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Development of Multiobjective Optimization Techniques for Sonic Boom MinimizationA discrete, semi-analytical sensitivity analysis procedure has been developed for calculating aerodynamic design sensitivities. The sensitivities of the flow variables and the grid coordinates are numerically calculated using direct differentiation of the respective discretized governing equations. The sensitivity analysis techniques are adapted within a parabolized Navier Stokes equations solver. Aerodynamic design sensitivities for high speed wing-body configurations are calculated using the semi-analytical sensitivity analysis procedures. Representative results obtained compare well with those obtained using the finite difference approach and establish the computational efficiency and accuracy of the semi-analytical procedures. Multidisciplinary design optimization procedures have been developed for aerospace applications namely, gas turbine blades and high speed wing-body configurations. In complex applications, the coupled optimization problems are decomposed into sublevels using multilevel decomposition techniques. In cases with multiple objective functions, formal multiobjective formulation such as the Kreisselmeier-Steinhauser function approach and the modified global criteria approach have been used. Nonlinear programming techniques for continuous design variables and a hybrid optimization technique, based on a simulated annealing algorithm, for discrete design variables have been used for solving the optimization problems. The optimization procedure for gas turbine blades improves the aerodynamic and heat transfer characteristics of the blades. The two-dimensional, blade-to-blade aerodynamic analysis is performed using a panel code. The blade heat transfer analysis is performed using an in-house developed finite element procedure. The optimization procedure yields blade shapes with significantly improved velocity and temperature distributions. The multidisciplinary design optimization procedures for high speed wing-body configurations simultaneously improve the aerodynamic, the sonic boom and the structural characteristics of the aircraft. The flow solution is obtained using a comprehensive parabolized Navier Stokes solver. Sonic boom analysis is performed using an extrapolation procedure. The aircraft wing load carrying member is modeled as either an isotropic or a composite box beam. The isotropic box beam is analyzed using thin wall theory. The composite box beam is analyzed using a finite element procedure. The developed optimization procedures yield significant improvements in all the performance criteria and provide interesting design trade-offs. The semi-analytical sensitivity analysis techniques offer significant computational savings and allow the use of comprehensive analysis procedures within design optimization studies.
Document ID
19970011407
Acquisition Source
Ames Research Center
Document Type
Contractor Report (CR)
Authors
Chattopadhyay, Aditi
(Arizona State Univ. Tempe, AZ United States)
Rajadas, John Narayan
(Arizona State Univ. Tempe, AZ United States)
Pagaldipti, Naryanan S.
(Arizona State Univ. Tempe, AZ United States)
Date Acquired
September 6, 2013
Publication Date
December 1, 1996
Subject Category
Acoustics
Report/Patent Number
NAS 1.26:203587
NASA-CR-203587
Report Number: NAS 1.26:203587
Report Number: NASA-CR-203587
Accession Number
97N16317
Funding Number(s)
CONTRACT_GRANT: NCC2-5064
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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