论文标题
在非等热条件下两个同轴缸之间聚合物熔体流的多尺度模拟
Multiscale simulation of a polymer melt flow between two coaxial cylinders under nonisothermal conditions
论文作者
论文摘要
我们成功地将多尺度模拟(MSS)方法扩展到两个同轴圆柱体之间的非等热聚合物熔体流。在多尺度模拟中,宏观流系统通过速度梯度张量,应力张量和温度连接到许多微观系统。在宏观水平上,除了动量平衡方程外,我们考虑了能量平衡方程,其中热量产生不仅在温度分布中,而且在流量谱中起着重要作用。在显微镜水平上,用于良好的聚合物采用双链接模型。为了将温度效应纳入微观系统,我们为滑移模型使用了时间温度的叠加规则,其中参数的温度依赖性尚不清楚。另一方面,考虑到宏观方程中温度效应的方式已经很好地确定。我们发现,扩展的多尺度仿真方法在揭示稳定和瞬态病例的非等热聚合物流以及由原始路径和滑移链路表达的聚合物链的显微镜状态方面非常有效。还发现,基于温度依赖的蒸发时间的Weissenberg数量是理解本研究中使用的剪切速率范围内聚合物链变形范围的合适度量。
We successfully extend a multiscale simulation (MSS) method to nonisothermal well-entangled polymer melt flows between two coaxial cylinders. In the multiscale simulation, the macroscopic flow system is connected to a number of microscopic systems through the velocity gradient tensor, stress tensor and temperature. At the macroscopic level, in addition to the momentum balance equation, we consider the energy balance equation, where heat generation plays an important role not only in the temperature distribution but also in the flow profile. At the microscopic level, a dual slip-link model is employed for well-entangled polymers. To incorporate the temperature effect into the microscopic systems, we used the time-temperature superposition rule for the slip-link model, in which the temperature dependence of the parameters is not known; on the other hand, the way to take into account the temperature effect in the macroscopic equations has been well established. We find that the extended multiscale simulation method is quite effective in revealing the relation between nonisothermal polymeric flows for both steady and transient cases and the microscopic states of polymer chains expressed by primitive paths and slip-links. It is also found that the temperature-dependent reptation-time-based Weissenberg number is a suitable measure for understanding the extent of the polymer chain deformation in the range of the shear rate used in this study.