Wing–propeller interference

Purpose The purpose of this study is to investigate the impact of wing–propeller interference on the lift coefficient and aerodynamic efficiency of delta wings, addressing a critical gap in the existing literature. The research provides new data that can be used in the preliminary design of next-generation unmanned aerial vehicles (UAVs). Design/methodology/approach Forces acting on the aircraft were measured in the wind tunnel using self-developed measurement scales. The impact of wing–propeller interference on performance in takeoff conditions was thus measured. Findings The results reveal that a 30% increase in lift coefficient is possible for delta-winged aircraft driven by multiple propellers for typical takeoff conditions of V = 8 m/s, AoA between 20° and 30° and elevon deflection between −15° and −25°. These findings offer significant implications for UAV designs, indicating that they can be developed with a higher payload, more fuel, or a smaller launcher in mind. Originality/value This research offers a novel perspective on delta-winged UAVs, providing data that enhances their attractiveness as a design choice. The study’s findings fill the gap in research on interference between multiple large propellers and short-wingspan, high-swept wings, highlighting areas for future research and potential practical applications.

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Publication Details

Journal
Aircraft Engineering and Aerospace Technology
Published
2026-09-01
DOI
https://doi.org/10.1108/aeat-03-2025-0130
Primary Topic
Advanced Aircraft Design and Technologies
Type
article
Field-Weighted Citation Impact
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article

Wing–propeller interference

Tomasz Goetzendorf‐Grabowski, Wojciech Kulczyk, Antoni Derda, Paweł Sadowski
Aircraft Engineering and Aerospace Technology
Advanced Aircraft Design and Technologies
article

Wing–propeller interference

Tomasz Goetzendorf‐Grabowski, Wojciech Kulczyk, Antoni Derda, Paweł Sadowski
article en

Abstract

Purpose The purpose of this study is to investigate the impact of wing–propeller interference on the lift coefficient and aerodynamic efficiency of delta wings, addressing a critical gap in the existing literature. The research provides new data that can be used in the preliminary design of next-generation unmanned aerial vehicles (UAVs). Design/methodology/approach Forces acting on the aircraft were measured in the wind tunnel using self-developed measurement scales. The impact of wing–propeller interference on performance in takeoff conditions was thus measured. Findings The results reveal that a 30% increase in lift coefficient is possible for delta-winged aircraft driven by multiple propellers for typical takeoff conditions of V = 8 m/s, AoA between 20° and 30° and elevon deflection between −15° and −25°. These findings offer significant implications for UAV designs, indicating that they can be developed with a higher payload, more fuel, or a smaller launcher in mind. Originality/value This research offers a novel perspective on delta-winged UAVs, providing data that enhances their attractiveness as a design choice. The study’s findings fill the gap in research on interference between multiple large propellers and short-wingspan, high-swept wings, highlighting areas for future research and potential practical applications.

Aircraft Engineering and Aerospace Technology
Vaughn College of Aeronautics and Technology (US), Technical University of Munich (DE)
Affordable and clean energy
Openalex Percentile: Top 13%
Advanced Aircraft Design and Technologies
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Wing–propeller interference — Tomasz Goetzendorf‐Grabowski, Wojciech Kulczyk, et al. · Aircraft Engineering and Aerospace Technology (2026) | TGRS Research Map | TGRS