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AEROSPACE
AFRL camber morphing wing takes flight
by Staff Writers
Wright-Patterson AFB OH (SPX) Dec 19, 2019

The Air Force Research Laboratory-developed Variable Camber Compliant Wing successfully completed a series of flight experiments in September and October of 2019. This unique wing concept changes shape to improve aerodynamic performance and adapt itself to various flight conditions and missions. (U.S. Air Force Photo)

The Air Force Research Laboratory recently completed the successful flight demonstration of a game-changing camber morphing wing technology that could significantly increase aircraft range and performance.

The AFRL-developed Variable Camber Compliant Wing is capable of changing shape to improve aerodynamic performance and morph itself to various flight conditions and missions. Wing camber, or the shape of a wing surface, is a fundamental element of aerodynamic flight. Conventional wings with discrete hinged control surfaces have greater drag, whereas wings with a smooth camber are efficient and maneuverable. The ability to morph the wing according to aerodynamic conditions would give an aircraft increased lift when needed without a weight penalty-typically at takeoff and landing-and greater fuel-efficiency and maneuverability when in flight.

This flight experiment demonstrated the second iteration of the VCCW, a smaller, more compact version than the first, which was used primarily in wind tunnel experiments. This eight-foot wing was designed to be flown on a commercial-off-the-shelf remotely controlled aircraft, simulating an unmanned air vehicle. During the series of flights, held in September and October 2019, the wing was flown at low speeds, completing a number of maneuvers and demonstrating active shape control for optimized drag reduction and increased agility.

The VCCW features a smooth and continuous skin construction, which not only reduces noise by eliminating sharp surfaces and gaps, but improves aerodynamic performance as well. According to Dr. James Joo, AFRL Advanced Structural Concepts team lead and VCCW program manager, the improved aerodynamics translates into potentially significant fuel savings.

"Early estimates show VCCW technology saving aircraft fuel consumption by 10 percent," said Joo. "This was one of our main goals, and it fits the Air Force's efforts to reduce overall energy costs."

Jared Neely, AFRL research engineer and designer of the morphing wing, called this demonstration an important step in advancing flexible wing technology for warfighter use.

"The success of this demonstration has given us confidence that this technology can be leveraged to higher-class vehicles, to take advantage of the many benefits this technology can truly offer."

Joo added that although other research organizations have explored the morphing camber concept, AFRL's version is unique because it is a true flexible wing without any discrete control surfaces to assist in takeoff and landing. This seamless surface can increase overall range, making it ideal for a variety of long-range platforms. He says the team will continue to refine the concept and look into additional ways it can benefit existing aircraft.

"We are excited about the success of this demonstration," said Joo. "We are continuing to explore the opportunities that this technology can offer for future Air Force aircraft development."


Related Links
Air Force Research Laboratory
Aerospace News at SpaceMart.com


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AEROSPACE
NASA's X-59 quiet supersonic research aircraft cleared for final assembly
Washington DC (SPX) Dec 17, 2019
NASA's first large scale, piloted X-plane in more than three decades is cleared for final assembly and integration of its systems following a major project review by senior managers held Thursday at NASA Headquarters in Washington. The management review, known as Key Decision Point-D (KDP-D), was the last programmatic hurdle for the X-59 Quiet SuperSonic Technology (QueSST) aircraft to clear before officials meet again in late 2020 to approve the airplane's first flight in 2021. "With the co ... read more

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