气相生长碳纤维对准改进热塑性复合材料

Rex J. Kuriger
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引用次数: 1

摘要

本文讨论了用气相生长碳纤维(VGCF)悬浮在聚丙烯基体中的方法制备热塑性复合材料的性能。VGCF提高了复合材料的机械和电气性能。在本研究中,使用挤压机剪切混合和挤出纤维体积分数分别为2.5%,7%和11%的VGCF/聚丙烯混合物,通过会聚环形模具,产生沿流动方向高度对齐的纤维。对挤压后的复合材料进行x射线衍射分析表明,2.5%、7%和11%样品的纤维沿首选方向分别约为±23.7度、±28.15度和±30.0度。对热解剥离VGCF增强试样进行了纵向和横向拉伸试验。与聚丙烯相比,2.5%、7%和11% VGCF的抗拉强度沿优先方向分别提高了36.5%、69.4%和82.0%,模量分别提高了94.9%、173.7%和218.2%。横向拉伸强度和模量随纤维体积含量的增加而增大,但均远低于聚丙烯。这种行为可归因于复合材料中的应力集中。对两种VGCF增强试样进行了电阻率测量。结果表明,经热处理的VGCF增强的聚合物链的电导率远远优于经热解剥离的VGCF增强的聚合物链。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improved Thermoplastic Composite by Alignment of Vapor Grown Carbon Fiber
This paper discusses the properties of an improved thermoplastic composite by alignment of vapor grown carbon fiber (VGCF) suspended in a polypropylene matrix. VGCF provides improved mechanical and electrical properties in composites. In this study an extruder was used to shear mix and extrude VGCF/polypropylene mixtures containing fiber volume fractions of 2.5%, 7% and 11% through a converging-annular die which produces a high degree of fiber alignment along the flow direction. X-ray diffraction analysis performed on the extruded composite strands showed that the fibers were oriented approximately ± 23.7, ± 28.15 and ± 30.0 degrees along the preferred direction for the 2.5%, 7% and 11% specimens, respectively. Tensile tests were done in both the preferred and transverse directions of samples reinforced with pyrolytically stripped VGCF. When compared to polypropylene, there was a 36.5%, 69.4% and 82.0% increase in tensile strength, and a 94.9%, 173.7% and 218.2% increase in modulus for the 2.5%, 7% and 11% VGCF mixtures along the preferred direction, respectively. The tensile strength and modulus in the transverse direction increased as the fiber volume content increased, however, all values were well below that of polypropylene. This behavior could be attributed to stress concentrations in the composite material. Electrical resistivity measurements were made on samples reinforced with two types of VGCF. The results concluded that the electrical conductance of the polymer strands reinforced with a heat-treated VGCF was far superior to those reinforced with a pyrolytically stripped VGCF.
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