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首页> 外文期刊>Journal of engineering materials and technology >Effect of Shape of the Tip in Determining Interphase Properties in Fiber Reinforced Plastic Composites Using Nanoindentation
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Effect of Shape of the Tip in Determining Interphase Properties in Fiber Reinforced Plastic Composites Using Nanoindentation

机译:尖端形状对纳米压痕法测定纤维增强塑料复合材料相间性能的影响

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Fiber reinforced polymer composites are two component material systems in which fibers are embedded in a polymer matrix. Such a system inherently has an interface where the two components meet. Adjacent to the interface extending beyond the fiber surface is the "interphase region." Properties within the interphase vary due to variations in the chemistry. The study of mechanical property variations with changing chemistry will help in better understanding and tailoring of the composite properties. The present work concentrates on the investigation of nanomechanical properties within the interphase of a glass fiber embedded in polyester matrix system. The glass fibers were coated with two types of silanes to produce a strong and a weak bond at the fiber-matrix interface. Nanoindentation techniques coupled with atomic force microscopy imaging capabilities have been used for this investigation. Two different tips were employed for indenting, one being a Berkovich diamond tip supplied by Hysitron, Inc., Minneapolis, MN and another being a parabolic tungsten lip, which was made in the laboratory. Indentations were performed within the interphase region, also in the bulk matrix, and on the glass fiber. The variation in mechanical properties such as modulus, stiffness, hardness, and penetration depth were obtained within the interphase by indenting at the fiber surface outward. Variations of the elastic modulus in the interphase region and its relation to the chemistry are presented. The results obtained using two different tip shapes have been compared. Phase imaging was performed using tapping mode atomic force microscopy to qualitatively identify the presence of an interphase near the glass fiber-polyester interface. These experiments show that when no coupling agent is used the interphase thickness is less than 0.1 μm, and its exact determination is limited by the spatial resolution of the tips employed and the process of indentation. Phase imaging results with composite samples made of coated glass fibers corroborate the results obtained from nanoindentation experiments.
机译:纤维增强的聚合物复合材料是两种成分的材料体系,其中纤维嵌入聚合物基质中。这样的系统固有地具有两个组件相遇的接口。与延伸超出纤维表面的界面相邻的是“相间区域”。由于化学变化,相间的性质会发生变化。对化学性质变化引起的机械性能变化的研究将有助于更好地理解和定制复合材料的性能。目前的工作集中在埋入聚酯基体系统的玻璃纤维的相间纳米力学性能的研究。玻璃纤维涂有两种类型的硅烷,以在纤维-基质界面处产生强键和弱键。纳米压痕技术与原子力显微镜成像功能相结合已用于这项研究。压痕采用了两种不同的尖端,一种是由明尼苏达州明尼阿波利斯的Hysitron,Inc.提供的Berkovich金刚石尖端,另一种是在实验室制造的抛物线形钨唇。压痕在相间区域内,也在本体基质中以及在玻璃纤维上进行。通过在纤维表面向外压痕,可以在相内获得机械性能的变化,例如模量,刚度,硬度和穿透深度。提出了相间区域的弹性模量的变化及其与化学的关系。比较了使用两种不同尖端形状获得的结果。使用拍击模式原子力显微镜进行相成像,以定性确定玻璃纤维-聚酯界面附近是否存在中间相。这些实验表明,当不使用偶联剂时,相间厚度小于0.1μm,其精确测定受到所用尖端的空间分辨率和压痕过程的限制。由涂层玻璃纤维制成的复合样品的相位成像结果证实了从纳米压痕实验获得的结果。

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