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生物填料对棱角丝瓜纤维增强聚合物复合材料特性的影响及基于田口方法的参数优化

Influence of bio fillers on the characteristics of Luffa acutangula fiber reinforced polymer composites and parametric optimization using Taguchi technique.

作者信息

A Haiter Lenin, Arul Sujin Jose, Basavaraj Nandakumar Mandya, S P Jani

机构信息

WOLLO University, Kombolcha Institute of Technology, Kombolcha, 208, Ethiopia.

New Horizon College of Engineering, Bangalore, India.

出版信息

Sci Rep. 2024 Dec 28;14(1):30730. doi: 10.1038/s41598-024-80316-2.

Abstract

Developing novel materials is an essential requirement in the engineering field. This study investigates the effects of incorporating wood dust particles on the mechanical and erosive wear properties of Luffa acutangula fiber (LAF)-reinforced phenol-formaldehyde composites, fabricated using the hand layup method with a constant 20% fiber content and varying wood dust particle contents of 0%, 10%, 20%, and 30%. Using the Taguchi method, the study identifies the optimal combination for minimizing erosive wear - 20% wood dust content, 45 m/s impact velocity, 60° impingement angle, 600 μm erodent size, and 60 mm standoff distance-achieving a minimum erosion rate of 189.8 mg/kg. The addition of 20% wood dust results in significant enhancements in mechanical properties, with tensile strength increasing by 17.56%, flexural strength by 48.78%, and impact strength by 54.64%, compared to composites without wood dust. These findings underscore the potential of LAF composites with bio-fillers for lightweight structural applications in sectors prioritizing sustainability and mechanical durability, such as automotive and aerospace.

摘要

开发新型材料是工程领域的一项基本要求。本研究调查了添加木粉颗粒对丝瓜纤维(LAF)增强酚醛复合材料机械性能和冲蚀磨损性能的影响,这些复合材料采用手糊法制造,纤维含量恒定为20%,木粉颗粒含量分别为0%、10%、20%和30%。通过田口方法,该研究确定了使冲蚀磨损最小化的最佳组合——木粉含量20%、冲击速度45 m/s、冲击角度60°、磨粒尺寸600μm和靶距60 mm——实现了最低侵蚀率189.8 mg/kg。与不含木粉的复合材料相比,添加20%木粉可显著提高机械性能,拉伸强度提高17.56%,弯曲强度提高48.78%,冲击强度提高54.64%。这些发现突出了含有生物填料的LAF复合材料在汽车和航空航天等注重可持续性和机械耐久性的领域用于轻质结构应用的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/33a0/11680900/7c3bf9b62d81/41598_2024_80316_Fig9_HTML.jpg

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