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Effect of matrix chemical structure on the thermo-oxidative stability of addition cure poly(imide siloxane) composites

机译:基体化学结构对加成固化聚酰亚胺硅氧烷复合材料热氧化稳定性的影响

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A series of addition cure poly(imide siloxane) resins were synthesized, incorporating various concentrations of alpha, omega-bis(3-aminopropyl) poly(dimethyl-diphenylsiloxanes), and alpha, omega-bis(p-aminophenyl) poly(dimethylsiloxane) into the formulated imide oligomer. Both carbon and glass fiber textile laminates were fabricated using amic acid and polymerization of monomer reactants (PMR) approaches. The cured composite laminates were subjected to an accelerated thermo-oxidative aging environment of 400 degrees C for 100 h in air. Physical, thermal, and mechanical properties were evaluated to determine the structure-oxidative stability interrelationships. In general, composite mechanical properties were found to increase with increasing siloxane concentration in the matrix. Composite thermo-oxidative durability (measured via mass loss and mechanical property retention after oxidative aging) was improved through incorporation of diphenyl and diphenyl-dimethyl siloxane segments into the imide oligomer backbone up to similar to 35% by weight aminosiloxane. Oxidative stability was found to be mostly dependent on the degree of phenyl substitution on the silicon atoms in the siloxane blocks, as compared to the moiety attaching the amine groups to the siloxane block.
机译:合成了一系列加成固化的聚(酰亚胺硅氧烷)树脂,其中掺入了各种浓度的α,ω-双(3-氨基丙基)聚(二甲基-二苯基硅氧烷)和α,ω-双(对氨基苯基)聚(二甲基硅氧烷)制成配制的酰亚胺低聚物。碳纤维和玻璃纤维织物层压板都是使用酰胺酸和单体反应物(PMR)聚合方法制造的。将固化的复合材料层压板在空气中于400摄氏度的温度下进行加速热氧化老化环境100小时。评估了物理,热和机械性能,以确定结构-氧化稳定性之间的相互关系。通常,发现复合机械性能随基质中硅氧烷浓度的增加而增加。通过将二苯基和二苯基-二甲基硅氧烷链段掺入酰亚胺低聚物主链中至多接近35%(重量)的氨基硅氧烷,可以改善复合材料的热氧化耐久性(通过氧化老化后的质量损失和机械性能保持率来衡量)。与将胺基连接至硅氧烷嵌段的部分相比,发现氧化稳定性主要取决于硅氧烷嵌段中硅原子上的苯基取代程度。

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