summaryrefslogtreecommitdiff
path: root/Dragon/src/SYBUP1.f
blob: 2173378337d005a6da2972107d4ac5d887966997 (plain)
1
2
3
4
5
6
7
8
9
10
11
12
13
14
15
16
17
18
19
20
21
22
23
24
25
26
27
28
29
30
31
32
33
34
35
36
37
38
39
40
41
42
43
44
45
46
47
48
49
50
51
52
53
54
55
56
57
58
59
60
61
62
63
64
65
66
67
68
69
70
71
72
73
74
75
76
77
78
79
80
81
82
83
84
85
86
87
88
89
90
91
92
93
94
95
96
97
98
99
100
101
102
103
104
105
106
107
108
109
110
111
112
113
114
115
116
117
118
119
120
121
122
123
124
125
126
127
128
129
130
131
132
133
134
135
136
137
138
139
140
141
142
143
144
145
146
147
148
149
150
151
152
153
154
155
156
157
158
159
160
161
162
163
164
165
166
167
168
169
170
171
172
173
174
175
176
177
178
179
180
181
182
183
184
185
186
187
188
189
190
191
192
193
194
195
196
197
198
199
200
201
202
203
204
205
206
207
208
209
210
211
212
213
214
215
216
217
218
219
220
221
222
223
224
225
226
227
*DECK SYBUP1
      SUBROUTINE SYBUP1(ZZR,ZZI,NSURF,NREG,SIGT,TRONC,A,B,IMPX,VOL,PIJ,
     1 PIS,PSS)
*
*-----------------------------------------------------------------------
*
*Purpose:
* Compute the one-group collision, DP-1 leakage and DP-1 transmission
* probabilities in a Cartesian or hexagonal non-sectorized cell.
*
*Copyright:
* Copyright (C) 2008 Ecole Polytechnique de Montreal
* This library is free software; you can redistribute it and/or
* modify it under the terms of the GNU Lesser General Public
* License as published by the Free Software Foundation; either
* version 2.1 of the License, or (at your option) any later version
*
*Author(s): A. Hebert
*
*Parameters: input
* ZZR     real tracking elements.
* ZZI     integer tracking elements.
* NSURF   number of surfaces (4 or 6).
* NREG    number of regions.
* SIGT    total macroscopic cross section.
* TRONC   voided block criterion.
* A       Cartesian dimension of the cell along the X axis or side of
*         the hexagon.
* B       Cartesian dimension of the cell along the Y axis.
* IMPX    print flag.
*
*Parameters: output
* VOL     volumes.
* PIJ     cellwise reduced collision probability matrices.
* PIS     cellwise reduced escape probability matrices.
* PSS     cellwise reduced transmission probability matrices.
*         PSS(i,j) is the probability from surface i to surface j.
*
*-----------------------------------------------------------------------
*
*----
*  SUBROUTINE ARGUMENTS
*----
      INTEGER   ZZI(*),NSURF,NREG,IMPX
      REAL      ZZR(*),SIGT(NREG),TRONC,A,B,VOL(NREG),PIJ(NREG,NREG),
     1          PIS(NREG,3*NSURF),PSS(3*NSURF,3*NSURF)
*----
*  LOCAL VARIABLES
*----
      PARAMETER (SIGVID=1.0E-10,NCURR=3)
      REAL      SURF(6)
      REAL, ALLOCATABLE, DIMENSION(:) :: G,PIJS
      LOGICAL, ALLOCATABLE, DIMENSION(:) :: LGFULL
*----
*  INLINE FUNCTIONS
*----
      INDPOS(I,J)=MAX(I,J)*(MAX(I,J)-1)/2+MIN(I,J)
*----
*  SCRATCH STORAGE ALLOCATION
*----
      ALLOCATE(G(NREG+6),LGFULL(NREG))
*----
*  CHECK FOR VOIDED REGIONS
*----
      DO 10 IR=1,NREG
      VOL(IR)=ZZR(IR)
      IF(VOL(IR).GT.0.) THEN
         DR=SQRT(VOL(IR))
      ELSE
         DR=0.0
      ENDIF
      LGFULL(IR)=(SIGT(IR)*DR).GT.TRONC
      IF(SIGT(IR).LE.SIGVID) SIGT(IR)=SIGVID
   10 CONTINUE
*----
*  COMPUTE SYMMETRIZED CP MATRIX
*----
      IOFI=ZZI(1)
      IOFR=ZZI(2)
      ICARE=ZZI(3)
      MNA=ZZI(4)
      ALLOCATE(PIJS((NREG+NSURF)*(NREG+NSURF+1)/2))
      CALL SYBUQV(ZZR(IOFR),ZZI(IOFI),NSURF,NREG,SIGT,MNA,LGFULL,PIJS)
*----
*  APPLY SYMMETRIES
*----
      IF(NSURF.EQ.4) THEN
         SURF(1)=0.25*B
         SURF(2)=0.25*B
         SURF(3)=0.25*A
         SURF(4)=0.25*A
      ELSE
         DO 20 JC=1,6
         SURF(JC)=0.25*A
   20    CONTINUE
      ENDIF
      DO 30 I=1,NSURF
      G(I)=SURF(I)
   30 CONTINUE
      IF(ICARE.EQ.1) THEN
*        RECTANGULAR CELL.
         PIJS(2)=2.0*PIJS(2)
         PIJS(5)=0.5*PIJS(5)
         PIJS(9)=2.0*PIJS(9)
         PIJS(4)=PIJS(5)
         PIJS(7)=PIJS(5)
         PIJS(8)=PIJS(5)
         IOF=11
         DO 50 I=1,NREG
         G(4+I)=SIGT(I)*VOL(I)
         SUM1=PIJS(IOF)+PIJS(IOF+1)
         SUM2=PIJS(IOF+2)+PIJS(IOF+3)
         PIJS(IOF)=SUM1
         PIJS(IOF+1)=SUM1
         PIJS(IOF+2)=SUM2
         PIJS(IOF+3)=SUM2
         DO 40 J=4,3+I
         PIJS(IOF+J)=2.0*PIJS(IOF+J)
   40    CONTINUE
         IOF=IOF+4+I
   50    CONTINUE
      ELSE IF(ICARE.EQ.2) THEN
*        SQUARE CELL.
         PIJS(9)=2.0*PIJS(9)
         PIJS(2)=PIJS(9)
         PIJS(4)=PIJS(5)
         PIJS(7)=PIJS(5)
         PIJS(8)=PIJS(5)
         IOF=11
         DO 80 I=1,NREG
         G(4+I)=SIGT(I)*VOL(I)
         SUM=PIJS(IOF)+PIJS(IOF+1)+PIJS(IOF+2)+PIJS(IOF+3)
         DO 60 J=0,3
         PIJS(IOF+J)=SUM
   60    CONTINUE
         DO 70 J=4,3+I
         PIJS(IOF+J)=4.0*PIJS(IOF+J)
   70    CONTINUE
         IOF=IOF+4+I
   80    CONTINUE
      ELSE IF(ICARE.EQ.3) THEN
*        HEXAGONAL CELL.
         PIJS(12)=2.0*PIJS(12)
         PIJS(7)=PIJS(12)
         PIJS(18)=PIJS(12)
         PIJS(2)=PIJS(20)
         PIJS(5)=PIJS(20)
         PIJS(9)=PIJS(20)
         PIJS(14)=PIJS(20)
         PIJS(16)=PIJS(20)
         PIJS(4)=PIJS(11)
         PIJS(8)=PIJS(11)
         PIJS(13)=PIJS(11)
         PIJS(17)=PIJS(11)
         PIJS(19)=PIJS(11)
         IOF=22
         DO 120 I=1,NREG
         G(6+I)=SIGT(I)*VOL(I)
         SUM=0.0
         DO 90 J=0,5
         SUM=SUM+PIJS(IOF+J)
   90    CONTINUE
         DO 100 J=0,5
         PIJS(IOF+J)=SUM
  100    CONTINUE
         DO 110 J=6,5+I
         PIJS(IOF+J)=6.0*PIJS(IOF+J)
  110    CONTINUE
         IOF=IOF+6+I
  120    CONTINUE
      ENDIF
*----
*  FIRST APPLY THE ORTHONORMALIZATION FACTOR
*----
      DO 130 I=1,(NSURF+NREG)*(NSURF+NREG+1)/2
      PIJS(I)=PIJS(I)*ZZR(IOFR)*ZZR(IOFR)
  130 CONTINUE
*----
*  PERFORM A DP-1 PIS AND PSS CALCULATION USING THE TRACKING
*----
      IF(NSURF.EQ.4) THEN
         CALL SYBRN2(NREG,NSURF,A,B,ZZR(IOFR),ZZI(3),ZZR(1),SIGT,TRONC,
     1   PIS,PSS)
      ELSE IF(NSURF.EQ.6) THEN
         CALL SYBHN2(NREG,NSURF,A,ZZR(IOFR),ZZI(3),ZZR(1),SIGT,TRONC,
     1   PIS,PSS)
      ENDIF
*----
*  VILLARINO-STAMM'LER NORMALIZATION
*----
      CALL SYBRHL(IMPX,NSURF,NREG,G,PIJS)
      DO 160 IR=1,NREG
      DO 150 IS=1,NSURF
      ZNOR=G(IS)+G(NSURF+IR)
      DO 140 IH=1,3
      ISS=(IS-1)*3+IH
      PIS(IR,ISS)=ZNOR*PIS(IR,ISS)
  140 CONTINUE
  150 CONTINUE
  160 CONTINUE
      DO 200 IS=1,NSURF
      DO 190 JS=1,NSURF
      ZNOR=G(IS)+G(JS)
      DO 180 IH=1,3
      ISS=(IS-1)*3+IH
      DO 170 JH=1,3
      JSS=(JS-1)*3+JH
      PSS(ISS,JSS)=ZNOR*PSS(ISS,JSS)
  170 CONTINUE
  180 CONTINUE
  190 CONTINUE
  200 CONTINUE
*----
*  LOAD THE EURYDICE CP ARRAY
*----
      DO 220 I=1,NREG
      DO 210 J=1,NREG
      PIJ(I,J)=PIJS(INDPOS(NSURF+I,NSURF+J))/(VOL(I)*SIGT(I)*SIGT(J))
  210 CONTINUE
  220 CONTINUE
      DEALLOCATE(PIJS)
*----
*  SCRATCH STORAGE DEALLOCATION
*----
      DEALLOCATE(LGFULL,G)
      RETURN
      END