Pinch effect — where it appears
Named by 2 essays across 2 fields — each of them below, with the objects they name alongside it.
The beam that stops pushing itself apart
A beam of electrons is a crowd of like charges, and a crowd of like charges flies apart. A slow beam does, within centimetres. A fast one hardly does at all: at a gigaelectronvolt the same current travels kilometres before its width doubles. The electric repulsion has not weakened — it has grown, by the factor γ. What has grown faster is a magnetic attraction between parallel currents, which cancels all but 1/γ² of the push. Seen from the beam itself there is no magnetism at all, only Coulomb repulsion acting while the beam's clocks run slow.
The current that squeezes what carries it
A current flowing along a column of hot gas makes a magnetic field that wraps round the column, and the field pushes the current inward. If the column is a plasma, free to move, it is squeezed. Ampère's law and a balance of forces then fix how much current a column of given temperature needs to hold itself together — and the answer does not depend on how wide the column is or how its plasma is arranged inside. Ten thousand electronvolts in ten million million million ions per metre needs 0.8 million amperes, whatever the shape. Above about 1.4 million amperes the same arithmetic says a hydrogen column radiates faster than its current can heat it, and collapses.
Named alongside it
The objects these essays reach for when they reach for this one.
Amperes lawBremsstrahlungCollidersForce balanceInstabilityThe Lorentz factorThe Lorentz transformationMagnetic forceMagnetic pressureParticle beamPlasmaSpace charge