Cargando…

A computational investigation of lift generation and power expenditure of Pratt’s roundleaf bat (Hipposideros pratti) in forward flight

The aerodynamic mechanisms of bat flight have been studied using a numerical approach. Kinematic data acquired using a high resolution motion capture system was employed to simulate the unsteady air flow around a bat’s wings. A flapping bat wing contains many degrees of freedom, which make 3D motion...

Descripción completa

Detalles Bibliográficos
Autores principales: Windes, Peter, Fan, Xiaozhou, Bender, Matt, Tafti, Danesh K., Müller, Rolf
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6261594/
https://www.ncbi.nlm.nih.gov/pubmed/30485321
http://dx.doi.org/10.1371/journal.pone.0207613
_version_ 1783374975871221760
author Windes, Peter
Fan, Xiaozhou
Bender, Matt
Tafti, Danesh K.
Müller, Rolf
author_facet Windes, Peter
Fan, Xiaozhou
Bender, Matt
Tafti, Danesh K.
Müller, Rolf
author_sort Windes, Peter
collection PubMed
description The aerodynamic mechanisms of bat flight have been studied using a numerical approach. Kinematic data acquired using a high resolution motion capture system was employed to simulate the unsteady air flow around a bat’s wings. A flapping bat wing contains many degrees of freedom, which make 3D motion tracking challenging. In order to overcome this challenge, an optical motion capture system of 21 cameras was used to reduce wing self-occlusion. Over the course of a meter-long flight, 108 discrete marker points on the bat’s wings (Pratt’s roundleaf bat, Hipposideros pratti) were tracked. The time evolution of the surface of each wing was computationally reconstructed in 3D space. The resulting kinematic model was interfaced with an unsteady incompressible flow solver using the immersed boundary method (IBM) and large eddy simulation (LES). Verification and validation of the flow simulation were conducted to establish accuracy. The aerodynamic forces calculated from the simulation compared well to the forces theoretically needed to sustain the observed flight trajectory. The transient flow field generated by the simulation allowed for the direct calculation of lift, drag, and power output of the bat during flight. The mean lift coefficient was found to be 3.21, and the flap cycle averaged aerodynamic power output was 1.05 W. Throughout the flap cycle, the planform area of the wings varied up to 46% between the largest and smallest values. During the upstroke, wing rotation was found to mitigate negative lift thereby improving overall flight efficiency. The high resolution motion capture and flow simulation framework presented here has the potential to facilitate the understanding of complex bat flight aerodynamics for both straight and maneuvering flight modes.
format Online
Article
Text
id pubmed-6261594
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-62615942018-12-19 A computational investigation of lift generation and power expenditure of Pratt’s roundleaf bat (Hipposideros pratti) in forward flight Windes, Peter Fan, Xiaozhou Bender, Matt Tafti, Danesh K. Müller, Rolf PLoS One Research Article The aerodynamic mechanisms of bat flight have been studied using a numerical approach. Kinematic data acquired using a high resolution motion capture system was employed to simulate the unsteady air flow around a bat’s wings. A flapping bat wing contains many degrees of freedom, which make 3D motion tracking challenging. In order to overcome this challenge, an optical motion capture system of 21 cameras was used to reduce wing self-occlusion. Over the course of a meter-long flight, 108 discrete marker points on the bat’s wings (Pratt’s roundleaf bat, Hipposideros pratti) were tracked. The time evolution of the surface of each wing was computationally reconstructed in 3D space. The resulting kinematic model was interfaced with an unsteady incompressible flow solver using the immersed boundary method (IBM) and large eddy simulation (LES). Verification and validation of the flow simulation were conducted to establish accuracy. The aerodynamic forces calculated from the simulation compared well to the forces theoretically needed to sustain the observed flight trajectory. The transient flow field generated by the simulation allowed for the direct calculation of lift, drag, and power output of the bat during flight. The mean lift coefficient was found to be 3.21, and the flap cycle averaged aerodynamic power output was 1.05 W. Throughout the flap cycle, the planform area of the wings varied up to 46% between the largest and smallest values. During the upstroke, wing rotation was found to mitigate negative lift thereby improving overall flight efficiency. The high resolution motion capture and flow simulation framework presented here has the potential to facilitate the understanding of complex bat flight aerodynamics for both straight and maneuvering flight modes. Public Library of Science 2018-11-28 /pmc/articles/PMC6261594/ /pubmed/30485321 http://dx.doi.org/10.1371/journal.pone.0207613 Text en © 2018 Windes et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Windes, Peter
Fan, Xiaozhou
Bender, Matt
Tafti, Danesh K.
Müller, Rolf
A computational investigation of lift generation and power expenditure of Pratt’s roundleaf bat (Hipposideros pratti) in forward flight
title A computational investigation of lift generation and power expenditure of Pratt’s roundleaf bat (Hipposideros pratti) in forward flight
title_full A computational investigation of lift generation and power expenditure of Pratt’s roundleaf bat (Hipposideros pratti) in forward flight
title_fullStr A computational investigation of lift generation and power expenditure of Pratt’s roundleaf bat (Hipposideros pratti) in forward flight
title_full_unstemmed A computational investigation of lift generation and power expenditure of Pratt’s roundleaf bat (Hipposideros pratti) in forward flight
title_short A computational investigation of lift generation and power expenditure of Pratt’s roundleaf bat (Hipposideros pratti) in forward flight
title_sort computational investigation of lift generation and power expenditure of pratt’s roundleaf bat (hipposideros pratti) in forward flight
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6261594/
https://www.ncbi.nlm.nih.gov/pubmed/30485321
http://dx.doi.org/10.1371/journal.pone.0207613
work_keys_str_mv AT windespeter acomputationalinvestigationofliftgenerationandpowerexpenditureofprattsroundleafbathipposiderosprattiinforwardflight
AT fanxiaozhou acomputationalinvestigationofliftgenerationandpowerexpenditureofprattsroundleafbathipposiderosprattiinforwardflight
AT bendermatt acomputationalinvestigationofliftgenerationandpowerexpenditureofprattsroundleafbathipposiderosprattiinforwardflight
AT taftidaneshk acomputationalinvestigationofliftgenerationandpowerexpenditureofprattsroundleafbathipposiderosprattiinforwardflight
AT mullerrolf acomputationalinvestigationofliftgenerationandpowerexpenditureofprattsroundleafbathipposiderosprattiinforwardflight
AT windespeter computationalinvestigationofliftgenerationandpowerexpenditureofprattsroundleafbathipposiderosprattiinforwardflight
AT fanxiaozhou computationalinvestigationofliftgenerationandpowerexpenditureofprattsroundleafbathipposiderosprattiinforwardflight
AT bendermatt computationalinvestigationofliftgenerationandpowerexpenditureofprattsroundleafbathipposiderosprattiinforwardflight
AT taftidaneshk computationalinvestigationofliftgenerationandpowerexpenditureofprattsroundleafbathipposiderosprattiinforwardflight
AT mullerrolf computationalinvestigationofliftgenerationandpowerexpenditureofprattsroundleafbathipposiderosprattiinforwardflight