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Synthesis and Mechanical Characterization of Ambient-Dried and Hydrophobic Poly(isocyanurate-urethane) Aerogels

机译:常温疏水的聚异氰脲酸酯-氨基甲酸乙酯气凝胶的合成及力学性能

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Aerogels are low-density, nanoporous materials with high specific surface area. Traditional aerogels are mainly based on silica with a wide range of engineering applications such as thermal insulation and vibro-acoustic dampening. However, silica aerogels suffer from an extreme fragility that confines their applications only to the space exploration projects. One approach to overcome this issue is to introduce a new class of aerogels with flexible building blocks named as polymer aerogel. In this presentation, a mass-producible synthetic protocol for the preparation of a hydrophobic polymer aerogel, poly(isocyanurate-urethane) aerogel, with densities as low as 0.28 g/cm3 and porosities as high as -77% along with rubber-like elastic behavior is introduced. The mechanical properties of the aerogels are systematically characterized at different loading and environmental conditions. These aerogels show high thermal stability up to 300 C with only less than 3% mass-loss while the glass transition was below or at room temperature at all densities. Notable dependencies in the mechanical behavior of the obtained aerogels have been observed with respect to bulk density and strain-rate. For instance, the aerogels were linear-elastically stretchable without any yielding up to at least 120% tensile strain. Furthermore, the aerogels were studied under cyclic loading-unloading compression tests, which pointed to a very repeatable and stable behavior with a negligible drop in maximum stresses and absorption energies after the second cycle. Dynamic properties of the aerogels have been also measured using multiple-frequency dynamic mechanical analysis at various temperatures and a split Hopkinson pressure bar system. The compressive properties at high strain rates were increased by orders of magnitude with respect to the quasi-static counter-results, indicating high strain rate dependency in this class of aerogels.
机译:气凝胶是具有高比表面积的低密度纳米多孔材料。传统的气凝胶主要基于二氧化硅,具有广泛的工程应用,例如隔热和振动声阻尼。但是,二氧化硅气凝胶的极端脆弱性使其只能在太空探索项目中使用。解决该问题的一种方法是引入一类新型的具有柔性构件的气凝胶,称为聚合物气凝胶。在此演示文稿中,大量生产的合成规程,用于制备疏水性聚合物气凝胶,聚(异氰脲酸酯-氨基甲酸酯)气凝胶,密度低至0.28 g / cm3,孔隙率高达-77%,并带有橡胶状弹性体。行为被介绍。在不同的负载和环境条件下系统地表征了气凝胶的机械性能。这些气凝胶在高达300°C的温度下显示出高的热稳定性,而在所有密度下玻璃化转变温度均低于或低于室温时,其质量损失仅不到3%。相对于堆积密度和应变率,已经观察到明显依赖于获得的气凝胶的机械性能。例如,气凝胶是线性弹性可拉伸的,而不会产生至少120%的拉伸应变。此外,对气凝胶进行了循环加载-压缩试验,结果表明该凝胶具有非常可重复的稳定性能,在第二个循环后最大应力和吸收能的下降可忽略不计。气凝胶的动态特性也已在各种温度下使用多频动态力学分析和霍普金森分压式压力系统进行了测量。相对于准静态反结果,高应变速率下的压缩性能提高了几个数量级,表明此类气凝胶具有较高的应变速率依赖性。

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