STOL UAV Design & Flight Testing – National First Prize, CUADC

An evidence-backed engineering case study of three aircraft generations developed for short-takeoff payload flight.

Final lightweight monoplane on the competition runway
Final competition aircraft. This photograph documents the completed airframe; the performance figures below are reported separately.
Period
Apr 2025 – Oct 2025
Role
Airframe Design & Flight Testing
Recognition
National First Prize, UAV Short Takeoff — CUADC; Second Prize, Design Report — CUADC

Design Challenge

The team developed a fixed-wing aircraft for the short-takeoff payload event at the China Universities Aircraft Design Competition. The engineering problem coupled low-speed lift, propulsion, structural mass, manufacturability, ground handling, and reliable flight within a compact airframe. Three physical generations were used to move from a high-lift baseline through rapid validation to the final lightweight aircraft.

Key Results

  • 770 mmwingspanFinal competition aircraft
  • 905 gaircraft massExcluding competition payload
  • 2.845 kgcompetition payloadCarried in the final event
  • 2.4 mshort-takeoff distanceGround run to takeoff

My Contributions

  • Co-developed the 770 mm-span short-takeoff aircraft at 905 g unladen mass; the final airframe carried a 2.845 kg payload and took off within 2.4 m in competition testing.
  • Contributed to the iteration from a single-propeller triplane through a gearbox-driven twin-propeller prototype to the lighter single-propeller monoplane, assessing lift, drivetrain complexity, and structural mass under the single-motor rule.
  • Modeled the airframe in SolidWorks and redesigned the final MH114 wing with balsa/basswood members, a carbon-fiber main spar, 3D-printed connectors, and heat-shrink covering.
  • Integrated the payload directly along the main spar to eliminate a separate support structure and increase roll moment of inertia, reducing sensitivity to transient roll disturbances; participated in fabrication, ground checks, and flight testing.

Design Evolution

Generation I

Stacked triple-wing baseline

Team members assembling the yellow stacked triple-wing first-generation aircraft
Generation I assembly photograph. The stacked wings established the initial high-lift baseline.

The first airframe explored a compact, stacked triple-wing arrangement before the team reduced mass and complexity in later prototypes.

Generation II

Single-motor dual-propeller reduction-drive prototype

Generation II report page showing reduction-drive concepts and measured thrust table
Generation II design-report crop. It documents one motor driving two propellers through candidate reduction-drive layouts and the associated bench-test evidence.

The Generation II study retained a stacked three-wing concept while examining a single motor coupled to two propellers to reduce reaction torque and improve propeller efficiency.

Generation III

Lightweight single-wing validation prototype

Foam-board wing validation aircraft prepared outdoors for a rapid flight test
Generation III rapid-validation airframe. Its foam-board wing was made for fast configuration checks, not as the final competition structure.
Completed lightweight single-wing aircraft with transparent film covering
Final airframe evidence. The covered built-up wing and compact single-wing layout show the structural direction validated after the foam-board prototype.

Engineering Deep Dive

Generation II propulsion study

The Generation II bench study compared four reduction ratios with 26×8.5 propellers. The report records 64:22 = 9.1 kgf, 62:23 = 9.3 kgf, 60:24 = 10.0 kgf, and 2:1 = 11.0 kgf total static thrust. The team selected the one-stage 2:1 arrangement for that design because it combined the largest measured value with a simpler, lighter mechanism.

Generation II aerodynamic analysis

These aerodynamic results apply only to Generation II. Its report selected the MH114 airfoil for low-speed lift and described XFLR5 analysis at 8, 10, and 12 m/s over angles of attack from 0° to 20°. They are design-study evidence, not measured aerodynamic coefficients for the final competition aircraft.

Generation II report crop with MH114 airfoil selection and coefficient plots
Generation II report evidence: MH114 selection and airfoil-analysis plots. The crop preserves the report's original data and labels.
Generation II report crop with XFLR5 three-wing aerodynamic analysis
Generation II report evidence: XFLR5 study at 8/10/12 m/s and 0–20° angle of attack. This is analysis evidence, not final-aircraft flight-test data.

Lightweight structure and fabrication

The later airframe combined a built-up wing skeleton, lightweight skin, carbon members, and small fabricated joints. Structural work in SolidWorks was followed by fabrication, alignment, covering, integration, and repeated ground checks so that mass reduction did not erase assembly accuracy.

Partially assembled built-up aircraft wing skeleton on a cutting mat
Fabrication evidence. The exposed wing shows the internal ribs and spars before the lightweight covering was applied.

Flight-Test Progression

The development flights below document two distinct configurations. They show progression in the physical prototypes; they are not interchangeable performance trials.

Final Competition Flight

The final competition aircraft combined the lightweight airframe with the integrated propulsion and control system. The recorded result was a 2.4 m short-takeoff ground run while carrying the 2.845 kg competition payload.

Awards and Team

The China Universities Aircraft Design Competition issued separate awards for the flight event and its design report. The full certificates are shown without redaction so the event, team, members, adviser, award level, date, and certificate number remain visible.

STOL UAV First Prize

Full certificate for the STOL UAV First Prize
Flight-event certificate from CUADC比赛结果.pdf: First Prize in the STOL UAV event.

STOL UAV Design Report Second Prize

Full certificate for the STOL UAV Design Report Second Prize
Design-report certificate from CUADC设计报告.pdf: Second Prize for the STOL UAV design report.
Aircraft team standing together at the competition with project aircraft
Competition team photograph with the aircraft projects. The fixed-wing STOL work was a collaborative team effort.