首页> 外文期刊>Rheologica Acta: An International Journal of Rheology >Influence of interfacial condition on rheological instability behavior of UHMWPE/HDPE/nano-SiO2 blends in capillary extrusion
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Influence of interfacial condition on rheological instability behavior of UHMWPE/HDPE/nano-SiO2 blends in capillary extrusion

机译:界面条件对毛细管挤压UHMWPE / HDPE /纳米SiO2混合物流变稳定性行为的影响

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摘要

In this study, rheological behaviors and capillary extrusion flow instabilities of ultra-high molecular weight polyethylene (UHMWPE)/high-density polyethylene (HDPE)/SiO2 composites containing modified nano-SiO2 or pure nano-SiO2 are investigated. Effects of interfacial conditions between the dispersed nano-SiO2 phase and PE matrix on rheological behaviors are analyzed. The results show that modified nano-SiO2 in the PE matrix has a relatively strong interfacial interaction with the polymer chains compared with pure nano-SiO2, thus causing a more pronounced shear thinning behavior and reducing extrudate swell during capillary extrusion. Nanocomposite extrudates experience the transition of smooth- sharkskin- oscillating distortionoverall melt fracture with the increase of shear rate (or shear stress). The interfacial interaction allows a more storage of elastic energy as the melt flow through the die, resulting in sharkskin distortion and oscillating distortion to occur prematurely at critical shear rates. It also restricts the elastic recovery of the melt after leaving the die, thus delaying sharkskin distortion under shear stress. At high shear rates, the modified nano-SiO2 particles begin to roll, and some of the unmodified particles move and embed to the wall. It is believed that the interfacial adsorption effect and the wall-slip effect of nanoparticles exist simultaneously in the whole extrusion process.
机译:在该研究中,研究了超高分子量聚乙烯(UHMWPE)/高密度聚乙烯(HDPE)/ SiO2复合材料的流变行为和毛细管挤出流动性,含有改性的纳米SiO 2或纯纳米-SiO 2。分析了分散的纳米SiO2相位和PE基质与PE基质对流变行为之间的界面条件的影响。结果表明,与纯纳米SiO 2相比,PE基质中的改性纳米SiO2与聚合物链具有相对强的界面相互作用,从而引起更明显的剪切稀疏行为和减少毛细管挤出过程中的挤出物溶胀。纳米复合材料挤出物经历了剪切速率(或剪切应力)的升高(或剪切应力)的平滑鲨天振荡变形抗变形熔体熔体的过渡。界面相互作用允许更多地存储弹性能量作为熔体流过模具,导致鲨鱼天畸变和振荡变形以临界剪切速率过早发生。它还限制熔体后熔体的弹性恢复,从而在剪切应力下延迟鲨鱼天畸变。在高剪切速率下,改性的纳米SiO2颗粒开始卷,并且一些未改性的颗粒移动并嵌入墙壁。据信,纳米颗粒的界面吸附效应和脉冲滑动效果同时存在于整个挤出过程中。

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