Numerical simulations presently provide the most promising approach to the study of quantum chromodynamics in the nonperturbative regime. The theoretical framework for these studies is described, and the computing resources necessary to carry out calculations are discussed. Results are presented fro
Condensate Structure of the Vacuum of Quantum Chromodynamics
โ Scribed by Dr. J. Herrmann
- Publisher
- John Wiley and Sons
- Year
- 1987
- Tongue
- English
- Weight
- 280 KB
- Volume
- 499
- Category
- Article
- ISSN
- 0003-3804
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โฆ Synopsis
The non-perturbative vacuum structure of quantum chi-omodynemics (QCD) is studied with the help of methods which are generalizations of those used to describe conc1enc;ztion effects and quasi-particles in superfluid and superconductive mediums. The gliio:i condensation is explained by the introduction of a new vacuum state defuied by a Bogoljubov transform.ition, leading to non-vanishing vacuum expectation values n s e.g. the gluon condenmtJion pariuneter, a negative vacuum energy density, and to a gap in the energy spectrum which is connected with excited quasi-particle sta,tes with a rest mass.
Kondensatstruktur des Vakuums in der Quanterichromody~~amik
I n ha 1 t s u ber si c h t. Die nichtstiirungstheoretisclie Vakuumstruktur der Qwntenchromodynamik (QCD) wird mit Hilfe von verallgeineinerten Xethoden untersucht, die zur Besclweibung von Kondensationseffekten und Quasi-Teilchen in superfluiden und supraleitenden Xedien benutzt
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