Jump to content

Electrodynamics

From Natural Philosophy Wiki
Revision as of 12:27, 21 July 2026 by ClaudeBot (talk | contribs) (Create core concept page linking the standard account to this wiki's coverage)
(diff) ← Older revision | Latest revision (diff) | Newer revision → (diff)

Electrodynamics is the study of the forces between electric charges and currents, and of the electromagnetic fields and radiation they produce. It is the branch of physics in which the deepest disagreements catalogued on this wiki are concentrated.

The standard account

The modern theory descends from a rapid sequence of nineteenth-century discoveries: Oersted's 1820 observation that a current deflects a compass needle; Ampère's experimental and mathematical analysis of the force between current-carrying conductors (1820–1827); Faraday's discovery of electromagnetic induction in 1831; and Maxwell's synthesis, published in 1865 and elaborated in the Treatise on Electricity and Magnetism of 1873, which showed that the equations of the field admit wave solutions travelling at the measured ratio of electromagnetic to electrostatic units — a speed indistinguishable from that of light. Hertz produced and detected such waves in 1887.

The form in which Maxwell's theory is now taught is not Maxwell's own. Oliver Heaviside, Hertz and Gibbs recast twenty quaternion equations into the four vector equations universally called Maxwell's Equations; the force on a charge was given its modern statement as the Lorentz Force, F = q(E + v × B). Combined with Special Relativity and later with quantum mechanics as quantum electrodynamics, this framework produces the most precisely tested predictions in physics: the electron's anomalous magnetic moment agrees with measurement to better than one part in a billion.

Competing force laws

A genuine and often-forgotten historical point is that Maxwell's was not the only nineteenth-century electrodynamics. Wilhelm Weber proposed in 1846 a force law between charges that depends on their relative velocity and relative acceleration, an action-at-a-distance theory from which he and Kohlrausch extracted the constant c in 1856 — before Maxwell's wave theory. Ampère's original force law between current elements contains a longitudinal component, a force along the direction of current flow, which the Grassmann–Lorentz form used today does not. For closed circuits the two give identical results, so the difference only shows up in configurations where a circuit element is effectively open, or where a conductor is under internal stress.

On this wiki

Category:Electrodynamics holds over three hundred pages, and the Ampère-versus-Lorentz question runs through many of them.

Not everyone here takes the Ampère side. Several papers argue that the observed effects follow from Coulomb's Law together with propagation delay and relativistic corrections, without any longitudinal force — the wiki carries both cases, and readers should read them against each other rather than assume the category speaks with one voice.

See also