3D printing of functionally graded nanocomposites: An investigation of microstructural, rheological, and mechanical behavior

IF 3.2 4区 工程技术 Q2 ENGINEERING, CHEMICAL
Sumodh Kumar, S. Rajath, N. D. Shivakumar, M. R. Ramesh, Mrityunjay Doddamani
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引用次数: 0

Abstract

Manufacturing functionally graded material through 3D printing is challenging owing to the deposition of different materials with different thermal properties in each layer, leading to a higher thermal gradient between deposited and depositing layers, resulting in improper bonding between them and, hence, reduced mechanical properties. This study focuses on 3D printing of functionalized multi‐walled carbon nanotubes (MWCNTs)/high‐density polyethylene (HDPE)‐based lightweight functionally graded nanocomposites (FGNCs) and their investigation for microstructural, rheological, physical, and mechanical properties. Functionalized MWCNTs (0.5% → 5%) are initially compounded with widely utilized HDPE to develop nanocomposites (H0.5→H5 pellets) for extruding filaments for 3D printing. 3D‐printed FGNC samples are investigated through scanning electron microscopy (SEM), rheology, density, tensile, and flexural tests. SEM and rheology confirm the homogeneous dispersion of the filler in HDPE and the processing parameters suitability in blending, extrusion, and 3D printing. Complex viscosity (η*), loss modulus (E″), and storage modulus (E′) of FGNCs increase, while the damping decreases with the MWCNTs rise in the graded layers. Density results revealed the highest weight saving potential (~12%) of FGNC‐2 (H1–H3–H5), showing great weight saving potential. Tensile and flexural properties rise when the MWCNTs content rises in the graded layer. The FGNC‐2 showed the highest tensile strength and moduli, 37.12% and 90.41% higher than HDPE. Flexural strength and moduli are also found to be the highest for FGNC‐2, 28.57%, and 26.83% higher than HDPE. The highest specific moduli and strength are found for FGNC‐2, 46.16% and 44.14% higher than HDPE, respectively. Experimental findings are found to be strongly in agreement with numerical findings. 3D‐printed FGNC‐2 demonstrated the best flexural and tensile characteristics with the lowest weight and hence can be used to make practical parts and structures that need variable stiffness.Highlights FGNCs functionally graded n anocomposites are concurrently 3D printed. FGNC‐2 exhibited the highest weight saving potential of 12%. FGNC‐2 showed 90.41% and 37.12% enhanced tensile modulus and strength. FGNC‐2 displayed 28.57% and 26.83% improved flexural strength and modulus. FGNCs exhibited better mechanical performance than the homogeneous NCs.
功能分级纳米复合材料的三维打印:微结构、流变学和机械行为研究
通过三维打印制造功能分级材料具有挑战性,因为每一层都要沉积具有不同热性能的不同材料,导致沉积层与沉积层之间的热梯度增大,造成它们之间的粘合不良,从而降低了机械性能。本研究的重点是基于功能化多壁碳纳米管(MWCNTs)/高密度聚乙烯(HDPE)的轻质功能分级纳米复合材料(FGNCs)的三维打印及其微观结构、流变学、物理和机械性能研究。功能化 MWCNTs(0.5% → 5%)最初与广泛使用的高密度聚乙烯(HDPE)复合,开发出纳米复合材料(H0.5→H5 颗粒),用于挤出三维打印长丝。通过扫描电子显微镜(SEM)、流变学、密度、拉伸和弯曲测试对 3D 打印的 FGNC 样品进行了研究。扫描电子显微镜和流变学证实了填料在高密度聚乙烯中的均匀分散,以及加工参数在混合、挤出和三维打印中的适用性。FGNCs 的复合粘度(η*)、损耗模量(E″)和存储模量(E′)均有所增加,而阻尼则随着 MWCNTs 在分层中的增加而减小。密度结果显示,FGNC-2(H1-H3-H5)的减重潜力最大(约 12%),显示出巨大的减重潜力。当分级层中的 MWCNTs 含量增加时,拉伸和弯曲性能也随之增加。FGNC-2 的拉伸强度和模量最高,分别比高密度聚乙烯高出 37.12% 和 90.41%。FGNC-2 的弯曲强度和模量也最高,分别比 HDPE 高 28.57% 和 26.83%。FGNC-2 的比模量和比强度最高,分别比 HDPE 高 46.16% 和 44.14%。实验结果与数值结果非常吻合。三维打印的 FGNC-2 以最低的重量表现出最佳的弯曲和拉伸特性,因此可用于制造需要不同刚度的实用部件和结构。FGNC-2 的减重潜力最大,达到 12%。FGNC-2 的拉伸模量和强度分别提高了 90.41% 和 37.12%。FGNC-2 的弯曲强度和模量分别提高了 28.57% 和 26.83%。FGNCs 的机械性能优于均质 NCs。
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来源期刊
Polymer Engineering and Science
Polymer Engineering and Science 工程技术-高分子科学
CiteScore
5.40
自引率
18.80%
发文量
329
审稿时长
3.7 months
期刊介绍: For more than 30 years, Polymer Engineering & Science has been one of the most highly regarded journals in the field, serving as a forum for authors of treatises on the cutting edge of polymer science and technology. The importance of PE&S is underscored by the frequent rate at which its articles are cited, especially by other publications - literally thousand of times a year. Engineers, researchers, technicians, and academicians worldwide are looking to PE&S for the valuable information they need. There are special issues compiled by distinguished guest editors. These contain proceedings of symposia on such diverse topics as polyblends, mechanics of plastics and polymer welding.
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