Optimum Design of a Composite T-tail Configuration for Maximum Flutter Speed Using Genetic Algorithm

유전자 알고리즘을 이용한 T-형 복합재료 날개의 플러터 속도 최적설계

  • 알렉산더 바비 (경상대학교 기계항공공학부 대학원) ;
  • 오세원 (경상대학교 기계항공공학부 대학원) ;
  • 김동현 (경상대학교 기계항공공학부 및 항공기품기술연구소)
  • Published : 2005.11.18

Abstract

In this paper, an efficient and robust analysis system for the flutter optimization of laminated composite wings has been developed using the coupled computational method based on the genetic algorithm. General three-dimensional doublet-lattice method is efficiently used to compute generalized aerodynamic forces of T-tail configuration in the frequency domain. Structural dynamic analyses of laminated composite T-tail models are conducted using finite clement method. The classical P-k flutter analysis technique is applied to effectively solve the aeroelastic governing equations in the frequency domain. Optimum design studies using genetic algorithm have been conducted in order to obtain maximum flutter stability of a composite T-tail configuration. The results show that flutter stability can be significantly increased using composite materials with proper optimum design concepts even for the same weight and shape condition. In the view point of engineering design, it is also importantly shown that the optimization of the vertical wing part is highly effective comparing to the optimization of horizontal wing part.

Keywords