Mechanical and Thermal Properties of 3D-Printed Continuous Bamboo Fiber-Reinforced PE Composites.

IF 3.2 3区 材料科学 Q3 CHEMISTRY, PHYSICAL Materials Pub Date : 2025-01-28 DOI:10.3390/ma18030593
Haiyu Qiao, Qian Li, Yani Chen, Yayun Liu, Ning Jiang, Chuanyang Wang
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Abstract

Continuous fibers with outstanding mechanical performance due to the continuous enhancement effect, show wide application in aerospace, automobile, and construction. There has been great success in developing continuous synthetic fiber-reinforced composites, such as carbon fibers or glass fibers; however, most of which are nonrenewable, have a high processing cost, and energy consumption. Bio-sourced materials with high reinforced effects are attractive alternatives to achieve a low-carbon footprint. In this study, continuous bamboo fiber-reinforced polyethylene (CBF/PE) composites were prepared via a facile two-step method featuring alkali treatment followed by 3D printing. Alkali treatment as a key processing step increases surface area and surface wetting, which promote the formation of mechanical riveting among bamboo fibers and matrix. The obtained treated CBF (T-CBF) also shows improved mechanical properties, which enables a superior reinforcement effect. 3D printing, as a fast and local heating method, could melt the outer layer PE tube and impregnate molten plastics into fibers under pressure and heating. The resulting T-CBF/PE composite fibers can achieve a tensile strength of up to 15.6 MPa, while the matrix PE itself has a tensile strength of around 7.7 MPa. Additionally, the fracture morphology of printed bulks from composite fibers shows the alkali-treated fibers-PE interface is denser and could transfer more load. The printed bulks using T-CBF/PE shows increased tensile strength and Young's modulus, with 77%- and 1.76-times improvement compared to pure PE. Finally, the effect of printing paraments on mechanical properties were analyzed. Therefore, this research presents a potential avenue for fabricating continuous natural fiber-reinforced composites.

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3d打印连续竹纤维增强PE复合材料的力学和热性能。
连续纤维由于其不断增强的作用,具有优异的力学性能,在航空航天、汽车、建筑等领域有着广泛的应用。在开发连续合成纤维增强复合材料,如碳纤维或玻璃纤维方面取得了巨大成功;然而,其中大部分是不可再生的,加工成本高,能耗大。具有高增强效果的生物材料是实现低碳足迹的有吸引力的替代品。在本研究中,采用碱处理和3D打印两步法制备连续竹纤维增强聚乙烯(CBF/PE)复合材料。碱处理作为关键的加工步骤,增加了竹纤维的表面积和表面润湿,促进了竹纤维与基体之间机械铆接的形成。处理后的CBF (T-CBF)的力学性能也得到了改善,从而实现了优异的增强效果。3D打印是一种快速的局部加热方法,可以在压力和加热下将外层PE管熔化,并将熔融塑料浸渍成纤维。得到的T-CBF/PE复合纤维的抗拉强度可达15.6 MPa,而基体PE本身的抗拉强度约为7.7 MPa。此外,复合纤维打印块体的断裂形貌表明,碱处理的纤维- pe界面更致密,可以传递更多的载荷。使用T-CBF/PE的打印体显示出更高的抗拉强度和杨氏模量,与纯PE相比,分别提高了77%和1.76倍。最后,分析了打印参数对力学性能的影响。因此,这项研究为制造连续的天然纤维增强复合材料提供了一条潜在的途径。
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来源期刊
Materials
Materials MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
5.80
自引率
14.70%
发文量
7753
审稿时长
1.2 months
期刊介绍: Materials (ISSN 1996-1944) is an open access journal of related scientific research and technology development. It publishes reviews, regular research papers (articles) and short communications. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. Therefore, there is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. Materials provides a forum for publishing papers which advance the in-depth understanding of the relationship between the structure, the properties or the functions of all kinds of materials. Chemical syntheses, chemical structures and mechanical, chemical, electronic, magnetic and optical properties and various applications will be considered.
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