TRUST 1.9.8
HPC thermohydraulic platform
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Champ_Q1NC.cpp
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15
16#include <Domaine_Cl_dis_base.h>
17#include <Equation_base.h>
18#include <Champ_Q1NC.h>
19#include <Periodique.h>
20#include <Debog.h>
21
22Implemente_instanciable(Champ_Q1NC,"Champ_Q1NC",Champ_Inc_base);
23
24Sortie& Champ_Q1NC::printOn(Sortie& s) const { return s << que_suis_je() << " " << le_nom(); }
25
27{
28 lire_donnees(s) ;
29 return s ;
30}
31
32//-Cas CL periodique : assure que les valeurs sur des faces periodiques
33// en vis a vis sont identiques. Pour cela on prend la demi somme des deux valeurs.
35{
37 int nb_cl = zcl.nb_cond_lim();
38 DoubleTab& ch_tab = valeurs();
39 int nb_compo = nb_comp();
40 int ndeb, nfin, num_face;
41
42 for (int i = 0; i < nb_cl; i++)
43 {
44 const Cond_lim_base& la_cl = zcl.les_conditions_limites(i).valeur();
45 if (sub_type(Periodique, la_cl))
46 {
47 const Periodique& la_cl_perio = ref_cast(Periodique, la_cl);
48 const Front_VF& le_bord = ref_cast(Front_VF, la_cl.frontiere_dis());
49 ndeb = le_bord.num_premiere_face();
50 nfin = ndeb + le_bord.nb_faces();
51 int voisine;
52 double moy;
53
54 for (num_face = ndeb; num_face < nfin; num_face++)
55 {
56 voisine = la_cl_perio.face_associee(num_face - ndeb) + ndeb;
57 for (int comp = 0; comp < nb_compo; comp++)
58 {
59 if (ch_tab(num_face, comp) != ch_tab(voisine, comp))
60 {
61 moy = 0.5 * (ch_tab(num_face, comp) + ch_tab(voisine, comp));
62 ch_tab(num_face, comp) = moy;
63 ch_tab(voisine, comp) = moy;
64 }
65 }
66 }
67 }
68 }
70}
71
73{
74 double vit_norm = 0;
75 for (int ncomp = 0; ncomp < nb_comp(); ncomp++)
76 vit_norm += valeurs()(num_face, ncomp) * domaine_vef().face_normales(num_face, ncomp);
77 return (vit_norm > 0);
78}
79
80DoubleTab& Champ_Q1NC::trace(const Frontiere_dis_base& fr, DoubleTab& x, double tps, int distant) const
81{
82 return Champ_Q1NC_implementation::trace(fr, valeurs(tps), x, distant);
83}
84
85void Champ_Q1NC::cal_rot_ordre1(DoubleTab& vorticite)
86{
87 const int nb_elem = domaine_vef().nb_elem();
88
89 DoubleTab gradient_elem(0, dimension, dimension);
90 // le tableau est initialise dans la methode gradient():
91 domaine_vef().domaine().creer_tableau_elements(gradient_elem, RESIZE_OPTIONS::NOCOPY_NOINIT);
92
93 gradient(gradient_elem);
94 Debog::verifier("apres calcul gradient", gradient_elem);
95 int num_elem;
96
97 switch(dimension)
98 {
99 case 2:
100 {
101 for (num_elem = 0; num_elem < nb_elem; num_elem++)
102 {
103 vorticite(num_elem) = gradient_elem(num_elem, 1, 0) - gradient_elem(num_elem, 0, 1);
104 }
105 }
106 break;
107 case 3:
108 {
109 for (num_elem = 0; num_elem < nb_elem; num_elem++)
110 {
111 vorticite(num_elem, 0) = gradient_elem(num_elem, 2, 1) - gradient_elem(num_elem, 1, 2);
112 vorticite(num_elem, 1) = gradient_elem(num_elem, 0, 2) - gradient_elem(num_elem, 2, 0);
113 vorticite(num_elem, 2) = gradient_elem(num_elem, 1, 0) - gradient_elem(num_elem, 0, 1);
114 }
115 }
116 }
117
118 Debog::verifier("apres calcul vort", vorticite);
119 return;
120}
121
122void Champ_Q1NC::gradient(DoubleTab& gradient_elem)
123{
124 // Calcul du gradient de la vitesse pour le calcul de la vorticite
125 const Domaine_VEF& domaine_VEF = domaine_vef();
126 const DoubleTab& vitesse = equation().inconnue().valeurs();
127
128 const DoubleTab& face_normales = domaine_VEF.face_normales();
129 const int nb_faces = domaine_VEF.nb_faces();
130 const int nb_elem = domaine_VEF.nb_elem();
131 const IntTab& face_voisins = domaine_VEF.face_voisins();
132 int premiere_face_int = domaine_VEF.premiere_face_int();
133 const DoubleVect& volumes = domaine_VEF.volumes();
134
135 assert(gradient_elem.dimension(0) == nb_elem);
136 assert(gradient_elem.dimension(1) == dimension);
137 assert(gradient_elem.dimension(2) == dimension);
138 operator_egal(gradient_elem, 0.); // Espace reel uniquement
139 int icomp, fac, i, elem1, elem2;
140
141 // Boucle sur les faces
142
143 for (fac = 0; fac < premiere_face_int; fac++)
144 {
145 elem1 = face_voisins(fac, 0);
146 for (icomp = 0; icomp < dimension; icomp++)
147 for (i = 0; i < dimension; i++)
148 {
149 gradient_elem(elem1, icomp, i) += face_normales(fac, i) * vitesse(fac, icomp);
150 }
151 }
152 for (; fac < nb_faces; fac++)
153 {
154 elem1 = face_voisins(fac, 0);
155 elem2 = face_voisins(fac, 1);
156 for (icomp = 0; icomp < dimension; icomp++)
157 for (i = 0; i < dimension; i++)
158 {
159 gradient_elem(elem1, icomp, i) += face_normales(fac, i) * vitesse(fac, icomp);
160 if (elem2 < nb_elem)
161 gradient_elem(elem2, icomp, i) -= face_normales(fac, i) * vitesse(fac, icomp);
162 }
163 }
164
165 tab_divide_any_shape(gradient_elem, volumes);
166}
167
169{
170 const MD_Vector& md = domaine_vef().md_vector_faces();
172 return 1;
173}
Classe Champ_Inc_base.
virtual void creer_tableau_distribue(const MD_Vector &, RESIZE_OPTIONS=RESIZE_OPTIONS::COPY_INIT)
int lire_donnees(Entree &)
Lit les valeurs du champs a partir d'un flot d'entree.
DoubleTab & valeurs() override
Renvoie le tableau des valeurs du champ au temps courant.
DoubleTab & trace(const Frontiere_dis_base &fr, const DoubleTab &y, DoubleTab &x, int distant) const
void cal_rot_ordre1(DoubleTab &)
int compo_normale_sortante(int) const
void gradient(DoubleTab &)
DoubleTab & trace(const Frontiere_dis_base &, DoubleTab &, double, int distant) const override
voir Champ_base Cas particulier (malheureusement) du Champ_P0_VDF :
void verifie_valeurs_cl() override
const Domaine_VEF & domaine_vef() const override
Definition Champ_Q1NC.h:37
int fixer_nb_valeurs_nodales(int n) override
classe Cond_lim_base Classe de base pour la hierarchie des classes qui representent les differentes c...
virtual Frontiere_dis_base & frontiere_dis()
Renvoie la frontiere discretisee a laquelle les conditions aux limites s'appliquent.
static void verifier(const char *const msg, double)
Definition Debog.cpp:21
virtual void creer_tableau_elements(Array_base &, RESIZE_OPTIONS opt=RESIZE_OPTIONS::COPY_INIT) const
creation d'un tableau parallele de valeurs aux elements.
Definition Domaine.cpp:851
classe Domaine_Cl_dis_base Les objets Domaine_Cl_dis_base representent les conditions aux limites
int nb_cond_lim() const
Renvoie le nombre de conditions aux limites.
const Cond_lim & les_conditions_limites(int) const
Renvoie la i-ieme condition aux limites.
class Domaine_VEF
Definition Domaine_VEF.h:54
int nb_faces() const
renvoie le nombre global de faces.
Definition Domaine_VF.h:471
const MD_Vector & md_vector_faces() const
Definition Domaine_VF.h:158
virtual double face_normales(int face, int comp) const
Definition Domaine_VF.h:47
double volumes(int i) const
Definition Domaine_VF.h:113
int premiere_face_int() const
une face est interne ssi elle separe deux elements.
Definition Domaine_VF.h:463
int face_voisins(int num_face, int i) const
renvoie l'element voisin de numface dans la direction i.
Definition Domaine_VF.h:418
const Domaine & domaine() const
Class defining operators and methods for all reading operation in an input flow (file,...
Definition Entree.h:42
virtual const Champ_Inc_base & inconnue() const =0
virtual Domaine_Cl_dis_base & domaine_Cl_dis()
Renvoie le domaine des conditions aux limite discretisee associee a l'equation.
const Nom & le_nom() const override
Renvoie le nom du champ.
virtual int nb_comp() const
Definition Field_base.h:56
class Front_VF
Definition Front_VF.h:36
int nb_faces() const
Definition Front_VF.h:53
int num_premiere_face() const
Definition Front_VF.h:63
classe Frontiere_dis_base Classe representant une frontiere discretisee.
: Cette classe est un OWN_PTR mais l'objet pointe est partage entre plusieurs
Definition MD_Vector.h:48
const Equation_base & equation() const
Renvoie la reference sur l'equation pointe par MorEqn::mon_equation.
Definition MorEqn.h:62
static int dimension
Definition Objet_U.h:99
const Nom & que_suis_je() const
renvoie la chaine identifiant la classe.
Definition Objet_U.cpp:104
virtual Entree & readOn(Entree &)
Lecture d'un Objet_U sur un flot d'entree Methode a surcharger.
Definition Objet_U.cpp:293
virtual Sortie & printOn(Sortie &) const
Ecriture de l'objet sur un flot de sortie Methode a surcharger.
Definition Objet_U.cpp:282
classe Periodique Cette classe represente une condition aux limites periodique.
Definition Periodique.h:31
int face_associee(int i) const
Definition Periodique.h:35
Classe de base des flux de sortie.
Definition Sortie.h:52
_SIZE_ dimension(int d) const
Definition TRUSTTab.tpp:133
virtual void echange_espace_virtuel(IsExchangeBlocking exchange_type=IsExchangeBlocking::DefaultBlocking, const std::string kernel_name="noname")