A kinetic-theory based first order slip boundary condition for gas flow
From MaRDI portal
Publication:5303387
DOI10.1063/1.2754373zbMath1182.76691OpenAlexW2028609479WikidataQ63461166 ScholiaQ63461166MaRDI QIDQ5303387
Robert M. Crone, Gang Chen, Manuel Anaya-Dufresne, Sheng Shen
Publication date: 18 March 2010
Published in: Physics of Fluids (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1063/1.2754373
Related Items (8)
An efficient direct simulation Monte Carlo method for low Mach number noncontinuum gas flows based on the Bhatnagar–Gross–Krook model ⋮ Modified least square finite difference method for solving the gas film lubrication equation in the head/disk interface ⋮ Effects of rarefaction on the characteristics of micro gas journal bearings ⋮ A comprehensive review on micro- and nano-scale gas flow effects: slip-jump phenomena, Knudsen paradox, thermally-driven flows, and Knudsen pumps ⋮ A novel kinetic-based slip velocity boundary condition suitable for compressible gas flows in micro-/nanochannels ⋮ Velocity slip coefficients based on the hard-sphere Boltzmann equation ⋮ Thermo-mechanical aspects of thermal flying-height control sliders for hard disk drives ⋮ Asymptotic analysis of the Boltzmann–BGK equation for oscillatory flows
Cites Work
- Microflows and nanoflows. Fundamentals and simulation. Foreword by Chih-Ming Ho.
- Numerical comparison of Bhatnagar–Gross–Krook models with proper Prandtl number
- A generalized compressible Reynolds lubrication equation with bounded contact pressure
- Velocity slip in microscale cylindrical Couette flow: The Langmuir model
This page was built for publication: A kinetic-theory based first order slip boundary condition for gas flow