论文标题

使用滑动网格方法在移动域上结合边界符合边界的有限元网格

Combining Boundary-Conforming Finite Element Meshes on Moving Domains Using a Sliding Mesh Approach

论文作者

Helmig, Jan, Key, Fabian, Behr, Marek, Elgeti, Stefanie

论文摘要

对于大多数有限元模拟,在准确性或效率方面,构成边界的网格具有显着优势。对于复杂的域而言,尤其如此。但是,随着域的复杂性的增加,产生构造边界的网格变得更加困难和耗时。因此,人们可能会决定诉诸于一种以模块化方式拼凑在一起以形成较大域的方法。本文为滑动网格上的流体和温度方程式提供了稳定的有限元配方。它结合了多个子域的解决方案字段,其边界在公共接口上相互滑动。因此,该方法允许使用高度调谐的边界构成网格,仅在重叠的边界接口处耦合。与标准重叠或虚拟域方法相比,耦合分解为几个几何尺寸的几个接口。该公式由以下关键成分组成:使用Nitsche方法的稳定版本弱施加了重叠表面上的溶液字段的耦合。它确保在公共界面处的质量和节能。此外,我们允许在界面的非重叠部分施加弱的Dirichlet边界条件。我们提出了一项详细的数值研究,用于产生的稳定配方。它显示了牛顿和广义牛顿材料模型的最佳收敛行为。塑料熔体在单螺钉内以及双螺钉挤出机内的模拟显示了该方法对复杂且相关的工业应用的适用性。

For most finite element simulations, boundary-conforming meshes have significant advantages in terms of accuracy or efficiency. This is particularly true for complex domains. However, with increased complexity of the domain, generating a boundary-conforming mesh becomes more difficult and time consuming. One might therefore decide to resort to an approach where individual boundary-conforming meshes are pieced together in a modular fashion to form a larger domain. This paper presents a stabilized finite element formulation for fluid and temperature equations on sliding meshes. It couples the solution fields of multiple subdomains whose boundaries slide along each other on common interfaces. Thus, the method allows to use highly tuned boundary-conforming meshes for each subdomain that are only coupled at the overlapping boundary interfaces. In contrast to standard overlapping or fictitious domain methods the coupling is broken down to few interfaces with reduced geometric dimension. The formulation consists of the following key ingredients: the coupling of the solution fields on the overlapping surfaces is imposed weakly using a stabilized version of Nitsche's method. It ensures mass and energy conservation at the common interfaces. Additionally, we allow to impose weak Dirichlet boundary conditions at the non-overlapping parts of the interfaces. We present a detailed numerical study for the resulting stabilized formulation. It shows optimal convergence behavior for both Newtonian and generalized Newtonian material models. Simulations of flow of plastic melt inside single-screw as well as twin-screw extruders demonstrate the applicability of the method to complex and relevant industrial applications.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源