Comparative Analysis of Water-Induced Response in 3D-Printed SCF/ABS Composites under Controlled Diffusion

IF 0.2 4区 材料科学 Q4 ENGINEERING, MULTIDISCIPLINARY SAMPE Journal Pub Date : 2024-07-01 DOI:10.33599/sj.v60no4.02
Samiul Alam, Md Tareq Hassan, Joshua Merrell, Juhyeong Lee
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Abstract

Additive manufacturing (AM) or 3D-printing of fiber-reinforced composites (FRCs) has garnered significant interests for its versatility in creating intricate parts and rapid prototyping due to cost-effectiveness. Although short fiber-reinforced thermoplastic composites are challenging to manufacture, their mechanical properties can be easily tailored by adjusting fiber type, orientation, and volume fraction. However, void formation during printing is a key issue, impacting mechanical properties and facilitating water ingression, affecting long-term durability. This work studies water diffusion characteristics and the associated hydro-aging of 3D-printed short carbon fiber (SCF)/acrylonitrile butadiene styrene (ABS) composites with controlled water diffusion. Effects of material type (ABS and SCF/ABS), 3D-printing path (horizontal and vertical filament orientation), and diffusion surface (uni-directional and bi-directional diffusion) on water diffusion coefficient and maximum water absorption level are characterized to ensure the long-term durability of 3D-printed ABS and SCF/ABS composites. Baseline representative volume element-based finite element (RVE-FE) diffusion models were developed based on micro-computed tomography (micro-CT) image analysis to understand water diffusion characteristics. This work proves that the SCF/ABS composite is more resistive to hydro-aging than neat ABS due to the SCFs’ hydrophobic nature. SCF/ABS composites, while providing distinct advantages over pure ABS in terms of mechanical properties, could also be more effective against water environments.
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受控扩散条件下三维打印 SCF/ABS 复合材料中水诱发反应的对比分析
纤维增强复合材料(FRC)的快速成型制造(AM)或三维打印技术因其在制造复杂零件和快速原型方面的多功能性和成本效益而备受关注。虽然短纤维增强热塑性复合材料的制造具有挑战性,但通过调整纤维类型、取向和体积分数,可以轻松定制其机械性能。然而,印刷过程中的空隙形成是一个关键问题,不仅会影响机械性能,还会促进水的渗入,影响长期耐久性。这项工作研究了可控水扩散的三维打印短碳纤维(SCF)/丙烯腈-丁二烯-苯乙烯(ABS)复合材料的水扩散特性和相关水老化。表征了材料类型(ABS 和 SCF/ABS)、3D 打印路径(水平和垂直长丝方向)和扩散面(单向和双向扩散)对水扩散系数和最大吸水率的影响,以确保 3D 打印 ABS 和 SCF/ABS 复合材料的长期耐久性。在微计算机断层扫描(micro-CT)图像分析的基础上,开发了基于代表体积元素的有限元(RVE-FE)扩散基线模型,以了解水的扩散特性。这项工作证明,由于 SCF 的疏水性,SCF/ABS 复合材料比纯 ABS 更耐水老化。与纯 ABS 相比,SCF/ABS 复合材料不仅在机械性能方面具有明显优势,而且还能更有效地抵御水环境。
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来源期刊
SAMPE Journal
SAMPE Journal 工程技术-材料科学:综合
CiteScore
0.16
自引率
0.00%
发文量
1
审稿时长
>12 weeks
期刊介绍: SAMPE Journal readers represent the diversity of the advanced materials and processes industry. Our readers are creative and innovative, they publish, they develop concepts, they win patents, they move the world of materials and processes. Join thought leaders – academicians, engineers, scientists, business leaders, researchers, suppliers, manufacturers – and become a reader of the industry’s only technical journal dedicated to advanced materials and processes.
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