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      Multi-objective numerical optimization of 3D-printed polylactic acid bio-metamaterial based on topology, filling pattern, and infill density via fatigue lifetime and mass

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      PLOS ONE
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          Abstract

          Infill parameters are significant with regard to the overall cost and saving material while printing a 3D model. When it comes to printing time, we can decrease the printing time by altering the infill, which also reduces the total process extent. Choosing the right filling parameters affects the strength of the printed model. In this research, the effect of filling density and infill pattern on the fatigue lifetime of cylindrical polylactic acid (PLA) samples was investigated with finite element modeling and analysis. This causes the lattice structure to be considered macro-scale porosity in the additive manufacturing process. Due to the need for multi-objective optimization of several functions at the same time and the inevitable sacrifice of other objectives, the decision was to obtain a set of compromise solutions according to the Pareto-optimal solution technique or the Pareto non-inferior solution approach. As a result, a horizontally printed rectangular pattern with 60% filling was preferred over the four patterns including honeycomb, triangular, regular octagon, and irregular octagon by considering the sum of mass changes and fatigue lifetime changes, and distance from the optimal point, which is the lightest structure with the maximum fatigue lifetime as an objective function with an emphasis on mass as an important parameter in designing scaffolds and biomedical structures. A new structure was also proposed by performing a structural optimization process using computer-aided design tools and also, computer-aided engineering software by Dassault systems. Finally, the selected samples were printed and their 3D printing quality was investigated using field emission scanning electron microscopy inspection.

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          Physical and mechanical properties of PLA, and their functions in widespread applications - A comprehensive review.

          Poly(lactic acid) (PLA), so far, is the most extensively researched and utilized biodegradable aliphatic polyester in human history. Due to its merits, PLA is a leading biomaterial for numerous applications in medicine as well as in industry replacing conventional petrochemical-based polymers. The main purpose of this review is to elaborate the mechanical and physical properties that affect its stability, processability, degradation, PLA-other polymers immiscibility, aging and recyclability, and therefore its potential suitability to fulfill specific application requirements. This review also summarizes variations in these properties during PLA processing (i.e. thermal degradation and recyclability), biodegradation, packaging and sterilization, and aging (i.e. weathering and hygrothermal). In addition, we discuss up-to-date strategies for PLA properties improvements including components and plasticizer blending, nucleation agent addition, and PLA modifications and nanoformulations. Incorporating better understanding of the role of these properties with available improvement strategies is the key for successful utilization of PLA and its copolymers/composites/blends to maximize their fit with worldwide application needs.
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            Ultralight, ultrastiff mechanical metamaterials.

            The mechanical properties of ordinary materials degrade substantially with reduced density because their structural elements bend under applied load. We report a class of microarchitected materials that maintain a nearly constant stiffness per unit mass density, even at ultralow density. This performance derives from a network of nearly isotropic microscale unit cells with high structural connectivity and nanoscale features, whose structural members are designed to carry loads in tension or compression. Production of these microlattices, with polymers, metals, or ceramics as constituent materials, is made possible by projection microstereolithography (an additive micromanufacturing technique) combined with nanoscale coating and postprocessing. We found that these materials exhibit ultrastiff properties across more than three orders of magnitude in density, regardless of the constituent material.
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              Parametric appraisal of mechanical property of fused deposition modelling processed parts

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                Author and article information

                Contributors
                Role: Data curationRole: Formal analysisRole: InvestigationRole: MethodologyRole: ResourcesRole: SoftwareRole: ValidationRole: VisualizationRole: Writing – original draft
                Role: ConceptualizationRole: Funding acquisitionRole: InvestigationRole: MethodologyRole: Project administrationRole: ResourcesRole: SupervisionRole: Writing – review & editing
                Role: Editor
                Journal
                PLoS One
                PLoS One
                plos
                PLOS ONE
                Public Library of Science (San Francisco, CA USA )
                1932-6203
                27 September 2023
                2023
                : 18
                : 9
                : e0291021
                Affiliations
                [001] Research Laboratory of Advanced Materials Behavior (AMB), Faculty of Mechanical Engineering, Semnan University, Semnan, Iran
                University of Vigo, SPAIN
                Author notes

                Competing Interests: The authors illustrate that they have no competing financial interests or personal relationships that could have appeared to influence this work.

                Author information
                https://orcid.org/0000-0002-2398-7456
                https://orcid.org/0000-0001-8686-8705
                Article
                PONE-D-23-02761
                10.1371/journal.pone.0291021
                10529563
                37756325
                95601f96-b636-4bd1-ac98-efeb57934bb5
                © 2023 Dadashi, Azadi

                This is an open access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.

                History
                : 31 January 2023
                : 20 August 2023
                Page count
                Figures: 21, Tables: 10, Pages: 36
                Funding
                Funded by: Iran Small Industries and Industrial Parks Organization (ISIPO)
                Award ID: 23607
                The authors would like to acknowledge the financial support of the Iran Small Industries and Industrial Parks Organization (ISIPO) for this project under grant number of 23607.
                Categories
                Research Article
                Engineering and technology
                Electronics engineering
                3D printing
                Physical Sciences
                Physics
                Classical Mechanics
                Damage Mechanics
                Material Fatigue
                Physical Sciences
                Materials Science
                Materials Physics
                Material Fatigue
                Physical Sciences
                Physics
                Materials Physics
                Material Fatigue
                Physical Sciences
                Mathematics
                Optimization
                Physical Sciences
                Physics
                Classical Mechanics
                Mechanical Stress
                Physical Sciences
                Materials Science
                Material Properties
                Density
                Physical Sciences
                Materials Science
                Materials Physics
                Density
                Physical Sciences
                Physics
                Materials Physics
                Density
                Physical Sciences
                Materials Science
                Material Properties
                Mechanical Properties
                Stiffness
                Physical Sciences
                Materials Science
                Materials
                Metamaterials
                Physical Sciences
                Materials Science
                Material Properties
                Mechanical Properties
                Custom metadata
                All relevant data are within the paper and its Supporting Information files.

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