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Pre-equilibrium effects of the hot nuclei de-excitation via GDR emission - theoretical approach

Authors :
M. Ciemala
M. Kmiecik
A. Maj
K. Mazurek
Denis Lacroix
Institut de Physique Nucléaire d'Orsay (IPNO)
Université Paris-Sud - Paris 11 (UP11)-Institut National de Physique Nucléaire et de Physique des Particules du CNRS (IN2P3)-Centre National de la Recherche Scientifique (CNRS)
Institut de Physique Nucléaire d'Orsay ( IPNO )
Université Paris-Sud - Paris 11 ( UP11 ) -Institut National de Physique Nucléaire et de Physique des Particules du CNRS ( IN2P3 ) -Centre National de la Recherche Scientifique ( CNRS )
Source :
Acta Phys.Polon.Supp., 24th Nuclear Physics Workshop “Marie and Pierre Curie”, 24th Nuclear Physics Workshop “Marie and Pierre Curie”, Sep 2017, Kazimierz Dolny, Poland. pp.109-115, ⟨10.5506/APhysPolBSupp.11.109⟩, 24th Nuclear Physics Workshop “Marie and Pierre Curie”, Sep 2017, Kazimierz Dolny, Poland. Acta Phys.Polon.Supp., 11, pp.109-115, 2018, 〈10.5506/APhysPolBSupp.11.109〉
Publication Year :
2017
Publisher :
HAL CCSD, 2017.

Abstract

The hot rotating nuclei could be formed in the complete and incomplete fusion reaction of two heavy ions. At low bombarding energies the reaction goes via compound nucleus formation and subsequent evaporation of charged particles, neutrons and $\gamma$-rays. However, with increasing the energy of the projectile, the emission of particles during the equilibration process becomes more and more probable. This effect can be estimated by the Heavy-Ion Phase-Space Exploration (HIPSE) code which describes the production of clusters of various size from nucleons initially in the target or projectile. This dynamic evolution finalizes with the compound nuclei, quasi-fission or multi-fragmentation products. The hot rotating nuclei produced in fusion reaction can de-excitate by evaporation of particles and emission of $\gamma$-rays from the Giant Dipole Resonance, or by fission into two fragments. These processes, evaporation and fission, are described within statistical codes such as GEMINI++ or in dynamical approaches by solving the transport equations of Langevin type. In the present article we will concentrate on the possible effect of the pre-equilibrium emission on the strength function of the effective Giant Dipole Resonance, which can be described within Thermal Shape Fluctuation Model (TSFM) approach.<br />Comment: 7 pages, 5 figures, Presented at XXIV Nuclear Physics Workshop, 20-24 September 2017, Kazimierz Dolny, Poland

Details

Language :
English
Database :
OpenAIRE
Journal :
Acta Phys.Polon.Supp., 24th Nuclear Physics Workshop “Marie and Pierre Curie”, 24th Nuclear Physics Workshop “Marie and Pierre Curie”, Sep 2017, Kazimierz Dolny, Poland. pp.109-115, ⟨10.5506/APhysPolBSupp.11.109⟩, 24th Nuclear Physics Workshop “Marie and Pierre Curie”, Sep 2017, Kazimierz Dolny, Poland. Acta Phys.Polon.Supp., 11, pp.109-115, 2018, 〈10.5506/APhysPolBSupp.11.109〉
Accession number :
edsair.doi.dedup.....d04284aa7a371e7d9bc9f02c82232d54
Full Text :
https://doi.org/10.5506/APhysPolBSupp.11.109⟩