Nektar++
ForcingAbsorption.cpp
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2 //
3 // File: ForcingAbsorption.cpp
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5 // For more information, please see: http://www.nektar.info
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9 // Copyright (c) 2016 Kilian Lackhove
10 // Copyright (c) 2006 Division of Applied Mathematics, Brown University (USA),
11 // Department of Aeronautics, Imperial College London (UK), and Scientific
12 // Computing and Imaging Institute, University of Utah (USA).
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31 //
32 // Description: Absorption layer forcing
33 //
34 ///////////////////////////////////////////////////////////////////////////////
35 
36 #include <boost/core/ignore_unused.hpp>
37 
39 
42 
43 using namespace std;
44 
45 namespace Nektar
46 {
47 namespace SolverUtils
48 {
49 
50 std::string ForcingAbsorption::className =
52  "Absorption", ForcingAbsorption::create, "Forcing Absorption");
53 
54 ForcingAbsorption::ForcingAbsorption(
56  const std::weak_ptr<EquationSystem> &pEquation)
57  : Forcing(pSession, pEquation), m_hasRefFlow(false), m_hasRefFlowTime(false)
58 {
59 }
60 
63  const unsigned int &pNumForcingFields, const TiXmlElement *pForce)
64 {
65  m_NumVariable = pNumForcingFields;
66  int npts = pFields[0]->GetTotPoints();
67 
68  CalcAbsorption(pFields, pForce);
69 
71  for (int i = 0; i < m_NumVariable; ++i)
72  {
73  m_Forcing[i] = Array<OneD, NekDouble>(npts, 0.0);
74  }
75 
76  const TiXmlElement *funcNameElmt = pForce->FirstChildElement("REFFLOW");
77  if (funcNameElmt)
78  {
79  string funcName = funcNameElmt->GetText();
80  ASSERTL0(m_session->DefinesFunction(funcName),
81  "Function '" + funcName + "' not defined.");
83  for (int i = 0; i < m_NumVariable; ++i)
84  {
85  std::string s_FieldStr = m_session->GetVariable(i);
86  ASSERTL0(m_session->DefinesFunction(funcName, s_FieldStr),
87  "Variable '" + s_FieldStr + "' not defined.");
88  m_Refflow[i] = Array<OneD, NekDouble>(npts, 0.0);
89  GetFunction(pFields, m_session, funcName)
90  ->Evaluate(s_FieldStr, m_Refflow[i]);
91  }
92  m_hasRefFlow = true;
93  }
94 
95  funcNameElmt = pForce->FirstChildElement("REFFLOWTIME");
96  if (funcNameElmt)
97  {
98  m_funcNameTime = funcNameElmt->GetText();
99  m_hasRefFlowTime = true;
100  m_hasRefFlow = true;
102  for (int i = 0; i < m_NumVariable; ++i)
103  {
104  std::string s_FieldStr = m_session->GetVariable(i);
105  ASSERTL0(m_session->DefinesFunction(m_funcNameTime, s_FieldStr),
106  "Variable '" + s_FieldStr + "' not defined.");
107  m_Refflow[i] = Array<OneD, NekDouble>(npts, 0.0);
108  }
109  }
110 }
111 
114  &pFields,
115  const TiXmlElement *pForce)
116 {
117  const TiXmlElement *funcNameElmt = pForce->FirstChildElement("COEFF");
118  ASSERTL0(funcNameElmt,
119  "Requires COEFF tag, specifying function "
120  "name which prescribes absorption layer coefficient.");
121  string funcName = funcNameElmt->GetText();
122  ASSERTL0(m_session->DefinesFunction(funcName),
123  "Function '" + funcName + "' not defined.");
124 
125  int npts = pFields[0]->GetTotPoints();
126 
128  for (int i = 0; i < m_NumVariable; ++i)
129  {
130  m_Absorption[i] = Array<OneD, NekDouble>(npts, 0.0);
131  }
132 
133  funcNameElmt = pForce->FirstChildElement("BOUNDARYREGIONS");
134  if (funcNameElmt)
135  {
136  ASSERTL0(
137  ParseUtils::GenerateVector(funcNameElmt->GetText(), m_bRegions),
138  "Unable to process list of BOUNDARYREGIONS in Absorption "
139  "Forcing: " +
140  std::string(funcNameElmt->GetText()));
141 
142  // alter m_bRegions so that it contains the boundaryRegions of this rank
143  std::vector<unsigned int> localBRegions;
145  pFields[0]->GetGraph());
147  bcs.GetBoundaryRegions();
148  SpatialDomains::BoundaryRegionCollection::iterator it1;
149  int n = 0;
150  for (it1 = regions.begin(); it1 != regions.end(); ++it1)
151  {
152  if (std::find(m_bRegions.begin(), m_bRegions.end(), it1->first) !=
153  m_bRegions.end())
154  {
155  localBRegions.push_back(n);
156  }
157  n++;
158  }
159  m_bRegions = localBRegions;
160 
161  if (m_bRegions.size() == 0)
162  {
163  return;
164  }
165 
166  std::vector<Array<OneD, const NekDouble>> points;
167 
169  for (int i = 0; i < 3; i++)
170  {
171  x[i] = Array<OneD, NekDouble>(npts, 0.0);
172  }
173  pFields[0]->GetCoords(x[0], x[1], x[2]);
174  for (int i = 0; i < 3; i++)
175  {
176  points.push_back(x[i]);
177  }
178 
179  Array<OneD, NekDouble> t(npts, 0.0);
180  points.push_back(t);
181 
182  Array<OneD, NekDouble> r(npts, 0.0);
183  std::vector<unsigned int>::iterator it;
184  std::vector<BPointPair> inPoints;
186  for (it = m_bRegions.begin(); it != m_bRegions.end(); ++it)
187  {
188  int bpts = pFields[0]->GetBndCondExpansions()[*it]->GetNpoints();
189  for (int i = 0; i < 3; i++)
190  {
191  b[i] = Array<OneD, NekDouble>(bpts, 0.0);
192  }
193  pFields[0]->GetBndCondExpansions()[*it]->GetCoords(b[0], b[1],
194  b[2]);
195  for (int i = 0;
196  i < pFields[0]->GetBndCondExpansions()[*it]->GetNpoints(); ++i)
197  {
198  inPoints.push_back(
199  BPointPair(BPoint(b[0][i], b[1][i], b[2][i]), i));
200  }
201  }
203  m_rtree->insert(inPoints.begin(), inPoints.end());
204 
205  for (int i = 0; i < npts; ++i)
206  {
207  std::vector<BPointPair> result;
208  BPoint sPoint(x[0][i], x[1][i], x[2][i]);
209  m_rtree->query(bgi::nearest(sPoint, 1), std::back_inserter(result));
210  r[i] = bg::distance(sPoint, result[0].first);
211  }
212  points.push_back(r);
213 
214  std::string s_FieldStr;
215  for (int i = 0; i < m_NumVariable; ++i)
216  {
217  s_FieldStr = m_session->GetVariable(i);
218  ASSERTL0(m_session->DefinesFunction(funcName, s_FieldStr),
219  "Variable '" + s_FieldStr + "' not defined.");
220 
222  m_session->GetFunction(funcName, s_FieldStr);
223  ASSERTL0(ffunc->GetVlist() == "x y z t r",
224  "EVARS of " + funcName + " must be 'r'");
225 
226  ffunc->Evaluate(points, m_Absorption[i]);
227  }
228  }
229  else
230  {
231  for (int i = 0; i < m_NumVariable; ++i)
232  {
233  std::string s_FieldStr = m_session->GetVariable(i);
234  GetFunction(pFields, m_session, funcName)
235  ->Evaluate(s_FieldStr, m_Absorption[i]);
236  }
237  }
238 }
239 
242  const Array<OneD, Array<OneD, NekDouble>> &inarray,
243  Array<OneD, Array<OneD, NekDouble>> &outarray, const NekDouble &time)
244 {
245  int nq = m_Forcing[0].size();
246  CalculateForcing(fields, inarray, time);
247  for (int i = 0; i < m_NumVariable; ++i)
248  {
249  Vmath::Vadd(nq, m_Forcing[i], 1, outarray[i], 1, outarray[i], 1);
250  }
251 }
252 
255  const Array<OneD, Array<OneD, NekDouble>> &inarray,
256  Array<OneD, Array<OneD, NekDouble>> &outarray, const NekDouble &time)
257 {
258  int ncoeff = outarray[m_NumVariable - 1].size();
259  Array<OneD, NekDouble> tmp(ncoeff, 0.0);
260  CalculateForcing(fields, inarray, time);
261 
262  for (int i = 0; i < m_NumVariable; ++i)
263  {
264  fields[i]->FwdTrans(m_Forcing[i], tmp);
265  Vmath::Vadd(ncoeff, tmp, 1, outarray[i], 1, outarray[i], 1);
266  }
267 }
268 
271  const Array<OneD, Array<OneD, NekDouble>> &inarray, const NekDouble &time)
272 {
273  boost::ignore_unused(fields);
274  int nq = m_Forcing[0].size();
275 
276  std::string s_FieldStr;
277  Array<OneD, NekDouble> TimeScale(1);
279 
280  if (m_hasRefFlow)
281  {
282  for (int i = 0; i < m_NumVariable; i++)
283  {
284  RefflowScaled[i] = Array<OneD, NekDouble>(nq);
285  if (m_hasRefFlowTime)
286  {
287  s_FieldStr = m_session->GetVariable(i);
288 
289  std::string s_FieldStr = m_session->GetVariable(i);
291  ->Evaluate(s_FieldStr, m_Refflow[i], time);
292  Vmath::Vcopy(nq, m_Refflow[i], 1, RefflowScaled[i], 1);
293  }
294  else
295  {
296  Vmath::Vcopy(nq, m_Refflow[i], 1, RefflowScaled[i], 1);
297  }
298 
299  Vmath::Vsub(nq, inarray[i], 1, RefflowScaled[i], 1, m_Forcing[i],
300  1);
301  Vmath::Vmul(nq, m_Absorption[i], 1, m_Forcing[i], 1, m_Forcing[i],
302  1);
303  }
304  }
305  else
306  {
307  for (int i = 0; i < m_NumVariable; i++)
308  {
309  Vmath::Vmul(nq, m_Absorption[i], 1, inarray[i], 1, m_Forcing[i], 1);
310  }
311  }
312 }
313 
314 } // namespace SolverUtils
315 } // namespace Nektar
#define ASSERTL0(condition, msg)
Definition: ErrorUtil.hpp:215
tKey RegisterCreatorFunction(tKey idKey, CreatorFunction classCreator, std::string pDesc="")
Register a class with the factory.
Definition: NekFactory.hpp:198
static std::shared_ptr< DataType > AllocateSharedPtr(const Args &...args)
Allocate a shared pointer from the memory pool.
static bool GenerateVector(const std::string &str, std::vector< T > &out)
Takes a comma-separated string and converts it to entries in a vector.
Definition: ParseUtils.cpp:131
bg::model::point< NekDouble, 3, bg::cs::cartesian > BPoint
virtual SOLVER_UTILS_EXPORT void v_InitObject(const Array< OneD, MultiRegions::ExpListSharedPtr > &pFields, const unsigned int &pNumForcingFields, const TiXmlElement *pForce) override
virtual SOLVER_UTILS_EXPORT void v_ApplyCoeff(const Array< OneD, MultiRegions::ExpListSharedPtr > &fields, const Array< OneD, Array< OneD, NekDouble >> &inarray, Array< OneD, Array< OneD, NekDouble >> &outarray, const NekDouble &time) override
Array< OneD, Array< OneD, NekDouble > > m_Refflow
std::pair< BPoint, unsigned int > BPointPair
virtual SOLVER_UTILS_EXPORT void v_Apply(const Array< OneD, MultiRegions::ExpListSharedPtr > &fields, const Array< OneD, Array< OneD, NekDouble >> &inarray, Array< OneD, Array< OneD, NekDouble >> &outarray, const NekDouble &time) override
void CalcAbsorption(const Array< OneD, MultiRegions::ExpListSharedPtr > &pFields, const TiXmlElement *pForce)
void CalculateForcing(const Array< OneD, MultiRegions::ExpListSharedPtr > &fields, const Array< OneD, Array< OneD, NekDouble >> &inarray, const NekDouble &time)
std::vector< unsigned int > m_bRegions
Array< OneD, Array< OneD, NekDouble > > m_Absorption
Defines a forcing term to be explicitly applied.
Definition: Forcing.h:73
int m_NumVariable
Number of variables.
Definition: Forcing.h:122
Array< OneD, Array< OneD, NekDouble > > m_Forcing
Evaluated forcing function.
Definition: Forcing.h:120
SOLVER_UTILS_EXPORT SessionFunctionSharedPtr GetFunction(const Array< OneD, MultiRegions::ExpListSharedPtr > &pFields, const LibUtilities::SessionReaderSharedPtr &pSession, std::string pName, bool pCache=false)
Get a SessionFunction by name.
Definition: Forcing.cpp:190
LibUtilities::SessionReaderSharedPtr m_session
Session reader.
Definition: Forcing.h:116
const BoundaryRegionCollection & GetBoundaryRegions(void) const
Definition: Conditions.h:234
std::shared_ptr< SessionReader > SessionReaderSharedPtr
std::shared_ptr< Equation > EquationSharedPtr
Definition: Equation.h:129
ForcingFactory & GetForcingFactory()
Declaration of the forcing factory singleton.
Definition: Forcing.cpp:44
std::map< int, BoundaryRegionShPtr > BoundaryRegionCollection
Definition: Conditions.h:210
InputIterator find(InputIterator first, InputIterator last, InputIterator startingpoint, const EqualityComparable &value)
Definition: StdRegions.hpp:444
The above copyright notice and this permission notice shall be included.
Definition: CoupledSolver.h:2
double NekDouble
void Vmul(int n, const T *x, const int incx, const T *y, const int incy, T *z, const int incz)
Multiply vector z = x*y.
Definition: Vmath.cpp:209
void Vadd(int n, const T *x, const int incx, const T *y, const int incy, T *z, const int incz)
Add vector z = x+y.
Definition: Vmath.cpp:359
void Vcopy(int n, const T *x, const int incx, T *y, const int incy)
Definition: Vmath.cpp:1255
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.
Definition: Vmath.cpp:419