PaperPanorama

Nuclear Experiment·nucl-ex

Wed·Nov 15, 2023

2 papers0 primary·2 cross-listed·reconstructed*

  1. 01*

    Light Nuclei Production in Au+Au Collisions at 3 GeV within Thermodynamical Approach: Bulk Properties and Collective Flow

    M. Kozhevnikova🇷🇺 · Yu. B. Ivanov🇷🇺

    We present results of simulations of light-nuclei production in Au+Au collisions at collision energy of 3 GeV within updated Three-fluid Hydrodynamics-based Event Simulator Extended by UrQMD (Ultra-relativistic Quantum Molecular Dynamics) final State interactions (THESEUS). The results are compared with recent STAR data. The light-nuclei production is treated within the thermodynamical approach on equal basis with hadrons. The only additional parameter related to the light nuclei is the energy density of late freeze-out that imitates afterburner stage of the collision because the light nuclei do not participate in the UrQMD evolution. It is found that the late freeze-out is preferable for deuterons, tritons, and He. Remarkably, the He observables are better reproduced with the standard freeze-out. This suggests that the He nuclei better survive in the afterburner stage because they are more spatially compact and tightly bound objects. This is an argument in favor of dynamical treatment of light nuclei. The simulations indicate that the collision dynamics is determined by the hadronic phase. The calculated results reveal not perfect but a good reproduction of the data on bulk observables and directed flow. The elliptic flow turns out to be more intricate.

    nucl-thhep-phnucl-exPRC(2024)·9 citations
  2. 02*

    Secondary beams at high-intensity electron accelerator facilities

    Marco Battaglieri🇮🇹 · Andrea Bianconi🇮🇹 · Mariangela Bondí🇮🇹 · Raffaella De Vita🇮🇹 · Antonino Fulci🇮🇹 · Giulia Gosta🇮🇹 · Stefano Grazzi🇮🇹 · Hyon-Suk Jo🇰🇷 · Changhui Lee🇰🇷 · Giuseppe Mandaglio🇮🇹 · Valerio Mascagna🇮🇹 · Tetiana Nagorna🇮🇹 and 5 other authors

    The interaction of a high-current (100~\textmu A), medium energy (10\,GeV) electron beam with a thick target (1m) produces an overwhelming shower of standard matter particles in addition to hypothetical Light Dark Matter particles. While most of the radiation (gamma, electron/positron, and neutron) is contained in the thick target, deep penetrating particles (muons, neutrinos, and light dark matter particles) propagate over a long distance, producing high-intense secondary beams. Using sophisticated Monte Carlo simulations based on FLUKA and GEANT4, we explored the characteristics of secondary muons and neutrinos and (hypothetical) dark scalar particles produced by the interaction of Jefferson Lab 11 GeV intense electron beam with the experimental Hall-A beam dump. Considering the possible beam energy upgrade, this study was repeated for a 20 GeV CEBAF beam.

    physics.acc-phhep-exnucl-exInstruments(2024)·6 citations

* Reconstructed cohort: no mailing for this day survives in the archive. Papers are grouped by their submission times and arXiv's announcement cut-off, assuming announcement without delay; positions follow identifier order. Validated at ~91% exact-day agreement against the archived era.