Numerical Simulation of Self-Propelled Steady Jet Propulsion at Intermediate Reynolds Numbers: Effects of Orifice Size on Animal Jet Propulsion
Most marine jet-propelled animals have low swimming efficiencies and relatively small jet orifices. Motivated by this, the present computational fluid dynamics study simulates the flow for a jet-propelled axisymmetric body swimming steadily at intermediate Reynolds numbers of order 1–1000. Results s...
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MDPI AG
2021-06-01
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Online Access: | https://www.mdpi.com/2311-5521/6/6/230 |
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author | Houshuo Jiang |
author_facet | Houshuo Jiang |
author_sort | Houshuo Jiang |
collection | DOAJ |
description | Most marine jet-propelled animals have low swimming efficiencies and relatively small jet orifices. Motivated by this, the present computational fluid dynamics study simulates the flow for a jet-propelled axisymmetric body swimming steadily at intermediate Reynolds numbers of order 1–1000. Results show that swimming-imposed flow field, drag coefficients, swimming efficiencies, and performance index (a metric comparing swimming speeds sustained by differently sized orifices ejecting the same volume flow rate) all depend strongly on orifice size, and orifice size affects the configuration of oppositely signed body vorticity and jet vorticity, thereby affecting wake and efficiency. As orifice size decreases, efficiencies decrease considerably, while performance index increases substantially, suggesting that, for a given jet volume flow rate, a smaller orifice supports faster swimming than a larger one does, albeit at reduced efficiency. These results support the notion that most jet-propelled animals having relatively small jet orifices may be an adaptation to deal with the physical constraint of limited total volume of water available for jetting, while needing to compete for fast swimming. Finally, jet orifice size is discussed regarding the role of jet propulsion in jet-propelled animal ecology, particularly for salps that use two relatively large siphons to respectively draw in and expel water. |
first_indexed | 2024-03-10T10:14:39Z |
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language | English |
last_indexed | 2024-03-10T10:14:39Z |
publishDate | 2021-06-01 |
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spelling | doaj.art-64a1e0ee561d4d78907d9b619b0e1c282023-11-22T00:54:31ZengMDPI AGFluids2311-55212021-06-016623010.3390/fluids6060230Numerical Simulation of Self-Propelled Steady Jet Propulsion at Intermediate Reynolds Numbers: Effects of Orifice Size on Animal Jet PropulsionHoushuo Jiang0Applied Ocean Physics and Engineering Department, Woods Hole Oceanographic Institution, Woods Hole, MA 02543, USAMost marine jet-propelled animals have low swimming efficiencies and relatively small jet orifices. Motivated by this, the present computational fluid dynamics study simulates the flow for a jet-propelled axisymmetric body swimming steadily at intermediate Reynolds numbers of order 1–1000. Results show that swimming-imposed flow field, drag coefficients, swimming efficiencies, and performance index (a metric comparing swimming speeds sustained by differently sized orifices ejecting the same volume flow rate) all depend strongly on orifice size, and orifice size affects the configuration of oppositely signed body vorticity and jet vorticity, thereby affecting wake and efficiency. As orifice size decreases, efficiencies decrease considerably, while performance index increases substantially, suggesting that, for a given jet volume flow rate, a smaller orifice supports faster swimming than a larger one does, albeit at reduced efficiency. These results support the notion that most jet-propelled animals having relatively small jet orifices may be an adaptation to deal with the physical constraint of limited total volume of water available for jetting, while needing to compete for fast swimming. Finally, jet orifice size is discussed regarding the role of jet propulsion in jet-propelled animal ecology, particularly for salps that use two relatively large siphons to respectively draw in and expel water.https://www.mdpi.com/2311-5521/6/6/230animal jet propulsionjet orifice sizeperformance indexFroude propulsion efficiencyquasi-propulsive efficiencyintermediate Reynolds number |
spellingShingle | Houshuo Jiang Numerical Simulation of Self-Propelled Steady Jet Propulsion at Intermediate Reynolds Numbers: Effects of Orifice Size on Animal Jet Propulsion Fluids animal jet propulsion jet orifice size performance index Froude propulsion efficiency quasi-propulsive efficiency intermediate Reynolds number |
title | Numerical Simulation of Self-Propelled Steady Jet Propulsion at Intermediate Reynolds Numbers: Effects of Orifice Size on Animal Jet Propulsion |
title_full | Numerical Simulation of Self-Propelled Steady Jet Propulsion at Intermediate Reynolds Numbers: Effects of Orifice Size on Animal Jet Propulsion |
title_fullStr | Numerical Simulation of Self-Propelled Steady Jet Propulsion at Intermediate Reynolds Numbers: Effects of Orifice Size on Animal Jet Propulsion |
title_full_unstemmed | Numerical Simulation of Self-Propelled Steady Jet Propulsion at Intermediate Reynolds Numbers: Effects of Orifice Size on Animal Jet Propulsion |
title_short | Numerical Simulation of Self-Propelled Steady Jet Propulsion at Intermediate Reynolds Numbers: Effects of Orifice Size on Animal Jet Propulsion |
title_sort | numerical simulation of self propelled steady jet propulsion at intermediate reynolds numbers effects of orifice size on animal jet propulsion |
topic | animal jet propulsion jet orifice size performance index Froude propulsion efficiency quasi-propulsive efficiency intermediate Reynolds number |
url | https://www.mdpi.com/2311-5521/6/6/230 |
work_keys_str_mv | AT houshuojiang numericalsimulationofselfpropelledsteadyjetpropulsionatintermediatereynoldsnumberseffectsoforificesizeonanimaljetpropulsion |