Laser-Induced Motion of a Nanofluid in a Micro-Channel
Since a photon carries both energy and momentum, when it interacts with a particle, photon-particle energy and momentum transfer occur, resulting in mechanical forces acting on the particle. In this paper we report our theoretical study on the use of a laser beam to manipulate and control the flow o...
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doaj-3eeaeda2c06249fbbbd68c74084bdb692020-11-24T21:55:33ZengMDPI AGFluids2311-55212016-10-01143510.3390/fluids1040035fluids1040035Laser-Induced Motion of a Nanofluid in a Micro-ChannelTran X. Phuoc0Mehrdad Massoudi1Ping Wang2National Energy Technology Laboratory, U.S. Department of Energy, P.O. Box 10940, Pittsburgh, PA 15236, USANational Energy Technology Laboratory, U.S. Department of Energy, P.O. Box 10940, Pittsburgh, PA 15236, USANational Energy Technology Laboratory, U.S. Department of Energy, P.O. Box 10940, Pittsburgh, PA 15236, USASince a photon carries both energy and momentum, when it interacts with a particle, photon-particle energy and momentum transfer occur, resulting in mechanical forces acting on the particle. In this paper we report our theoretical study on the use of a laser beam to manipulate and control the flow of nanofluids in a micro-channel. We calculate the velocity induced by a laser beam for TiO2, Fe2O3, Al2O3 MgO, and SiO2 nanoparticles with water as the base fluid. The particle diameter is 50 nm and the laser beam is a 4 W continuous beam of 6 mm diameter and 532 nm wavelength. The results indicate that, as the particle moves, a significant volume of the surrounding water (up to about 8 particle diameters away from the particle surface) is disturbed and dragged along with the moving particle. The results also show the effect of the particle refractive index on the particle velocity and the induced volume flow rate. The velocity and the volume flowrate induced by the TiO2 nanoparticle (refractive index n = 2.82) are about 0.552 mm/s and 9.86 fL, respectively, while those induced by SiO2 (n = 1.46) are only about 7.569 μm/s and 0.135, respectively.http://www.mdpi.com/2311-5521/1/4/35nanofluidmicrochannelphoton pressurelaser power |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Tran X. Phuoc Mehrdad Massoudi Ping Wang |
spellingShingle |
Tran X. Phuoc Mehrdad Massoudi Ping Wang Laser-Induced Motion of a Nanofluid in a Micro-Channel Fluids nanofluid microchannel photon pressure laser power |
author_facet |
Tran X. Phuoc Mehrdad Massoudi Ping Wang |
author_sort |
Tran X. Phuoc |
title |
Laser-Induced Motion of a Nanofluid in a Micro-Channel |
title_short |
Laser-Induced Motion of a Nanofluid in a Micro-Channel |
title_full |
Laser-Induced Motion of a Nanofluid in a Micro-Channel |
title_fullStr |
Laser-Induced Motion of a Nanofluid in a Micro-Channel |
title_full_unstemmed |
Laser-Induced Motion of a Nanofluid in a Micro-Channel |
title_sort |
laser-induced motion of a nanofluid in a micro-channel |
publisher |
MDPI AG |
series |
Fluids |
issn |
2311-5521 |
publishDate |
2016-10-01 |
description |
Since a photon carries both energy and momentum, when it interacts with a particle, photon-particle energy and momentum transfer occur, resulting in mechanical forces acting on the particle. In this paper we report our theoretical study on the use of a laser beam to manipulate and control the flow of nanofluids in a micro-channel. We calculate the velocity induced by a laser beam for TiO2, Fe2O3, Al2O3 MgO, and SiO2 nanoparticles with water as the base fluid. The particle diameter is 50 nm and the laser beam is a 4 W continuous beam of 6 mm diameter and 532 nm wavelength. The results indicate that, as the particle moves, a significant volume of the surrounding water (up to about 8 particle diameters away from the particle surface) is disturbed and dragged along with the moving particle. The results also show the effect of the particle refractive index on the particle velocity and the induced volume flow rate. The velocity and the volume flowrate induced by the TiO2 nanoparticle (refractive index n = 2.82) are about 0.552 mm/s and 9.86 fL, respectively, while those induced by SiO2 (n = 1.46) are only about 7.569 μm/s and 0.135, respectively. |
topic |
nanofluid microchannel photon pressure laser power |
url |
http://www.mdpi.com/2311-5521/1/4/35 |
work_keys_str_mv |
AT tranxphuoc laserinducedmotionofananofluidinamicrochannel AT mehrdadmassoudi laserinducedmotionofananofluidinamicrochannel AT pingwang laserinducedmotionofananofluidinamicrochannel |
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1725861898485760000 |