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Abstract
We present a new hybrid method for dilute gas flows that couples a continuum-fluid description to the direct simulation Monte Carlo (DSMC) technique. Instead of using a domain-decomposition framework, we adopt a heterogeneous approach with micro resolution that can capture non-equilibrium or non-continuum fluid behaviour both close to bounding walls and in the bulk. A continuum-fluid model is applied across the entire domain, while DSMC is applied in spatially-distributed micro regions. Using a field-wise coupling approach, each micro element provides a local correction to a continuum sub-region, the dimensions of which are identical to the micro element itself. Interpolating this local correction between the micro elements then produces a correction that can be applied over the entire continuum domain. Key advantages of this method include its suitability for flow problems with varying degrees of scale separation, and that the location of the micro elements is not restricted to the nodes of the computational mesh. Also, the size of the micro elements adapts dynamically with the local molecular mean free path. We demonstrate the method on heat transfer problems in dilute gas flows, where the coupling is performed through the computed heat fluxes. Our test case is micro Fourier flow over a range of rarefaction and temperature conditions: this case is simple enough to enable validation against a pure DSMC simulation, and our results show that the hybrid method can deal with both missing boundary and constitutive information.
Original language | English |
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Pages (from-to) | 114-125 |
Number of pages | 12 |
Journal | International Journal of Heat and Fluid Flow |
Volume | 50 |
Early online date | 8 Jul 2014 |
DOIs | |
Publication status | Published - Dec 2014 |
Keywords / Materials (for Non-textual outputs)
- heterogeneous multiscale simulation
- hybrid methods
- direct simulation Monte Carlo
- heat flux coupling
- rarefied gas dynamics
- heat transfer
- coupled methods
- multiscale fluid dynamics
- DSMC
Fingerprint
Dive into the research topics of 'Multiscale simulation of heat transfer in a rarefied gas'. 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. (Principal Investigator) & Borg, M. (Researcher)
1/10/13 → 31/03/18
Project: Research
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Non-Equilibrium Fluid Dynamics for Micro/Nano Engineering Systems
Reese, J. (Principal Investigator), Lockerby, D. A. (Co-investigator), Emerson, D. R. (Co-investigator) & Borg, M. (Researcher)
1/01/11 → 16/02/16
Project: Project from a former institution
Profiles
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Matthew Borg
- School of Engineering - Personal Chair of Molecular Thermofluids
Person: Academic: Research Active