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Chemical Characterisation of the Fracture Surfaces of Polyester Resin and a Polyester-Based Nanocomposite

机译:聚酯树脂和聚酯基纳米复合材料断裂表面的化学表征

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摘要

A novel in situ fracture stage has been used to conduct micro-compact tension (micro-CT) tests within the preparation chamber of a time-of-flight secondary-ion mass spectrometry (ToF-SEVIS) instrument. Tests have been undertaken in the usual ultra-high vacuum (UHV) conditions and in an ambient air atmosphere for comparison. A plain polyester resin system has been compared to an organically-modified silica (ormosil) nanoparticulate reinforced polyester resin nanocomposite. The force/displacement data are recorded permitting critical stress intensity factor, K_(IC), determination. Comparative surface analysis of the samples fractured in air and in UHV revealed that fracture in UHV prevented atmospheric contamination and adsorption of adventitious hydrocarbon material, particularly airborne silicone oils. This led to superior spectral quality and improved interfacial chemistry interpretation, and has allowed the development of a model of failure in which the integrity of the interface between nanoparticulate and polyester resin remains intact when failure occurs. Such an observation is extremely important given the current level of interest in the mechanical behaviour of systems of this type. Adopting such a methodology has enabled nanomodified polymer systems to be investigated, thus extending the potential application of ToF-SIMS as a useful fractographic tool in the field of nanocomposite analysis.
机译:一种新型的原位断裂阶段已用于在飞行时间二次离子质谱(ToF-SEVIS)仪器的制备室内进行微压缩张力(micro-CT)测试。为了进行比较,已经在通常的超高真空(UHV)条件下和环境空气中进行了测试。已将普通聚酯树脂体系与有机改性的二氧化硅(ormosil)纳米颗粒增强聚酯树脂纳米复合材料进行了比较。记录力/位移数据,以便确定临界应力强度因子K_(IC)。对在空气和UHV中破裂的样品进行的比较表面分析表明,UHV破裂可防止大气污染和不定烃材料(尤其是机载硅油)的吸附。这导致了优异的光谱质量和改进的界面化学解释,并允许建立故障模型,其中当发生故障时,纳米颗粒和聚酯树脂之间的界面完整性保持完整。鉴于当前对此类系统的机械性能的关注程度,这种观察非常重要。通过采用这种方法,可以研究纳米改性的聚合物系统,从而扩展了ToF-SIMS作为纳米复合材料分析领域中有用的分形工具的潜在应用。

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