3.2-git
DUNE for Multi-{Phase, Component, Scale, Physics, ...} flow and transport in porous media
box/effectivestresslaw.hh
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25#ifndef DUMUX_DISCRETIZATION_BOX_EFFECTIVE_STRESS_LAW_HH
26#define DUMUX_DISCRETIZATION_BOX_EFFECTIVE_STRESS_LAW_HH
27
30
31namespace Dumux {
32
40template<class StressType, class GridGeometry>
41class EffectiveStressLaw<StressType, GridGeometry, DiscretizationMethod::box>
42{
43 using FVElementGeometry = typename GridGeometry::LocalView;
44 using SubControlVolumeFace = typename FVElementGeometry::SubControlVolumeFace;
45
46 using GridView = typename GridGeometry::GridView;
47 using Element = typename GridView::template Codim<0>::Entity;
48
49 static constexpr int dim = GridView::dimension;
50 static constexpr int dimWorld = GridView::dimensionworld;
51 static_assert(dim == dimWorld, "EffectiveStressLaw not implemented for network/surface grids");
52 static_assert(StressType::discMethod == DiscretizationMethod::box, "The provided stress type must be specialized for the box scheme");
53
54public:
56 using Scalar = typename StressType::Scalar;
58 using StressTensor = typename StressType::StressTensor;
60 using ForceVector = typename StressType::ForceVector;
62 static constexpr DiscretizationMethod discMethod = DiscretizationMethod::box;
63
65 template<class Problem, class ElementVolumeVariables, class ElementFluxVarsCache>
66 static ForceVector force(const Problem& problem,
67 const Element& element,
68 const FVElementGeometry& fvGeometry,
69 const ElementVolumeVariables& elemVolVars,
70 const SubControlVolumeFace& scvf,
71 const ElementFluxVarsCache& elemFluxVarCache)
72 {
73 const auto sigma = stressTensor(problem, element, fvGeometry, elemVolVars, elemFluxVarCache[scvf]);
74
75 ForceVector scvfForce(0.0);
76 sigma.mv(scvf.unitOuterNormal(), scvfForce);
77 scvfForce *= scvf.area();
78
79 return scvfForce;
80 }
81
83 template<class Problem, class ElementVolumeVariables, class FluxVarsCache>
84 static StressTensor stressTensor(const Problem& problem,
85 const Element& element,
86 const FVElementGeometry& fvGeometry,
87 const ElementVolumeVariables& elemVolVars,
88 const FluxVarsCache& fluxVarsCache)
89 {
90 // compute the purely mechanical stress
91 auto sigma = StressType::stressTensor(problem, element, fvGeometry, elemVolVars, fluxVarsCache);
92
93 // obtain biot coefficient and effective pore pressure
94 const auto biotCoeff = problem.spatialParams().biotCoefficient(element, fvGeometry, elemVolVars, fluxVarsCache);
95 const auto effPress = problem.effectivePorePressure(element, fvGeometry, elemVolVars, fluxVarsCache);
96
97 // subtract pore pressure from the diagonal entries
98 const auto bcp = biotCoeff*effPress;
99 for (int i = 0; i < dim; ++i)
100 sigma[i][i] -= bcp;
101
102 return sigma;
103 }
104
106 template<class Problem, class ElementVolumeVariables, class FluxVarsCache>
107 static StressTensor effectiveStressTensor(const Problem& problem,
108 const Element& element,
109 const FVElementGeometry& fvGeometry,
110 const ElementVolumeVariables& elemVolVars,
111 const FluxVarsCache& fluxVarsCache)
112 { return StressType::stressTensor(problem, element, fvGeometry, elemVolVars, fluxVarsCache); }
113};
114
115} // end namespace Dumux
116
117#endif
The available discretization methods in Dumux.
The effective stress law specialized for different discretization schemes. This computes the stress t...
DiscretizationMethod
The available discretization methods in Dumux.
Definition: method.hh:37
Definition: adapt.hh:29
typename StressType::ForceVector ForceVector
export the type used for force vectors
Definition: box/effectivestresslaw.hh:60
typename StressType::StressTensor StressTensor
export the type used for the stress tensor
Definition: box/effectivestresslaw.hh:58
typename StressType::Scalar Scalar
export the type used for scalar values
Definition: box/effectivestresslaw.hh:56
static StressTensor effectiveStressTensor(const Problem &problem, const Element &element, const FVElementGeometry &fvGeometry, const ElementVolumeVariables &elemVolVars, const FluxVarsCache &fluxVarsCache)
assembles the (effective) stress tensor of the solid skeleton at a given integration point
Definition: box/effectivestresslaw.hh:107
static ForceVector force(const Problem &problem, const Element &element, const FVElementGeometry &fvGeometry, const ElementVolumeVariables &elemVolVars, const SubControlVolumeFace &scvf, const ElementFluxVarsCache &elemFluxVarCache)
computes the force acting on a sub-control volume face
Definition: box/effectivestresslaw.hh:66
static StressTensor stressTensor(const Problem &problem, const Element &element, const FVElementGeometry &fvGeometry, const ElementVolumeVariables &elemVolVars, const FluxVarsCache &fluxVarsCache)
assembles the (total) stress tensor of the porous medium at a given integration point
Definition: box/effectivestresslaw.hh:84
This computes the stress tensor and surface forces resulting from poro-mechanical deformation.
Definition: effectivestresslaw.hh:39