In a one-pion plus one-kaon exchange model, we calculate the kaon production
cross sections in nucleon-nucleon, nucleon-delta and delta-delta interactions.
We find that this model describes reasonably well the experimental data on kaon
production in the proton-proton interaction. Near the kaon production
threshold, the cross section obtained from this model is smaller than that from
the linear parameterization of Randrup and Ko. For kaon production cross
sections from the nucleon-delta and delta-delta interactions, the cross
sections are singular in free space, so we calculate them in a nuclear medium
by including the (complex) pion self-energy. The results are compared with the
scaling ansatz of Randrup and Ko. The theoretical cross sections are then used
in a transport model to study kaon production from Au+Au collisions at 1
GeV/nucleon.Comment: 24 pages, RevTeX,14 figures available from gqli@comp.tamu.ed
Dilepton production in proton-and nucleus-induced reactions at SPS energies is studied in the relativistic transport model using initial conditions determined by the string dynamics from RQMD. It is found that both the CERES and HELIOS-3 data for dilepton spectra in proton-nucleus reactions can be well described by the conventional mechanism of Dalitz decay and direct vector meson decay. However, to provide a quantitative explanation of the observed dilepton spectra in central S+Au and S+W collisions requires contributions other than these direct decays. Introducing a decrease of vector meson masses in hot dense medium, we find that these heavy-ion data can also be satisfactorily explained. We also give predictions for Pb+Au collisions at 160 GeV/nucleon using current CERES mass resolution and acceptance.
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