Preliminary failure analysis of an innovative morphing flap tailored for large civil aircraft applications

F. Rea, M. Arena, M. Noviello, R. Pecora, F. Amoroso
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引用次数: 9

Abstract

Aircraft wings are usually optimized for a specific mission design point. However, since they operate in a wide variety of flight conditions, some of these have conflicting impacts on aircraft design process, as a single configuration may be efficient in one instance but perform poorly in others. A shape-shifting surface, or usually referred as “morphing”, potentially enables transport aircraft to reach maximum performance in any flight conditions. Within the framework of the Joint Technology Initiative Clean Sky (JTI-CS) project, and during the first phase of the Green Regional Aircraft Integrated Technological Demonstration (GRA-ITD), the authors focused on the design and technological demonstration of an innovative bi-modal morphing outer wing flap to be installed on the next generation open rotor green regional aircraft. A novel active rib layout was designed to enable the articulation of the entire flap structure by means of multi-box arrangement. In order to prove structural load-carrying capabilities with the reference to a relevant environment, the full-scale morphing flap was properly analyzed by means of detailed finite element model analysis. To the authors' knowledge, there is no morphing concept in literature based on a similar architecture based on distributed servo-mechanical actuators. Hence, a rational review of the potential problems associated with actuators off-design conditions has been conducted to investigate the maturity of the concept and safety issues concerning the flap ground static test. In addition, useful insights have been provided to effectively detect potential failure conditions in service.
为大型民用飞机量身定制的创新型变形襟翼初步失效分析
飞机机翼通常针对特定的任务设计点进行优化。然而,由于它们在各种各样的飞行条件下运行,其中一些对飞机设计过程产生了相互冲突的影响,因为单一配置可能在一种情况下有效,但在其他情况下表现不佳。一种可变形的表面,或者通常被称为“变形”,可能使运输机在任何飞行条件下都能达到最佳性能。在清洁天空联合技术倡议(JTI-CS)项目的框架内,在绿色支线飞机综合技术论证(GRA-ITD)的第一阶段,作者重点研究了将安装在下一代开放式旋翼绿色支线飞机上的创新双模态变形外翼襟翼的设计和技术论证。设计了一种新颖的主动肋布局,通过多盒式布置实现整个皮瓣结构的衔接。为了验证结构的承载能力,结合相关环境,对全尺寸变形襟翼进行了详细的有限元模型分析。据作者所知,文献中没有基于分布式伺服机械执行器的类似架构的变形概念。因此,为了探讨襟翼地面静力试验概念的成熟度和安全性问题,本文对执行机构非设计状态的潜在问题进行了理性的回顾。此外,还提供了有用的见解,以有效地检测服务中的潜在故障条件。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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