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Numerical Modeling of Isochoric Heating Experiments Using the Troll Code in the Warm Dense Matter Regime

  • Sébastien Rassou
  • , Marie Bonneau
  • , Christophe Rousseaux
  • , Xavier Vaisseau
  • , Witold Cayzac
  • , Adrien Denoeud
  • , Frédéric Perez
  • , Tom Beaumont
  • , Morris Demoulins
  • , Jean Christophe Pain
  • CEA/UVSQ/CNRS
  • Université Paris-Saclay
  • LULI

Research output: Contribution to journalArticlepeer-review

1 Citation (Scopus)

Abstract

Experiments of isochoric heating by protons of solid material were recently performed at LULI laser facilities. In these experiments, protons, produced from target normal sheath acceleration (TNSA) of Au foil with the PICO2000 laser, deposit their energy into an aluminum or copper foil initially at room temperature and solid density. The heated material reaches the warm dense matter regime with temperature in the rear face of the material between 1 and 5 eV. The temperature is inferred by streaked optical pyrometry and the proton beam is characterized by Thomson parabola. The high-energy protons produced by TNSA are modeled to deduce the initial proton distribution before the slowing down in the target. Hydrodynamic radiative simulations were next performed using the Troll code in multidimensional geometry. In the Troll code, the heating of protons is modeled with a Monte Carlo transport module of charged particles and the calculation of the energy deposited by the protons in the matter is performed using stopping power formulas like Srim functions. The results of simulations with the Troll code are compared with the experimental results. An acceptable agreement between experiment and simulation is found for the temperature at the rear of the material using Sesame equation of state and Srim stopping power for protons in aluminum.

Original languageEnglish
Article numbere70030
JournalContributions to Plasma Physics
Volume65
Issue number8-9
DOIs
Publication statusPublished - 1 Oct 2025
Externally publishedYes

Keywords

  • proton transport
  • stopping power
  • streaked optical pyrometry
  • target normal sheath acceleration

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