International Journal of Numerical Methods for Heat & Fluid Flow | 2019

Model structure effect on static aeroelastic deformation of the NASA CRM

 
 
 
 

Abstract


Purpose \n \n \n \n \nThis paper aims to present a computational aeroelastic capability based on a fluid–structure interaction (FSI) methodology and validate it using the NASA Common Research Model (CRM). Focus is placed on the effect of the wind tunnel model structural features on the static aeroelastic deformations. \n \n \n \n \nDesign/methodology/approach \n \n \n \n \nThe FSI methodology couples high-fidelity computational fluid dynamics to a simplified beam representation of the finite element model. Beam models of the detailed CRM wind tunnel model and a simplified CRM model are generated. The correlation between the numerical simulations and wind tunnel data for varying angles of attack is analysed and the influence of the model structure on the static aeroelastic deformation and aerodynamics is studied. \n \n \n \n \nFindings \n \n \n \n \nThe FSI results follow closely the general trend of the experimental data, showing the importance of considering structural model deformations in the aerodynamic simulations. A thorough examination of the results reveals that it is not unequivocal that the fine details of the structural model are important in the aeroelastic predictions. \n \n \n \n \nResearch limitations/implications \n \n \n \n \nThe influence of some changes in structural deformation on transonic wing aerodynamics appears to be complex and non-linear in nature and should be subject to further investigations. \n \n \n \n \nOriginality/value \n \n \n \n \nIt is shown that the use of a beam model in the FSI approach provides a reliable alternative to the more costly coupling with the full FE model. It also highlights the non-necessity to develop precise, detailed structural models for accurate FSI simulations.

Volume None
Pages None
DOI 10.1108/HFF-07-2018-0352
Language English
Journal International Journal of Numerical Methods for Heat & Fluid Flow

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