116
J. Aichelin et al.
Fig. 9.5 v 1 for for central
collisions as a function of
y/y 0 for cluster of different
size and for the three EOS
for central Au+Au collision
at E beam = 1.5 AGeV. y 0 is
the projectile rapidity in the
center of mass system
Acknowledgements We thank W. Cassing and C. Hartnack for fruitful discussions. We acknowledge support by the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation), by
the Russian Science Foundation grant 19-42-04101, by the GSI-IN2P3 agreement under contract
number 13-70 and by the COST Action THOR, CA15213. This work has been supported from the
European Unions Horizon 2020 research programe under grant agreement No 824093.
References
1. U. Heinz, O. Evdokimov, P. Jacobs, (eds.), the proceedings of the 26th international conference
on ultra-relativistic nucleus-nucleus collisions: quark matter. Nucl. Phys. A 961, 1 (2017)
2. S. Borsanyi, Z. Fodor, C. Hoelbling, S.D. Katz, S. Krieg, K.K. Szabo, Full result for the QCD
equation of state with 2+1 flavors. Phys. Lett. B 730, 99–104 (2014)
3. A. Bazavov et al., [Hot QCD Collaboration], Equation of state in (2+1)-flavor QCD. Phys. Rev.
D 90, 094503 (2014)
4. M. Asakawa, K. Yazaki, Chiral restoration at finite density and temperature. Nucl. Phys. A
504, 668–684 (1989)
5. M.A. Stephanov, QCD phase diagram and the critical point. Prog. Theor. Phys. Suppl. 153,
139–156 (2004)
6. J. Aichelin, E. Bratkovskaya, A. Le Fèvre, V. Kireyeu, V. Kolesnikov, Y. Leifels, V. Voronyuk,
Parton-Hadron-Quantum-Molecular Dynamics (PHQMD)—novel microscopic N-body transport approach for heavy-Ion collisions, dynamical cluster formation and hypernuclei production
(2019). arXiv:1907.03860 [nucl-th]
7. J. Aichelin, Quantum molecular dynamics: a dynamical microscopic n body approach to investigate fragment formation and the nuclear equation of state in heavy ion collisions. Phys. Rep.
202, 233–360 (1991)
8. J. Aichelin, A. Bohnet, G. Peilert, H. Stoecker, W. Greiner, A. Rosenhauer, Quantum molecular dynamics approach to heavy ion collisions: description of the model, comparison with
fragmentation data, and the mechanism of fragment formation. Phys. Rev. C 37, 2451 (1988)
9. C. Hartnack, R.K. Puri, J. Aichelin, J. Konopka, S.A. Bass, H. Stoecker, W. Greiner, Modeling
the many body dynamics of heavy ion collisions: present status and future perspective. Eur.
Phys. J. A 1, 151–169 (1998)
10. W. Cassing, E.L. Bratkovskaya, Parton transport and hadronization from the dynamical quasiparticle point of view. Phys. Rev. C 78, 034919 (2008)
J. Aichelin et al.
Fig. 9.5 v 1 for for central
collisions as a function of
y/y 0 for cluster of different
size and for the three EOS
for central Au+Au collision
at E beam = 1.5 AGeV. y 0 is
the projectile rapidity in the
center of mass system
Acknowledgements We thank W. Cassing and C. Hartnack for fruitful discussions. We acknowledge support by the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation), by
the Russian Science Foundation grant 19-42-04101, by the GSI-IN2P3 agreement under contract
number 13-70 and by the COST Action THOR, CA15213. This work has been supported from the
European Unions Horizon 2020 research programe under grant agreement No 824093.
References
1. U. Heinz, O. Evdokimov, P. Jacobs, (eds.), the proceedings of the 26th international conference
on ultra-relativistic nucleus-nucleus collisions: quark matter. Nucl. Phys. A 961, 1 (2017)
2. S. Borsanyi, Z. Fodor, C. Hoelbling, S.D. Katz, S. Krieg, K.K. Szabo, Full result for the QCD
equation of state with 2+1 flavors. Phys. Lett. B 730, 99–104 (2014)
3. A. Bazavov et al., [Hot QCD Collaboration], Equation of state in (2+1)-flavor QCD. Phys. Rev.
D 90, 094503 (2014)
4. M. Asakawa, K. Yazaki, Chiral restoration at finite density and temperature. Nucl. Phys. A
504, 668–684 (1989)
5. M.A. Stephanov, QCD phase diagram and the critical point. Prog. Theor. Phys. Suppl. 153,
139–156 (2004)
6. J. Aichelin, E. Bratkovskaya, A. Le Fèvre, V. Kireyeu, V. Kolesnikov, Y. Leifels, V. Voronyuk,
Parton-Hadron-Quantum-Molecular Dynamics (PHQMD)—novel microscopic N-body transport approach for heavy-Ion collisions, dynamical cluster formation and hypernuclei production
(2019). arXiv:1907.03860 [nucl-th]
7. J. Aichelin, Quantum molecular dynamics: a dynamical microscopic n body approach to investigate fragment formation and the nuclear equation of state in heavy ion collisions. Phys. Rep.
202, 233–360 (1991)
8. J. Aichelin, A. Bohnet, G. Peilert, H. Stoecker, W. Greiner, A. Rosenhauer, Quantum molecular dynamics approach to heavy ion collisions: description of the model, comparison with
fragmentation data, and the mechanism of fragment formation. Phys. Rev. C 37, 2451 (1988)
9. C. Hartnack, R.K. Puri, J. Aichelin, J. Konopka, S.A. Bass, H. Stoecker, W. Greiner, Modeling
the many body dynamics of heavy ion collisions: present status and future perspective. Eur.
Phys. J. A 1, 151–169 (1998)
10. W. Cassing, E.L. Bratkovskaya, Parton transport and hadronization from the dynamical quasiparticle point of view. Phys. Rev. C 78, 034919 (2008)
