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      Infill Strategy in 3D Printed PLA Carbon Composites: Effect on Tensile Performance

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      Polymers
      MDPI AG

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          Abstract

          Tuning the infill pattern is one of the key features in additive manufacturing to optimise part weight. In this work, the effect of the infill strategy, including rate and pattern type, is studied on the mechanical performance of polylactic acid (PLA)-carbon composite. In particular, three types of patterns and four filling levels are combined. These combinations are evaluated by tensile loading applied on dogbone specimens. In addition, the underlined deformation mechanisms are further explored using filament-based finite element model. The numerical simulation is built from sliced models and converted into 3D meshes to predict tensile performance. The results show that the infill rate has a nonlinear effect on the density of PLA–carbon composites, and its magnitude depends on the complexity of the generated pattern. In addition, tensile loading is found to activate varied modes of shearing and uniaxial deformations depending on the pattern type. This leads to different profiles and rankings of the tensile performance and allows the infill strategy to significantly affect the part performance, along with its density.

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          Most cited references19

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          Mechanical characterization of FDM 3D printing of continuous carbon fiber reinforced PLA composites

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            Mechanical characteristics of wood, ceramic, metal and carbon fiber-based PLA composites fabricated by FDM

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              Fused deposition modelling: a review

              Purpose Fused deposition modelling (FDM) is the most economical additive manufacturing technique. The purpose of this paper is to describe a detailed review of this technique. Total 211 research papers published during the past 26 years, that is, from the year 1994 to 2019 are critically reviewed. Based on the literature review, research gaps are identified and the scope for future work is discussed. Design/methodology/approach Literature review in the domain of FDM is categorized into five sections – (i) process parameter optimization, (ii) environmental factors affecting the quality of printed parts, (iii) post-production finishing techniques to improve quality of parts, (iv) numerical simulation of process and (iv) recent advances in FDM. Summary of major research work in FDM is presented in tabular form. Findings Based on literature review, research gaps are identified and scope of future work in FDM along with roadmap is discussed. Research limitations/implications In the present paper, literature related to chemical, electric and magnetic properties of FDM parts made up of various filament feedstock materials is not reviewed. Originality/value This is a comprehensive literature review in the domain of FDM focused on identifying the direction for future work to enhance the acceptability of FDM printed parts in industries.
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                Author and article information

                Contributors
                (View ORCID Profile)
                Journal
                POLYCK
                Polymers
                Polymers
                MDPI AG
                2073-4360
                October 2022
                October 08 2022
                : 14
                : 19
                : 4221
                Article
                10.3390/polym14194221
                68da6129-19fb-4295-90a0-9a556b105ba4
                © 2022

                https://creativecommons.org/licenses/by/4.0/

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