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含 POSS 的脂环族环氧树脂纳米复合材料的研制,提高了抗原子氧的能力。

Development of Cycloaliphatic Epoxy-POSS Nanocomposite Matrices with Lambas Enhanced Resistance to Atomic Oxygen.

机构信息

Bristol Composites Institute (ACCIS), Department of Aerospace Engineering, School of Civil, Aerospace, and Mechanical Engineering, Queen's Building, University of Bristol, University Walk, Bristol BS8 1TR, UK.

Department of Mechanical Engineering Sciences, Faculty of Engineering and Physical Sciences, University of Surrey, Guildford, Surrey GU2 7XH, UK.

出版信息

Molecules. 2020 Mar 25;25(7):1483. doi: 10.3390/molecules25071483.

Abstract

The preparation of ultra-thin CFRP laminates, which incorporate a cycloaliphatic epoxy resin reinforced with polyhedral oligomeric silsesquioxane (POSS) reagent nanofiller, using out-of-autoclave procedure is reported. The influence of the amount of POSS within the laminate on the mechanical properties and surface roughness of the laminates is analysed before and after exposure to atomic oxygen (AO) to simulate the effects of low Earth orbit (LEO). The addition of 5 wt% POSS to the base epoxy leads to an increase in both flexural strength and modulus, but these values begin to fall as the POSS content rises, possibly due to issues with agglomeration. The addition of POSS offers improved resistance against AO degradation with the laminates containing 20 wt% POSS demonstrating the lowest erosion yield (1.67 × 10-24 cm2/atom) after the equivalent of a period of 12 months in a simulated LEO environment. Exposure to AO promotes the formation of a silicon-rich coating layer on the surface of the laminate, which in turn reduces roughness and increases stiffness, as evidenced by measurements of flexural properties and spectral data after exposure.

摘要

本文报道了使用热压罐外固化工艺制备超薄片层 CFRP,其中使用了环状脂肪族环氧树脂和多面体低聚倍半硅氧烷(POSS)试剂纳米填料增强。分析了 POSS 在层压板中的含量对层压板机械性能和表面粗糙度的影响,然后将其暴露于原子氧(AO)中以模拟低地球轨道(LEO)的影响。在基础环氧树脂中添加 5wt% POSS 可提高弯曲强度和模量,但随着 POSS 含量的增加,这些值开始下降,这可能是由于团聚问题所致。添加 POSS 可提高抗 AO 降解的能力,含 20wt% POSS 的层压板在模拟 LEO 环境中经过相当于 12 个月的时间后,表现出最低的侵蚀率(1.67×10-24 cm2/atom)。暴露于 AO 会促进在层压板表面形成富硅涂层,这反过来又会降低粗糙度并增加刚度,这可以通过弯曲性能和暴露后的光谱数据测量得到证明。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d01a/7180924/61109f9e7841/molecules-25-01483-g001.jpg

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