Nektar++
SymmetryBC.cpp
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3 // File: SymmetryBC.cpp
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30 //
31 // Description: Symmetry boundary condition
32 //
33 ///////////////////////////////////////////////////////////////////////////////
34 
35 #include <boost/core/ignore_unused.hpp>
36 
37 #include "SymmetryBC.h"
38 
39 using namespace std;
40 
41 namespace Nektar
42 {
43 
44 std::string SymmetryBC::className = GetCFSBndCondFactory().
45  RegisterCreatorFunction("Symmetry",
46  SymmetryBC::create,
47  "Symmetry boundary condition.");
48 
49 SymmetryBC::SymmetryBC(const LibUtilities::SessionReaderSharedPtr& pSession,
51  const Array<OneD, Array<OneD, NekDouble> >& pTraceNormals,
52  const int pSpaceDim,
53  const int bcRegion,
54  const int cnt)
55  : CFSBndCond(pSession, pFields, pTraceNormals, pSpaceDim, bcRegion, cnt)
56 {
58 }
59 
62  Array<OneD, Array<OneD, NekDouble> > &physarray,
63  const NekDouble &time)
64 {
65  boost::ignore_unused(time);
66 
67  int i;
68  int nVariables = physarray.size();
69 
70  const Array<OneD, const int> &traceBndMap
71  = m_fields[0]->GetTraceBndMap();
72 
73  // Take into account that for PDE based shock capturing, eps = 0 at the
74  // wall.
75  int e, id1, id2, nBCEdgePts, eMax;
76 
77  eMax = m_fields[0]->GetBndCondExpansions()[m_bcRegion]->GetExpSize();
78 
79  for (e = 0; e < eMax; ++e)
80  {
81  nBCEdgePts = m_fields[0]->GetBndCondExpansions()[m_bcRegion]->
82  GetExp(e)->GetTotPoints();
83  id1 = m_fields[0]->GetBndCondExpansions()[m_bcRegion]->
84  GetPhys_Offset(e);
85  id2 = m_fields[0]->GetTrace()->GetPhys_Offset(traceBndMap[m_offset+e]);
86 
87  // For 2D/3D, define: v* = v - 2(v.n)n
88  Array<OneD, NekDouble> tmp(nBCEdgePts, 0.0);
89 
90  // Calculate (v.n)
91  for (i = 0; i < m_spacedim; ++i)
92  {
93  Vmath::Vvtvp(nBCEdgePts,
94  &Fwd[1+i][id2], 1,
95  &m_traceNormals[i][id2], 1,
96  &tmp[0], 1,
97  &tmp[0], 1);
98  }
99 
100  // Calculate 2.0(v.n)
101  Vmath::Smul(nBCEdgePts, -2.0, &tmp[0], 1, &tmp[0], 1);
102 
103  // Calculate v* = v - 2.0(v.n)n
104  for (i = 0; i < m_spacedim; ++i)
105  {
106  Vmath::Vvtvp(nBCEdgePts,
107  &tmp[0], 1,
108  &m_traceNormals[i][id2], 1,
109  &Fwd[1+i][id2], 1,
110  &Fwd[1+i][id2], 1);
111  }
112 
113  // Copy boundary adjusted values into the boundary expansion
114  for (i = 0; i < nVariables; ++i)
115  {
116  Vmath::Vcopy(nBCEdgePts, &Fwd[i][id2], 1,
117  &(m_fields[i]->GetBndCondExpansions()[m_bcRegion]->
118  UpdatePhys())[id1], 1);
119  }
120  }
121 }
122 
123 }
Encapsulates the user-defined boundary conditions for compressible flow solver.
Definition: CFSBndCond.h:71
NekDouble m_diffusionAveWeight
Weight for average calculation of diffusion term.
Definition: CFSBndCond.h:99
int m_spacedim
Space dimension.
Definition: CFSBndCond.h:95
Array< OneD, Array< OneD, NekDouble > > m_traceNormals
Trace normals.
Definition: CFSBndCond.h:93
int m_bcRegion
Id of the boundary region.
Definition: CFSBndCond.h:109
int m_offset
Offset.
Definition: CFSBndCond.h:111
Array< OneD, MultiRegions::ExpListSharedPtr > m_fields
Array of fields.
Definition: CFSBndCond.h:91
virtual void v_Apply(Array< OneD, Array< OneD, NekDouble > > &Fwd, Array< OneD, Array< OneD, NekDouble > > &physarray, const NekDouble &time)
Definition: SymmetryBC.cpp:60
std::shared_ptr< SessionReader > SessionReaderSharedPtr
The above copyright notice and this permission notice shall be included.
Definition: CoupledSolver.h:1
CFSBndCondFactory & GetCFSBndCondFactory()
Declaration of the boundary condition factory singleton.
Definition: CFSBndCond.cpp:41
double NekDouble
void Vvtvp(int n, const T *w, const int incw, const T *x, const int incx, const T *y, const int incy, T *z, const int incz)
vvtvp (vector times vector plus vector): z = w*x + y
Definition: Vmath.cpp:513
void Smul(int n, const T alpha, const T *x, const int incx, T *y, const int incy)
Scalar multiply y = alpha*x.
Definition: Vmath.cpp:225
void Vcopy(int n, const T *x, const int incx, T *y, const int incy)
Definition: Vmath.cpp:1199