TY - JOUR
T1 - Flow reduction of hydrocarbon liquid in silica nanochannel
T2 - Insight from many-body dissipative particle dynamics simulations
AU - Rao, Qi
AU - Xia, Yidong
AU - Li, Jiaoyan
AU - Deo, Milind
AU - Li, Zhen
N1 - Funding Information:
The software used in this work was supported through the Idaho National Laboratory (INL) Laboratory Directed Research & Development (LDRD) Program under the U.S. Department of Energy Idaho Operations Office Contract DE-AC07-05ID14517.
Funding Information:
The research is fully supported by EFRC-MUSE, an Energy Frontier Research Center funded by the U.S. Department of Energy, Office of Science, Basic Energy Sciences under Award No. DE-SC0019285.
Funding Information:
The research used resources in the High Performance Computing Center at INL, which is supported by the Office of Nuclear Energy of the U.S. Department of Energy and the Nuclear Science User Facilities under Contract No. DE-AC07-05ID14517.
Publisher Copyright:
© 2021 Elsevier B.V.
PY - 2021/12/15
Y1 - 2021/12/15
N2 - A modified many-body dissipative particle dynamics (mDPD) model recently developed for realistic mesoscale multiphase flow simulations is rigorously parameterized, calibrated, and applied for elucidating the flow mechanisms of hydrocarbon liquids (i.e., heptane in this work) in amorphous silica cylindrical nanochannels with inner diameters ranging from 4.5 to 22.5 nm. The simulation results suggest the presence of a strong threshold of pressure gradient under which heptane cannot be driven to flow. The threshold for the 4.5 nm diameter pore is 10 to 100 times as high as for the 9–22.5 nm diameter pore, highlighting a remarkable nanoconfinement effect. Fluid viscosity is found to exhibit a shear-thinning phenomenon with intensity to weaken with increasing channel diameter — a phenomenon not observed in nanochannel flow of liquid water and gas in literature. Most remarkably, the radial profiles of average longitudinal flow velocity fitted by the modified Hagen-Poiseuille equation showed a negative slip length (−2.5% to −0.5% relative to the diameter) and a reduction of apparent permeability by 16% to 23%. This finding suggests silica nanochannels tend to deter hydrocarbon flow, a phenomenon that is opposed to the flow enhancement reported in most of the prior nanochannel flow studies in literature.
AB - A modified many-body dissipative particle dynamics (mDPD) model recently developed for realistic mesoscale multiphase flow simulations is rigorously parameterized, calibrated, and applied for elucidating the flow mechanisms of hydrocarbon liquids (i.e., heptane in this work) in amorphous silica cylindrical nanochannels with inner diameters ranging from 4.5 to 22.5 nm. The simulation results suggest the presence of a strong threshold of pressure gradient under which heptane cannot be driven to flow. The threshold for the 4.5 nm diameter pore is 10 to 100 times as high as for the 9–22.5 nm diameter pore, highlighting a remarkable nanoconfinement effect. Fluid viscosity is found to exhibit a shear-thinning phenomenon with intensity to weaken with increasing channel diameter — a phenomenon not observed in nanochannel flow of liquid water and gas in literature. Most remarkably, the radial profiles of average longitudinal flow velocity fitted by the modified Hagen-Poiseuille equation showed a negative slip length (−2.5% to −0.5% relative to the diameter) and a reduction of apparent permeability by 16% to 23%. This finding suggests silica nanochannels tend to deter hydrocarbon flow, a phenomenon that is opposed to the flow enhancement reported in most of the prior nanochannel flow studies in literature.
KW - Apparent permeability
KW - Heptane
KW - Nanoconfinement
KW - Shear thinning
KW - Slip length
UR - https://www.scopus.com/pages/publications/85116715146
UR - https://www.mendeley.com/catalogue/9608480b-315d-3815-8970-ba19cb11b61c/
U2 - 10.1016/j.molliq.2021.117673
DO - 10.1016/j.molliq.2021.117673
M3 - Article
AN - SCOPUS:85116715146
SN - 0167-7322
VL - 344
JO - Journal of Molecular Liquids
JF - Journal of Molecular Liquids
M1 - 117673
ER -