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.
[1]
Inderjit Chopra,et al.
Review of State of Art of Smart Structures and Integrated Systems
,
2002
.
[2]
Antonio Concilio,et al.
Design and Functional Test of a Morphing High-Lift Device for a Regional Aircraft
,
2011
.
[3]
Sylvain Metge,et al.
Morphing Wing Integrated Safety Approach and Results
,
2016
.
[4]
Ignazio Dimino,et al.
Actuation System Design for a Morphing Wing Trailing Edge
,
2014
.
[5]
Ignazio Dimino,et al.
Safety and Reliability Aspects of an Adaptive Trailing Edge Device (ATED)
,
2016
.
[6]
E Stanewsky,et al.
Adaptive wing and flow control technology
,
2001
.
[7]
Daniel J. Inman,et al.
A Review of Morphing Aircraft
,
2011
.
[8]
Ignazio Dimino,et al.
Structural Design of an Adaptive Wing Trailing Edge for Enhanced Cruise Performance
,
2016
.
[9]
E. F. Bruhn,et al.
Analysis and Design of Flight Vehicle Structures
,
1973
.
[10]
Gianluca Amendola,et al.
Validation of a smart structural concept for wing-flap camber morphing
,
2014
.