4D Composite Printing Can Improve Drone Wings
The aviation industry faces multiple pressures from higher fuel costs and increased scrutiny over the environmental and quality-of-life impacts from its aircraft. Therefore, researchers are looking for new methods of keeping expenses down while improving overall efficiency, and the relatively new market of unmanned aerial vehicles (UAVs) — or drones — is no exception.
UAVs are occupying an ever-growing space in aviation circles. Suong Hoa, a professor of mechanical, industrial and aerospace engineering at the Gina Cody School of Engineering and Computer Science, and his team of student researchers, recently came up with a method to make UAV wings cheaper to manufacture and more efficient in flight. Using a technique Hoa pioneered known as 4D printing of composites, the team performed a feasibility study on the application of a new way to manufacture adaptive compliant trailing edge (ACTE) morphing wings. The experimental technology replaces the commonly used hinged wing flap with one that is attached to the main wing body but can bend up to 20 degrees.
4D printing is similar to 3D printing except that it changes materials from location to location. The separate material is used because it is reactive to a particular stimulus such as water, cold or heat, for instance. Initial printing is done on a flat surface that is then exposed to the stimulus, causing a reaction, and changing the surface shape. The fourth dimension refers to the altered configuration of the once-flat material.
Composite 4D printing is more complex. Rather than using a soft, dough-like substance commonly used by 3D and 4D printers, it relies on a sinewy combination of long, fine filaments held in place by a resin. Each filament is only 10 microns thick — about 1/10th the diameter of a human hair. The 4D composite printer unrolls its filament-resin mixture in ultra-thin layers at 90-degree angles from each other. The layers are then compacted together and cured in an oven at 180˚C, and then cooled down to 0˚C, creating an object that is stiff but not brittle.
As the researchers explain, this allows them to create a section of material with a uniform curvature that is sandwiched in between the wing flap’s upper and lower surfaces. It is flexible and strong enough to support the 20-degree deformation the wing requires for flight maneuverability.
“The idea is to have a wing that can change its shape easily during flight, which would be a great benefit as compared to fixed-wing aircraft,” Hoa explains. He believes the composite 4D technology has great potential for all manner of applications. Its products’ transportability, he says, is a major draw.
Top Stories
INSIDERDefense
Airbus, Boeing Reveal New Autonomous Aircraft Technologies at ILA Berlin 2026
NewsEnergy
GM Energy Bets on Sodium Batteries for Energy Storage
ArticlesManned Systems
Hitting the Road in Volvo’s All-New VNR
NewsPower
We Ride Along in Slate's $25,000 Electric Pickup
INSIDERManned Systems
Hermeus Quarterhorse Completes First Uncrewed Supersonic Flight
NewsConnectivity
Webcasts
Power
Hydrogen & Alternative Fuels Summit 2026
Automotive
Engineering Extended-Range Hybrid Systems
Automotive
Why Your Integration Stack Is Blocking Your AI Roadmap
Aerospace
Why the Next Medical Breakthrough May Come from Space
Sensors/Data Acquisition
SAE Automotive Podcast: How Automakers Use Data
Data Acquisition
Rocket Propulsion, AI, and the Future of Engineering Workflows



