Projects per year
Abstract
We evaluate the accuracy of the McCormack model by comparing its solutions for Couette and Fourier flows of binary gaseous mixtures with results from the linearized Boltzmann equation. Numerical simulations of Ne-Ar and He-Xe gas mixtures are carried out from slip to near free-molecular flow regimes for different values of the molar concentration. Our numerical results show that while there are only small differences in the shear stress in Couette flow and the heat flux in Fourier flow, calculated from the two kinetic equations, differences in other macroscopic quantities can be very large, especially in free-molecular flow regime. Moreover, the difference between results from the two models increases with the molecular mass ratio and the molar concentration of the heavier species. Finally, the applicability of the McCormack model, which was derived for linearized flows only, is investigated by comparing its solutions with those from the Boltzmann equation for Fourier flow with large wall-temperature ratios.
Original language | English |
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Pages (from-to) | 29-41 |
Journal | International journal of heat and mass transfer |
Volume | 96 |
Early online date | 21 Jan 2016 |
DOIs | |
Publication status | Published - 2016 |
Keywords / Materials (for Non-textual outputs)
- kinetic theory
- rarefied gas dynamics
- Boltzmann equation
- micro gas flows
- Knudsen number
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Dive into the research topics of 'Comparative study of the Boltzmann and McCormack equations for Couette and Fourier flows of binary gaseous mixtures'. Together they form a unique fingerprint.Projects
- 4 Finished
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Fluid-Net: Edinburgh Fluid Dynamics Group
Viola, I. M., Reese, J., Hoskins, P., Vanneste, J., Leimkuhler, B., Berera, A., Morozov, A., Haszeldine, S., Tett, S. & Bethune, I.
30/06/14 → 30/06/15
Project: University Awarded Project Funding
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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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Multiscale Simulation of Micro and Nano Gas Flows
Reese, J. & Zhang, Y.
1/08/11 → 31/01/15
Project: Project from a former institution