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arXiv · hep-ph/0206005

Prompt Multi-Gluon Production in High Energy Collisions from Singular Yang-Mills Solutions

Abstract

We study non-perturbative parton-parton scattering in the Landau method using singular O(3) symmetric solutions to the Euclidean Yang-Mills equations. These solutions combine instanton dynamics (tunneling) and overlap (transition) between incoming and vacuum fields. We derive a high-energy solution at small Euclidean times, and assess its susequent escape and decay into gluons in Minkowski space-time. We describe the spectrum of the {\it outgoing} gluons and show that it is related through a particular rescaling to the Yang-Mills sphaleron explosion studied earlier. We assess the number of {\it incoming} gluons in the same configuration, and argue that the observed scaling is in fact more general and describes the energy dependence of the spectra and multiplicities at {\it all} energies. Applications to hadron-hadron and nucleus-nucleus collisions are discussed elsewhere.

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BibTeXRIS

Romuald A. Janik, Edward Shuryak, Ismail Zahed. 2002-06-03. Prompt Multi-Gluon Production in High Energy Collisions from Singular Yang-Mills Solutions. https://doi.org/10.1103/physrevd.67.014005

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