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Accuracy and Grid Convergence of the Numerical Solution of the Energy Equation in Fluid Film Lubrication: Application to the 1D Slider

机译:流体薄膜润滑中能量方程数值解的准确性和电网收敛:应用于1D滑块的应用

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摘要

The present work is focused on the numerical solution of the complete energy equation used in fluid film lubrication. The work was motivated by the fact that the complete energy equation has no analytical solution that can be used for validations. Its accuracy and computation time are related to the employed numerical method and to the grid resolution. The natural discretization method (NDM) applied on different grids is systematically compared with the spectral method (the Lobatto Point Colocation Method or LPCM) with different polynomial degrees. A one dimensional inclined slider is used for the numerical tests, and the energy equation is artificially decoupled from the Reynolds equation. This approach enables us to focus all the attention on the numerical solution of the energy equation. The results show that the LPCM is one or two orders of magnitude more efficient than the NDM in terms of computation time. The energy equation is then coupled with the Reynolds equation in a thermo-hydrodynamic analysis of the same 1D slider; the numerical results confirm again the efficiency of the LPCM. A thermo-hydrodynamic analysis of a two-lobe journal bearing is then presented as a practical application.
机译:本作工作的重点是流体膜润滑中使用的完整能量方程的数值解。这项工作是推动完整的能量方程没有可用于验证的分析解决方案。其精度和计算时间与采用的数值方法和网格分辨率有关。系统地与具有不同多项式度的光谱法(Lobatto点配置方法或LPCM)进行系统地施加在不同网格上的自然离散化方法(NDM)。一维倾斜滑块用于数值测试,并且能量方程从雷诺等式中人工分离。这种方法使我们能够将所有注意力集中在能量方程的数值解中。结果表明,LPCM在计算时间方面比NDM更有效地是一个或两个数量级。然后,在相同的1D滑块的热流动力学分析中,能量方程与Reynolds方程耦合;数值结果再次确认LPCM的效率。然后将双瓣轴颈轴承的热流体动力学分析作为实际应用。

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