Numerical simulation of non-isothermal viscoelastic flows at high Weissenberg numbers using a finite volume method on general unstructured meshes
Stefanie Meburger, Matthias Niethammer, Dieter Bothe, Michael, Sch\"afer

TL;DR
This paper presents a stable finite volume method for simulating non-isothermal viscoelastic flows at high Weissenberg numbers, incorporating thermo-rheological properties and validated against experimental data.
Contribution
The study introduces an original approach combining the root conformation method with thermo-rheological modeling on unstructured meshes for high Weissenberg number flows.
Findings
Method achieves stability at high Weissenberg numbers.
Results agree well with experimental data.
Effectively models temperature-dependent viscoelastic behavior.
Abstract
In this numerical study, an original approach to simulate non-isothermal viscoelastic fluid flows at high Weissenberg numbers is presented. Stable computations over a wide range of Weissenberg numbers are assured by using the root conformation approach in a finite volume framework on general unstructured meshes. The numerical stabilization framework is extended to consider thermo-rheological properties in Oldroyd-B type viscoelastic fluids. The temperature dependence of the viscoelastic fluid is modeled with the time-temperature superposition principle. Both Arrhenius and WLF shift factors can be chosen, depending on the flow characteristics. The internal energy balance takes into account both energy and entropy elasticity. Partitioning is achieved by a constant split factor. An analytical solution of the balance equations in planar channel flow is derived to verify the results of the…
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