4.2 Article

A new benchmark quality solution for the buoyancy-driven cavity by discrete singular convolution

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NUMERICAL HEAT TRANSFER PART B-FUNDAMENTALS
卷 40, 期 3, 页码 199-228

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TAYLOR & FRANCIS INC
DOI: 10.1080/104077901752379620

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This article introduces a high-accuracy discrete singular convolution (DSC) for the numerical simulation of coupled convective heat transfer problems. The problem of a buoyancy-driven cavity is solved by two completely independent numerical procedures. One is a quasi-wavelet-based DSC approach, which uses the regularized Shannon's kernel, while the other is a standard form of the Galerkin finite-element method. The integration of the Navier-Stokes and energy equations is performed by employing velocity correction-based schemes. The entire laminar natural convection range of 10(3) less than or equal to Ra less than or equal to 10(8) is numerically simulated by both schemes. The reliability and robustness of the present DSC approach is extensively tested and validated by means of grid sensitivity and convergence studies. As a result, a set of new benchmark quality data is presented. The study emphasizes quantitative, rather than qualitative comparisons.

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