Multitasked Embedded Multigrid for Three-Dimensional Flow Simulation.

Abstract

This project explored fast algorithms for Euler and Navier Stokes simulations. A particular issue pursued under the grant was the integration of an explicit three dimensional flow solver, embedded mesh refinements, a model equation hierarchy, multiple grid acceleration and extensive rectorization and multi tasking. Several papers were produced during this effort including such titles as 'Multitasked embedded multigrid for three-dimensional flow simulation' and 'Multigrid approaches to the Euler equations'. An efficient algorithm designed to be used for Navier stokes simulations of complex flows over complete configurations is described. The algorithm incorporates a number of elements, including an explicit three-dimensional flow solver, embedded mesh refinements, a model equation hierarchy ranging from the Euler equations through the full Navier-Stokes equations, multiple-grid convergence acceleration and extensive vectorization and multitasking for efficient execution on parallel processing supercomputers. Results are presented for a preliminary trial of the method on a problem representative of turbomachinery applications. Based on this performance data, it is estimated that a mature implementation of the algorithm will yield overall speedups ranging as high as 100.

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Document Details

Document Type
Technical Report
Publication Date
Jun 01, 1986
Accession Number
ADA185631

Entities

People

  • Daniel V. Pryor
  • Gary M. Johnson
  • John P. Ziebarth
  • Julie M. Swisshelm

Tags

Communities of Interest

  • Energy and Power Technologies

DTIC Thesaurus Topics

  • Classification
  • Computational Fluid Dynamics
  • Computations
  • Computer Programming
  • Equations
  • Equations Of Motion
  • Euler Equations
  • Flow
  • Geometry
  • Grids
  • Navier Stokes Equations
  • Parallel Computing
  • Parallel Processing
  • Simulations
  • Three Dimensional
  • Three Dimensional Flow
  • Two Dimensional

Readers

  • Computational Fluid Dynamics (CFD)