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Improvements of microscopic transport models stimulated by spallation data for incident energies from 113 to 15000 MeV Umm Al-Qura University and King Abdul- Aziz city for science and Technology, Saudi Arabia . * CERN Khaled Abdel-Waged, Nuha Felemban, and V.V. Uzhinskii *
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Umm Al-Qura University and King Abdul-Aziz city for science and Technology, Saudi Arabia.

Feb 23, 2016

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Khaled Abdel-Waged, Nuha Felemban , and V.V. Uzhinskii *. Improvements of microscopic transport models stimulated by spallation data for incident energies from 113 to 15000 MeV. Umm Al-Qura University and King Abdul-Aziz city for science and Technology, Saudi Arabia. * CERN. UrQMD. - PowerPoint PPT Presentation
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Page 1: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Improvements of microscopic transport models stimulated by spallation data for incident energies

from 113 to 15000 MeV

Umm Al-Qura University and King Abdul-Aziz city for science and Technology, Saudi Arabia.

*CERN

Khaled Abdel-Waged, Nuha Felemban, and V.V. Uzhinskii*

Page 2: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

UrQMDContents

1

2

3

Comparison of the (INC, BUU, QMD) transport models with Spallation data.

Improvements in the dynamical contents of the UrQMD model are presented

Confrontation of the UrQMD calculations with the spallation data in the energy range from 113 to 15000 MeV

Page 3: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Figure 1: Schematic view of the spallation and intranuclear cascade processes.

Page 4: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Microscopic transport models used for the description of spallation process.

Static (time independent) Mean Field Models: Intranuclear Cascade (INC) Dynamical Mean Field models: Boltzmann Uehling Uehlenbek (BUU) (Time dependent average of the nucleon density:

over (200-500) “test” particles are used in Simulation)

Quantum Molecular Dynamics (QMD) (Time dependent sum of 2 and 3-nucleon interaction

densities of all (projectile and target) nucleons)

Page 5: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

The second “de-excitation” stage of the interaction is described by:

Evaporation model

Generalized Evaporation model

Statistical Multifragmentation model

Page 6: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Spallation Data SATURNE (2002): p+Al, Fe, Zr, W, Pb and Th at 1.2 GeV p+Fe and Pb at 0.8 and 1.6 GeV PISA Collaboration (2007): (p +Au at 1.2, 1.9 and 2.5 GeV) HARP collaboration (2009) (Various targets at 3, 5, 8, 12 and15 GeV/c)

Page 7: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Fig.2Different INC models versus

data of p(800 MeV)+ Pb (left) and Fe (right)

Phys. Rev. C 65, 044621 (2002)

Page 8: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Fig.3Different INC models versus

data of p(1600 MeV)+ Pb (left) and Fe (right)

Phys. Rev. C 65, 044621 (2002)

Page 9: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Fig.4J. Cugnon

Phys. Rev. C 66, 044615 (2002)

Modified Cascade versus data

Page 10: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Fig.6JQMD, Phys. Rev. C 52, 2620

(1995); Phys. Rev. C79, 014614 (2009).

JAERI QMD model versus data

Page 11: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Fig.7

PISAPhys. Rev. C 76,014618 (2007)

Giessen BUU versus data of p(2.5 GeV)+Au

Page 12: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

UrQMD model Prog. Part. Nucl. Phys. 41, 225-370 (1998)

Page 13: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

UrQMD model

• Mean field potential (similar to QMD) applied to nucleons at E< 5 GeV.

• Collision term is similar to RQMD.• Resonances are produced at < 5 GeV for baryon-

baryon and 3 GeV for meson-meson and meson-baryon reactions: 55 baryon and 32 meson states can be created with masses up to 2.25 GeV.

• Color strings are formed and they decay into hadrons according to the Lund string model.

• All of these hadrons can propagate and re-interact in phase space.

Page 14: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Standard UrQMD versus data

Fig.8Khaled Abdel-Waged

Phys.Rev.C 67,064610(2003)

Page 15: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Main improvements of UrQMD code

A clusterization procedure followed by an afterburner.

1 Medium modified angular distributions for Reactions.

2

Introduction of a proper initial ground state.3

NNN

Page 16: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

0.0

0.5

1.0

1.5

2.0

2.5

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0.5

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1.0 0.5 0.0 -0.5 -1.0 1.0 0.5 0.0 -0.5 -1.0

Medium NN-elasticp+n n+p

(c)

0.5 GeV 0.8 GeV 1.2 GeV

1/N

[dN

/dco

s()

]

Medium NN-inelasticN+N N+N+

(d)

0.5 GeV 0.8 GeV 1.2 GeV

cos()cos()

Cugnonp+n n+p

(a)

1/N

[dN

/dco

s()

]

CugnonN+N N+N+

(b)

Fig.9

The angular distributions of neutrons evaluated at different laboratory energies for (left panels) and (right panels). (a) and (b) are the results calculated by the free Cugnon parametrizations, while (c) and (d) are those calculated by medium parameterizations.

npnp NNNN

Page 17: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Fig.10

Kh. Abdel-Waged

Phys. Rev. C 70,014605 (2004)

Page 18: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Fig.11 Time evolution of (left panel) binding energy and (right panel) root mean square radius of the ground state of studied interactions computed by ImUrQMD (solid circles). The lines are the best fit to the results.

7.0

7.5

8.0

8.5

9.0

9.5

10.0

0

1

2

3

4

5

(a)

r r.m.s(fm

)

Al

Zr

(b)

-Ebi

nd(M

eV/n

ucle

on) Al

0123456

r r.m.s(fm

)

Fe

8.0

8.5

9.0

9.5

10.0

-Ebi

nd(M

eV/n

ucle

on)

Fe

0 20 40 60 80 1000123456

r r.m.s(fm

)

t(fm/c)

Zr

0 20 40 60 80 1007.0

7.5

8.0

8.5

9.0

9.5

10.0

-Ebi

nd(M

eV/n

ucle

on)

t(fm/c)

Page 19: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

50 100 150 2000

1

2

3

4

5

6

ImUrQMD liquid dropr rm

s (fm

)

A

Fig.12

The root mean square radii for the ground state of selected nuclei from to as calculated by ImUrQMD. The experimental data are the Bethe-Weizsacker values.

Be9 Pb208

Page 20: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Fig.13 Kh. Abdel-Waged,Phys. Rev. C 74, 034601 (2006)

Page 21: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Fig.14 Kh. Abdel-Waged, J. of Phys. G 34, 883 (2007)

Page 22: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Fig.15 Kh. Abdel-Waged et al.,,Phys. Rev. C 81, 014605 (2010)

Page 23: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Fig.16 Kh. Abdel-Waged et al.,, Phys. Rev. C 81, 014605(2010)

Page 24: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Fig.17UrQMD calculations with frictional

cooling

Page 25: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Fig.18 Improved UrQMD calculations in potential mode

Page 26: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

HARP-CDP data comparisons(3-15 GeV/c)

UrQMD calculations in cascade mode

Page 27: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Fig.19

Page 28: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Fig.20

Page 29: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Fig.21

Page 30: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Fig.22

Page 31: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Fig.23

Page 32: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Fig.24

Page 33: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Fig.25

Page 34: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Fig.26

Page 35: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Fig.27

Page 36: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

Fig.28

UrQMD calculations in cascade mode HARP-CDP, CERN-PH-

EP/2010-017

Page 37: Umm Al-Qura  University and King Abdul-Aziz city for science and Technology,  Saudi  Arabia.

1

A clusterization algorithm at the end of the fast stage of the cascade process.

UrQMD is a powerful tool for investigating spallation data in the incident energy range from 113 to 15000 MeV. However, several features should be taken into account before comparison with spallation data. These features are:

CONCLUSIONS

An afterburner mechanism .

2

The UrQMD should be run in the potential mode for E< =3000 GeV.

3

4

UrQMD

Medium modification of the angular distributions of the scattered nucleons.

NNN

5 The UrQMD (in cascade mode) calculations show the same trend as the HARP-CDP data for the inclusive cross sections of proton-production by protons beam in the energy range 3- 15 GeV