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Geometrical dependence of viscosity of polymethylmethacrylate melt in capillary flow

机译:毛细管流动中聚甲基丙烯酸甲酯熔体粘度的几何依赖性

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摘要

The shear viscosity of polymethylmethacrylate (PMMA) melt is particularly investigated by using a twin-bore capillary rheometer at four temperatures of 210, 225, 240, and 255°C with different capillary dies. Experimental results show that the geometrical dependence of shear viscosity is significantly dependent on melt pressure as well as melt temperature. The measured shear viscosity increases with the decrease of die diameter at lower temperatures (210 and 225°C) but decreases with the decrease of die diameter at higher temperatures (240 and 255°C). Based on the deviation of shear viscosity curves and Mooney method, negative slip velocity is obtained at low temperatures and positive slip velocity is obtained at high temperatures, respectively. Geometrical dependence and pressure sensitivity of shear viscosity as well as temperature effect are emphasized for this viscosity deviation. Moreover, shear viscosity curve at 210°C deviates from the power law model above a critical pressure and then becomes less thinning. Mechanisms of the negative slip velocity at low temperatures are explored through Doolittle viscosity model and Barus equation, in which the pressure drop is used to obtain the pressure coefficient by curve fitting. Dependence of pressure coefficient on melt temperature suggests that the pressure sensitivity of shear viscosity is significantly affected by temperature. Geometrical dependence of shear viscosity can be somewhat weakened by increasing melt temperature.
机译:聚甲基丙烯酸甲酯(PMMA)熔体的剪切粘度特别是通过使用双孔毛细管流变仪在210、225、240和255°C的四个温度下使用不同的毛细管模具进行研究的。实验结果表明,剪切粘度的几何依赖性显着取决于熔体压力以及熔体温度。在较低温度(210和225°C)下,测得的剪切粘度随模具直径的减小而增加,而在较高温度(240和255°C)下,测得的剪切粘度随模具直径的减小而减小。基于剪切粘度曲线的偏差和门尼法,分别在低温下获得负滑移速度和在高温下获得正滑移速度。对于这种粘度偏差,强调了剪切粘度的几何依赖性和压力敏感性以及温度效应。此外,在临界压力以上,210°C时的剪切粘度曲线偏离幂律模型,然后变稀少。通过Doolittle粘度模型和Barus方程探讨了低温下的负滑移速度的机理,利用压降通过曲线拟合获得压力系数。压力系数对熔体温度的依赖性表明,剪切粘度的压力敏感性受温度的影响很大。剪切粘度的几何相关性可通过提高熔体温度而有所减弱。

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