Force and deformation modeling of the flapping wing: Calliphora Vicina

There is a description since several decades ago those insects have evolved that an extra lift is obtained due to the rotational and translational mechanism especially during stroke reversals. Nonetheless, this issue is strongly depending on the consequences of the wing stroke kinematics prescribed....

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Main Authors: Mohd. Nasir, Mohd. Nazri, Fritz, Olaf-Lehman, Stanislav, Gorb
Format: Article
Language:English
English
Published: Universiti Teknologi Malaysia 2009
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Online Access:http://eprints.utm.my/id/eprint/13345/1/NazriNasir2009_ForceAnd%20DeformationModeling.pdf
http://eprints.utm.my/id/eprint/13345/2/nazrinasir_force-I-2009_57-84.pdf
http://eprints.utm.my/id/eprint/13345/
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Institution: Universiti Teknologi Malaysia
Language: English
English
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spelling my.utm.133452013-11-21T08:33:38Z http://eprints.utm.my/id/eprint/13345/ Force and deformation modeling of the flapping wing: Calliphora Vicina Mohd. Nasir, Mohd. Nazri Fritz, Olaf-Lehman Stanislav, Gorb TJ Mechanical engineering and machinery There is a description since several decades ago those insects have evolved that an extra lift is obtained due to the rotational and translational mechanism especially during stroke reversals. Nonetheless, this issue is strongly depending on the consequences of the wing stroke kinematics prescribed. Another issue to be concerned is the inertial force created due to the rapid acceleration or deceleration by its own distributed mass. Most people found that the force exerted to the insect’s wing mostly comes from the inertial force but no one has been able to list down all the reacted forces including aerodynamic force, Magnus force and added mass effect. Subsequently, a simulation model will be made to integrate all the relevant forces in term of magnitude and direction to find a clean single force named as a resultant force. Several years ago, majority of the wing deformation analysis discussed are base on the certain forces and none of them analyze it by considering all the forces which possibly involved. Therefore, the deformation characteristics will be calculated based on the elemental stiffness data depends on the pattern of supporting three dimensional insect's wing architecture that will be subjected to all the forces which perhaps involved. The resultant force will be accurately dispersed in spanwise direction according to chord length and the wing mass distribution in order to obtain an accurate wing deformation characteristic depending on local wing’s flexural stiffness. Universiti Teknologi Malaysia 2009-06 Article PeerReviewed application/pdf en http://eprints.utm.my/id/eprint/13345/1/NazriNasir2009_ForceAnd%20DeformationModeling.pdf text/html en http://eprints.utm.my/id/eprint/13345/2/nazrinasir_force-I-2009_57-84.pdf Mohd. Nasir, Mohd. Nazri and Fritz, Olaf-Lehman and Stanislav, Gorb (2009) Force and deformation modeling of the flapping wing: Calliphora Vicina. Jurnal Mekanikal (28). pp. 57-84. ISSN 0127-3396
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
language English
English
topic TJ Mechanical engineering and machinery
spellingShingle TJ Mechanical engineering and machinery
Mohd. Nasir, Mohd. Nazri
Fritz, Olaf-Lehman
Stanislav, Gorb
Force and deformation modeling of the flapping wing: Calliphora Vicina
description There is a description since several decades ago those insects have evolved that an extra lift is obtained due to the rotational and translational mechanism especially during stroke reversals. Nonetheless, this issue is strongly depending on the consequences of the wing stroke kinematics prescribed. Another issue to be concerned is the inertial force created due to the rapid acceleration or deceleration by its own distributed mass. Most people found that the force exerted to the insect’s wing mostly comes from the inertial force but no one has been able to list down all the reacted forces including aerodynamic force, Magnus force and added mass effect. Subsequently, a simulation model will be made to integrate all the relevant forces in term of magnitude and direction to find a clean single force named as a resultant force. Several years ago, majority of the wing deformation analysis discussed are base on the certain forces and none of them analyze it by considering all the forces which possibly involved. Therefore, the deformation characteristics will be calculated based on the elemental stiffness data depends on the pattern of supporting three dimensional insect's wing architecture that will be subjected to all the forces which perhaps involved. The resultant force will be accurately dispersed in spanwise direction according to chord length and the wing mass distribution in order to obtain an accurate wing deformation characteristic depending on local wing’s flexural stiffness.
format Article
author Mohd. Nasir, Mohd. Nazri
Fritz, Olaf-Lehman
Stanislav, Gorb
author_facet Mohd. Nasir, Mohd. Nazri
Fritz, Olaf-Lehman
Stanislav, Gorb
author_sort Mohd. Nasir, Mohd. Nazri
title Force and deformation modeling of the flapping wing: Calliphora Vicina
title_short Force and deformation modeling of the flapping wing: Calliphora Vicina
title_full Force and deformation modeling of the flapping wing: Calliphora Vicina
title_fullStr Force and deformation modeling of the flapping wing: Calliphora Vicina
title_full_unstemmed Force and deformation modeling of the flapping wing: Calliphora Vicina
title_sort force and deformation modeling of the flapping wing: calliphora vicina
publisher Universiti Teknologi Malaysia
publishDate 2009
url http://eprints.utm.my/id/eprint/13345/1/NazriNasir2009_ForceAnd%20DeformationModeling.pdf
http://eprints.utm.my/id/eprint/13345/2/nazrinasir_force-I-2009_57-84.pdf
http://eprints.utm.my/id/eprint/13345/
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