OGS
LiquidFlowProcess.cpp
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1// SPDX-FileCopyrightText: Copyright (c) OpenGeoSys Community (opengeosys.org)
2// SPDX-License-Identifier: BSD-3-Clause
3
4#include "LiquidFlowProcess.h"
5
6#include <cassert>
7
15
16namespace ProcessLib
17{
18namespace LiquidFlow
19{
21 std::string name, MeshLib::Mesh& mesh,
22 std::unique_ptr<AbstractJacobianAssembler>&& jacobian_assembler,
23 std::vector<std::unique_ptr<ParameterLib::ParameterBase>> const& parameters,
24 unsigned const integration_order,
25 std::vector<std::vector<std::reference_wrapper<ProcessVariable>>>&&
26 process_variables,
27 LiquidFlowData&& process_data,
28 SecondaryVariableCollection&& secondary_variables,
29 std::unique_ptr<ProcessLib::SurfaceFluxData>&& surfaceflux,
30 bool const is_linear)
31 : Process(std::move(name), mesh, std::move(jacobian_assembler), parameters,
32 integration_order, std::move(process_variables),
33 std::move(secondary_variables)),
34 _process_data(std::move(process_data)),
35 _surfaceflux(std::move(surfaceflux)),
36 _is_linear(is_linear)
37{
38 DBUG("Create Liquid flow process.");
39
40 // For numerical Jacobian assembler
41 this->_jacobian_assembler->setNonDeformationComponentIDs(
42 {0} /* only one variable: pressure */);
43
44 std::string const residuum_name =
45 _process_data.is_volume_balance_equation_type ? "VolumetricFlowRate"
46 : "MassFlowRate";
48 mesh, residuum_name, MeshLib::MeshItemType::Node, 1);
49}
50
52 NumLib::LocalToGlobalIndexMap const& dof_table,
53 MeshLib::Mesh const& mesh,
54 unsigned const integration_order)
55{
56 int const mesh_space_dimension = _process_data.mesh_space_dimension;
58 mesh_space_dimension, mesh.getElements(), dof_table, _local_assemblers,
59 NumLib::IntegrationOrder{integration_order}, mesh.isAxiallySymmetric(),
61
62 _secondary_variables.addSecondaryVariable(
63 "darcy_velocity",
65 mesh_space_dimension, getExtrapolator(), _local_assemblers,
67}
68
70 const double t, double const dt, std::vector<GlobalVector*> const& x,
71 std::vector<GlobalVector*> const& x_prev, int const process_id,
73{
74 DBUG("Assemble LiquidFlowProcess.");
75
76 std::vector<NumLib::LocalToGlobalIndexMap const*> dof_table = {
78
79 // Call global assembler for each local assembly item.
82 getActiveElementIDs(), dof_table, t, dt, x, x_prev, process_id, &M, &K,
83 &b);
84
88
89 auto const residuum = computeResiduum(dt, *x[0], *x_prev[0], M, K, b);
90 transformVariableFromGlobalVector(residuum, 0 /*variable id*/,
92 *_hydraulic_flow, std::negate<double>());
93}
94
96 const double t, double const dt, std::vector<GlobalVector*> const& x,
97 std::vector<GlobalVector*> const& x_prev, int const process_id,
99{
100 DBUG("AssembleWithJacobian LiquidFlowProcess.");
101
102 std::vector<NumLib::LocalToGlobalIndexMap const*> dof_table = {
104
105 // Call global assembler for each local assembly item.
108 _local_assemblers, getActiveElementIDs(), dof_table, t, dt, x, x_prev,
109 process_id, &b, &Jac);
110}
111
113 double const t, double const dt, std::vector<GlobalVector*> const& x,
114 GlobalVector const& x_prev, int const process_id)
115{
116 DBUG("Compute the velocity for LiquidFlowProcess.");
117 std::vector<NumLib::LocalToGlobalIndexMap const*> dof_tables;
118 dof_tables.reserve(x.size());
119 std::generate_n(std::back_inserter(dof_tables), x.size(),
120 [&]() { return _local_to_global_index_map.get(); });
121
124 _local_assemblers, getActiveElementIDs(), dof_tables, t, dt, x, x_prev,
125 process_id);
126}
127
129 std::size_t const element_id,
130 MathLib::Point3d const& p,
131 double const t,
132 std::vector<GlobalVector*> const& x) const
133{
134 // fetch local_x from primary variable
135 std::vector<GlobalIndexType> indices_cache;
136 auto const r_c_indices = NumLib::getRowColumnIndices(
137 element_id, *_local_to_global_index_map, indices_cache);
138 constexpr int process_id = 0; // monolithic scheme.
139 std::vector<double> local_x(x[process_id]->get(r_c_indices.rows));
140
141 return _local_assemblers[element_id]->getFlux(p, t, local_x);
142}
143
144// this is almost a copy of the implementation in the GroundwaterFlow
146 std::vector<GlobalVector*> const& x,
147 std::vector<GlobalVector*> const& /*x_prev*/,
148 const double t,
149 const double /*dt*/,
150 int const process_id)
151{
152 if (!_surfaceflux) // computing the surfaceflux is optional
153 {
154 return;
155 }
156
157 _surfaceflux->integrate(x, t, *this, process_id, _integration_order, _mesh,
159}
160
161} // namespace LiquidFlow
162} // namespace ProcessLib
MathLib::EigenMatrix GlobalMatrix
MathLib::EigenVector GlobalVector
void DBUG(fmt::format_string< Args... > fmt, Args &&... args)
Definition Logging.h:22
bool isAxiallySymmetric() const
Definition Mesh.h:130
std::vector< Element * > const & getElements() const
Get the element-vector for the mesh.
Definition Mesh.h:101
virtual std::vector< double > const & getIntPtDarcyVelocity(const double t, std::vector< GlobalVector * > const &x, std::vector< NumLib::LocalToGlobalIndexMap const * > const &dof_tables, std::vector< double > &cache) const =0
Eigen::Vector3d getFlux(std::size_t const element_id, MathLib::Point3d const &p, double const t, std::vector< GlobalVector * > const &x) const override
void assembleWithJacobianConcreteProcess(const double t, double const dt, std::vector< GlobalVector * > const &x, std::vector< GlobalVector * > const &x_prev, int const process_id, GlobalVector &b, GlobalMatrix &Jac) override
void postTimestepConcreteProcess(std::vector< GlobalVector * > const &x, std::vector< GlobalVector * > const &x_prev, const double t, const double dt, int const process_id) override
std::vector< std::unique_ptr< LiquidFlowLocalAssemblerInterface > > _local_assemblers
void computeSecondaryVariableConcrete(double const t, double const dt, std::vector< GlobalVector * > const &x, GlobalVector const &x_prev, int const process_id) override
void initializeConcreteProcess(NumLib::LocalToGlobalIndexMap const &dof_table, MeshLib::Mesh const &mesh, unsigned const integration_order) override
Process specific initialization called by initialize().
std::unique_ptr< ProcessLib::SurfaceFluxData > _surfaceflux
LiquidFlowProcess(std::string name, MeshLib::Mesh &mesh, std::unique_ptr< AbstractJacobianAssembler > &&jacobian_assembler, std::vector< std::unique_ptr< ParameterLib::ParameterBase > > const &parameters, unsigned const integration_order, std::vector< std::vector< std::reference_wrapper< ProcessVariable > > > &&process_variables, LiquidFlowData &&process_data, SecondaryVariableCollection &&secondary_variables, std::unique_ptr< ProcessLib::SurfaceFluxData > &&surfaceflux, bool const is_linear)
MeshLib::PropertyVector< double > * _hydraulic_flow
void assembleConcreteProcess(const double t, double const dt, std::vector< GlobalVector * > const &x, std::vector< GlobalVector * > const &x_prev, int const process_id, GlobalMatrix &M, GlobalMatrix &K, GlobalVector &b) override
virtual void computeSecondaryVariable(std::size_t const mesh_item_id, std::vector< NumLib::LocalToGlobalIndexMap const * > const &dof_tables, double const t, double const dt, std::vector< GlobalVector * > const &x, GlobalVector const &x_prev, int const process_id)
std::string const name
Definition Process.h:361
Process(std::string name_, MeshLib::Mesh &mesh, std::unique_ptr< AbstractJacobianAssembler > &&jacobian_assembler, std::vector< std::unique_ptr< ParameterLib::ParameterBase > > const &parameters, unsigned const integration_order, std::vector< std::vector< std::reference_wrapper< ProcessVariable > > > &&process_variables, SecondaryVariableCollection &&secondary_variables, const bool use_monolithic_scheme=true)
Definition Process.cpp:37
MeshLib::Mesh & _mesh
Definition Process.h:364
std::vector< std::size_t > const & getActiveElementIDs() const
Definition Process.h:160
SecondaryVariableCollection _secondary_variables
Definition Process.h:369
VectorMatrixAssembler _global_assembler
Definition Process.h:376
unsigned const _integration_order
Definition Process.h:383
std::unique_ptr< NumLib::LocalToGlobalIndexMap > _local_to_global_index_map
Definition Process.h:367
std::unique_ptr< ProcessLib::AbstractJacobianAssembler > _jacobian_assembler
Definition Process.h:375
NumLib::Extrapolator & getExtrapolator() const
Definition Process.h:201
Handles configuration of several secondary variables from the project file.
void assemble(std::size_t const mesh_item_id, LocalAssemblerInterface &local_assembler, std::vector< NumLib::LocalToGlobalIndexMap const * > const &dof_tables, double const t, double const dt, std::vector< GlobalVector * > const &x, std::vector< GlobalVector * > const &x_prev, int const process_id, GlobalMatrix *M, GlobalMatrix *K, GlobalVector *b)
void assembleWithJacobian(std::size_t const mesh_item_id, LocalAssemblerInterface &local_assembler, std::vector< NumLib::LocalToGlobalIndexMap const * > const &dof_tables, const double t, double const dt, std::vector< GlobalVector * > const &x, std::vector< GlobalVector * > const &x_prev, int const process_id, GlobalVector *b, GlobalMatrix *Jac)
void finalizeVectorAssembly(VEC_T &)
General function to finalize the vector assembly.
bool finalizeMatrixAssembly(MAT_T &)
PropertyVector< T > * getOrCreateMeshProperty(Mesh &mesh, std::string const &property_name, MeshItemType const item_type, int const number_of_components)
NumLib::LocalToGlobalIndexMap::RowColumnIndices getRowColumnIndices(std::size_t const id, NumLib::LocalToGlobalIndexMap const &dof_table, std::vector< GlobalIndexType > &indices)
void createLocalAssemblers(std::vector< MeshLib::Element * > const &mesh_elements, NumLib::LocalToGlobalIndexMap const &dof_table, std::vector< std::unique_ptr< LocalAssemblerInterface > > &local_assemblers, ProviderOrOrder const &provider_or_order, ExtraCtorArgs &&... extra_ctor_args)
GlobalVector computeResiduum(double const dt, GlobalVector const &x, GlobalVector const &x_prev, GlobalMatrix const &M, GlobalMatrix const &K, GlobalVector const &b)
SecondaryVariableFunctions makeExtrapolator(const unsigned num_components, NumLib::Extrapolator &extrapolator, LocalAssemblerCollection const &local_assemblers, typename NumLib::ExtrapolatableLocalAssemblerCollection< LocalAssemblerCollection >::IntegrationPointValuesMethod integration_point_values_method)
static void executeSelectedMemberOnDereferenced(Method method, Container const &container, std::vector< std::size_t > const &active_container_ids, Args &&... args)
static void executeSelectedMemberDereferenced(Object &object, Method method, Container const &container, std::vector< std::size_t > const &active_container_ids, Args &&... args)