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腰果壳层木质素-丙烯腈丁二烯苯乙烯 3D 打印芯材的开发及工业大麻/镀铝玻璃纤维环氧基复合材料在变体机翼和无人机上的应用。

Development of cashew nut shell lignin-acrylonitrile butadiene styrene 3D printed core and industrial hemp/aluminized glass fiber epoxy biocomposite for morphing wing and unmanned aerial vehicle applications.

机构信息

Department of Mechanical Engineering, J.N.N Institute of Engineering, Chennai, India; Polymer Composite Research Lab, Metro Composites, Chennai, India.

Aerospace Engineering Department, King Abdulaziz University, Jeddah, Saudi Arabia.

出版信息

Int J Biol Macromol. 2023 Dec 31;253(Pt 4):127068. doi: 10.1016/j.ijbiomac.2023.127068. Epub 2023 Sep 25.

Abstract

The aim of this study was to develop a lightweight epoxy based biocomposite for morphing wing and unmanned aerial vehicle (UAV) applications. The proposed composite was developed using a 3D printed high stiffness lignin-Acrylonitrile Butadiene Styrene (ABS) core and industrial hemp with aluminized glass fiber epoxy skin. The ABS was reinforced using lignin macromolecule derived from cashew nut shells via twin screw extruder and the core was printed using an industrial grade 3D printer. Furthermore, the composites were prepared by compression moulding with an ABS-lignin core and hemp/aluminized GF surface and characterized according to respective American society of testing and materials (ASTM) standards. The findings indicate that the addition of 30 vol% Al-glass and hemp fiber with lignin strengthened ABS core improved the mechanical properties. The composite material designated as "E2" exhibits the maximum mechanical properties, providing tensile strength, flexural strength, Izod impact, interlaminar shear strength (ILSS), and compression values of, 136 MPa, 168 MPa, 4.82 kJ/m, 21 MPa, and 155 MPa respectively. The maximal energy absorbed by composite designation "E2," during drop load impact test is 20.6 J. Similarly, the composite designation "E2"gives fatigue life cycles of 33,709, 25,781 and 19,633 for 50 %, 70 % and 90 % of ultimate tensile strength (UTS) and 32.5 (K) MPa⋅m and 0.76 (G) MJ/m in fracture toughness and energy release rate respectively.

摘要

本研究旨在开发一种用于变体机翼和无人机 (UAV) 应用的轻质环氧树脂基生物复合材料。所提出的复合材料是使用 3D 打印的高刚性木质素-丙烯腈丁二烯苯乙烯 (ABS) 芯和工业大麻与镀铝玻璃纤维环氧树脂皮开发的。ABS 通过双螺杆挤出机使用腰果壳衍生的木质素大分子进行增强,并且使用工业级 3D 打印机打印芯。此外,通过压缩成型制备了具有 ABS-木质素芯和大麻/镀铝 GF 表面的复合材料,并根据各自的美国测试材料协会 (ASTM) 标准进行了表征。研究结果表明,添加 30vol%Al-玻璃和大麻纤维以及木质素增强的 ABS 芯可提高机械性能。复合材料标记为“E2”,表现出最大的机械性能,提供了拉伸强度、弯曲强度、Izod 冲击、层间剪切强度 (ILSS) 和压缩值分别为 136MPa、168MPa、4.82kJ/m、21MPa 和 155MPa。在跌落负荷冲击试验中,复合材料标记为“E2”吸收的最大能量为 20.6J。同样,复合材料标记为“E2”在 50%、70%和 90%的极限拉伸强度 (UTS) 下分别给出了 33709、25781 和 19633 的疲劳寿命循环,在断裂韧性和能量释放率方面分别给出了 32.5(K) MPa⋅m 和 0.76(G) MJ/m。

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