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首页> 外文期刊>Rubber Chemistry and Technology >INFLUENCE OF NANOFILLER ON THERMAL DEGRADATION RESISTANCE OF HYDROGENATED NITRILE BUTADIENE RUBBER
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INFLUENCE OF NANOFILLER ON THERMAL DEGRADATION RESISTANCE OF HYDROGENATED NITRILE BUTADIENE RUBBER

机译:纳米填充物对氢化丁腈橡胶热降解抗性的影响

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摘要

Studies on the degradation of elastomers and their prevention have become increasingly important in recent years because of stringent environmental conditions in many industrial applications. The reactive atomistic simulation was executed on a hydrogenated acrylonitrile-butadiene rubber (HNBR40) model compound composed of 40 monomer units. The reactive simulation was used to study the decomposition behavior of HNBR40, to visualize different pyrolysis products, and also to analyze the degradation mechanism of HNBR40. Ethylene, propylene, and acrylonitrile were observed as dominant products at lower temperature, and 1-butene was found at higher temperature. Pyrolysis-gas chromatography-mass spectrometry was used to verify the decomposition products obtained from the prediction of atomistic simulation. In this study, nanofillers, especially nanoclays and nanosilicas, were used to prevent degradation significantly. Restricted degradation by the nanofiller-reinforced rubber prolonged the durability. Furthermore, the reactive simulation was performed to understand thermal decomposition characteristics of the model compound in the presence of the nanofiller. The initial decomposition temperature, the final degradation temperature, and the rate of degradation improved to a great extent on the addition of the model nanosilica compound as obtained from the simulation studies. Moreover, the lifetime of nanoclay-and nanosilica-reinforced hydrogenated acrylonitrile-butadiene rubber was calculated by using thermogravimetric analysis, and its useful lifetime was compared with that of the pristine polymer in the application temperature range of 150 degrees C.
机译:由于许多工业应用中严格的环境条件,近年来,弹性体的降解及其预防的研究变得越来越重要。在由40单体单元组成的氢化丙烯腈 - 丁二烯橡胶(HNBR40)模型化合物上执行活性原子模拟。反应模拟用于研究HNBR40的分解行为,以可视化不同的热解产品,以及分析HNBR40的降解机制。观察乙烯,丙烯和丙烯腈作为较低温度下的主要产品,在较高温度下发现1-丁烯。热解 - 气相色谱 - 质谱法用于验证从原子模拟预测获得的分解产物。在该研究中,纳米填料,尤其是纳米粘土和纳米硅,用于显着降解降解。纳米填充橡胶的限制性降解延长了耐久性。此外,进行反应模拟以在纳米填充物存在下了解模型化合物的热分解特性。初始分解温度,最终降解温度和降解速率在很大程度上改善了从模拟研究中获得的模型纳米硅化合物。此外,通过使用热重分析计算纳米铬 - 和纳米硅和纳米硅增强氢化丙烯腈 - 丁二烯橡胶的寿命,并将其有用的寿命与原始聚合物的应用温度范围为150℃。

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