High Energy Particle Physics

2608 Submissions

[5] viXra:2608.0097 [pdf] submitted on 2026-08-26 21:54:00

Exact Expression for Relativistic Kinetic Energy

Authors: Rafael Cañete Mesa
Comments: 3 Pages.

In this paper, we will demonstrate that relativistic kinetic energy follows an expression that is just as precise as the non-relativistic one, that one is related to the other, and that a corpuscular topology can be derived from it.
Category: High Energy Particle Physics

[4] viXra:2608.0088 [pdf] submitted on 2026-08-26 11:52:02

New Static Solutions of Yang-Mills Equations for n Point Sources and Their Implications for Quark Confinement

Authors: Junghwan Jun
Comments: 14 Pages. Please post next to the accompanying manuscript

We present new static solutions of SU(2) Yang-Mills equations for $n$ point sources aligned in a common isospin direction. The solutions possess a gauge field structure analogous to the BPST instanton while constituting a distinct class of static solutions, and satisfy the Coulomb gauge condition. They are either self dual or anti-self dual. Substitution of the solutions into the Yang-Mills equations yields localized source terms corresponding to a non-Abelian electric charge but also a magnetic monopole charge associated with each source. Furthermore, the resulting gauge fields generate a confining potential for quarks. These properties suggest that the present solutions provide a new class of nonperturbative configurations in Yang-Mills theory.
Category: High Energy Particle Physics

[3] viXra:2608.0087 [pdf] submitted on 2026-08-26 20:29:37

Dirac Equation for $qbar{q}$ in a SU(2) Confining Potential

Authors: Junghwan Jun
Comments: 23 Pages.

A Dirac equation for the $qbar{q}$ system is formulated in the presence of the confining potential derived from a static solution of the SU(2) Yang-Mills equations. The resulting radial equations define an eigenvalue problem with singular behavior at $r=0$ and $r=ho$, leading to a discrete spectrum of confined states.The system reduces to four sets of coupled radial equations for each of quark and antiquark components, which do not appear to admit closed-form solutions in terms of standard special functions. An approximate treatment is therefore developed to determine the corresponding energy spectrum. The calculated bound-state energies are found to be largely insensitive to the current quark masses and are of the same order as the observed meson masses, suggesting that the dominant contribution to the meson masses originates from the confining dynamics described by the present Yang-Mills solution. The quark and antiquark spectra exhibit an asymmetry associated with the gauge orientation of the underlying monopole-like configuration, although the individual energy eigenvalues are not gauge invariant observables.
Category: High Energy Particle Physics

[2] viXra:2608.0019 [pdf] submitted on 2026-08-06 09:11:46

Fields as Extra Dimensions

Authors: Gerald Vones
Comments: Title page not included in number of pages

It is argued that the known physical fields themselves can be comprehended as extra dimensions attached to spacetime. This is achieved by copying the basic structure of Special Relativity related to objects, and pasting it at the level of fields. The role of the conversion factor played by the velocity of light there is played by Newtons constant here. This leads to a permutation of the roles of established concepts.
Category: High Energy Particle Physics

[1] viXra:2608.0017 [pdf] submitted on 2026-08-04 20:53:23

A Path to Knots Formation in an Adaptive Medium, where Cohort Formation with Kickback Cascades Lead the Way

Authors: Michel Van de Gaer
Comments: 4 Pages. (Note by viXra Admin: Please submit article written with AI assistance to ai.viXra.org)

This note proposes a path toward knot-like organized structure in an Adaptive Medium (AM): a recursively adapting field whose local state responds to both external drive and its own neighbourhood. Within that Medium, microscopicvibrational degrees of freedom can phase-lock on steep density slopes into compact, particle-like cohorts. Cohort emission leaves a local vacancy; that vacancy is filled by vacancy backfillfrom the cell behind the shot (opposite the emission direction). Backfill steepens the upstream face, so emission regenerates andthe active lip retreats into remaining dense fuel—a kickback cascade—until a weaker valley brakes the process. Cohorts, wakes, and cascades are presented as the dynamical bridge from a continuous Adaptive Medium toward string- and knotlike organization. The account is conceptual and illustrated by interactive GPU simulations; it is not offered as a closed continuum theorem.
Category: High Energy Particle Physics