首页> 外文期刊>Journal of intelligent material systems and structures >Multi-objective geometry optimization of the Fish Bone Active Camber morphing airfoil
【24h】

Multi-objective geometry optimization of the Fish Bone Active Camber morphing airfoil

机译:鱼骨主动弧形翼型的多目标几何优化

获取原文
获取原文并翻译 | 示例

摘要

This work presents the development of a design optimization code for the geometry of the Fish Bone Active Camber morphing airfoil concept, which has been under development at Swansea University. This concept employs a biologically inspired architecture to provide highly anisotropic structural compliance, which creates smooth and continuous camber changes of large magnitude. Previous work has shown that this concept is capable of large lift coefficient control authority and significant reductions in drag over traditional trailing edge flaps. Further development of the concept requires a more robust design methodology that allows for an automated and thorough search of the available design space in order to optimize the aero-structural and system-level performance of the concept. To this end, this research extends a previously developed fluid-structure interaction analysis into a useful design tool by embedding it within a multi-objective structural optimization routine based on a genetic algorithm. The three objective functions of aerodynamic drag, added mass, and actuation energy are minimized concurrently. Example results from a specific operating condition are shown. Examination of the Pareto frontiers and the objective values of the population at large give insight into the structural behavior of the morphing concept. The objectives of mass and energy are found to be strongly competing, but good compromise points exist. The drag objective is found to be less sensitive than the others, with low drag being achievable across a range of designs with both low mass and low energy requirements, although the Pareto frontiers formed are not as well populated with regard to drag.
机译:这项工作提出了针对鱼骨主动弧形变型翼型概念几何设计优化代码的开发,该模型已在斯旺西大学开发中。该概念采用了受生物学启发的体系结构,以提供高度各向异性的结构柔顺性,从而产生了平滑且连续的大弧度变化。先前的工作表明,该概念具有较大的升力系数控制权限,并且可以显着减少传统后缘襟翼上的阻力。对该概念的进一步开发需要更强大的设计方法,该方法可以对可用的设计空间进行自动彻底的搜索,以优化该概念的航空结构和系统级性能。为此,这项研究通过将其嵌入基于遗传算法的多目标结构优化例程中,将先前开发的流固耦合分析扩展到了有用的设计工具中。同时减小了空气阻力,附加质量和驱动能量这三个目标功能。显示了特定操作条件下的示例结果。检验帕累托边界和整个人口的客观价值,可以洞悉形态概念的结构行为。人们发现,质量和能量的目标竞争激烈,但存在良好的折衷点。发现阻力物镜比其他物镜不那么敏感,尽管在阻力方面,形成的帕累托边界不那么丰富,但是在具有低质量和低能量要求的一系列设计中都可以实现低阻力。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号