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arXiv · hep-ph/9701363

Dynamical fragmentation of flux tubes in the Friedberg-Lee model

Abstract

We present two novel dynamical features of flux tubes in the Friedberg-Lee model. First the fusion of two (anti-)parallel flux tubes, where we extract a string-string interaction potential which has a qualitative similarity to the nucleon-nucleon potential in the Friedberg-Lee model obtained by Koepf et al. Furthermore we show the dynamical breakup of flux tubes via $q\bar{q}-$particle production and the disintegration into mesons. We find, as a shortcoming of the present realization of the model, that the full dynamical transport approach presented in a previous publication fails to provide the disintegration mechanism in the semiclassical limit. Therefore, in addition, we present here a molecular dynamical approach for the motion of the quarks and show, as a first application, the space-time development of the quarks and their mean-fields for Lund-type string fragmentation processes.

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BibTeXRIS

S. Loh, C. Greiner, U. Mosel, M. H. Thoma. 1997-01-24. Dynamical fragmentation of flux tubes in the Friedberg-Lee model. https://doi.org/10.1016/s0375-9474(97)00142-5

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