Title :
An adjoint method for the incompressible Reynolds averaged Navier Stokes using artificial compressibility
Author :
Martinelli, L. ; Cowles, G.
Author_Institution :
Dept. of Mech. & Aerosp. Eng., Princeton Univ., NJ, USA
Abstract :
A design method for shape optimization in incompressible turbulent viscous flow has been developed and validated for inverse design. The gradient information is determined using a control-theory based algorithm. With such an approach, the cost of computing the gradient is negligible. An additional adjoint system must be solved which requires the cost of a single steady state flow solution. Thus, this method has an enormous advantage over traditional finite-difference based algorithms. The method of artificial compressibility is utilized to solve both the flow and adjoint systems. An algebraic turbulence model is used to compute the eddy viscosity. The method is validated using several inverse wing design test cases. In each case, the program must modify the shape of initial wing such that its pressure distribution matches that of the target wing. Results are shown for the inversion of both two dimensional wing sections and fully three dimensional wings
Keywords :
Navier-Stokes equations; aerodynamics; aerospace simulation; aircraft; compressible flow; computational fluid dynamics; flow simulation; optimisation; turbulence; viscosity; 2D wing sections; 3D wings; adjoint method; algebraic turbulence model; artificial compressibility; control-theory based algorithm; design method; eddy viscosity; gradient information; incompressible Reynolds averaged Navier Stokes; incompressible turbulent viscous flow; inverse design; inverse wing design; pressure distribution; shape optimization; single steady state flow solution; three dimensional wings; two dimensional wing sections; Aerospace engineering; Computational efficiency; Costs; Design methodology; Design optimization; Equations; Radio access networks; Rough surfaces; Shape control; Steady-state;
Conference_Titel :
Aerospace Conference Proceedings, 2000 IEEE
Conference_Location :
Big Sky, MT
Print_ISBN :
0-7803-5846-5
DOI :
10.1109/AERO.2000.878215