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THERMAL CONDUCTIVITY OF COPOLY(ETHYLENE VINYL ACETATE)/NANO-FILLER BLENDS

机译:共聚(乙烯乙烯酯)/纳米填料共混物的导热率

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The development of flexible, thermally conductive fabrics and plastic tubes for the Liquid Cooling and Ventilation Garment (LCVG) are needed to reduce weight and improve the mobility, comfort, and performance of future spacesuits. Such improvements would allow astronauts to operate more efficiently and safely for extended extravehicular activities. As a continuation of our work on the improvement of thermal conductivity (TC) of polymeric materials, nanocomposites were prepared from copoly(ethylene vinyl acetate), trade name Elvax 260., metallized carbon nanofibers (CNFs), nickel (Ni) nanostrands, boron nitride both alone and as mixtures with aluminum powder. The nanocomposites were prepared by melt mixing at various loading levels and subsequently fabricated into several material forms (i.e., ribbons, tubes, and compression molded plaques) for analysis. Ribbons and tubes were extruded to form samples in which the nanoparticles were aligned in the direction of flow. The degree of dispersion and alignment of the nanoparticles were investigated using high-resolution scanning electron microscopy. Tensile properties of the aligned samples were determined at room temperature. TC measurements were performed using a laser flash (Nanoflash.) technique. The TC of the samples was measured in both the direction of alignment as well as transverse. Tubing of comparable dimensions to that used in the LCVG was extruded from select compositions and the thermal conductivities of the tubes measured.
机译:需要开发用于液体冷却和通风衣服(LCVG)的柔性,导热织物和塑料管,以减轻重量,提高未来煤炭的移动性,舒适性和性能。这种改进将使宇航员可以更有效,并且可以更有效地运行,以便延长覆盖覆盖活动。作为我们在改善聚合物材料的导热率(Tc)上的工作的延续,纳米复合材料由共聚(乙烯乙烯酯)制备,商品名Elvax 260.,金属化碳纳米纤维(CNFS),镍(Ni)纳米氧化物,硼单独氮化物,作为用铝粉的混合物。通过在各种负载水平下熔融混合制备纳米复合材料,随后制造成几种材料形式(即带状,管和压缩模塑斑块)进行分析。挤出带和管以形成样品,其中纳米颗粒在流动方向上对齐。使用高分辨率扫描电子显微镜研究纳米颗粒的分散度和对准程度。在室温下测定对准样品的拉伸性质。使用激光闪光(纳米隙)技术进行TC测量。在对准方向和横向中测量样品的Tc。从选择组合物和测量管的热导体挤出到LCVG中的可比较尺寸的管道。

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