TRUST 1.9.8
HPC thermohydraulic platform
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Eval_Conv_VDF_tools.cpp
1/****************************************************************************
2* Copyright (c) 2022, CEA
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15
16#include <Eval_Conv_VDF_tools.h>
17
18// quick pour un champ face
19double Eval_Conv_VDF_tools::conv_quick_sharp_plus_impl(const double psc,const double vit_0, const double vit_1,
20 const double vit_0_0, const double dx,
21 const double dm, const double dxam) const
22{
23 double cf, curv, delta_0 = vit_0 - vit_0_0, delta = vit_1 - vit_0, dd1,utc, delta_delta;
24 curv = (delta/dx - delta_0/dxam)/dm ;
25 // Calcul de cf:
26 delta_delta = delta_0+delta;
27 dd1 = std::fabs(delta_delta);
28 if (dd1 < 1.e-5) cf = 0.125;
29 else
30 {
31 utc = delta_0/delta_delta;
32 cf = sharp2(utc);
33 }
34 return (0.5*(vit_0 + vit_1) - cf*(dx*dx)*curv)*psc;
35}
36
37// quick pour un champ face
38double Eval_Conv_VDF_tools::conv_quick_sharp_moins_impl(const double psc,const double vit_0,const double vit_1,
39 const double vit_1_1,const double dx,
40 const double dm,const double dxam) const
41{
42 double cf, curv, delta_1 = vit_1_1 - vit_1, delta = vit_1 - vit_0, dd1,utc, delta_delta;
43 curv = ( delta_1/dxam - delta/dx )/dm ;
44 // Calcul de cf:
45 delta_delta = delta_1+delta;
46 dd1 = std::fabs(delta_delta);
47 if (dd1 < 1.e-5) cf = 0.125;
48 else
49 {
50 utc = delta_1/delta_delta;
51 cf = sharp2(utc);
52 }
53 return (0.5*(vit_0 + vit_1) - cf*(dx*dx)*curv)*psc;
54}
55
56int Eval_Conv_VDF_tools::face_amont_conj_axi_impl(int num_face, int k, int i, int dimension,
57 const IntTab& face_voisins, const IntTab& elem_faces,
58 const IntVect& orientation) const
59{
60 int ori = orientation(num_face), elem1 = face_voisins(num_face,1);
61 int face,elem_bis = -2, face_conj = -1 ;
62
63 if(elem1 != -1)
64 {
65 face = elem_faces(elem1, k+i*dimension);
66 elem_bis = face_voisins(face,i);
67 if (elem_bis != -1) face_conj = elem_faces(elem_bis, ori);
68 else face_conj = -1;
69 }
70 if ((elem1==-1) || (elem_bis==-1))
71 {
72 elem1 = face_voisins(num_face,0);
73 if(elem1 != -1)
74 {
75 face = elem_faces(elem1, k+i*dimension);
76 elem_bis = face_voisins(face,i);
77 assert(elem_bis!=-2);
78 if (elem_bis != -1) face_conj = elem_faces(elem_bis, ori);
79 else face_conj = -1;
80 }
81 }
82 return face_conj;
83}
84
85double Eval_Conv_VDF_tools::dist_face_axi_impl(int n1, int n2, int k, const DoubleTab& xv) const
86{
87 double d_teta , dist ;
88 if (k != 1) dist = xv(n2,k) - xv(n1,k);
89 else
90 {
91 d_teta = xv(n2,1) - xv(n1,1);
92 if (d_teta < 0) d_teta += 2.0*M_PI;
93 if (d_teta > M_PI) d_teta -= M_PI ;
94 dist = d_teta*xv(n1,0);
95 }
96 return dist ;
97}
98
99double Eval_Conv_VDF_tools::dist_elem_axi_impl(int n1, int n2, int k, const DoubleTab& xp) const
100{
101 double d_teta, dist ;
102 if (k != 1) dist = xp(n2,k)-xp(n1,k) ;
103 else
104 {
105 d_teta = xp(n2,1) - xp(n1,1);
106 if (d_teta < 0) d_teta += 2.0*M_PI;
107 dist = d_teta * xp(n1,0);
108 }
109 return dist ;
110}
111
112// Calcul des coefficients g1,g2,g3,g4 a partir de dxam,dx,dxav
113void Eval_Conv_VDF_tools::calcul_g_impl(const double dxam, const double dx, const double dxav, double& g1, double& g2, double& g3, double& g4) const
114{
115 g1 = -dx*dx*(dx/2+dxav)/(4*(dx+dxam+dxav)*(dx+dxam)*dxam);
116 g2 = (dx+2*dxam)*(dx+2*dxav)/(8*dxam*(dx+dxav));
117 g3 = (dx+2*dxam)*(dx+2*dxav)/(8*dxav*(dx+dxam));
118 g4 = -dx*dx*(dx/2+dxam)/(4*(dx+dxam+dxav)*dxav*(dx+dxav));
119}
int face_amont_conj_axi_impl(int, int, int, int, const IntTab &, const IntTab &, const IntVect &) const
double dist_elem_axi_impl(int, int, int, const DoubleTab &) const
double conv_quick_sharp_moins_impl(const double, const double, const double, const double, const double, const double, const double) const
double conv_quick_sharp_plus_impl(const double, const double, const double, const double, const double, const double, const double) const
double dist_face_axi_impl(int, int, int, const DoubleTab &) const
void calcul_g_impl(const double, const double, const double, double &, double &, double &, double &) const