Scinovex
articleTop 1% cited

Unsteady Euler airfoil solutions using unstructured dynamic meshes

AIAA Journal · 1990 · Vol. 28(8) · pp. 1381–1388
John T. Batina

Abstract

Two algorithms for the solution of the time-dependent Euler equations are presented for unsteady aerodynamic analysis of oscillating airfoils. Both algorithms were developed for use on an unstructured grid made up of triangles. The first flow solver involves a Runge-Kutta time-stepping scheme with a finite-volume spatial discretization that reduces to central differencing on a rectangular mesh. The second flow solver involves a modified Euler time-integration scheme with an upwind-biased spatial discretization based on the flux-vector splitting of Van Leer. The paper presents descriptions of the Euler solvers and dynamic mesh algorithm along with results which assess the capability.

Computational Fluid Dynamics and AerodynamicsAdvanced Numerical Methods in Computational MathematicsFluid Dynamics and Turbulent FlowsAirfoilEuler equationsDiscretizationAerodynamicsPolygon meshEuler's formulaFinite volume methodSemi-implicit Euler methodSolverUnstructured grid
Citations
693
FWCI
13.91
field-weighted impact
References
21
Percentile
100%
vs. same field & year
Citations per year
Cited by
Partitioned analysis of coupled mechanical systems
Computer Methods in Applied Mechanics and Engineering · 2001 · 785 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.

Unsteady Euler airfoil solutions using unstructured dynamic meshes · Scinovex