Analysing the Aerodynamic Performance of Dragonfly-Inspired Wing in Forward Flight: A Computational Approach

This paper presents a numerical investigation into the forward flight dynamics of a dragonfly-inspired wing. A three-dimensional (3-D) profiled wing model, specifically the right hind wing, was utilized for simulations. The wing model featured a tapering thickness from the wing root to the wing tip...

Full description

Bibliographic Details
Published in:CFD Letters
Main Author: Verekar P.P.; Shenoy S.B.; Yusoff H.; Magami I.A.B.; Kamangar S.; Zuber M.
Format: Article
Language:English
Published: Semarak Ilmu Publishing 2025
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85215681898&doi=10.37934%2fcfdl.17.6.2844&partnerID=40&md5=8399d843cad547b7913426a32f7e5a3a
id 2-s2.0-85215681898
spelling 2-s2.0-85215681898
Verekar P.P.; Shenoy S.B.; Yusoff H.; Magami I.A.B.; Kamangar S.; Zuber M.
Analysing the Aerodynamic Performance of Dragonfly-Inspired Wing in Forward Flight: A Computational Approach
2025
CFD Letters
17
6
10.37934/cfdl.17.6.2844
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85215681898&doi=10.37934%2fcfdl.17.6.2844&partnerID=40&md5=8399d843cad547b7913426a32f7e5a3a
This paper presents a numerical investigation into the forward flight dynamics of a dragonfly-inspired wing. A three-dimensional (3-D) profiled wing model, specifically the right hind wing, was utilized for simulations. The wing model featured a tapering thickness from the wing root to the wing tip and from the leading edge to the trailing edge, replicating the morphological characteristics observed in dragonfly wings. Morphological data were acquired using a digital micrometre instrument, DSLR camera and Scanning Electron Microscope. The study aimed to evaluate the impact of advance ratio on the aerodynamic performance of the dragonfly-inspired wing during forward flight. Analysis was conducted on a single-degree-of-freedom flapping mechanism, with a flapping frequency set at 36 Hz to mimic the natural wingbeat frequency of a dragonfly. Results revealed a notable pressure disparity between the upper and lower surfaces during the downstroke, indicative of substantial lift generation during flapping motion. Additionally, the visualization of the leading-edge vortex formation provided further insights into the aerodynamic mechanisms at play. Overall, this study contributes valuable insights into the aerodynamic performance of insect-scale flapping wing micro air vehicles, offering potential advancements in their design and development. © 2025, Semarak Ilmu Publishing. All rights reserved.
Semarak Ilmu Publishing
21801363
English
Article

author Verekar P.P.; Shenoy S.B.; Yusoff H.; Magami I.A.B.; Kamangar S.; Zuber M.
spellingShingle Verekar P.P.; Shenoy S.B.; Yusoff H.; Magami I.A.B.; Kamangar S.; Zuber M.
Analysing the Aerodynamic Performance of Dragonfly-Inspired Wing in Forward Flight: A Computational Approach
author_facet Verekar P.P.; Shenoy S.B.; Yusoff H.; Magami I.A.B.; Kamangar S.; Zuber M.
author_sort Verekar P.P.; Shenoy S.B.; Yusoff H.; Magami I.A.B.; Kamangar S.; Zuber M.
title Analysing the Aerodynamic Performance of Dragonfly-Inspired Wing in Forward Flight: A Computational Approach
title_short Analysing the Aerodynamic Performance of Dragonfly-Inspired Wing in Forward Flight: A Computational Approach
title_full Analysing the Aerodynamic Performance of Dragonfly-Inspired Wing in Forward Flight: A Computational Approach
title_fullStr Analysing the Aerodynamic Performance of Dragonfly-Inspired Wing in Forward Flight: A Computational Approach
title_full_unstemmed Analysing the Aerodynamic Performance of Dragonfly-Inspired Wing in Forward Flight: A Computational Approach
title_sort Analysing the Aerodynamic Performance of Dragonfly-Inspired Wing in Forward Flight: A Computational Approach
publishDate 2025
container_title CFD Letters
container_volume 17
container_issue 6
doi_str_mv 10.37934/cfdl.17.6.2844
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85215681898&doi=10.37934%2fcfdl.17.6.2844&partnerID=40&md5=8399d843cad547b7913426a32f7e5a3a
description This paper presents a numerical investigation into the forward flight dynamics of a dragonfly-inspired wing. A three-dimensional (3-D) profiled wing model, specifically the right hind wing, was utilized for simulations. The wing model featured a tapering thickness from the wing root to the wing tip and from the leading edge to the trailing edge, replicating the morphological characteristics observed in dragonfly wings. Morphological data were acquired using a digital micrometre instrument, DSLR camera and Scanning Electron Microscope. The study aimed to evaluate the impact of advance ratio on the aerodynamic performance of the dragonfly-inspired wing during forward flight. Analysis was conducted on a single-degree-of-freedom flapping mechanism, with a flapping frequency set at 36 Hz to mimic the natural wingbeat frequency of a dragonfly. Results revealed a notable pressure disparity between the upper and lower surfaces during the downstroke, indicative of substantial lift generation during flapping motion. Additionally, the visualization of the leading-edge vortex formation provided further insights into the aerodynamic mechanisms at play. Overall, this study contributes valuable insights into the aerodynamic performance of insect-scale flapping wing micro air vehicles, offering potential advancements in their design and development. © 2025, Semarak Ilmu Publishing. All rights reserved.
publisher Semarak Ilmu Publishing
issn 21801363
language English
format Article
accesstype
record_format scopus
collection Scopus
_version_ 1825722573360463872