Mechanical Performance of Salvadora Persical (Miswak) Reinforced Polylactic Acid Matrix Composites for Three Dimensional Printing

Fuat KARTAL, Arslan KAPTAN
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Abstract

This study examines the mechanical performance of polylactic acid (PLA) matrix composites reinforced with Salvadora Persica (Miswak). With the increasing use of environmentally friendly materials, researchers are focusing on the production of biodegradable materials. However, incompatibility between PLA and filler materials used in PLA composites causes mechanical problems during production. This study deals with the production and characterization of PLA composites containing lignocellulosic and inorganic fillers using maleic anhydride grafted polylactic acid (PLA/g/MA) as a matrix. The aim of the research is to examine the mechanical specifications of Miswak powder reinforced PLA composites and to evaluate their suitability for practical applications. PLA was used as the matrix material and PLA/g/MA was used as the compatibilizer. Composites containing Miswak powder at different weight concentrations (5%, 10%, 15% and 20%) were characterized using scanning electron microscopy along with tensile and bending tests. The obtained results showed that different Miswak concentrations affect the mechanical specifications of the composites. Composites at 5% concentration demonstrated excellent interlayer adhesion and high mechanical strength, demonstrating favorable mechanical specifications. The findings show that Miswak powder is a potential filling material to improve the mechanical specifications of PLA composites and provide antimicrobial benefits. The results of this study shed light on the mechanical performance of Miswak reinforced PLA matrix composites, which are promising for 3D printing applications. In addition, it is stated that the materials used, such as natural filling materials, contribute to the development of sustainable and environmentally friendly materials by reducing the environmental impact.
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三维打印用萨尔瓦多物理增强聚乳酸基复合材料的力学性能
本研究考察了番槐(Miswak)增强聚乳酸(PLA)基复合材料的力学性能。随着环保材料的使用越来越多,研究人员开始关注生物可降解材料的生产。然而,聚乳酸与填充材料之间的不相容性导致了聚乳酸复合材料在生产过程中的力学问题。本文研究了以马来酸酐接枝聚乳酸(PLA/g/MA)为基体,以木质纤维素和无机填料为填料的聚乳酸复合材料的制备和表征。本研究的目的是研究Miswak粉末增强PLA复合材料的力学性能,并评估其在实际应用中的适用性。以PLA为基体材料,PLA/g/MA为增容剂。采用扫描电子显微镜对含有不同重量浓度(5%、10%、15%和20%)的Miswak粉末的复合材料进行了表征,并进行了拉伸和弯曲试验。结果表明,不同浓度的Miswak对复合材料的力学性能有影响。复合材料在5%浓度下具有良好的层间附着力和较高的机械强度,具有良好的力学性能。研究结果表明,Miswak粉末是一种有潜力的填充材料,可以提高PLA复合材料的力学性能和抗菌性能。这项研究的结果揭示了Miswak增强PLA基复合材料的力学性能,这是3D打印应用的前景。此外,它还指出,所使用的材料,如天然填充材料,通过减少对环境的影响,有助于可持续和环保材料的发展。
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