Augmented Variational Principles and Relative Conservation Laws in Classical Field Theory
arXiv:math-ph/0411029 · doi:10.1142/S0219887805000557
Abstract
Augmented variational principles are introduced in order to provide a definition of relative conservation laws. As it is physically reasonable, relative conservation laws define in turn relative conserved quantities which measure, for example, how much energy is needed in a field theory to go from one configuration (called the reference or vacuum) to another configuration (the physical state of the system). The general prescription we describe solves in a covariant way the well known observer dependence of conserved quantities. The solution found is deeply related to the divergence ambiguity of the Lagrangian and to various formalisms recently appeared in literature to deal with the variation of conserved quantities (of which this is a formal integration). A number of examples relevant to fundamental Physics are considered in detail, starting from classical Mechanics.
14 pages, 1 Fig
References in corpus (4)
Cited by in corpus (23)
- Boundary Term in Metric f(R) Gravity: Field Equations in the Metric Formalism
- The Extended Cartan Homotopy Formula and a Subspace Separation Method for Chern--Simons Theory
- Approximate Noether Symmetries of the Geodesic Equations for the Charged-Kerr Spacetime and Rescaling of Energy
- Covariantized Noether identities and conservation laws for perturbations in metric theories of gravity
- ADM Pseudotensors, Conserved Quantities and Covariant Conservation Laws in General Relativity
- Action growth for black holes in modified gravity
- Gauge Natural Formulation of Conformal Theory of Gravity
- Superpotentials from variational derivatives rather than Lagrangians in relativistic theories of gravity
- Conformal gravity: light deflection revisited and the galactic rotation curve failure
- Variationally equivalent problems and variations of Noether currents
- New Cases of Universality Theorem for Gravitational Theories
- Intrinsic vanishing of energy and momenta in a universe
- Covariant Lagrangian Formulation of Chern-Simons and BF Theories
- Information content and minimum-length metric: A drop of light
- Noether Symmetries and Covariant Conservation Laws in Classical, Relativistic and Quantum Physics
- The relative energy of homogeneous and isotropic universes from variational principles
- The generally covariant meaning of space distances
- Entropy of Self-Gravitating Systems from Holst's Lagrangian
- Three-Dimensional Chern-Simons and BF Theories
- Conformal Gravity as a Gauge Natural Theory
- Barbero-Immirzi connections and how to build them
- About Boundary Terms in Higher Order Theories
- Generally Covariant vs. Gauge Structure for Conformal Field Theories