考虑静气动弹性影响的客机机翼气动/结构一体化设计研究

Aerodynamic/structural integrated design for aircraft wing with static aeroelasticity effect

  • 摘要: 针对跨声速客机气动/结构一体化设计问题,建立了考虑静气动弹性影响的气动/结构一体化优化设计方法,并针对现代跨声速民用客机开展了气动/结构一体化设计研究。数值评估选择全速势方程加附面层修正,气弹分析采用基于RBF插值技术的松耦合分析方法,优化方法使用改进的微分进化算法。通过对CRM和DLR-F6标模进行计算并与实验数据对比,验证了采用的气动数值评估手段和静气动弹性分析方法可靠性。利用建立的优化设计方法对跨声速客机机翼进行了分别以扭转角分布和剖面翼型为设计变量的考虑静气动弹性影响的气动/结构一体化设计,航程分别提高了5.63%和3.05%。航程的提高主要得益于机翼的载荷分布和结构厚度分布的改变,以扭转角分布为设计变量的优化设计以2.56%的结构重量损失获得了6.53%的升阻比的提高,以剖面翼型外形为设计变量的优化重量减小了3.56%同时升阻比提高了1.53%。

     

    Abstract: For the problem of aerodynamic/structural integrated design about a transonic aircraft, an aerodynamic/structural integrated design method is developed in consideration of the influence of static aeroelasticity.The numerical evaluation method in the integrated design is established on the basis of full potential equations and boundary layer correction.A loose coupled method based on three dimension radial basis functions (RBF) interpolation is adopted to analyze the static aeroelasticity.An improved differential evolution algorithm is chosen as the optimization algorithm for the design.The comparisons between the numerical results and the experiment data for benchmark models CRM and DLR-F6 show that the numerical technology and the loose coupled static aeroelasticity analysis method are reliable.By respectively choosing twist angle distributions and airfoil sections as the design parameter, together with the static aeroelasticity effect taken into account, the optimization method established is used in aerodynamic/structural integrated design for a transonic aircraft.Due to these two optimizations, the flying ranges are increased by 5.63% and 3.05%, respectively.The improvement in range owes to the distribution changes in the wing load and the structural thickness.In the twist distribution design case, 6.53% improvement in lift-drag ratio is obtained at the expense of 3.2% increase in the structural weight.However, in the airfoil sections design case, the lift-drag ratio is increased by 1.53%, and the structural weight is decreased by 3.56%. The design results show that the integrated optimization design method constructed in this paper is reasonable and practical.

     

/

返回文章
返回