A finite-difference outer layer and integral inner layer method for the solution of the turbulent boundary layer equationsA new turbulent boundary-layer method is developed which models the inner region with the law of the wall while the outer region uses Clauser's eddy viscosity in Matsuno's finite-difference method. The match point between the inner and outer regions as well as the wall shear stress are determined at each marching step during the computation. Results obtained for incompressible, two-dimensional flow over flat plates and ellipses are compared with solutions from a baseline method which uses a finite-difference method for the entire boundary layer. Since the present method used the finite-difference method in the outer region only, the number of grid points required was about half that needed for the baseline method. Accurate displacement and momentum thicknesses were predicted for all cases. Skin friction was predicted well for the flat plate, but the accuracy decreased significantly for the ellipses. Adding a wake functions to the law of the wall allows some of the pressure gradient effect to be taken into account thereby increasing the accuracy of the method.
Document ID
19870035350
Acquisition Source
Legacy CDMS
Document Type
Conference Paper
Authors
Barnwell, R. W. (NASA Langley Research Center Hampton, VA, United States)
Dejarnette, F. R. (North Carolina State University Raleigh, United States)
Wahls, R. A. (NASA Langley Research Center Hampton, VA, United States)