Aerodynamic Optimization and Characterization of a Ducted Tail for a Box-Launched Aircraft

Author:

Jia Huayu12,Zheng Huilong12,Zhou Hong1,Zhang Qian1

Affiliation:

1. The Institute of Engineering Thermophysics, Chinese Academy of Sciences, Beijing 100190, China

2. University of Chinese Academy of Sciences, Beijing 100049, China

Abstract

The tail wing of box-launched aircraft needs to be folded in the launch box, which can easily cause malfunctions during flight deployment. This article presents a ducted tail wing aircraft that does not require folding of the tail wing. To address the nonlinear problem of lift coefficient in the ducted tail, an aerodynamic optimization method for ducted tails based on the sparrow search algorithm with back-propagation (SSA-BP) neural network approximate model and multi-objective genetic algorithm fusion is proposed, with the goal of improving the lift-to-drag ratio and linearization degree of the lift curve. The linearization degree of the optimized tail lift coefficient curve is significantly improved, and the lift-to-drag ratio is significantly improved under cruising conditions. Based on this optimization result, the shape of the tail wing and fuselage combination was optimized, and the optimal configuration of the ducted tail wing aircraft was selected, providing a reference for the design of ducted tail wing aircraft.

Funder

Special Research Assistant Program

Publisher

MDPI AG

Reference44 articles.

1. Aerodynamic Design Optimization of Twice Folding Wing for Tube-Launched UAV Constrained by Flat-Angle Rotation Mechanism;Chang;ACTA Aeronaut. Astronaut. Sin.,2022

2. (1999). UAVs: Launch and Recovery. Air Space Eur., 1, 59–62.

3. Design of Folded Wing Mechanism for Unmanned Aerial Vehicle (UAV);Devi;Mater. Today Proc.,2022

4. A Novel Prediction Method for Unsteady Aerodynamic Force on Three-Dimensional Folding Wing Aircraft;Zhao;Aerosp. Sci. Technol.,2023

5. Aerodynamic Layout Optimization Design of a Barrel-Launched UAV Wing Considering Control Capability of Multiple Control Surfaces;Zhu;Aerosp. Sci. Technol.,2019

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