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Effects of annulation on low Reynolds number flows over an orthocone
This study numerically examines the influences of transverse annulation around a cone surface on the characteristics of a flow over an orthocone. This work is inspired by Spyroceras , a fossilized genus of nautiloid cephalopods from the Paleozoic era, whose method of locomotion is understudied. As a...
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Published in: | Theoretical and computational fluid dynamics 2023-06, Vol.37 (3), p.357-374 |
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description | This study numerically examines the influences of transverse annulation around a cone surface on the characteristics of a flow over an orthocone. This work is inspired by
Spyroceras
, a fossilized genus of nautiloid cephalopods from the Paleozoic era, whose method of locomotion is understudied. As a baseline case, a flow over a smooth orthoconic model with a blunt cone end is investigated numerically at Reynolds numbers from 500 to 1500. As Reynolds increases, two different shedding mechanisms—hairpin-vortex wake and spiral-vortex wake—are captured. We notice that an introduction of annulation over the cone surface changes the critical Reynolds number for the transition of the shedding mechanism. The dominant shedding frequency increases with the Reynolds number for the smooth and annulated cone flows. Moreover, the annulation reduces the dominant frequency for the same Reynolds number and increases the time-averaged drag coefficient. Modal decompositions—Proper Orthogonal Decomposition (POD) and Spectral Proper Orthogonal Decomposition (SPOD)—are used to capture the coherent structures and their oscillating frequencies. We have captured modes corresponding to the hairpin-vortex wake and spiral-vortex wake shedding mechanisms. Comparing the leading POD modes for the smooth and the annulated cone flows, we find that the annulation can reduce the twisting effects of the coherent structures in the wake. Additionally, we find that the SPOD analysis can identify modes presenting both hairpin-vortex wake and spiral-vortex wake in one flow condition as leading modes, while the POD leading modes only reveal one shedding mechanism in each flow.
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doi_str_mv | 10.1007/s00162-023-00649-y |
format | article |
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Spyroceras
, a fossilized genus of nautiloid cephalopods from the Paleozoic era, whose method of locomotion is understudied. As a baseline case, a flow over a smooth orthoconic model with a blunt cone end is investigated numerically at Reynolds numbers from 500 to 1500. As Reynolds increases, two different shedding mechanisms—hairpin-vortex wake and spiral-vortex wake—are captured. We notice that an introduction of annulation over the cone surface changes the critical Reynolds number for the transition of the shedding mechanism. The dominant shedding frequency increases with the Reynolds number for the smooth and annulated cone flows. Moreover, the annulation reduces the dominant frequency for the same Reynolds number and increases the time-averaged drag coefficient. Modal decompositions—Proper Orthogonal Decomposition (POD) and Spectral Proper Orthogonal Decomposition (SPOD)—are used to capture the coherent structures and their oscillating frequencies. We have captured modes corresponding to the hairpin-vortex wake and spiral-vortex wake shedding mechanisms. Comparing the leading POD modes for the smooth and the annulated cone flows, we find that the annulation can reduce the twisting effects of the coherent structures in the wake. Additionally, we find that the SPOD analysis can identify modes presenting both hairpin-vortex wake and spiral-vortex wake in one flow condition as leading modes, while the POD leading modes only reveal one shedding mechanism in each flow.
Graphical abstract</description><identifier>ISSN: 0935-4964</identifier><identifier>EISSN: 1432-2250</identifier><identifier>DOI: 10.1007/s00162-023-00649-y</identifier><language>eng</language><publisher>Berlin/Heidelberg: Springer Berlin Heidelberg</publisher><subject>Animal locomotion ; Cephalopoda ; Cephalopods ; Chemical reactions ; Classical and Continuum Physics ; Computational Science and Engineering ; Decomposition ; Drag coefficient ; Drag coefficients ; Engineering ; Engineering Fluid Dynamics ; Fluid flow ; Fossils ; Locomotion ; Low Reynolds number flow ; Mechanical properties ; Modes ; Natural history ; Organic chemistry ; Original Article ; Paleozoic ; Proper Orthogonal Decomposition ; Reynolds number ; Shedding ; Vortices</subject><ispartof>Theoretical and computational fluid dynamics, 2023-06, Vol.37 (3), p.357-374</ispartof><rights>The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature 2023. Springer Nature or its licensor (e.g. a society or other partner) holds exclusive rights to this article under a publishing agreement with the author(s) or other rightsholder(s); author self-archiving of the accepted manuscript version of this article is solely governed by the terms of such publishing agreement and applicable law.</rights><rights>COPYRIGHT 2023 Springer</rights><lds50>peer_reviewed</lds50><oa>free_for_read</oa><woscitedreferencessubscribed>false</woscitedreferencessubscribed><cites>FETCH-LOGICAL-c353t-a7fa3ad52e51c6bebaae80b2b7744e176ed2011704757b04ca11698d1f3735a33</cites></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><link.rule.ids>314,776,780,27903,27904</link.rule.ids></links><search><creatorcontrib>Thakor, Mitesh</creatorcontrib><creatorcontrib>Seh, Kee Horng</creatorcontrib><creatorcontrib>Gladson, Sareta R.</creatorcontrib><creatorcontrib>Fernandez, Martin L.</creatorcontrib><creatorcontrib>Ivany, Linda C.</creatorcontrib><creatorcontrib>Green, Melissa</creatorcontrib><creatorcontrib>Sun, Yiyang</creatorcontrib><title>Effects of annulation on low Reynolds number flows over an orthocone</title><title>Theoretical and computational fluid dynamics</title><addtitle>Theor. Comput. Fluid Dyn</addtitle><description>This study numerically examines the influences of transverse annulation around a cone surface on the characteristics of a flow over an orthocone. This work is inspired by
Spyroceras
, a fossilized genus of nautiloid cephalopods from the Paleozoic era, whose method of locomotion is understudied. As a baseline case, a flow over a smooth orthoconic model with a blunt cone end is investigated numerically at Reynolds numbers from 500 to 1500. As Reynolds increases, two different shedding mechanisms—hairpin-vortex wake and spiral-vortex wake—are captured. We notice that an introduction of annulation over the cone surface changes the critical Reynolds number for the transition of the shedding mechanism. The dominant shedding frequency increases with the Reynolds number for the smooth and annulated cone flows. Moreover, the annulation reduces the dominant frequency for the same Reynolds number and increases the time-averaged drag coefficient. Modal decompositions—Proper Orthogonal Decomposition (POD) and Spectral Proper Orthogonal Decomposition (SPOD)—are used to capture the coherent structures and their oscillating frequencies. We have captured modes corresponding to the hairpin-vortex wake and spiral-vortex wake shedding mechanisms. Comparing the leading POD modes for the smooth and the annulated cone flows, we find that the annulation can reduce the twisting effects of the coherent structures in the wake. Additionally, we find that the SPOD analysis can identify modes presenting both hairpin-vortex wake and spiral-vortex wake in one flow condition as leading modes, while the POD leading modes only reveal one shedding mechanism in each flow.
Graphical abstract</description><subject>Animal locomotion</subject><subject>Cephalopoda</subject><subject>Cephalopods</subject><subject>Chemical reactions</subject><subject>Classical and Continuum Physics</subject><subject>Computational Science and Engineering</subject><subject>Decomposition</subject><subject>Drag coefficient</subject><subject>Drag coefficients</subject><subject>Engineering</subject><subject>Engineering Fluid Dynamics</subject><subject>Fluid flow</subject><subject>Fossils</subject><subject>Locomotion</subject><subject>Low Reynolds number flow</subject><subject>Mechanical properties</subject><subject>Modes</subject><subject>Natural history</subject><subject>Organic chemistry</subject><subject>Original Article</subject><subject>Paleozoic</subject><subject>Proper Orthogonal Decomposition</subject><subject>Reynolds number</subject><subject>Shedding</subject><subject>Vortices</subject><issn>0935-4964</issn><issn>1432-2250</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2023</creationdate><recordtype>article</recordtype><recordid>eNp9kF1LwzAUhoMoOKd_wKuC15knX017Oeb8gIEgeh3SNpkdXTKTVum_N7OCd5JAwuF5zjm8CF0TWBAAeRsBSE4xUIYBcl7i8QTNCGcUUyrgFM2gZALzMufn6CLGHQAwkRczdLe21tR9zLzNtHNDp_vWuyzdzn9lL2Z0vmti5oZ9ZUJmUzGhn-mrExT6d197Zy7RmdVdNFe_7xy93a9fV4948_zwtFpucM0E67GWVjPdCGoEqfPKVFqbAipaScm5ITI3DQVCJHApZAW81oTkZdEQyyQTmrE5upn6HoL_GEzs1c4PwaWRiha0KCVlJU_UYqK2ujOqddb3QdfpNGbfHte1baovpeCC5IKUSaCTUAcfYzBWHUK712FUBNQxXjXFq1K86ideNSaJTVJMsNua8LfLP9Y3Quh8-A</recordid><startdate>20230601</startdate><enddate>20230601</enddate><creator>Thakor, Mitesh</creator><creator>Seh, Kee Horng</creator><creator>Gladson, Sareta R.</creator><creator>Fernandez, Martin L.</creator><creator>Ivany, Linda C.</creator><creator>Green, Melissa</creator><creator>Sun, Yiyang</creator><general>Springer Berlin 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Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Thakor, Mitesh</au><au>Seh, Kee Horng</au><au>Gladson, Sareta R.</au><au>Fernandez, Martin L.</au><au>Ivany, Linda C.</au><au>Green, Melissa</au><au>Sun, Yiyang</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Effects of annulation on low Reynolds number flows over an orthocone</atitle><jtitle>Theoretical and computational fluid dynamics</jtitle><stitle>Theor. Comput. Fluid Dyn</stitle><date>2023-06-01</date><risdate>2023</risdate><volume>37</volume><issue>3</issue><spage>357</spage><epage>374</epage><pages>357-374</pages><issn>0935-4964</issn><eissn>1432-2250</eissn><abstract>This study numerically examines the influences of transverse annulation around a cone surface on the characteristics of a flow over an orthocone. This work is inspired by
Spyroceras
, a fossilized genus of nautiloid cephalopods from the Paleozoic era, whose method of locomotion is understudied. As a baseline case, a flow over a smooth orthoconic model with a blunt cone end is investigated numerically at Reynolds numbers from 500 to 1500. As Reynolds increases, two different shedding mechanisms—hairpin-vortex wake and spiral-vortex wake—are captured. We notice that an introduction of annulation over the cone surface changes the critical Reynolds number for the transition of the shedding mechanism. The dominant shedding frequency increases with the Reynolds number for the smooth and annulated cone flows. Moreover, the annulation reduces the dominant frequency for the same Reynolds number and increases the time-averaged drag coefficient. Modal decompositions—Proper Orthogonal Decomposition (POD) and Spectral Proper Orthogonal Decomposition (SPOD)—are used to capture the coherent structures and their oscillating frequencies. We have captured modes corresponding to the hairpin-vortex wake and spiral-vortex wake shedding mechanisms. Comparing the leading POD modes for the smooth and the annulated cone flows, we find that the annulation can reduce the twisting effects of the coherent structures in the wake. Additionally, we find that the SPOD analysis can identify modes presenting both hairpin-vortex wake and spiral-vortex wake in one flow condition as leading modes, while the POD leading modes only reveal one shedding mechanism in each flow.
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subjects | Animal locomotion Cephalopoda Cephalopods Chemical reactions Classical and Continuum Physics Computational Science and Engineering Decomposition Drag coefficient Drag coefficients Engineering Engineering Fluid Dynamics Fluid flow Fossils Locomotion Low Reynolds number flow Mechanical properties Modes Natural history Organic chemistry Original Article Paleozoic Proper Orthogonal Decomposition Reynolds number Shedding Vortices |
title | Effects of annulation on low Reynolds number flows over an orthocone |
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