High-order Field Theory and Weak Euler-Lagrange-Barut Equation for Classical Relativistic Particle-Field Systems
Peifeng Fan, Qiang Chen, Jianyuan Xiao

TL;DR
This paper develops a covariant geometric field theory for classical relativistic particle-field systems, introducing a weak Euler-Lagrange-Barut equation to derive conservation laws from symmetries despite the complexities of mass-shell constraints and heterogeneous manifolds.
Contribution
It introduces a novel weak Euler-Lagrange-Barut equation and a covariant framework to systematically derive conservation laws in classical relativistic particle-field systems.
Findings
Established a covariant geometric field theory for relativistic systems.
Developed a weak ELB equation to handle constraints and manifold heterogeneity.
Enabled systematic derivation of conservation laws from symmetries.
Abstract
It is widely accepted that conservation laws, especially energy-momentum conservation, have fundamental importance for both classical and quantum systems in physics. A widely used method to derive the conservation laws is based on Noether's theorem. However, for classical relativistic particle-field systems, this process is still impeded. Different from the quantum situation, the obstruction emerged when we regard the particle's field as a classical world line. The difficulties come from two aspects. One is the mass-shell constraint and the other comes from the heterogeneous-manifolds that particles and fields reside on. This study develops a general geometric (manifestly covariant) field theory for classical relativistic particle-field systems. In considering the mass-shell constraint, the Euler-Lagrange-Barut (ELB) equation as a geometric version of the Euler-Lagrange (EL) equation is…
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Taxonomy
TopicsNonlinear Waves and Solitons · Relativity and Gravitational Theory · Cosmology and Gravitation Theories
