Simulations show that a new time-of-flight neutron detector with 121 scintillator cells per layer and two layout options can identify and reconstruct neutrons from Bi+Bi collisions at 3A GeV with about 70% purity and roughly 1e9 events per month.
Elliptic Flow: Transition from out-of-plane to in-plane Emission in Au + Au Collisions
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abstract
We have measured the proton elliptic flow excitation function for the Au + Au system spanning the beam energy range 2 -- 8 AGeV. The excitation function shows a transition from negative to positive elliptic flow at a beam energy, $E_{tr} \sim$ 4 AGeV. Detailed comparisons with calculations from a relativistic Boltzmann-equation are presented. The comparisons suggest a softening of the nuclear equation of state (EOS) from a stiff form (K \sim 380 MeV) at low beam energies (E_{Beam} \le 2 AGeV) to a softer form (K \sim 210 MeV) at higher energies (E_{Beam} \ge $ 4 AGeV) where the calculated baryon density $ \rho \sim 4 \rho_0$.
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The Highly-Granular Time-of-Flight Neutron Detector for the BM@N experiment
Simulations show that a new time-of-flight neutron detector with 121 scintillator cells per layer and two layout options can identify and reconstruct neutrons from Bi+Bi collisions at 3A GeV with about 70% purity and roughly 1e9 events per month.