红麻纤维增强聚合物复合材料汽车内外饰件的研制

Akubueze Emmanuel Uzoma, C. F. Nwaeche, Md. Al-Amin, Oluwa Segun Muniru, O. Olatunji, Sixtus Onyedika Nzeh
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引用次数: 0

摘要

在汽车零部件中集成可持续组件的需求日益增长。本研究涉及整个过程,从提取红麻纤维素纤维到通过注射成型(仅限样品)和树脂传递成型(RTM)技术制造汽车零部件。在复合材料制造前,对纤维进行预处理,然后进行含水率分析。该复合材料由聚丙烯、马来酸酐聚丙烯(MAPP)、不饱和聚酯和环氧树脂组成。机械试验按照ASTM D5083、ASTM D256和ASTM D5229标准进行。将RTM技术应用于红麻长韧皮纤维增强件的制备。当纤维含量为40%时,RTM的抗拉强度达到55 MPa。在力学试验中,纤维含量在10% ~ 40%范围内与对照样品相容或优于对照样品。扫描电镜(SEM)图像显示纤维-环氧树脂-聚乙烯键合以及基体中正常的不规则性。通过有限元模拟对其力学性能特性进行了理论分析,结果表明平行于纤维取向的方向具有较高的刚度和强度。这项研究证明了可持续纺织纤维作为汽车工业复合材料中塑料的增强剂的竞争力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of Interior and Exterior Automotive Plastics Parts Using Kenaf Fiber Reinforced Polymer Composite
The integration of sustainable components in automotive parts is in growing demand. This study involves the entire process, from the extraction of kenaf cellulosic fibers to the fabrication of automotive parts by applying injection molding (sample only) and Resin Transfer Molding (RTM) techniques. Fibers were pretreated, followed by moisture content analysis before composite fabrication. The composite was fabricated by integrating the fibers with polypropylene, maleic anhydride polypropylene (MAPP), unsaturated polyester, and epoxy resin. Mechanical tests were done following ASTM D5083, ASTM D256, and ASTM D5229 standards. The RTM technique was applied for the fabrication of parts with reinforced kenaf long bast fibers. RTM indicated a higher tensile strength of 55 MPa at an optimal fiber content of 40%. Fiber content from 10% to 40% was found to be compatible with or better than the control sample in mechanical tests. Scanning Electron Microscope (SEM) images showed both fiber-epoxy-PE bonding along with normal irregularities in the matrix. The finite element simulations for the theoretical analysis of the mechanical performance characteristics showed higher stiffness and strength in the direction parallel to the fiber orientation. This study justifies the competitiveness of sustainable textile fibers as a reinforcement for plastics to use in composite materials for automotive industries.
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