Linear Energy Density and the Flux of an Electric Field in Proca Tubes
Abstract
:1. Introduction
2. Non-Abelian-SU(3)-Proca-Higgs Theory
3. Proca Tube with the Flux of the Electric Field
- When the linear energy and momentum densities ;
- When the linear energy and momentum densities ;
- When the linear energy and momentum densities ;
- When the linear energy and momentum densities .
4. Proca Tubes with the Momentum Density
4.1. Abelian Proca Tubes
- the linear energy, , and momentum, , densities depend weakly on the coupling constant of the Higgs scalar field ;
- when the quantities ;
- when the quantities .
4.2. Non-Abelian Proca Tubes
- the linear momentum density depends weakly on , which is the value of the potential on the tube axis;
- the linear energy density for ;
- the linear momentum density for ;
- as .
5. Conclusions
- For the tube with the flux of a color electric Proca field directed along the tube axis, we have studied the dependence of the linear energy density and of the flux of such a field on the values of the components and on the tube axis;
- For the tube with the energy flux (and thus with the momentum directed along the tube axis), we have examined the dependence of the linear energy and momentum densities on the values of the components and on the tube axis;
- The existence of the aforementioned tube solutions depends crucially on the presence of the Higgs scalar field singlet (there are no such solutions without this field);
- The tube solutions obtained are topologically trivial, in contrast to the Nielsen–Olesen solution [1] carrying a topological charge;
- The solution with the color longitudinal electric field demonstrates the dual Meissner effect: the electric field is pushed out by the Higgs scalar field.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Dzhunushaliev, V.; Folomeev, V.; Tlemisov, A. Linear Energy Density and the Flux of an Electric Field in Proca Tubes. Symmetry 2021, 13, 640. https://doi.org/10.3390/sym13040640
Dzhunushaliev V, Folomeev V, Tlemisov A. Linear Energy Density and the Flux of an Electric Field in Proca Tubes. Symmetry. 2021; 13(4):640. https://doi.org/10.3390/sym13040640
Chicago/Turabian StyleDzhunushaliev, Vladimir, Vladimir Folomeev, and Abylaikhan Tlemisov. 2021. "Linear Energy Density and the Flux of an Electric Field in Proca Tubes" Symmetry 13, no. 4: 640. https://doi.org/10.3390/sym13040640
APA StyleDzhunushaliev, V., Folomeev, V., & Tlemisov, A. (2021). Linear Energy Density and the Flux of an Electric Field in Proca Tubes. Symmetry, 13(4), 640. https://doi.org/10.3390/sym13040640