材料科学
复合材料
极限抗拉强度
压缩成型
色散(光学)
体积分数
制作
热塑性塑料
聚乙烯
聚合物
复合数
造型(装饰)
压缩(物理)
热塑性复合材料
纤维
熔丝制造
拉伸试验
热塑性弹性体
筛子(范畴论)
纤维增强复合材料
体积热力学
热塑性聚氨酯
作者
Jose L Ramos,Yao Qiao,Yelin Ni,Ethan K. Nickerson,Kevin L. Simmons
标识
DOI:10.1177/08927057261415861
摘要
This work explores a novel method for fabricating lightweight thermoplastic polymer-fiber-reinforced polymer (PFRP) composites, often referred to as self-reinforced composites (SRCs), using automated powder dispersion followed by compression molding. A representative PFRP was fabricated using plain-weave ultra-high-molecular-weight polyethylene (UHMWPE) fabrics embedded in a high-density polyethylene (HDPE) powder matrix. In the dispersion process, various parameters including sweeping speed, vibration voltage, sieve mesh size, and dispersion paths were studied for their effects on powder distribution, powder amount, and processing speed, aiming to achieve better control over fiber volume fraction ( V f ) and improve mechanical properties of PFRP composites. In addition, the tensile behavior of the PFRPs with a fiber volume fraction of 30% fabricated using the proposed method with different dispersion paths was investigated, and the highest average elastic modulus, tensile strength, and failure strain reached 7.2 GPa, 375 MPa, and 5.8%, respectively. Moreover, their specific tensile properties (normalized by composite density) are comparable to those of glass- or aramid-fiber-reinforced polymer composites. This work was motivated by the search for a diverse automated manufacturing method to fabricate lightweight thermoplastic PFRPs with enhanced mechanical properties.
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