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首页> 外文期刊>Journal of Applied Polymer Science >Rheology, morphological evolution, thermal, and mechanical properties of epoxy modified with polysulfone and cellulose nanofibers
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Rheology, morphological evolution, thermal, and mechanical properties of epoxy modified with polysulfone and cellulose nanofibers

机译:用聚砜和纤维素纳米纤维改性环氧树脂的流变学,形态学演化,热和力学性能

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In this work, the epoxy systems modified with polysulfone (PSF) and cellulose nanofiber (CNF) cured at different temperatures are prepared to investigate the effect of CNF on curing reaction, morphology evolution, rheology, thermal, and mechanical performance of composites. The reaction rate is increased and the activation energy is decreased with CNF incorporation, implying an accelerating effect of CNF on the epoxy-amine reaction. The phase separation and gelation of the epoxy/PSF/CNF system start earlier compared with the binary system of epoxy/PSF. While it is displayed by rheology that both the system viscosity and relaxation time are elevated with CNF, presenting an inhibiting effect on phase evolution. Morphologies with smaller domain size are finally freezed by the epoxy gelation. The enhancement of impact performance for the epoxy/PSF/CNF composites is indicated by 40.2% increase in the impact strength, which is attributed to the finer phase-separated morphology, the uniformly distributed CNF within the polymer matrix and the good load transfer between phases. In addition, the thermal stability of composites is improved as the CNFs existed in the phase-separated polymer matrix can restrict the thermal motion of molecules during decomposition process. (c) 2019 Wiley Periodicals, Inc. J. Appl. Polym. Sci. 2019, 137, 48628.
机译:在这项工作中,使用在不同温度下固化的聚砜(PSF)和纤维素纳米纤维(CNF)改性的环氧系统,以研究CNF对复合材料的固化反应,形态演化,流变,热和机械性能的影响。反应速率升高,随着CNF掺入,活化能降低,暗示CNF对环氧胺反应的加速效果。与环氧/ PSF的二元体系相比,环氧/ PSF / CNF系统的相分离和凝胶化早期开始。虽然通过流变学显示,系统粘度和弛豫时间都用CNF升高,呈现对相进化的抑制作用。具有较小域尺寸的形态终于通过环氧凝胶化冷冻。对环氧/ PSF / CNF复合材料的影响性能的增强表明冲击强度增加40.2%,其归因于聚合物基质内均匀分布的CNF和相之间的良好负荷转移。另外,随着相分离的聚合物基质中存在的CNFS,复合材料的热稳定性得到改善,可以限制分解过程中分子的热运动。 (c)2019 Wiley期刊,Inc.J.Phill。聚合物。 SCI。 2019,137,48628。

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