Freeze-out volume in multifragmentation - dynamical simulations
arXiv:nucl-ex/0503004 · doi:10.1140/epja/i2005-10106-3
Abstract
Stochastic mean-field simulations for multifragmenting sources at the same excitation energy per nucleon have been performed. The freeze-out volume, a concept which needs to be precisely defined in this dynamical approach, was shown to increase as a function of three parameters: freeze-out instant, fragment multiplicity and system size.
Submitted to Eur. Phys. J. A - march 2005
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Cited by in corpus (11)
- Nuclear multifragmentation and phase transition for hot nuclei
- Correlations and Characterization of Emitting Sources
- Multifragmentation of very heavy nuclear systems (III): fragment velocity correlations and event topology at freeze-out
- Thermodynamic properties and shear viscosity over entropy density ratio of nuclear fireball in a quantum-molecular dynamics model
- Estimate of average freeze-out volume in multifragmentation events
- Statistical analysis of a dynamical multifragmentation path
- Source shape determination with directional fragment-fragment velocity correlations
- Break-up fragments excitation and the freeze-out volume
- Fragment isospin distributions and the phase diagram of excited nuclear systems
- Break-up stage restoration in multifragmentation reactions
- Break-up fragment topology in statistical multifragmentation models