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Comparative Screening of the Structural and Thermomechanical Properties of FDM Filaments Comprising Thermoplastics Loaded with Cellulose Carbon and Glass Fibers

机译:包含纤维素碳和玻璃纤维的热塑性塑料制成的FDM纤维的结构和热机械性能的比较筛选

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摘要

Additive manufacturing (AM) has been rapidly growing for a decade in both consumer and industrial products. Fused deposition modeling (FDM), one of the most widely used additive manufacturing methods, owes its popularity to cost effectiveness in material and equipment investment. Current efforts are aimed toward high load-bearing capacity at low material costs. However, the mechanical reliability of end-products derived from these compositions and their dependence on microstructural effects, have remained as major limitations. This is mainly owing to the unknown mechanics of the materials, including the reinforcing or filler components and their interphase/interface compatibility. For this reason, here we investigate the most relevant commercial polymeric materials used in composite filaments, associated phases and the characterization protocols that can guide component selection, screening and troubleshooting. We first present thermal analyses (thermogravimetric, TGA and differential scanning calorimetry, DSC) in relation to the constituent fractions and identify the type of polymer for uses in filaments production. The influence of various fillers is unveiled in terms of the crystallization behavior of derived 3D-printed parts. To understand the microstructural effects on the material strength, we carry out a series of tensile experiments on 3-D printed dog-bone shaped specimens following ISO standards. Simultaneously, real-time thermal energy dissipation and damage analyses are applied by using infrared measurements at fast frame rates (200 Hz) and high thermal resolution (50 mK). The failure regions of each specimen are examined via optical, scanning and transmission electron microscopies. The results are used to reveal new insights into the size, morphology and distribution of the constituents and interphases of polymer filaments for FDM. The present study represents advancement in the field of composite filament fabrication, with potential impact in the market of additive manufacturing.
机译:消费和工业产品中的增材制造(AM)迅速发展了十年。熔融沉积建模(FDM)是最广泛使用的增材制造方法之一,由于其在材料和设备投资方面的成本效益而广受欢迎。当前的努力旨在以低材料成本实现高承载能力。然而,衍生自这些组合物的最终产品的机械可靠性及其对微结构效应的依赖性仍然是主要限制。这主要是由于未知的材料力学,包括增强或填充组分及其相间/界面相容性。因此,在这里我们研究了复合长丝中使用的最相关的商业聚合材料,相关相以及可指导组分选择,筛选和故障排除的表征方案。我们首先介绍与组成部分有关的热分析(热重,TGA和差示扫描量热法,DSC),并确定用于长丝生产的聚合物类型。根据衍生的3D打印部件的结晶行为,揭示了各种填料的影响。为了了解微观结构对材料强度的影响,我们按照ISO标准对3-D打印的狗骨头形样品进行了一系列拉伸实验。同时,通过在快速帧频(200 Hz)和高热分辨率(50 mK)下使用红外测量来进行实时热能耗散和损伤分析。通过光学,扫描和透射电子显微镜检查每个样品的失效区域。结果用于揭示有关FDM聚合物长丝成分和相间的尺寸,形态和分布的新见解。本研究代表了复合长丝制造领域的进步,对增材制造市场具有潜在的影响。

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