首页> 外文期刊>Rubber Chemistry and Technology >PHASE STRUCTURE CHANGES IN A SHEARED BLEND OF HIGH MOLECULAR WEIGHT POLYBUTADIENE AND POLYISOPRENE ELASTOMERS
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PHASE STRUCTURE CHANGES IN A SHEARED BLEND OF HIGH MOLECULAR WEIGHT POLYBUTADIENE AND POLYISOPRENE ELASTOMERS

机译:高分子量聚丁二烯和聚异戊二烯弹性体的剪切共混物中的相结构变化

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The flow-induced phase behavior of polyisoprene-polybutadiene elastomer blends is of concern to the rubber industry because of the wide practical applications of these blends. We have been investigating examples of these blends using a Rheo-SALS instrument in conjunction with light microscopy. The subject of this work was a high molecular weight, near-critical blend (35/65 ratio) comprising polybutadiene (M-n = 413, 000) and polyisoprene (M-n = 177, 000) (Blend II). The results were contrasted with those for a previously studied blend (Blend I) comprising polybutadiene (M-n 164, 000) and polyisoprene (M-n = 125,000), also near the critical composition at a 40/60 ratio. Both featured the same microstructure. Each was examined under quiescence and flow conditions. For Blend I at a 24 degrees C quench depth, the scattering pattern was the expected spinodal ring; which, upon shearing, changed to an II-shaped pattern and then to a bright streak in the vorticity direction. Direct observation showed that these patterns corresponded to a fibrillar structure aligned in the flow direction. Similar light scattering patterns were obtained after a temperature jump (24 degrees C) under steady-state shearing. With Blend II at a 40 degrees C quench depth, the scattering pattern was again a spinodal ring, but this changed on shearing to an anisotropic pattern having the shape of an ''8'' or a ''butterffy.'' The shape of this pattern depended on shear rate, and its origin was hypothesized to be phase domains following helical paths with axes aligned in the vorticity direction. The corresponding micrographs are consistent with this supposition, as is an instability phenomena observed in the parallel-plate rheometer at higher shear rates. These purely hydrodynamic phenomena should be kept in mind when interpreting observations of ''flow-induced mixing'' at lower quench depths. [References: 86]
机译:聚异戊二烯-聚丁二烯弹性体混合物的流动诱导相行为是橡胶工业所关注的,因为这些混合物的广泛实际应用。我们一直在使用Rheo-SALS仪器结合光学显微镜研究这些混合物的实例。这项工作的主题是包含聚丁二烯(M-n = 413,000)和聚异戊二烯(M-n = 177,000)的高分子量,近临界共混物(比例为35/65)(混合II)。该结果与先前研究的包含聚丁二烯(M-n 164,000)和聚异戊二烯(M-n = 125,000)的共混物(混合I)的结果形成对比,该混合物也以40/60的比例接近临界组成。两者具有相同的微观结构。每个都在静态和流动条件下检查。对于在24摄氏度淬火深度的混合物I,散射图样是预期的旋节线环。其在剪切时变为II形图案,然后沿涡度方向变为亮条纹。直接观察表明,这些图案对应于在流动方向上排列的原纤维结构。在稳态剪切下温度跃升(24摄氏度)后,获得了类似的光散射图案。在40摄氏度淬火深度的Blend II中,散射图样仍然是一个旋节线环,但在剪切时变成了“ 8”或“蝶形”形状的各向异性图形。这种模式取决于剪切速率,并假设其起源是沿螺旋路径的轴心在涡度方向上对齐的相域。相应的显微照片与这种假设一致,在平行板流变仪中在较高剪切速率下观察到的不稳定性现象也是如此。当解释在较低淬火深度下“流动引起的混合”的观察结果时,应牢记这些纯粹的流体动力学现象。 [参考:86]

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