Strangeness from hadronic processes
Y. Pang, T. J. Schlagel, S. Kahana, D. E. Kahana
Abstract
Y. Pang, T. J. Schlagel, S. Kahana, D. E. Kahana
Abstract
Large amounts of experimental data on strangeness production in nucleon‐nucleon and in pion‐nucleon collisions, and data on hadronic scattering of strange particles, make it possible to calculate, with accuracy, the hadronic contribution to the strangeness production in nucleus‐nucleus reactions. The relativistic cascade model ARC, relying on the experimental measurements of elementary hadron‐hadron interactions, successfully predicted many single particle spectra in Au+Au collisions at BNL‐AGS, including those of strange mesons K±.
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Large amounts of experimental data on strangeness production in nucleon‐nucleon and in pion‐nucleon collisions, and data on hadronic scattering of strange particles, make it possible to calculate, with accuracy, the hadronic contribution to the strangeness production in nucleus‐nucleus reactions. The relativistic cascade model ARC, relying on the experimental measurements of elementary hadron‐hadron interactions, successfully predicted many single particle spectra in Au+Au collisions at BNL‐AGS, including those of strange mesons K±.
Key concepts: Physics, Hadron, Strangeness, Strangeness production, Particle physics, Nuclear physics, Pion, Cascade