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Relativistic Particle and Relativistic Fluids: Magnetic Moment and Spin-Orbit Interactions
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abstract
We consider relativistic charged particle dynamics and relativistic magnetohydrodynamics using symplectic structures and actions given in terms of co-adjoint orbits of the Poincar\'e group. The particle case is meant to clarify some points such as how minimal coupling (as defined in text) leads to a gyromagnetic ratio of $2$, and to set the stage for fluid dynamics. The general group-theoretic framework is further explained and is then used to set up Abelian magnetohydrodynamics including spin effects. An interesting new physical effect is precession of spin density induced by gradients in pressure and energy density. The Euler equation (the dynamics of the velocity field) is also modified by gradients of the spin density.
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Cited by 1 Pith paper
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A Gauge-Theoretic Action Principle for Viscous Incompressible Fluids
The proposed action does not demonstrably produce the Navier-Stokes equations; the velocity variation is algebraic and the gauge-field equation is only a static Helmholtz equation.
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