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Effect of fluid-particle-interactions on dispersing nano-particles in epoxy resins using stirred-media-mills and three-roll-mills

机译:使用搅拌介质研磨机和三辊研磨机的流体-颗粒相互作用对环氧树脂中纳米颗粒分散的影响

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摘要

Fibre reinforced composites are indispensable in the field of modern lightweight structures, such as used in aerospace, automotive industry or in wind power plants. Those materials provide high weight savings and increase the efficiency of a structure significantly. Therefore, various efforts are made to continuously improve the quality of the matrix and the fibres. By embedding nano-particles into the epoxy matrix, the mechanical properties as well as the electrical and thermal characteristics can significantly be improved [1]. In most cases these nano-sized particles are produced as dry powders not as single primary particles but rather as particle collectives consisting out of several primary particles. For the application in reinforced composites the particles must be suspended in epoxy resin as separately dispersed primary particles or in a certain aggregate size. Generally, the influencing parameters to break up the aggregates in a dispersion process can be divided into the stress mechanism, the intensity and the frequency of the dispersing machine itself, the properties of the dispersed particles (e.g. the particle-particle interactions) the properties of the homogenous phase and the particle-resin-interactions. Besides the effect of the chosen dispersing machine the optimization of the dispersing process was investigated by applying modified particle surfaces and varying the fluid properties. The results show that the surface properties of the particles must fit to the epoxy resin properties and the attractive forces between the primary particles must be reduced or the stabilization improved, respectively. An indication for an improved stabilization and adjustment of the particles surface properties to the fluid properties can be obtained by measurements of the contact angle and the rheological properties. Generally, an increase of viscosity and mass fraction of the product leads to a higher energetic efficiency of the dispersion process in the stirred media mill and three-roll-mill.
机译:纤维增强复合材料在现代轻质结构领域是必不可少的,例如在航空航天,汽车工业或风力发电厂中使用。这些材料可减轻重量,并显着提高结构的效率。因此,进行了各种努力以不断提高基质和纤维的质量。通过将纳米粒子嵌入环氧基体中,可以显着改善机械性能以及电学和热学特性[1]。在大多数情况下,这些纳米级颗粒不是作为单个初级颗粒而是作为由多个初级颗粒组成的颗粒集合体制成的干粉。为了用于增强复合材料中,颗粒必须以单独分散的初级颗粒或一定的聚集体尺寸悬浮在环氧树脂中。通常,在分散过程中分解聚集体的影响参数可分为应力机制,分散机本身的强度和频率,分散颗粒的性质(例如,颗粒与颗粒之间的相互作用),均匀相和颗粒-树脂相互作用。除了所选分散机的效果外,还通过应用改性的颗粒表面并改变流体性能来研究分散工艺的优化。结果表明,颗粒的表面性质必须适合于环氧树脂的性质,并且必须减小初级颗粒之间的吸引力或提高稳定性。可以通过测量接触角和流变性来获得改善的稳定性和将颗粒表面性质调节至流体性质的指示。通常,产物粘度和质量分数的增加导致在搅拌介质磨和三辊磨中分散工艺的更高的能量效率。

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