending stress, fracture bending strain, flexural modulus, and stiffness of the printed sample were measured and correlated to the ID. The experimental result has shown that the bending characteristics influenced a strong correlation with ID percentage. The result suggested that the 80% ID was the optimum percentage which possessed considerable strength and toughness. Besides, the specimen surface morphology and the fracture topography were investigated and reported.
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spelling doaj.art-1e3db27089674d93bdf46bb19d4045812022-12-21T19:27:04ZengAIMS PressAIMS Materials Science2372-04682372-04842019-01-01661033104810.3934/matersci.2019.6.1033Influence of infill density on microstructure and flexural behavior of 3D printed PLA thermoplastic parts processed by fusion deposition modelingBandar Abdullah Aloyaydi0Subbarayan Sivasankaran1Hany Rizk Ammar21 Digital Manufacturing Laboratory, Mechanical Engineering Department, Qassim University, Buraidah 51452, Saudi Arabia1 Digital Manufacturing Laboratory, Mechanical Engineering Department, Qassim University, Buraidah 51452, Saudi Arabia1 Digital Manufacturing Laboratory, Mechanical Engineering Department, Qassim University, Buraidah 51452, Saudi Arabia 2 Metallurgical and Materials Engineering Department, Faculty of Petroleum and Mining Engineering, Suez University, Suez, EgyptThe main goal of the present work was to investigate the influence of infill density (ID) on microstructure and flexural behavior of 3D printed parts by conducting three points bending test (3PBT). Flexural behavior of 3D printed parts is mainly dependent on ID which applied during printing. A thermoplastic of poly-lactic acid (PLA) was selected as material which can be best suitable for artificial tissue/bone engineering applications. Further, most of the artificial bones/tissues are subjected to fail due to bending load. Therefore, the effect of ID on the flexural strength of PLA (Bio-degradable) materials is important; which was addressed through this research work. Here, the PLA material was printed using fusion deposition modeling (FDM) by varying ID (40, 60, 80, and 100%). The 3D printed cylindrical specimen of 15 mm in diameter and 30 mm span was used. The bending responses in terms of bending stress-strain and bending force-deflection at each ID were investigated and reported. Furthermore, the fracture bending stress, fracture bending strain, flexural modulus, and stiffness of the printed sample were measured and correlated to the ID. The experimental result has shown that the bending characteristics influenced a strong correlation with ID percentage. The result suggested that the 80% ID was the optimum percentage which possessed considerable strength and toughness. Besides, the specimen surface morphology and the fracture topography were investigated and reported.https://www.aimspress.com/article/10.3934/matersci.2019.6.1033/fulltext.htmlpoly-lactic acidfusion deposition modelinginfill densitybending stress-strainmicrostructure
spellingShingle Bandar Abdullah Aloyaydi
Subbarayan Sivasankaran
Hany Rizk Ammar
Influence of infill density on microstructure and flexural behavior of 3D printed PLA thermoplastic parts processed by fusion deposition modeling
AIMS Materials Science
poly-lactic acid
fusion deposition modeling
infill density
bending stress-strain
microstructure
title Influence of infill density on microstructure and flexural behavior of 3D printed PLA thermoplastic parts processed by fusion deposition modeling
title_full Influence of infill density on microstructure and flexural behavior of 3D printed PLA thermoplastic parts processed by fusion deposition modeling
title_fullStr Influence of infill density on microstructure and flexural behavior of 3D printed PLA thermoplastic parts processed by fusion deposition modeling
title_full_unstemmed Influence of infill density on microstructure and flexural behavior of 3D printed PLA thermoplastic parts processed by fusion deposition modeling
title_short Influence of infill density on microstructure and flexural behavior of 3D printed PLA thermoplastic parts processed by fusion deposition modeling
title_sort influence of infill density on microstructure and flexural behavior of 3d printed pla thermoplastic parts processed by fusion deposition modeling
topic poly-lactic acid
fusion deposition modeling
infill density
bending stress-strain
microstructure
url https://www.aimspress.com/article/10.3934/matersci.2019.6.1033/fulltext.html
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AT subbarayansivasankaran influenceofinfilldensityonmicrostructureandflexuralbehaviorof3dprintedplathermoplasticpartsprocessedbyfusiondepositionmodeling
AT hanyrizkammar influenceofinfilldensityonmicrostructureandflexuralbehaviorof3dprintedplathermoplasticpartsprocessedbyfusiondepositionmodeling