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Effect of zinc oxide particle size on the mechanical properties of carboxylated nitrile and carboxylated styrene-butadiene rubbers.

机译:氧化锌粒度对羧化丁腈橡胶和羧化丁苯橡胶力学性能的影响。

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The influence of zinc oxide particle size on the cure and mechanical properties of carboxylated butadiene-acrylonitrile rubber (XNBR) and carboxylated styrene-butadiene rubbers (XSBR) was studied. Curing XNBR with zinc oxide is diffusion-controlled. With large particles, the onset of cure was quite slow and two-step curing was observed, while with fine zinc oxide, curing was fast and normal one-step curing was seen. Upon neutralization, cured sheets became more transparent, indicating a reduction in particle size. Also, zinc oxide-cured XNBR exhibited exceptionally high strength and modulus. These enhanced properties are attributed to ionic clusters that reinforce the rubber. With sufficient zinc oxide, a tan δ peak was observed at high temperature, in addition to the glass transition. This peak, ascribed to an ionic transition, shifted to higher temperature with increased zinc oxide up to about twice stoichiometry. Smaller particles shifted the peak to higher temperature.; Contrarily, zinc oxide behaves more like filler in XSBR rather than fully effective curative. Cure rate was insensitive to zinc oxide size and concentration. Curing was fast, but only a small increase in torque occurred. Equilibrium swelling and transmittance studies indicate zinc oxide curing. Infrared spectra appear to show near complete neutralization when sufficient zinc oxide was used. In addition, dynamic mechanical measurements demonstrate that ionic aggregates form in XSBR. However, very high strength did not result. Presumably, neutralization is confined near the surface of zinc oxide particles for XSBR. This leads to a non-uniform crosslinked structure and only provides semi-reinforcement. On the other hand, a rather uniform crosslinked structure is developed throughout XNBR, giving substantial reinforcement.
机译:研究了氧化锌粒度对羧化丁二烯-丙烯腈橡胶(XNBR)和羧化丁苯橡胶(XSBR)的硫化和力学性能的影响。 XNBR与氧化锌的固化是受扩散控制的。对于大颗粒,固化开始很慢,可以观察到两步固化,而对于细氧化锌,固化很快,可以看到正常的一步固化。中和后,固化的片材变得更透明,表明粒度减小。同样,氧化锌固化的XNBR表现出异常高的强度和模量。这些增强的性能归因于增强橡胶的离子簇。使用足够的氧化锌,除了玻璃化转变以外,还在高温下观察到tanδ峰。归因于离子跃迁的该峰随着氧化锌增加至约化学计量的两倍而移至更高的温度。较小的颗粒将峰移至较高的温度。相反,氧化锌的行为更像XSBR中的填料,而不是完全有效的固化剂。固化速度对氧化锌的大小和浓度不敏感。固化速度很快,但是扭矩只出现了很小的增加。平衡溶胀和透射率研究表明氧化锌固化。当使用足够的氧化锌时,红外光谱似乎显示出几乎完全中和。另外,动态机械测量表明,离子聚集体在XSBR中形成。但是,没有得到很高的强度。据推测,中和限于XSBR的氧化锌颗粒的表面附近。这导致不均匀的交联结构,并且仅提供半增强。另一方面,在整个XNBR中形成了相当均匀的交联结构,从而大大增强了强度。

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