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Modeling and simulation of three-dimensional extrusion swelling of viscoelastic fluids with PTT, Giesekus and FENE-P constitutive models

机译:使用PTT,Giesekus和FENE-P本构模型对粘弹性流体的三维挤压膨胀进行建模和仿真

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摘要

The investigation of the extrusion swelling mechanism of viscoelastic fluids has both scientific and industrial interest. However, it has been traditionally difficult to afford theoretical and experimental researches to this problem. The numerical methodology based on the penalty finite element method with a decoupled algorithm is presented in the study to simulate three-dimensional extrusion swelling of viscoelastic fluids flowing through out of a circular die. The rheological responses of viscoelastic fluids are described by using three kinds of differential constitutive models including the Phan-Thien Tanner model, the Giesekus model, and the finite extensible nonlinear elastic dumbbell with a Peterlin closure approximation model. A streamface-streamline method is introduced to adjust the swelling free surface. The calculation stability is improved by using the discrete elastic-viscous split stress algorithm with the inconsistent streamline-upwind scheme. The essential flow characteristics of viscoelastic fluids are predicted by using the proposed numerical method, and the mechanism of swelling phenomenon is further discussed.
机译:对粘弹性流体的挤出溶胀机理的研究具有科学和工业兴趣。然而,传统上很难对该问题进行理论和实验研究。在研究中提出了一种基于惩罚有限元法和解耦算法的数值方法,以模拟从圆形模具流出的粘弹性流体的三维挤压膨胀。通过使用三种微分本构模型(包括Phan-Thien Tanner模型,Giesekus模型和具有Peterlin闭合近似模型的有限可扩展非线性弹性哑铃)来描述粘弹性流体的流变响应。引入了流线型流线法来调节自由膨胀的表面。通过使用离散的弹性-粘滞分裂应力算法和不一致的流线-上风方案来提高计算稳定性。利用所提出的数值方法预测了粘弹性流体的基本流动特性,并进一步讨论了溶胀现象的机理。

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