An improved NavierΒ±Stokes solver is presented to compute two-dimensional incompressible Β―ows in the streamΒ±vorticity formulation at high Reynolds number. The technique is based on both the IMM for the nonorthogonal co-ordinate system and a specialized TVD scheme to cope with non-linear transport ter
Stochastic finite difference lattice Boltzmann method for steady incompressible viscous flows
β Scribed by S.C. Fu; R.M.C. So; W.W.F. Leung
- Publisher
- Elsevier Science
- Year
- 2010
- Tongue
- English
- Weight
- 777 KB
- Volume
- 229
- Category
- Article
- ISSN
- 0021-9991
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β¦ Synopsis
With the advent of state-of-the-art computers and their rapid availability, the time is ripe for the development of efficient uncertainty quantification (UQ) methods to reduce the complexity of numerical models used to simulate complicated systems with incomplete knowledge and data. The spectral stochastic finite element method (SSFEM) which is one of the widely used UQ methods, regards uncertainty as generating a new dimension and the solution as dependent on this dimension. A convergent expansion along the new dimension is then sought in terms of the polynomial chaos system, and the coefficients in this representation are determined through a Galerkin approach. This approach provides an accurate representation even when only a small number of terms are used in the spectral expansion; consequently, saving in computational resource can be realized compared to the Monte Carlo (MC) scheme. Recent development of a finite difference lattice Boltzmann method (FDLBM) that provides a convenient algorithm for setting the boundary condition allows the flow of Newtonian and non-Newtonian fluids, with and without external body forces to be simulated with ease. Also, the inherent compressibility effect in the conventional lattice Boltzmann method, which might produce significant errors in some incompressible flow simulations, is eliminated. As such, the FDLBM together with an efficient UQ method can be used to treat incompressible flows with built in uncertainty, such as blood flow in stenosed arteries. The objective of this paper is to develop a stochastic numerical solver for steady incompressible viscous flows by combining the FDLBM with a SSFEM. Validation against MC solutions of channel/Couette, driven cavity, and sudden expansion flows are carried out.
π SIMILAR VOLUMES
boundary. Recently, this result was improved in [15] to show second-order convergence of solutions including Thom's vorticity condition for solving the incompressible Navier-Stokes equations is generally known as a first-order method since boundary vorticity for the steady Stokes equations using the
We give a brief overview of frequently used stabilised finite element schemes for steady incompressible flow. We derive Taylor-Galerkin schemes for the flow equations and show how SUPG-type and Taylor-Galerkin methods can be interpreted within the same framework.