Fullerene-water nanofluid confined in graphene nanochannel

The flow behaviors and boundary slip of the fullerene-water nanofluids (NFs) confined in graphene nanochannels are first investigated by using classical molecular dynamics simulations. The influences of the shear rate in Couette model, the driving force in Poiseuille model, the volume fraction, and...

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Main Authors: Zhen Liu, Zhong-Qiang Zhang
Format: Article
Language:English
Published: AIP Publishing LLC 2017-12-01
Series:AIP Advances
Online Access:http://dx.doi.org/10.1063/1.5004438
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spelling doaj-60eccf84e6a74291880c967e44bfd51b2020-11-24T23:10:45ZengAIP Publishing LLCAIP Advances2158-32262017-12-01712125208125208-910.1063/1.5004438025712ADVFullerene-water nanofluid confined in graphene nanochannelZhen Liu0Zhong-Qiang Zhang1School of Naval Architecture and Ocean Engineering, Jiangsu University of Science and Technology, Zhenjiang 212003, P.R. ChinaMicro/Nano Science and Technology Center, Jiangsu University, Zhenjiang 212013, P.R. ChinaThe flow behaviors and boundary slip of the fullerene-water nanofluids (NFs) confined in graphene nanochannels are first investigated by using classical molecular dynamics simulations. The influences of the shear rate in Couette model, the driving force in Poiseuille model, the volume fraction, and the charge magnitude on the motion behaviors and the boundary slip are explored with considering the dynamics and the accumulation of the fullerene within the NFs. The results show that the boundary slip velocity increases almost linearly with the shear rate below a threshold of the shear rate while it increases sharply above the threshold. The relatively large driving force in Poiseuille model and the large shear rate in Couette model can reduce the accumulation of the fullerenes. The increase in the volume fraction of the fullerene in NFs can enhance the shear viscosity, and interestingly, it can increase the boundary slip velocity of the NFs in graphene channels. As the charge magnitude of the graphene channel increases, the boundary slip of fullerene NFs first increases to a threshold and then decreases slightly. The findings may be helpful to the design and fabrication of the low dimensional carbon materials-based nano-apparatus.http://dx.doi.org/10.1063/1.5004438
collection DOAJ
language English
format Article
sources DOAJ
author Zhen Liu
Zhong-Qiang Zhang
spellingShingle Zhen Liu
Zhong-Qiang Zhang
Fullerene-water nanofluid confined in graphene nanochannel
AIP Advances
author_facet Zhen Liu
Zhong-Qiang Zhang
author_sort Zhen Liu
title Fullerene-water nanofluid confined in graphene nanochannel
title_short Fullerene-water nanofluid confined in graphene nanochannel
title_full Fullerene-water nanofluid confined in graphene nanochannel
title_fullStr Fullerene-water nanofluid confined in graphene nanochannel
title_full_unstemmed Fullerene-water nanofluid confined in graphene nanochannel
title_sort fullerene-water nanofluid confined in graphene nanochannel
publisher AIP Publishing LLC
series AIP Advances
issn 2158-3226
publishDate 2017-12-01
description The flow behaviors and boundary slip of the fullerene-water nanofluids (NFs) confined in graphene nanochannels are first investigated by using classical molecular dynamics simulations. The influences of the shear rate in Couette model, the driving force in Poiseuille model, the volume fraction, and the charge magnitude on the motion behaviors and the boundary slip are explored with considering the dynamics and the accumulation of the fullerene within the NFs. The results show that the boundary slip velocity increases almost linearly with the shear rate below a threshold of the shear rate while it increases sharply above the threshold. The relatively large driving force in Poiseuille model and the large shear rate in Couette model can reduce the accumulation of the fullerenes. The increase in the volume fraction of the fullerene in NFs can enhance the shear viscosity, and interestingly, it can increase the boundary slip velocity of the NFs in graphene channels. As the charge magnitude of the graphene channel increases, the boundary slip of fullerene NFs first increases to a threshold and then decreases slightly. The findings may be helpful to the design and fabrication of the low dimensional carbon materials-based nano-apparatus.
url http://dx.doi.org/10.1063/1.5004438
work_keys_str_mv AT zhenliu fullerenewaternanofluidconfinedingraphenenanochannel
AT zhongqiangzhang fullerenewaternanofluidconfinedingraphenenanochannel
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