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      Characteristics of 3D Printing Products Using PLA/Nanographite Nanocomposite Filaments

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          Abstract

          PLA filament has the characteristics of being biodegradable and environmentally friendly. The mechanical properties of PLA filaments have several drawbacks, so the application of PLA filaments is limited. Efforts to improve the mechanical properties are carried out by adding nanographite as reinforcement material so that it becomes a nanocomposite filament. The purpose of this study was to determine the effect of adding nanographite to PLA filament on the mechanical properties and surface roughness of 3D printed products. The addition of 1.5 wt% nanographite was carried out by dissolving with chloroform and nanocomposite filaments produced from printing with a single extrusion machine. Product printing is done with the parameters print speed of 25 mm/s, print temperature of 205 °C, layer height of 0.2 mm, and infill line directions of 45°. Product characteristics in the form of tensile strength are tested by the tensile tester, filament morphology is observed by SEM, and product surface roughness is observed with a surface roughness tester. Data from the test results were analyzed using the t-test statistical analysis. The results of the study showed that the morphology of the PLA/nanographite nanocomposite filaments showed a rougher surface.

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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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            Production and 3D printing processing of bio-based thermoplastic filament

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              Polylactic acid (PLA): research, development and industrialization.

              Polylactide (PLA) is a biodegradable, aliphatic polyester derived from lactic acid. It has similar mechanical properties to polyethylene terephthalate, but has a significantly lower maximum continuous use temperature. PLA products can be recycled after use either by remelting and processing the material a second time or by hydrolyzing to lactic acid, the basic chemical. In this review, the technologies for polymerization of the lactic acid and the comparison of physical, thermal and mechanical properties, biodegradability, and biocompatibility of the PLA and copolymers with other similar polymers are described.
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                Author and article information

                Journal
                BIO Web of Conferences
                BIO Web Conf.
                EDP Sciences
                2117-4458
                2024
                July 05 2024
                2024
                : 117
                : 01016
                Article
                10.1051/bioconf/202411701016
                797e75c9-8506-48bc-b18b-d1774e5f78f5
                © 2024

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

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