39 #include <boost/core/ignore_unused.hpp> 55 ProcessVorticity::create,
56 "Computes vorticity field.");
68 boost::ignore_unused(vm);
71 int expdim =
m_f->m_graph->GetMeshDimension();
73 if ((
m_f->m_numHomogeneousDir) == 1 || (
m_f->m_numHomogeneousDir) == 2)
77 int nfields =
m_f->m_variables.size();
79 "Error: Vorticity for a 1D problem cannot be computed");
85 m_f->m_variables.push_back(
"W_z");
89 m_f->m_variables.push_back(
"W_x");
90 m_f->m_variables.push_back(
"W_y");
91 m_f->m_variables.push_back(
"W_z");
95 if (
m_f->m_exp[0]->GetNumElmts() == 0)
99 int npoints =
m_f->m_exp[0]->GetNpoints();
105 m_f->m_session->LoadParameter(
"Strip_Z", nstrips, 1);
112 for (i = 0; i < addfields; ++i)
123 vector<MultiRegions::ExpListSharedPtr> Exp(nstrips * addfields);
128 for (s = 0; s < nstrips; ++s)
134 if (
m_f->m_fieldMetaDataMap.count(
"MappingCartesianVel"))
136 if (
m_f->m_fieldMetaDataMap[
"MappingCartesianVel"] ==
"False")
139 if (
m_f->m_exp[0]->GetWaveSpace())
143 m_f->m_exp[0]->HomogeneousBwdTrans(vel[i], vel[i]);
147 mapping->ContravarToCartesian(vel, vel);
149 if (
m_f->m_exp[0]->GetWaveSpace())
153 m_f->m_exp[0]->HomogeneousFwdTrans(vel[i], vel[i]);
164 m_f->m_exp[s * nfields + i]->PhysDeriv(vel[i], tmp[0], tmp[1]);
165 mapping->CovarToCartesian(tmp, tmp);
168 Vmath::Vcopy(npoints, tmp[j], 1, grad[i * m_spacedim + j], 1);
173 grad[0 * m_spacedim + 1], 1, outfield[0], 1);
179 m_f->m_exp[s * nfields + i]->PhysDeriv(vel[i], tmp[0], tmp[1],
181 mapping->CovarToCartesian(tmp, tmp);
184 Vmath::Vcopy(npoints, tmp[j], 1, grad[i * m_spacedim + j], 1);
190 grad[1 * m_spacedim + 2], 1, outfield[0], 1);
193 grad[2 * m_spacedim + 0], 1, outfield[1], 1);
196 grad[0 * m_spacedim + 1], 1, outfield[2], 1);
199 for (i = 0; i < addfields; ++i)
201 int n = s * addfields + i;
203 m_f->AppendExpList(
m_f->m_numHomogeneousDir);
204 Vmath::Vcopy(npoints, outfield[i], 1, Exp[n]->UpdatePhys(), 1);
205 Exp[n]->FwdTrans_IterPerExp(outfield[i], Exp[n]->UpdateCoeffs());
209 for (s = 0; s < nstrips; ++s)
211 for (i = 0; i < addfields; ++i)
214 m_f->m_exp.begin() + s * (nfields + addfields) + nfields + i,
215 Exp[s * addfields + i]);
223 int nfields =
m_f->m_variables.size();
224 int npoints =
m_f->m_exp[0]->GetNpoints();
225 if(boost::iequals(
m_f->m_variables[0],
"u"))
232 m_f->m_exp[strip * nfields + i]->GetPhys(), 1,
236 else if(boost::iequals(
m_f->m_variables[0],
"rho") &&
237 boost::iequals(
m_f->m_variables[1],
"rhou"))
244 m_f->m_exp[strip * nfields + i + 1]->GetPhys(), 1,
245 m_f->m_exp[strip * nfields + 0 ]->GetPhys(), 1,
252 ASSERTL0(
false,
"Could not identify velocity for ProcessVorticity");
virtual void Process(po::variables_map &vm)
Write mesh to output file.
#define ASSERTL0(condition, msg)
void Vdiv(int n, const T *x, const int incx, const T *y, const int incy, T *z, const int incz)
Multiply vector z = x/y.
std::shared_ptr< Field > FieldSharedPtr
static GlobalMapping::MappingSharedPtr GetMapping(FieldSharedPtr f)
virtual ~ProcessVorticity()
void GetVelocity(Array< OneD, Array< OneD, NekDouble > > &vel, int strip=0)
std::pair< ModuleType, std::string > ModuleKey
void Vsub(int n, const T *x, const int incx, const T *y, const int incy, T *z, const int incz)
Subtract vector z = x-y.
tKey RegisterCreatorFunction(tKey idKey, CreatorFunction classCreator, std::string pDesc="")
Register a class with the factory.
GLOBAL_MAPPING_EXPORT typedef std::shared_ptr< Mapping > MappingSharedPtr
A shared pointer to a Mapping object.
Abstract base class for processing modules.
void Vcopy(int n, const T *x, const int incx, T *y, const int incy)
ModuleFactory & GetModuleFactory()
FieldSharedPtr m_f
Field object.