| [819] | 1 | //
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| 2 | // ********************************************************************
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| 3 | // * License and Disclaimer *
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| 4 | // * *
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| 5 | // * The Geant4 software is copyright of the Copyright Holders of *
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| 6 | // * the Geant4 Collaboration. It is provided under the terms and *
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| 7 | // * conditions of the Geant4 Software License, included in the file *
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| 8 | // * LICENSE and available at http://cern.ch/geant4/license . These *
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| 9 | // * include a list of copyright holders. *
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| 10 | // * *
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| 11 | // * Neither the authors of this software system, nor their employing *
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| 12 | // * institutes,nor the agencies providing financial support for this *
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| 13 | // * work make any representation or warranty, express or implied, *
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| 14 | // * regarding this software system or assume any liability for its *
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| 15 | // * use. Please see the license in the file LICENSE and URL above *
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| 16 | // * for the full disclaimer and the limitation of liability. *
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| 17 | // * *
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| 18 | // * This code implementation is the result of the scientific and *
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| 19 | // * technical work of the GEANT4 collaboration. *
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| 20 | // * By using, copying, modifying or distributing the software (or *
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| 21 | // * any work based on the software) you agree to acknowledge its *
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| 22 | // * use in resulting scientific publications, and indicate your *
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| 23 | // * acceptance of all terms of the Geant4 Software license. *
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| 24 | // ********************************************************************
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| 25 | //
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| 26 | //
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| 27 | #ifndef G4ProjectileFragmentCrossSection_h
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| 28 | #define G4ProjectileFragmentCrossSection_h 1
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| 29 |
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| 30 | #include <cmath>
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| 31 | #include <iostream>
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| 32 |
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| 33 | // Implements Physical Review C61, 034607 (2000)
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| 34 | // Rewrite starting from EPAX Version 2
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| 35 |
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| 36 | class G4ProjectileFragmentCrossSection
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| 37 | {
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| 38 | public:
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| 39 | G4ProjectileFragmentCrossSection()
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| 40 | {
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| 41 | p_S[1] = -2.38; // scale factor for xsect in barn
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| 42 | p_S[2] = 0.27;
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| 43 |
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| 44 | p_P[1] = -2.5840E+00; // slope of mass yield curve
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| 45 | p_P[2] = -7.5700E-03;
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| 46 |
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| 47 | p_Delta[1] = -1.0870E+00; // centroid rel. to beta-stability
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| 48 | p_Delta[2] = +3.0470E-02;
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| 49 | p_Delta[3] = +2.1353E-04;
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| 50 | p_Delta[4] = +7.1350E+01;
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| 51 |
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| 52 | p_R[1] = +0.885E+00; // width parameter R
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| 53 | p_R[2] = -9.8160E-03;
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| 54 |
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| 55 | p_Un[1] = 1.65; // slope par. n-rich ride of Z distr.
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| 56 |
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| 57 | p_Up[1] = 1.7880; // slope par. p-rich ride of Z distr.
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| 58 | p_Up[2] = +4.7210E-03;
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| 59 | p_Up[3] = -1.3030E-05;
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| 60 |
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| 61 | p_mn[1] = 0.400; // memory effect n-rich projectiles
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| 62 | p_mn[2] = 0.600;
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| 63 |
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| 64 | p_mp[1] = -10.25; // memory effect p-rich projectiles
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| 65 | p_mp[2] = +10.1;
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| 66 |
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| 67 | corr_d[1] = -25.0; // correction close to proj.: centroid dzp
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| 68 | corr_d[2] = 0.800;
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| 69 | corr_r[1] = +20.0; // correction close to proj.: width R
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| 70 | corr_r[2] = 0.820;
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| 71 | corr_y[1] = 200.0; // correction close to proj.: Yield_a
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| 72 | corr_y[2] = 0.90;
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| 73 | }
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| 74 |
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| 75 | inline G4double doit(G4double Ap, G4double Zp, G4double At, G4double Zt, G4double A, G4double Z)
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| 76 | {
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| 77 | // calculate mass yield
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| 78 | G4double Ap13 = std::pow(Ap, 1./3.);
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| 79 | G4double At13 = std::pow(At, 1./3.);
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| 80 | G4double S = p_S[2] * (At13 + Ap13 + p_S[1]);
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| 81 | // cout << "debug0 "<<S<<" "<<At13<<" "<<Ap13<<" "<<p_S[1]<<" "<<p_S[2]<<endl;
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| 82 | G4double p = std::exp(p_P[2]*Ap + p_P[1]);
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| 83 | G4double yield_a = p * S * std::exp(-p * (Ap - A));
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| 84 | cout << "debug1 "<<yield_a<<endl;
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| 85 | // modification close to projectile
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| 86 | G4double f_mod_y=1.0;
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| 87 | if (A/Ap > corr_y[2])
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| 88 | {
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| 89 | f_mod_y=corr_y[1]*std::pow(A/Ap-corr_y[2], 2) + 1.0;
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| 90 | }
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| 91 | yield_a= yield_a * f_mod_y;
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| 92 | cout << "debug1 "<<yield_a<<endl;
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| 93 |
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| 94 | // calculate maximum of charge dispersion zprob
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| 95 | G4double zbeta = A/(1.98+0.0155*std::pow(A, (2./3.)));
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| 96 | G4double zbeta_p = Ap/(1.98+0.0155*std::pow(Ap, (2./3.)));
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| 97 | G4double delta;
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| 98 | if(A > p_Delta[4])
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| 99 | {
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| 100 | delta = p_Delta[1] + p_Delta[2]*A;
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| 101 | }
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| 102 | else
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| 103 | {
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| 104 | delta = p_Delta[3]*A*A;
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| 105 | }
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| 106 |
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| 107 | // modification close to projectile
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| 108 | G4double f_mod=1.0;
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| 109 | if(A/Ap > corr_d[2])
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| 110 | {
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| 111 | f_mod = corr_d[1]*std::pow(A/Ap-corr_d[2], 2) + 1.0;
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| 112 | }
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| 113 | delta = delta*f_mod;
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| 114 | G4double zprob = zbeta+delta;
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| 115 |
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| 116 | // correction for proton- and neutron-rich projectiles
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| 117 | G4double dq;
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| 118 | if((Zp-zbeta_p)>0)
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| 119 | {
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| 120 | dq = std::exp(p_mp[1] + G4double(A)/G4double(Ap)*p_mp[2]);
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| 121 | cout << "dq "<<A<<" "<<Ap<<" "<<p_mp[1]
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| 122 | <<" "<<p_mp[2]<<" "<<dq<<" "<<p_mp[1] + A/Ap*p_mp[2]<<endl;
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| 123 | }
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| 124 | else
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| 125 | {
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| 126 | dq = p_mn[1]*std::pow(A/Ap, 2.0) + p_mn[2]*std::pow(A/Ap, 4.0);
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| 127 | }
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| 128 | zprob = zprob + dq * (Zp-zbeta_p);
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| 129 |
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| 130 | // small corr. since Xe-129 and Pb-208 are not on Z_beta line
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| 131 | zprob = zprob + 0.0020*A;
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| 132 | cout <<"zprob "<<A<<" "<<dq<<" "<<Zp<<" "<<zbeta_p
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| 133 | <<" "<<zbeta<<" "<<delta<<endl;
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| 134 |
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| 135 | // calculate width parameter R
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| 136 | G4double r = std::exp(p_R[1] + p_R[2]*A);
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| 137 |
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| 138 | // modification close to projectile
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| 139 | f_mod=1.0;
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| 140 | if (A/Ap > corr_r[2])
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| 141 | {
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| 142 | f_mod = corr_r[1]*Ap*std::pow(A/Ap-corr_r[2], 4.0)+1.0;
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| 143 | }
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| 144 | r = r*f_mod;
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| 145 |
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| 146 | // change width according to dev. from beta-stability
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| 147 | if ((Zp-zbeta_p) < 0.0)
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| 148 | {
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| 149 | r=r*(1.0-0.0833*std::abs(Zp-zbeta_p));
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| 150 | }
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| 151 |
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| 152 | // calculate slope parameters u_n, u_p
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| 153 | G4double u_n = p_Un[1];
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| 154 | G4double u_p = p_Up[1] + p_Up[2]*A + p_Up[3]*A*A;
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| 155 |
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| 156 | // calculate charge dispersion
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| 157 | G4double expo, fract;
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| 158 | if((zprob-Z) > 0)
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| 159 | {
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| 160 | // neutron-rich
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| 161 | expo = -r*std::pow(std::abs(zprob-Z), u_n);
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| 162 | fract = std::exp(expo)*std::sqrt(r/3.14159);
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| 163 | }
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| 164 | else
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| 165 | {
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| 166 | // proton-rich
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| 167 | expo = -r*std::pow(std::abs(zprob-Z), u_p);
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| 168 | fract = std::exp(expo)*std::sqrt(r/3.14159);
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| 169 | cout << "1 "<<expo<<" "<<r<<" "<<zprob<<" "<<Z<<" "<<u_p<<endl;
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| 170 | // go to exponential slope
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| 171 | G4double dfdz = 1.2 + 0.647*std::pow(A/2.,0.3);
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| 172 | G4double z_exp = zprob + dfdz * std::log(10.) / (2.*r);
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| 173 | if( Z>z_exp )
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| 174 | {
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| 175 | expo = -r*std::pow(std::abs(zprob-z_exp), u_p);
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| 176 | fract = std::exp(expo)*std::sqrt(r/3.14159)
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| 177 | / std::pow(std::pow(10, dfdz), Z-z_exp);
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| 178 | }
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| 179 | }
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| 180 |
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| 181 | cout << "debug "<<fract<<" "<<yield_a<<endl;
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| 182 | G4double epaxv2=fract*yield_a;
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| 183 | return epaxv2;
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| 184 | }
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| 185 |
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| 186 | void testMe()
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| 187 | {
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| 188 | G4ProjectileFragmentCrossSection i;
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| 189 | cout << i.doit(58, 28, 9, 4, 49, 28) << endl;
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| 190 | // Sigma = 9.800163E-13 b
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| 191 | }
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| 192 | private:
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| 193 | G4double p_S[3];
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| 194 | G4double p_P[3];
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| 195 | G4double p_Delta[5];
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| 196 | G4double p_R[3];
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| 197 | G4double p_Un[2];
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| 198 | G4double p_Up[4];
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| 199 | G4double p_mn[3];
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| 200 | G4double p_mp[3];
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| 201 | G4double corr_d[3];
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| 202 | G4double corr_r[3];
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| 203 | G4double corr_y[3];
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| 204 | };
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| 205 | #endif
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