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Helmholtz decomposition coupling rotational to irrotational flow of a viscous fluid

机译:亥姆霍兹分解将粘性流体的旋转流与非旋转流耦合

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摘要

In this work, I present the form of the Navier–Stokes equations implied by the Helmholtz decomposition in which the relation of the irrotational and rotational velocity fields is made explicit. The idea of self-equilibration of irrotational viscous stresses is introduced. The decomposition is constructed by first selecting the irrotational flow compatible with the flow boundaries and other prescribed conditions. The rotational component of velocity is then the difference between the solution of the Navier–Stokes equations and the selected irrotational flow. To satisfy the boundary conditions, the irrotational field is required, and it depends on the viscosity. Five unknown fields are determined by the decomposed form of the Navier–Stokes equations for an incompressible fluid: the rotational component of velocity, the pressure, and the harmonic potential. These five fields may be readily identified in analytic solutions available in the literature. It is clear from these exact solutions that potential flow of a viscous fluid is required to satisfy prescribed conditions, like the no-slip condition at the boundary of a solid or continuity conditions across a two-fluid boundary. It can be said that equations governing the Helmholtz decomposition describe the modification of irrotational flow due to vorticity, but the analysis shows the two fields are coupled and cannot be completely determined independently.
机译:在这项工作中,我提出了亥姆霍兹分解所隐含的Navier-Stokes方程的形式,其中明确了非旋转和旋转速度场的关系。介绍了非旋转粘性应力自平衡的思想。通过首先选择与流边界和其他规定条件兼容的非旋流来构造分解。速度的旋转分量就是Navier–Stokes方程的解与选定的非旋转流之间的差。为了满足边界条件,需要旋转场,它取决于粘度。不可压缩流体的Navier-Stokes方程的分解形式确定了五个未知场:速度,压力和谐波势的旋转分量。这五个领域可以很容易地从文献中获得的分析解决方案中识别出来。从这些精确的解决方案中可以清楚地看出,粘性流体的潜在流动需要满足规定的条件,例如,固体边界处的无滑移条件或跨两个流体边界的连续性条件。可以说,控制亥姆霍兹分解的方程式描述了旋涡引起的旋流的变化,但分析表明这两个场是耦合的,不能完全独立地确定。

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