Projects per year
Abstract
We present a procedure for using molecular dynamics (MD) simulations to provide essential fluid and interface properties for subsequent use in computational fluid dynamics (CFD) calculations of nanoscale fluid flows. The MD pre-simulations enable us to obtain an equation of state, constitutive relations, and boundary conditions for any given fluid/solid combination, in a form that can be conveniently implemented within an otherwise conventional Navier-Stokes solver. Our results demonstrate that these enhanced CFD simulations are then capable of providing good flow field results in a range of complex geometries at the nanoscale. Comparison for validation is with full-scale MD simulations here, but the computational cost of the enhanced CFD is negligible in comparison with the MD. Importantly, accurate predictions can be obtained in geometries that are more complex than the planar MD pre-simulation geometry that provides the nanoscale fluid properties. The robustness of the enhanced CFD is tested by application to water flow along a (15,15) carbon nanotube, and it is found that useful flow information can be obtained.
Original language | English |
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Pages (from-to) | 461-474 |
Number of pages | 14 |
Journal | Microfluidics and Nanofluidics |
Volume | 18 |
Issue number | 3 |
DOIs | |
Publication status | Published - Mar 2015 |
Keywords / Materials (for Non-textual outputs)
- Nanofluidics
- Computational fluid dynamics
- Molecular dynamics
- Hybrid methods
- Carbon nanotubes
- Expert system
- Boundary conditions
- Arbitrary geometries
- Water
- Flow
- Transport
- Liquids
- Sequential coupling
- Equation of state
Fingerprint
Dive into the research topics of 'Molecular dynamics pre-simulations for nanoscale computational fluid dynamics'. Together they form a unique fingerprint.Projects
- 2 Finished
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The First Open-Source Software for Non-Continuum Flows in Engineering
Reese, J. & Borg, M.
1/10/13 → 31/03/18
Project: Research
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Non-Equilibrium Fluid Dynamics for Micro/Nano Engineering Systems
Reese, J., Lockerby, D. A., Emerson, D. R. & Borg, M.
1/01/11 → 16/02/16
Project: Project from a former institution