Biomechanical properties of insect wings: the stress stiffening effects on the asymmetric bending of the Allomyrina dichotoma beetle's hind wing.

Although the asymmetry in the upward and downward bending of insect wings is well known, the structural origin of this asymmetry is not yet clearly understood. Some researchers have suggested that based on experimental results, the bending asymmetry of insect wings appears to be a consequence of the...

Full description

Bibliographic Details
Main Authors: Ngoc San Ha, Quang Tri Truong, Nam Seo Goo, Hoon Cheol Park
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2013-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3855175?pdf=render
id doaj-7bbe4a80a8f24ac9b683dd293f574114
record_format Article
spelling doaj-7bbe4a80a8f24ac9b683dd293f5741142020-11-25T01:18:49ZengPublic Library of Science (PLoS)PLoS ONE1932-62032013-01-01812e8068910.1371/journal.pone.0080689Biomechanical properties of insect wings: the stress stiffening effects on the asymmetric bending of the Allomyrina dichotoma beetle's hind wing.Ngoc San HaQuang Tri TruongNam Seo GooHoon Cheol ParkAlthough the asymmetry in the upward and downward bending of insect wings is well known, the structural origin of this asymmetry is not yet clearly understood. Some researchers have suggested that based on experimental results, the bending asymmetry of insect wings appears to be a consequence of the camber inherent in the wings. Although an experimental approach can reveal this phenomenon, another method is required to reveal the underlying theory behind the experimental results. The finite element method (FEM) is a powerful tool for evaluating experimental measurements and is useful for studying the bending asymmetry of insect wings. Therefore, in this study, the asymmetric bending of the Allomyrina dichotoma beetle's hind wing was investigated through FEM analyses rather than through an experimental approach. The results demonstrated that both the stressed stiffening of the membrane and the camber of the wing affect the bending asymmetry of insect wings. In particular, the chordwise camber increased the rigidity of the wing when a load was applied to the ventral side, while the spanwise camber increased the rigidity of the wing when a load was applied to the dorsal side. These results provide an appropriate explanation of the mechanical behavior of cambered insect wings, including the bending asymmetry behavior, and suggest an appropriate approach for analyzing the structural behavior of insect wings.http://europepmc.org/articles/PMC3855175?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Ngoc San Ha
Quang Tri Truong
Nam Seo Goo
Hoon Cheol Park
spellingShingle Ngoc San Ha
Quang Tri Truong
Nam Seo Goo
Hoon Cheol Park
Biomechanical properties of insect wings: the stress stiffening effects on the asymmetric bending of the Allomyrina dichotoma beetle's hind wing.
PLoS ONE
author_facet Ngoc San Ha
Quang Tri Truong
Nam Seo Goo
Hoon Cheol Park
author_sort Ngoc San Ha
title Biomechanical properties of insect wings: the stress stiffening effects on the asymmetric bending of the Allomyrina dichotoma beetle's hind wing.
title_short Biomechanical properties of insect wings: the stress stiffening effects on the asymmetric bending of the Allomyrina dichotoma beetle's hind wing.
title_full Biomechanical properties of insect wings: the stress stiffening effects on the asymmetric bending of the Allomyrina dichotoma beetle's hind wing.
title_fullStr Biomechanical properties of insect wings: the stress stiffening effects on the asymmetric bending of the Allomyrina dichotoma beetle's hind wing.
title_full_unstemmed Biomechanical properties of insect wings: the stress stiffening effects on the asymmetric bending of the Allomyrina dichotoma beetle's hind wing.
title_sort biomechanical properties of insect wings: the stress stiffening effects on the asymmetric bending of the allomyrina dichotoma beetle's hind wing.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2013-01-01
description Although the asymmetry in the upward and downward bending of insect wings is well known, the structural origin of this asymmetry is not yet clearly understood. Some researchers have suggested that based on experimental results, the bending asymmetry of insect wings appears to be a consequence of the camber inherent in the wings. Although an experimental approach can reveal this phenomenon, another method is required to reveal the underlying theory behind the experimental results. The finite element method (FEM) is a powerful tool for evaluating experimental measurements and is useful for studying the bending asymmetry of insect wings. Therefore, in this study, the asymmetric bending of the Allomyrina dichotoma beetle's hind wing was investigated through FEM analyses rather than through an experimental approach. The results demonstrated that both the stressed stiffening of the membrane and the camber of the wing affect the bending asymmetry of insect wings. In particular, the chordwise camber increased the rigidity of the wing when a load was applied to the ventral side, while the spanwise camber increased the rigidity of the wing when a load was applied to the dorsal side. These results provide an appropriate explanation of the mechanical behavior of cambered insect wings, including the bending asymmetry behavior, and suggest an appropriate approach for analyzing the structural behavior of insect wings.
url http://europepmc.org/articles/PMC3855175?pdf=render
work_keys_str_mv AT ngocsanha biomechanicalpropertiesofinsectwingsthestressstiffeningeffectsontheasymmetricbendingoftheallomyrinadichotomabeetleshindwing
AT quangtritruong biomechanicalpropertiesofinsectwingsthestressstiffeningeffectsontheasymmetricbendingoftheallomyrinadichotomabeetleshindwing
AT namseogoo biomechanicalpropertiesofinsectwingsthestressstiffeningeffectsontheasymmetricbendingoftheallomyrinadichotomabeetleshindwing
AT hooncheolpark biomechanicalpropertiesofinsectwingsthestressstiffeningeffectsontheasymmetricbendingoftheallomyrinadichotomabeetleshindwing
_version_ 1725140082790236160