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首页> 外文期刊>Journal of Polymer Science, Part B. Polymer Physics >Viscoelastic properties of nanostructured natural rubber/polystyrene interpenetrating polymer networks
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Viscoelastic properties of nanostructured natural rubber/polystyrene interpenetrating polymer networks

机译:纳米结构天然橡胶/聚苯乙烯互穿聚合物网络的粘弹性能

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The effects of the blend ratio and initiating system on the viscoelastic properties of nanostructured natural rubber/polystyrene-based interpenetrating polymer networks (IPNs) were investigated in the temperature range of -80 to 150 degreesC. The studies were carried out at different frequencies (100, 50, 10, 1, and 0.1 Hz), and their effects on the damping and storage and loss moduli were analyzed. In all cases, tan delta and the storage and loss moduli showed two distinct transitions corresponding to natural rubber and polystyrene phases, which indicated that the system was not miscible on the molecular level. However, a slight inward shift, was observed in the IPNs, with respect to the glass-transition temperatures (T-g's) of the virgin polymers, showing a certain degree of miscibility or intermixing between the two phases. When the frequency increased from 0.1 to 100 Hz, the T-g values showed a positive shift in all cases. In a comparison of the three initiating systems (dicumyl peroxide, benzoyl peroxide, and azobisisobutyronitrile), the dicumyl peroxide system showed the highest modulus. The morphology of the IPNs was analyzed with transmission electron microscopy. The micrographs indicated that the system was nanostructured. An attempt was made to relate the viscoelastic behavior to the morphology of the IPNs. Various models, such as the series, parallel, Halpin-Tsai, Kerner, Coran, Takayanagi, and Davies models, were used to model the viscoelastic data. The area under the linear loss modulus curve was larger than that obtained by group contribution analysis; this showed that the damping was influenced by the phase morphology, dual-phase continuity, and crosslinking of the phases. Finally, the homogeneity of the system was further evaluated with Cole-Cole analysis. (C) 2003 Wiley Periodicals, Inc. [References: 48]
机译:研究了共混比例和引发体系对-80至150摄氏度温度范围内的纳米结构天然橡胶/聚苯乙烯基互穿聚合物网络(IPNs)粘弹性的影响。在不同的频率(100、50、10、1和0.1 Hz)下进行了研究,并分析了它们对阻尼,存储和损耗模量的影响。在所有情况下,tanδ和储能模量和损耗模量均显示出与天然橡胶和聚苯乙烯相相对应的两个不同的跃迁,这表明该系统在分子水平上不可混溶。但是,相对于原始聚合物的玻璃化转变温度(T-g's),在IPN中观察到轻微的向内移动,表明两相之间有一定程度的混溶性或混合性。当频率从0.1增至100 Hz时,T-g值在所有情况下均显示正向偏移。在三种引发体系(过氧化二枯基,过氧化苯甲酰和偶氮二异丁腈)的比较中,过氧化二枯基体系显示出最高的模量。 IPN的形态用透射电子显微镜分析。显微照片表明该系统是纳米结构的。试图将粘弹性行为与IPN的形态联系起来。各种模型(例如,串联模型,并行模型,Halpin-Tsai模型,Kerner模型,Coran模型,Takayanagi模型和Davies模型)用于建模粘弹性数据。线性损耗模量曲线下的面积大于通过基团贡献分析得到的面积;这表明阻尼受相形态,双相连续性和相交联的影响。最后,通过Cole-Cole分析进一步评估了系统的均匀性。 (C)2003 Wiley Periodicals,Inc. [参考:48]

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