Due to the failure of the continuum hypothesis for higher Knudsen numbers, rarefied gases and microflows of gases are particularly difficult to model. Macroscopic transport equations compete with particle methods, such as the Direct Simulation Monte Carlo method (DSMC), to find accurate solutions in the rarefied gas regime. Due to growing interest in micro flow applications, such as micro fuel cells, it is important to model and understand evaporation in this flow regime. Here, evaporation boundary conditions for the R13 equations, which are macroscopic transport equations with applicability in the rarefied gas regime, are derived. The new equations utilize Onsager relations, linear relations between thermodynamic fluxes and forces, with co...
Determining physically admissible boundary conditions for higher moments in an extended continuum mo...
Fundamental solutions (Green’s functions) are derived for the regularised 13-moment system (R13) of ...
Abstract The Schrage equation is commonly used in thermofluid engineering to model h...
Due to the failure of the continuum hypothesis for higher Knudsen numbers, rarefied gases and microf...
The regularized 13 moment (R13) equations are a macroscopic model for the description of rarefied ga...
The regularized 13 moment (R13) equations are a macroscopic model for the description of rarefied ga...
The regularized 13 moment (R13) equations are a macroscopic model for the description of rarefied ga...
The regularized 13 moment (R13) equations are a macroscopic model for the description of rarefied ga...
The regularized 13 moment (R13) equations are a macroscopic model for the description of rarefied ga...
The regularized 13 moment equations (R13) are a macroscopic model for the description of rarefied ga...
The regularized 13 moment equations (R13) are a macroscopic model for the description of rarefied ga...
The regularized 13 moment equations (R13) are a macroscopic model for the description of rarefied ga...
The regularized 13 moment equations (R13) are a macroscopic model for the description of rarefied ga...
The regularized 13 moment equations (R13) are a macroscopic model for the description of rarefied ga...
The heat and mass transfer in a rarefied gas between its two parallel condensed phases is considered...
Determining physically admissible boundary conditions for higher moments in an extended continuum mo...
Fundamental solutions (Green’s functions) are derived for the regularised 13-moment system (R13) of ...
Abstract The Schrage equation is commonly used in thermofluid engineering to model h...
Due to the failure of the continuum hypothesis for higher Knudsen numbers, rarefied gases and microf...
The regularized 13 moment (R13) equations are a macroscopic model for the description of rarefied ga...
The regularized 13 moment (R13) equations are a macroscopic model for the description of rarefied ga...
The regularized 13 moment (R13) equations are a macroscopic model for the description of rarefied ga...
The regularized 13 moment (R13) equations are a macroscopic model for the description of rarefied ga...
The regularized 13 moment (R13) equations are a macroscopic model for the description of rarefied ga...
The regularized 13 moment equations (R13) are a macroscopic model for the description of rarefied ga...
The regularized 13 moment equations (R13) are a macroscopic model for the description of rarefied ga...
The regularized 13 moment equations (R13) are a macroscopic model for the description of rarefied ga...
The regularized 13 moment equations (R13) are a macroscopic model for the description of rarefied ga...
The regularized 13 moment equations (R13) are a macroscopic model for the description of rarefied ga...
The heat and mass transfer in a rarefied gas between its two parallel condensed phases is considered...
Determining physically admissible boundary conditions for higher moments in an extended continuum mo...
Fundamental solutions (Green’s functions) are derived for the regularised 13-moment system (R13) of ...
Abstract The Schrage equation is commonly used in thermofluid engineering to model h...