template<class GridGeometry, class Scalar>
class Dumux::MaxwellStefanTestSpatialParams< GridGeometry, Scalar >
Definition of the spatial parameters for the MaxwellStefan problem.
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| | MaxwellStefanTestSpatialParams (std::shared_ptr< const GridGeometry > gridGeometry) |
| Scalar | porosityAtPos (const GlobalPosition &globalPos) const |
| | Defines the porosity \(\mathrm{[-]}\).
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| template<class ElementSolution> |
| Scalar | dispersivity (const Element &element, const SubControlVolume &scv, const ElementSolution &elemSol) const |
| | Defines the dispersivity.
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| Scalar | fluidDensity (const Element &element, const SubControlVolume &scv) const |
| | Fluid density.
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| Scalar | fluidMolarMass (const Element &element, const SubControlVolume &scv) const |
| | Fluid molar mass.
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| GlobalPosition | velocity (const SubControlVolumeFace &scvf) const |
| | Velocity field.
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| template<class ElementVolumeVariables> |
| Scalar | volumeFlux (const Element &element, const FVElementGeometry &fvGeometry, const ElementVolumeVariables &elemVolVars, const SubControlVolumeFace &scvf) const |
| | Velocity field.
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| const GlobalPosition & | gravity (const GlobalPosition &pos) const |
| | Returns the acceleration due to gravity \(\mathrm{[m/s^2]}\).
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| Scalar | harmonicMean (const Scalar T1, const Scalar T2, const GlobalPosition &normal) const |
| | Harmonic average of a discontinuous scalar field at discontinuity interface (for compatibility reasons with the function below).
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| DimWorldMatrix | harmonicMean (const DimWorldMatrix &T1, const DimWorldMatrix &T2, const GlobalPosition &normal) const |
| | Harmonic average of a discontinuous tensorial field at discontinuity interface.
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| decltype(auto) | permeability (const Element &element, const SubControlVolume &scv, const ElementSolution &elemSol) const |
| | Function for defining the (intrinsic) permeability \([m^2]\).
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| Scalar | porosity (const Element &element, const SubControlVolume &scv, const ElementSolution &elemSol) const |
| | Function for defining the porosity. That is possibly solution dependent.
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| Scalar | inertVolumeFraction (const Element &element, const SubControlVolume &scv, const ElementSolution &elemSol, int compIdx) const |
| | Function for defining the solid volume fraction. That is possibly solution dependent.
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| Scalar | inertVolumeFraction (const Element &element, const SubControlVolume &scv, const ElementSolution &elemSol, int compIdx) const |
| Scalar | inertVolumeFraction (const Element &element, const SubControlVolume &scv, const ElementSolution &elemSol, int compIdx) const |
| Scalar | beaversJosephCoeffAtPos (const GlobalPosition &globalPos) const |
| | Function for defining the Beavers-Joseph coefficient for multidomain problems \(\mathrm{[-]}\).
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| Scalar | forchCoeff (const SubControlVolumeFace &scvf) const |
| | Apply the Forchheimer coefficient for inertial forces calculation.
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| const GridGeometry & | fvGridGeometry () const |
| | The finite volume grid geometry.
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| const GridGeometry & | gridGeometry () const |
| | The finite volume grid geometry.
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Returns the acceleration due to gravity \(\mathrm{[m/s^2]}\).
The default behaviour is a constant gravity vector; if the Problem.EnableGravity parameter is true, \(\boldsymbol{g} = ( 0,\dots,\ -9.81)^T \), else \(\boldsymbol{g} = ( 0,\dots, 0)^T \).
- Parameters
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| pos | the spatial position at which to evaulate the gravity vector |