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      On the Tensile Behaviour of Bio-Sourced 3D-Printed Structures from a Microstructural Perspective

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          Abstract

          The influence of the microstructural arrangement of 3D-printed polylactic acid (PLA) on its mechanical properties is studied using both numerical and experimental approaches. Thermal cycling during the laying down of PLA filament is investigated through infra-red measurements for different printing conditions. The microstructure induced by 3D printing is determined using X-ray micro-tomography. The mechanical properties are measured under tensile testing conditions. Finite element computation is considered to predict the mechanical performance of 3D-printed PLA by converting the acquired 3D images into structural meshes. The results confirm the leading role of the printing temperature on thermal cycling during the laying down process. In addition, the weak influence of the printing temperature on the stiffness of 3D-printed PLA is explained by the relatively small change in porosity content. However, the influence of the printing temperature on the ultimate properties is found to be substantial. This major influence is explained from finite element predictions as an effect of pore connectivity which is found to be the control factor for tensile strength.

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          Most cited references40

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          Additive manufacturing of carbon fiber reinforced thermoplastic composites using fused deposition modeling

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            Parametric appraisal of mechanical property of fused deposition modelling processed parts

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              Additive manufacturing of PLA structures using fused deposition modelling: Effect of process parameters on mechanical properties and their optimal selection

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                Author and article information

                Journal
                Polymers (Basel)
                Polymers (Basel)
                polymers
                Polymers
                MDPI
                2073-4360
                06 May 2020
                May 2020
                : 12
                : 5
                : 1060
                Affiliations
                [1 ]INRAE, UR1268 Biopolymères Interactions Assemblages, F-44300 Nantes, France
                [2 ]IUMR CNRS GEPEA, Université de Nantes, Oniris, CNRS, GEPEA, UMR 6144 F-44000 Nantes, France; sofiane.belhabib@ 123456univ-nantes.fr
                [3 ]Department of mechanical and metal technology, University of Yuzuncu Yil, Van Vocational of Higher School, 65100 Van, Turkey; aaltin@ 123456yyu.edu.tr
                Author notes
                [* ]Correspondence: sofiane.guessasma@ 123456inrae.fr or sofiane.guessasma@ 123456inra.fr ; Tel.: +33-2406-750-36
                Author information
                https://orcid.org/0000-0002-4412-473X
                https://orcid.org/0000-0003-4372-8272
                Article
                polymers-12-01060
                10.3390/polym12051060
                7284503
                32384658
                6c0916d2-fa36-4b1a-8da3-e1b9d0f112a9
                © 2020 by the authors.

                Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license ( http://creativecommons.org/licenses/by/4.0/).

                History
                : 29 March 2020
                : 30 April 2020
                Categories
                Article

                fused deposition modelling,pla tensile properties,x-ray micro-tomography,finite element computation,infra-red measurements,high-speed camera,damage modelling,printing temperature,thermal cycling,microstructure

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