The Effects of the Asselin Time Filter on Numerical Solutions to the Linearized Shallow-Water Wave Equations

  • Schlesinger R
  • Uccellini L
  • Johnson D
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Abstract

In the present investigation, a one-dimensional linearized analysis is used to determine the effect of Asselin's (1972) time filter on both the computational stability and phase error of numerical solutions for the shallow water wave equations, in cases with diffusion but without rotation. An attempt has been made to establish the approximate optimal values of the filtering parameter nu for each of the 'lagged', Dufort-Frankel, and Crank-Nicholson diffusion schemes, suppressing the computational wave mode without materially altering the physical wave mode. It is determined that in the presence of diffusion, the optimum filter length depends on whether waves are undergoing significant propagation. When moderate propagation is present, with or without diffusion, the Asselin filter has little effect on the spatial phase lag of the physical mode for the leapfrog advection scheme of the three diffusion schemes considered.

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Schlesinger, R. E., Uccellini, L. W., & Johnson, D. R. (1983). The Effects of the Asselin Time Filter on Numerical Solutions to the Linearized Shallow-Water Wave Equations. Monthly Weather Review, 111(3), 455–467. https://doi.org/10.1175/1520-0493(1983)111<0455:teotat>2.0.co;2

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