RNGkEpsilon.C
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28 
29 #include "RNGkEpsilon.H"
30 #include "fvOptions.H"
31 #include "bound.H"
32 
33 // * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * //
34 
35 namespace Foam
36 {
37 namespace RASModels
38 {
39 
40 // * * * * * * * * * * * * Protected Member Functions * * * * * * * * * * * //
41 
42 template<class BasicTurbulenceModel>
44 {
45  this->nut_ = Cmu_*sqr(k_)/epsilon_;
46  this->nut_.correctBoundaryConditions();
47  fv::options::New(this->mesh_).correct(this->nut_);
48 
49  BasicTurbulenceModel::correctNut();
50 }
51 
52 
53 template<class BasicTurbulenceModel>
55 {
56  return tmp<fvScalarMatrix>
57  (
58  new fvScalarMatrix
59  (
60  k_,
61  dimVolume*this->rho_.dimensions()*k_.dimensions()
63  )
64  );
65 }
66 
67 
68 template<class BasicTurbulenceModel>
70 {
71  return tmp<fvScalarMatrix>
72  (
73  new fvScalarMatrix
74  (
75  epsilon_,
76  dimVolume*this->rho_.dimensions()*epsilon_.dimensions()
77  /dimTime
78  )
79  );
80 }
81 
82 
83 // * * * * * * * * * * * * * * * * Constructors * * * * * * * * * * * * * * //
84 
85 template<class BasicTurbulenceModel>
87 (
88  const alphaField& alpha,
89  const rhoField& rho,
90  const volVectorField& U,
91  const surfaceScalarField& alphaRhoPhi,
92  const surfaceScalarField& phi,
93  const transportModel& transport,
94  const word& propertiesName,
95  const word& type
96 )
97 :
98  eddyViscosity<RASModel<BasicTurbulenceModel>>
99  (
100  type,
101  alpha,
102  rho,
103  U,
104  alphaRhoPhi,
105  phi,
106  transport,
107  propertiesName
108  ),
109 
110  Cmu_
111  (
112  dimensioned<scalar>::getOrAddToDict
113  (
114  "Cmu",
115  this->coeffDict_,
116  0.0845
117  )
118  ),
119  C1_
120  (
121  dimensioned<scalar>::getOrAddToDict
122  (
123  "C1",
124  this->coeffDict_,
125  1.42
126  )
127  ),
128  C2_
129  (
130  dimensioned<scalar>::getOrAddToDict
131  (
132  "C2",
133  this->coeffDict_,
134  1.68
135  )
136  ),
137  C3_
138  (
139  dimensioned<scalar>::getOrAddToDict
140  (
141  "C3",
142  this->coeffDict_,
143  0
144  )
145  ),
146  sigmak_
147  (
148  dimensioned<scalar>::getOrAddToDict
149  (
150  "sigmak",
151  this->coeffDict_,
152  0.71942
153  )
154  ),
155  sigmaEps_
156  (
157  dimensioned<scalar>::getOrAddToDict
158  (
159  "sigmaEps",
160  this->coeffDict_,
161  0.71942
162  )
163  ),
164  eta0_
165  (
166  dimensioned<scalar>::getOrAddToDict
167  (
168  "eta0",
169  this->coeffDict_,
170  4.38
171  )
172  ),
173  beta_
174  (
175  dimensioned<scalar>::getOrAddToDict
176  (
177  "beta",
178  this->coeffDict_,
179  0.012
180  )
181  ),
182 
183  k_
184  (
185  IOobject
186  (
187  IOobject::groupName("k", alphaRhoPhi.group()),
188  this->runTime_.timeName(),
189  this->mesh_,
190  IOobject::MUST_READ,
191  IOobject::AUTO_WRITE
192  ),
193  this->mesh_
194  ),
195  epsilon_
196  (
197  IOobject
198  (
199  IOobject::groupName("epsilon", alphaRhoPhi.group()),
200  this->runTime_.timeName(),
201  this->mesh_,
202  IOobject::MUST_READ,
203  IOobject::AUTO_WRITE
204  ),
205  this->mesh_
206  )
207 {
208  bound(k_, this->kMin_);
209  bound(epsilon_, this->epsilonMin_);
210 
211  if (type == typeName)
212  {
213  this->printCoeffs(type);
214  }
215 }
216 
217 
218 // * * * * * * * * * * * * * * * Member Functions * * * * * * * * * * * * * //
219 
220 template<class BasicTurbulenceModel>
222 {
224  {
225  Cmu_.readIfPresent(this->coeffDict());
226  C1_.readIfPresent(this->coeffDict());
227  C2_.readIfPresent(this->coeffDict());
228  C3_.readIfPresent(this->coeffDict());
229  sigmak_.readIfPresent(this->coeffDict());
230  sigmaEps_.readIfPresent(this->coeffDict());
231  eta0_.readIfPresent(this->coeffDict());
232  beta_.readIfPresent(this->coeffDict());
233 
234  return true;
235  }
236 
237  return false;
238 }
239 
240 
241 template<class BasicTurbulenceModel>
243 {
244  if (!this->turbulence_)
245  {
246  return;
247  }
248 
249  // Local references
250  const alphaField& alpha = this->alpha_;
251  const rhoField& rho = this->rho_;
252  const surfaceScalarField& alphaRhoPhi = this->alphaRhoPhi_;
253  const volVectorField& U = this->U_;
254  const volScalarField& nut = this->nut_;
255  fv::options& fvOptions(fv::options::New(this->mesh_));
256 
257  eddyViscosity<RASModel<BasicTurbulenceModel>>::correct();
258 
260  (
261  fvc::div(fvc::absolute(this->phi(), U))().v()
262  );
263 
264  tmp<volTensorField> tgradU = fvc::grad(U);
265  const volScalarField::Internal GbyNu
266  (
267  IOobject::scopedName(this->type(), "GbyNu"),
268  tgradU().v() && devTwoSymm(tgradU().v())
269  );
270  tgradU.clear();
271 
272  const volScalarField::Internal G(this->GName(), nut()*GbyNu);
273 
274  const volScalarField::Internal eta(sqrt(mag(GbyNu))*k_/epsilon_);
275  const volScalarField::Internal eta3(eta*sqr(eta));
276 
278  (
279  ((eta*(-eta/eta0_ + scalar(1)))/(beta_*eta3 + scalar(1)))
280  );
281 
282  // Update epsilon and G at the wall
283  epsilon_.boundaryFieldRef().updateCoeffs();
284  // Push any changed cell values to coupled neighbours
285  epsilon_.boundaryFieldRef().template evaluateCoupled<coupledFvPatch>();
286 
287  // Dissipation equation
288  tmp<fvScalarMatrix> epsEqn
289  (
290  fvm::ddt(alpha, rho, epsilon_)
291  + fvm::div(alphaRhoPhi, epsilon_)
292  - fvm::laplacian(alpha*rho*DepsilonEff(), epsilon_)
293  ==
294  (C1_ - R)*alpha()*rho()*GbyNu*Cmu_*k_()
295  - fvm::SuSp(((2.0/3.0)*C1_ - C3_)*alpha()*rho()*divU, epsilon_)
296  - fvm::Sp(C2_*alpha()*rho()*epsilon_()/k_(), epsilon_)
297  + epsilonSource()
298  + fvOptions(alpha, rho, epsilon_)
299  );
300 
301  epsEqn.ref().relax();
302  fvOptions.constrain(epsEqn.ref());
303  epsEqn.ref().boundaryManipulate(epsilon_.boundaryFieldRef());
304  solve(epsEqn);
305  fvOptions.correct(epsilon_);
306  bound(epsilon_, this->epsilonMin_);
307 
308 
309  // Turbulent kinetic energy equation
310 
311  tmp<fvScalarMatrix> kEqn
312  (
313  fvm::ddt(alpha, rho, k_)
314  + fvm::div(alphaRhoPhi, k_)
315  - fvm::laplacian(alpha*rho*DkEff(), k_)
316  ==
317  alpha()*rho()*G
318  - fvm::SuSp((2.0/3.0)*alpha()*rho()*divU, k_)
319  - fvm::Sp(alpha()*rho()*epsilon_()/k_(), k_)
320  + kSource()
321  + fvOptions(alpha, rho, k_)
322  );
323 
324  kEqn.ref().relax();
325  fvOptions.constrain(kEqn.ref());
326  solve(kEqn);
327  fvOptions.correct(k_);
328  bound(k_, this->kMin_);
329 
330  correctNut();
331 }
332 
333 
334 // * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * //
335 
336 } // End namespace RASModels
337 } // End namespace Foam
338 
339 // ************************************************************************* //
void correct(GeometricField< Type, PatchField, GeoMesh > &field)
Apply correction to field.
tmp< GeometricField< typename outerProduct< vector, Type >::type, fvPatchField, volMesh >> grad(const GeometricField< Type, fvsPatchField, surfaceMesh > &ssf)
Definition: fvcGrad.C:47
fvMatrix< scalar > fvScalarMatrix
Definition: fvMatricesFwd.H:37
dimensionedScalar kMin_
Lower limit of k.
Definition: RASModel.H:109
dimensioned< typename typeOfMag< Type >::type > mag(const dimensioned< Type > &dt)
const dimensionedScalar G
Newtonian constant of gravitation.
dimensionedSymmTensor sqr(const dimensionedVector &dv)
tmp< GeometricField< Type, fvPatchField, volMesh > > div(const GeometricField< Type, fvsPatchField, surfaceMesh > &ssf)
Definition: fvcDiv.C:42
virtual tmp< fvScalarMatrix > kSource() const
Definition: RNGkEpsilon.C:47
virtual void correct()
Solve the turbulence equations and correct the turbulence viscosity.
Definition: RNGkEpsilon.C:235
dimensionedScalar sqrt(const dimensionedScalar &ds)
Generic dimensioned Type class.
Eddy viscosity turbulence model base class.
Definition: eddyViscosity.H:51
GeometricField< vector, fvPatchField, volMesh > volVectorField
Definition: volFieldsFwd.H:82
DimensionedField< scalar, volMesh > Internal
The internal field type from which this GeometricField is derived.
fv::options & fvOptions
bool read(const char *buf, int32_t &val)
Same as readInt32.
Definition: int32.H:127
Templated abstract base class for RAS turbulence models.
Definition: RASModel.H:77
constexpr const char *const group
Group name for atomic constants.
GeometricField< scalar, fvPatchField, volMesh > volScalarField
Definition: volFieldsFwd.H:81
word timeName
Definition: getTimeIndex.H:3
fileName::Type type(const fileName &name, const bool followLink=true)
Return the file type: DIRECTORY or FILE, normally following symbolic links.
Definition: POSIX.C:799
const dimensionSet dimVolume(pow3(dimLength))
Definition: dimensionSets.H:58
virtual tmp< fvScalarMatrix > epsilonSource() const
Definition: RNGkEpsilon.C:62
static word scopedName(const std::string &scope, const word &name)
Create scope:name or scope_name string.
Definition: IOobjectI.H:40
A class for handling words, derived from Foam::string.
Definition: word.H:63
tmp< fvMatrix< Type > > ddt(const GeometricField< Type, fvPatchField, volMesh > &vf)
Definition: fvmDdt.C:41
zeroField SuSp(const Foam::zero, const GeometricField< Type, fvPatchField, volMesh > &)
A no-op source.
virtual void printCoeffs(const word &type)
Print model coefficients.
Definition: RASModel.C:27
zeroField Sp(const Foam::zero, const GeometricField< Type, fvPatchField, volMesh > &)
A no-op source.
SolverPerformance< Type > solve(faMatrix< Type > &, const dictionary &solverControls)
Solve returning the solution statistics given convergence tolerance.
tmp< fvMatrix< Type > > div(const surfaceScalarField &flux, const GeometricField< Type, fvPatchField, volMesh > &vf, const word &name)
Definition: fvmDiv.C:41
Bound the given scalar field if it has gone unbounded.
Info<< "Predicted p max-min : "<< max(p).value()<< " "<< min(p).value()<< endl;rho==max(psi *p+alphal *rhol0+((alphav *psiv+alphal *psil) - psi) *pSat, rhoMin);# 1 "/home/chef2/andy/OpenFOAM/release/v2312/OpenFOAM-v2312/applications/solvers/multiphase/cavitatingFoam/alphavPsi.H" 1{ alphav=clamp((rho - rholSat)/(rhovSat - rholSat), zero_one{});alphal=1.0 - alphav;Info<< "max-min alphav: "<< max(alphav).value()<< " "<< min(alphav).value()<< endl;psiModel-> correct()
Definition: pEqn.H:63
Renormalization group k-epsilon turbulence model for incompressible and compressible flows...
Definition: RNGkEpsilon.H:84
virtual bool read()
Re-read model coefficients if they have changed.
Definition: RNGkEpsilon.C:214
tmp< surfaceScalarField > absolute(const tmp< surfaceScalarField > &tphi, const volVectorField &U)
Return the given relative flux in absolute form.
Definition: fvcMeshPhi.C:183
U
Definition: pEqn.H:72
volScalarField & bound(volScalarField &, const dimensionedScalar &lowerBound)
Bound the given scalar field if it has gone unbounded.
Definition: bound.C:29
#define R(A, B, C, D, E, F, K, M)
tmp< fvMatrix< Type > > laplacian(const GeometricField< Type, fvPatchField, volMesh > &vf, const word &name)
Definition: fvmLaplacian.C:41
Base-class for all transport models used by the incompressible turbulence models. ...
const dimensionSet dimTime(0, 0, 1, 0, 0, 0, 0)
Definition: dimensionSets.H:51
zeroField divU
Definition: alphaSuSp.H:3
A class for managing temporary objects.
Definition: HashPtrTable.H:50
GeometricField< scalar, fvsPatchField, surfaceMesh > surfaceScalarField
static options & New(const fvMesh &mesh)
Construct fvOptions and register to database if not present.
Definition: fvOptions.C:96
const dimensionedScalar alpha
Fine-structure constant: default SI units: [].
Defines the attributes of an object for which implicit objectRegistry management is supported...
Definition: IOobject.H:172
dimensionedScalar epsilonMin_
Lower limit of epsilon.
Definition: RASModel.H:114
scalar nut
Namespace for OpenFOAM.
SymmTensor< Cmpt > devTwoSymm(const SymmTensor< Cmpt > &st)
Return the deviatoric part of twice the symmetric part of a SymmTensor.
Definition: SymmTensorI.H:491