OpenLB 1.7
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Public Types | Public Member Functions | List of all members
olb::ForcedEntropicEqDynamics< T, DESCRIPTOR, MOMENTA > Class Template Reference

Implementation of the forced entropic collision step. More...

#include <entropicDynamics.h>

+ Inheritance diagram for olb::ForcedEntropicEqDynamics< T, DESCRIPTOR, MOMENTA >:
+ Collaboration diagram for olb::ForcedEntropicEqDynamics< T, DESCRIPTOR, MOMENTA >:

Public Types

template<typename M >
using exchange_momenta = ForcedEntropicEqDynamics<T,DESCRIPTOR,M>
 
- Public Types inherited from olb::dynamics::CustomCollision< T, DESCRIPTOR, MOMENTA >
using value_t = T
 
using descriptor_t = DESCRIPTOR
 
using MomentaF = typename MOMENTA::template type<DESCRIPTOR>
 
- Public Types inherited from olb::Dynamics< T, DESCRIPTOR >
using value_t = T
 
using descriptor_t = DESCRIPTOR
 

Public Member Functions

 ForcedEntropicEqDynamics (T omega_)
 Constructor.
 
virtual T computeEquilibrium (int iPop, T rho, const T u[DESCRIPTOR::d], T uSqr) const
 Compute equilibrium distribution function.
 
virtual CellStatistic< T > collide (Cell< T, DESCRIPTOR > &cell)
 Collision step.
 
virtual T getOmega () const
 Get local relaxation parameter of the dynamics.
 
virtual void setOmega (T omega_)
 Set local relaxation parameter of the dynamics.
 
- Public Member Functions inherited from olb::legacy::BasicDynamics< T, DESCRIPTOR, MOMENTA >
computeEquilibrium (int iPop, T rho, const T u[DESCRIPTOR::d]) const override
 Return iPop equilibrium for given first and second momenta.
 
std::type_index id () override
 Expose unique type-identifier for RTTI.
 
AbstractParameters< T, DESCRIPTOR > & getParameters (BlockLattice< T, DESCRIPTOR > &block) override
 Parameters access for legacy post processors.
 
- Public Member Functions inherited from olb::dynamics::CustomCollision< T, DESCRIPTOR, MOMENTA >
void initialize (Cell< T, DESCRIPTOR > &cell) override
 Initialize dynamics-specific data for cell.
 
computeRho (ConstCell< T, DESCRIPTOR > &cell) const override
 Compute particle density.
 
void computeU (ConstCell< T, DESCRIPTOR > &cell, T u[DESCRIPTOR::d]) const override
 Compute fluid velocity.
 
void computeJ (ConstCell< T, DESCRIPTOR > &cell, T j[DESCRIPTOR::d]) const override
 Compute fluid momentum.
 
void computeStress (ConstCell< T, DESCRIPTOR > &cell, T rho, const T u[DESCRIPTOR::d], T pi[util::TensorVal< DESCRIPTOR >::n]) const override
 Compute stress tensor.
 
void computeRhoU (ConstCell< T, DESCRIPTOR > &cell, T &rho, T u[DESCRIPTOR::d]) const override
 Compute fluid velocity and particle density.
 
void computeAllMomenta (ConstCell< T, DESCRIPTOR > &cell, T &rho, T u[DESCRIPTOR::d], T pi[util::TensorVal< DESCRIPTOR >::n]) const override
 Compute all momenta up to second order.
 
void defineRho (Cell< T, DESCRIPTOR > &cell, T rho) override
 Set particle density.
 
void defineU (Cell< T, DESCRIPTOR > &cell, const T u[DESCRIPTOR::d]) override
 Set fluid velocity.
 
void defineRhoU (Cell< T, DESCRIPTOR > &cell, T rho, const T u[DESCRIPTOR::d]) override
 Define fluid velocity and particle density.
 
void defineAllMomenta (Cell< T, DESCRIPTOR > &cell, T rho, const T u[DESCRIPTOR::d], const T pi[util::TensorVal< DESCRIPTOR >::n]) override
 Define all momenta up to second order.
 
void inverseShiftRhoU (ConstCell< T, DESCRIPTOR > &cell, T &rho, T u[DESCRIPTOR::d]) const override
 Calculate population momenta s.t. the physical momenta are reproduced by the computeRhoU.
 
- Public Member Functions inherited from olb::Dynamics< T, DESCRIPTOR >
virtual ~Dynamics () any_platform
 
virtual std::string getName () const
 Return human-readable name.
 
void iniEquilibrium (Cell< T, DESCRIPTOR > &cell, T rho, const T u[DESCRIPTOR::d])
 Initialize to equilibrium distribution.
 
void iniRegularized (Cell< T, DESCRIPTOR > &cell, T rho, const T u[DESCRIPTOR::d], const T pi[util::TensorVal< DESCRIPTOR >::n])
 Initialize cell to equilibrium and non-equilibrum part.
 

Detailed Description

template<typename T, typename DESCRIPTOR, typename MOMENTA = momenta::BulkTuple>
class olb::ForcedEntropicEqDynamics< T, DESCRIPTOR, MOMENTA >

Implementation of the forced entropic collision step.

Definition at line 66 of file entropicDynamics.h.

Member Typedef Documentation

◆ exchange_momenta

template<typename T , typename DESCRIPTOR , typename MOMENTA = momenta::BulkTuple>
template<typename M >
using olb::ForcedEntropicEqDynamics< T, DESCRIPTOR, MOMENTA >::exchange_momenta = ForcedEntropicEqDynamics<T,DESCRIPTOR,M>

Definition at line 69 of file entropicDynamics.h.

Constructor & Destructor Documentation

◆ ForcedEntropicEqDynamics()

template<typename T , typename DESCRIPTOR , typename MOMENTA >
olb::ForcedEntropicEqDynamics< T, DESCRIPTOR, MOMENTA >::ForcedEntropicEqDynamics ( T omega_)

Constructor.

Parameters
omega_relaxation parameter, related to the dynamic viscosity

Definition at line 97 of file entropicDynamics.hh.

98 : legacy::BasicDynamics<T,DESCRIPTOR,MOMENTA>(),
99 omega(omega_)
100{
101 this->getName() = "ForcedEntropicEqDynamics";
102}
virtual std::string getName() const
Return human-readable name.
Definition interface.h:63

References olb::Dynamics< T, DESCRIPTOR >::getName().

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Member Function Documentation

◆ collide()

template<typename T , typename DESCRIPTOR , typename MOMENTA >
CellStatistic< T > olb::ForcedEntropicEqDynamics< T, DESCRIPTOR, MOMENTA >::collide ( Cell< T, DESCRIPTOR > & cell)
virtual

Collision step.

Reimplemented from olb::Dynamics< T, DESCRIPTOR >.

Definition at line 112 of file entropicDynamics.hh.

114{
115 typedef DESCRIPTOR L;
116 typedef entropicLbHelpers<T,DESCRIPTOR> eLbH;
117
118 T rho, u[DESCRIPTOR::d];
119 MOMENTA().computeRhoU(cell, rho, u);
120
121 T* force = cell.template getFieldPointer<descriptors::FORCE>();
122 for (int iDim=0; iDim<DESCRIPTOR::d; ++iDim) {
123 u[iDim] += force[iDim] / (T)2.;
124 }
125 T uSqr = util::normSqr<T,L::d>(u);
126
127 for (int iPop=0; iPop < DESCRIPTOR::q; ++iPop) {
128 cell[iPop] += omega * (eLbH::equilibrium(iPop,rho,u) - cell[iPop]);
129 }
130
131 lbm<DESCRIPTOR>::addExternalForce(cell, u, omega);
132
133 //statistics.incrementStats(rho, uSqr);
134}
static void addExternalForce(CELL &cell, const RHO &rho, const U &u, const OMEGA &omega, const FORCE &force) any_platform
Add a force term after BGK collision.
Definition lbm.h:463

References olb::lbm< DESCRIPTOR >::addExternalForce().

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◆ computeEquilibrium()

template<typename T , typename DESCRIPTOR , typename MOMENTA >
T olb::ForcedEntropicEqDynamics< T, DESCRIPTOR, MOMENTA >::computeEquilibrium ( int iPop,
T rho,
const T u[DESCRIPTOR::d],
T uSqr ) const
virtual

Compute equilibrium distribution function.

Definition at line 105 of file entropicDynamics.hh.

106{
108}
static T equilibrium(int iPop, T rho, const T u[DESCRIPTOR::d])
Computation of equilibrium distribution.

References olb::entropicLbHelpers< T, DESCRIPTOR >::equilibrium().

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◆ getOmega()

template<typename T , typename DESCRIPTOR , typename MOMENTA >
T olb::ForcedEntropicEqDynamics< T, DESCRIPTOR, MOMENTA >::getOmega ( ) const
virtual

Get local relaxation parameter of the dynamics.

Definition at line 137 of file entropicDynamics.hh.

138{
139 return omega;
140}

◆ setOmega()

template<typename T , typename DESCRIPTOR , typename MOMENTA >
void olb::ForcedEntropicEqDynamics< T, DESCRIPTOR, MOMENTA >::setOmega ( T omega_)
virtual

Set local relaxation parameter of the dynamics.

Definition at line 143 of file entropicDynamics.hh.

144{
145 omega = omega_;
146}

The documentation for this class was generated from the following files: