Effusion — where it appears
Named by 2 essays across 2 fields — each of them below, with the objects they name alongside it.
Also named here as isotope separation — the same set of essays touches all of them, so they are one junction rather than several.
The gas that leaves is not the gas inside
Put a small hole in a container of gas and what comes out is faster and hotter than what stays behind — its mean kinetic energy is 2kT against the 3/2 kT of the gas it came from. Nothing has heated it. A fast molecule simply reaches the hole more often than a slow one, so the sample that escapes is biased by exactly one factor of speed, and every consequence of effusion is that factor.
The spin that sorts by a difference of mass
In a spinning tube a gas settles against the wall the way the atmosphere settles towards the ground, with an exponential whose scale is set by the rotor's speed rather than by gravity. Heavier molecules settle more steeply, and the ratio of two isotopes changes from axis to wall by a factor that depends on the difference of their masses, not on the ratio. That one change from a ratio to a difference is why a spinning rotor separates uranium-235 from uranium-238 more than fifty times as strongly per stage as the porous barriers that first did it — and why the history of the machine is a history of how fast a material can turn before it flies apart.
Named alongside it
The objects these essays reach for when they reach for this one.
Isotope separationBoltzmann distributionCentrifugal forceFluxGrahams lawHoop stressKnudsen numberMaxwell boltzmannMean free pathRotating frameSedimentation equilibriumSeparation factor