Magnetic levitation — where it appears
Named by 2 essays across one field — each of them below, with the objects they name alongside it.
The drag that falls as the magnet speeds up
Drop a magnet down a copper pipe and it creeps, because the currents it stirs up in the metal pull back on it in proportion to its speed. Push it faster and the proportion fails: the drag rises to a peak and then falls away, while a second force, pointing straight up, grows to replace it. A magnet moving fast enough over a sheet of aluminium is not braked but held up, with lift thirty times its drag at the speed of a fast train, and the reason is that at high speed the metal has no time to forget the magnet has passed.
The window a spinning magnet floats in
No arrangement of fixed magnets can hold another magnet still in mid-air, and a spinning top made of a magnet floats above a magnetised base for minutes. The spin does not cancel the theorem; it changes what the top's energy depends on, from one component of the field to the field's strength, which can have a minimum. But the minimum exists only in a band of height a few millimetres thick, for a weight right to a couple of per cent, at a spin neither too slow nor too fast, and the well holding the top is about as deep as the energy of a twenty-gram weight dropped fifty micrometres.
Named alongside it
The objects these essays reach for when they reach for this one.
Adiabatic invariantDragEarnshaw theoremEddy currentsGyroscopeInductionLenz's lawLiftMagnetic dipoleMagnetic trapMethod of imagesPrecession