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Multiscale Numerical Simulations of Branched Polymer Melt Viscoelastic Flow Based on Double-Equation XPP Model

机译:基于双方程XPP模型的支化聚合物熔体粘弹性流动的多尺度数值模拟

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The double-equation extended Pom-Pom (DXPP) constitutive model is used to study the macro and micro thermorheological behaviors of branched polymer melt. The energy equation is deduced based on a slip tensor. The flow model is constructed based on a weakly-compressible viscoelastic flow model combined with DXPP model, energy equation, and Tait state equation. A hybrid finite element method and finite volume method (FEM/FVM) are introduced to solve the above-mentioned model. The distributions of viscoelastic stress, temperature, backbone orientation, and backbone stretch are given in 4??1 planar contraction viscoelastic flows. The effect of Pom-Pom molecular parameters and a slip parameter on thermorheological behaviors is discussed. The numerical results show that the backbones are oriented along the direction of fluid flow in most areas and are spin-oriented state near the wall area with stronger shear of downstream channel. And the temperature along is little higher in entropy elastic case than one in energy elastic case. Results demonstrate good agreement with those given in the literatures.
机译:使用双方程扩展Pom-Pom(DXPP)本构模型研究支化聚合物熔体的宏观和微观热流变行为。基于滑动张量推导能量方程。该流模型是基于弱压缩粘弹性流模型并结合DXPP模型,能量方程和Tait状态方程构造的。引入了混合有限元法和有限体积法(FEM / FVM)来求解上述模型。粘弹性应力,温度,主链取向和主链拉伸的分布以4→1平面收缩粘弹性流动给出。讨论了Pom-Pom分子参数和滑动参数对热流变行为的影响。数值结果表明,在大多数区域,主干沿流体流动方向取向,在壁面附近呈自旋取向,下游通道剪切力较大。在熵弹性情况下,沿温度略高于在能量弹性情况下的沿温度。结果证明与文献中给出的一致。

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