/[PAMELA software]/DarthVader/TrackerLevel2/src/F77/grkuta.f
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Annotation of /DarthVader/TrackerLevel2/src/F77/grkuta.f

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Revision 1.1.1.1 - (hide annotations) (download) (vendor branch)
Fri May 19 13:15:55 2006 UTC (18 years, 6 months ago) by mocchiut
Branch: DarthVader
CVS Tags: v0r01, start
Changes since 1.1: +0 -0 lines
Imported sources

1 mocchiut 1.1 **********************************************************************
2     *
3     *
4     * routine per tracciare la particella di uno STEP
5     *
6     SUBROUTINE GRKUTA (CHARGE,STEP,VECT,VOUT)
7     C.
8     C. ******************************************************************
9     C. * *
10     C. * Runge-Kutta method for tracking a particle through a magnetic *
11     C. * field. Uses Nystroem algorithm (See Handbook Nat. Bur. of *
12     C. * Standards, procedure 25.5.20) *
13     C. * *
14     C. * Input parameters *
15     C. * CHARGE Particle charge *
16     C. * STEP Step size *
17     C. * VECT Initial co-ords,direction cosines,momentum *
18     C. * Output parameters *
19     C. * VOUT Output co-ords,direction cosines,momentum *
20     C. * User routine called *
21     C. * CALL GUFLD(X,F) *
22     C. * *
23     C. * ==>Called by : <USER>, GUSWIM *
24     C. * Authors R.Brun, M.Hansroul ********* *
25     C. * V.Perevoztchikov (CUT STEP implementation) *
26     C. * *
27     C. * *
28     C. ******************************************************************
29     C.
30     IMPLICIT DOUBLE PRECISION(A-H,O-Z)
31     *
32     REAL VVV(3),FFF(3)
33     REAL*8 CHARGE, STEP, VECT(*), VOUT(*), F(4)
34     REAL*8 XYZT(3), XYZ(3), X, Y, Z, XT, YT, ZT
35     DIMENSION SECXS(4),SECYS(4),SECZS(4),HXP(3)
36     EQUIVALENCE (X,XYZ(1)),(Y,XYZ(2)),(Z,XYZ(3)),
37     + (XT,XYZT(1)),(YT,XYZT(2)),(ZT,XYZT(3))
38     *
39     PARAMETER (MAXIT = 1992, MAXCUT = 11)
40     PARAMETER (EC=2.9979251D-4,DLT=1D-4,DLT32=DLT/32)
41     PARAMETER (ZERO=0, ONE=1, TWO=2, THREE=3)
42     PARAMETER (THIRD=ONE/THREE, HALF=ONE/TWO)
43     PARAMETER (PISQUA=.986960440109D+01)
44     PARAMETER (IX=1,IY=2,IZ=3,IPX=4,IPY=5,IPZ=6)
45    
46     *.
47     *. ------------------------------------------------------------------
48     *.
49     * This constant is for units CM,GEV/C and KGAUSS
50     *
51     ITER = 0
52     NCUT = 0
53     DO 10 J=1,7
54     VOUT(J)=VECT(J)
55     10 CONTINUE
56     PINV = EC * CHARGE / VECT(7)
57     TL = 0.
58     H = STEP
59     *
60     *
61     20 REST = STEP-TL
62     IF (DABS(H).GT.DABS(REST)) H = REST
63     DO I=1,3
64     VVV(I)=SNGL(VOUT(I))
65     ENDDO
66    
67     CALL GUFLD(VVV,FFF)
68     * print*,'GRKUTA Bx,By,Bz: ',(FFF(i),i=1,3)
69     DO I=1,3
70     F(I)=DBLE(FFF(I))
71     ENDDO
72     *
73     * Start of integration
74     *
75     X = VOUT(1)
76     Y = VOUT(2)
77     Z = VOUT(3)
78     A = VOUT(4)
79     B = VOUT(5)
80     C = VOUT(6)
81     *
82     H2 = HALF * H
83     H4 = HALF * H2
84     PH = PINV * H
85     PH2 = HALF * PH
86     SECXS(1) = (B * F(3) - C * F(2)) * PH2
87     SECYS(1) = (C * F(1) - A * F(3)) * PH2
88     SECZS(1) = (A * F(2) - B * F(1)) * PH2
89     ANG2 = (SECXS(1)**2 + SECYS(1)**2 + SECZS(1)**2)
90     IF (ANG2.GT.PISQUA) GO TO 40
91     DXT = H2 * A + H4 * SECXS(1)
92     DYT = H2 * B + H4 * SECYS(1)
93     DZT = H2 * C + H4 * SECZS(1)
94     XT = X + DXT
95     YT = Y + DYT
96     ZT = Z + DZT
97     *
98     * Second intermediate point
99     *
100     EST = DABS(DXT)+DABS(DYT)+DABS(DZT)
101     IF (EST.GT.H) GO TO 30
102    
103     DO I=1,3
104     VVV(I)=SNGL(XYZT(I))
105     ENDDO
106     CALL GUFLD(VVV,FFF)
107     DO I=1,3
108     F(I)=DBLE(FFF(I))
109     ENDDO
110     C CALL GUFLD(XYZT,F)
111     AT = A + SECXS(1)
112     BT = B + SECYS(1)
113     CT = C + SECZS(1)
114     *
115     SECXS(2) = (BT * F(3) - CT * F(2)) * PH2
116     SECYS(2) = (CT * F(1) - AT * F(3)) * PH2
117     SECZS(2) = (AT * F(2) - BT * F(1)) * PH2
118     AT = A + SECXS(2)
119     BT = B + SECYS(2)
120     CT = C + SECZS(2)
121     SECXS(3) = (BT * F(3) - CT * F(2)) * PH2
122     SECYS(3) = (CT * F(1) - AT * F(3)) * PH2
123     SECZS(3) = (AT * F(2) - BT * F(1)) * PH2
124     DXT = H * (A + SECXS(3))
125     DYT = H * (B + SECYS(3))
126     DZT = H * (C + SECZS(3))
127     XT = X + DXT
128     YT = Y + DYT
129     ZT = Z + DZT
130     AT = A + TWO*SECXS(3)
131     BT = B + TWO*SECYS(3)
132     CT = C + TWO*SECZS(3)
133     *
134     EST = ABS(DXT)+ABS(DYT)+ABS(DZT)
135     IF (EST.GT.2.*ABS(H)) GO TO 30
136    
137     DO I=1,3
138     VVV(I)=SNGL(XYZT(I))
139     ENDDO
140     CALL GUFLD(VVV,FFF)
141     DO I=1,3
142     F(I)=DBLE(FFF(I))
143     ENDDO
144     C CALL GUFLD(XYZT,F)
145     *
146     Z = Z + (C + (SECZS(1) + SECZS(2) + SECZS(3)) * THIRD) * H
147     Y = Y + (B + (SECYS(1) + SECYS(2) + SECYS(3)) * THIRD) * H
148     X = X + (A + (SECXS(1) + SECXS(2) + SECXS(3)) * THIRD) * H
149     *
150     SECXS(4) = (BT*F(3) - CT*F(2))* PH2
151     SECYS(4) = (CT*F(1) - AT*F(3))* PH2
152     SECZS(4) = (AT*F(2) - BT*F(1))* PH2
153     A = A+(SECXS(1)+SECXS(4)+TWO * (SECXS(2)+SECXS(3))) * THIRD
154     B = B+(SECYS(1)+SECYS(4)+TWO * (SECYS(2)+SECYS(3))) * THIRD
155     C = C+(SECZS(1)+SECZS(4)+TWO * (SECZS(2)+SECZS(3))) * THIRD
156     *
157     EST = ABS(SECXS(1)+SECXS(4) - (SECXS(2)+SECXS(3)))
158     ++ ABS(SECYS(1)+SECYS(4) - (SECYS(2)+SECYS(3)))
159     ++ ABS(SECZS(1)+SECZS(4) - (SECZS(2)+SECZS(3)))
160     *
161     IF (EST.GT.DLT .AND. ABS(H).GT.1.E-4) GO TO 30
162     ITER = ITER + 1
163     NCUT = 0
164     * If too many iterations, go to HELIX
165     IF (ITER.GT.MAXIT) GO TO 40
166     *
167     TL = TL + H
168     IF (EST.LT.(DLT32)) THEN
169     H = H*TWO
170     ENDIF
171     CBA = ONE/ SQRT(A*A + B*B + C*C)
172     VOUT(1) = X
173     VOUT(2) = Y
174     VOUT(3) = Z
175     VOUT(4) = CBA*A
176     VOUT(5) = CBA*B
177     VOUT(6) = CBA*C
178     REST = STEP - TL
179     IF (STEP.LT.0.) REST = -REST
180     IF (REST .GT. 1.E-5*DABS(STEP)) GO TO 20
181     *
182     GO TO 999
183     *
184     ** CUT STEP
185     30 NCUT = NCUT + 1
186     * If too many cuts , go to HELIX
187     IF (NCUT.GT.MAXCUT) GO TO 40
188     H = H*HALF
189     GO TO 20
190     *
191     ** ANGLE TOO BIG, USE HELIX
192     40 F1 = F(1)
193     F2 = F(2)
194     F3 = F(3)
195     F4 = DSQRT(F1**2+F2**2+F3**2)
196     RHO = -F4*PINV
197     TET = RHO * STEP
198     IF(TET.NE.0.) THEN
199     HNORM = ONE/F4
200     F1 = F1*HNORM
201     F2 = F2*HNORM
202     F3 = F3*HNORM
203     *
204     HXP(1) = F2*VECT(IPZ) - F3*VECT(IPY)
205     HXP(2) = F3*VECT(IPX) - F1*VECT(IPZ)
206     HXP(3) = F1*VECT(IPY) - F2*VECT(IPX)
207    
208     HP = F1*VECT(IPX) + F2*VECT(IPY) + F3*VECT(IPZ)
209     *
210     RHO1 = ONE/RHO
211     SINT = DSIN(TET)
212     COST = TWO*DSIN(HALF*TET)**2
213     *
214     G1 = SINT*RHO1
215     G2 = COST*RHO1
216     G3 = (TET-SINT) * HP*RHO1
217     G4 = -COST
218     G5 = SINT
219     G6 = COST * HP
220    
221     VOUT(IX) = VECT(IX) + (G1*VECT(IPX) + G2*HXP(1) + G3*F1)
222     VOUT(IY) = VECT(IY) + (G1*VECT(IPY) + G2*HXP(2) + G3*F2)
223     VOUT(IZ) = VECT(IZ) + (G1*VECT(IPZ) + G2*HXP(3) + G3*F3)
224    
225     VOUT(IPX) = VECT(IPX) + (G4*VECT(IPX) + G5*HXP(1) + G6*F1)
226     VOUT(IPY) = VECT(IPY) + (G4*VECT(IPY) + G5*HXP(2) + G6*F2)
227     VOUT(IPZ) = VECT(IPZ) + (G4*VECT(IPZ) + G5*HXP(3) + G6*F3)
228     *
229     ELSE
230     VOUT(IX) = VECT(IX) + STEP*VECT(IPX)
231     VOUT(IY) = VECT(IY) + STEP*VECT(IPY)
232     VOUT(IZ) = VECT(IZ) + STEP*VECT(IPZ)
233     *
234     ENDIF
235     *
236     999 END
237     *
238     *
239    
240    
241    
242     **********************************************************************
243     *
244     * gives the value of the magnetic field in the tracking point
245     *
246     **********************************************************************
247    
248     subroutine gufld(v,f) !coordinates in cm, B field in kGauss
249    
250     real v(3),f(3) !coordinates in cm, B field in kGauss, error in kGauss
251    
252     real*8 vv(3),ff(3) !inter_B.f works in double precision
253    
254    
255     do i=1,3
256     vv(i)=v(i)/100. !inter_B.f works in meters
257     enddo
258     c inter_B: coordinates in m, B field in Tesla
259     call inter_B(vv(1),vv(2),vv(3),ff)
260     do i=1,3 !change back the field in kGauss
261     f(i)=ff(i)*10.
262     enddo
263    
264     return
265     end
266    

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