Ambipolar diffusion — where it appears
Named by 4 essays across 2 fields — each of them below, with the objects they name alongside it.
Also named here as mass-to-flux ratio — the same set of essays touches all of them, so they are one junction rather than several.
A cloud that cannot become a star
A molecular cloud core turning once every twenty million years sounds like a body at rest. Conserve its angular momentum through a collapse by a factor of ten thousand and it stops at the orbit of Neptune, spinning, having failed to make anything at all.
A field that would have arrived ten thousand times too strong
A collapsing cloud carries its magnetic field with it, and the arithmetic of that is not negotiable — the field grows as the two-thirds power of the density. Run it from a diffuse cloud to a protostellar core and the answer is four orders of magnitude above anything measured on a young star.
A threshold with no free parameter in it
Divide a cloud's mass by the magnetic flux threading it. Gravity and the magnetic force both fall as the inverse square of the radius, so the ratio cannot change during a collapse — and the critical value that separates a cloud which must collapse from one that never can is one over two pi root G, a pure constant.
Support that cannot be squeezed away
A cloud held up by pressure can always be defeated by compressing it, because gravity gains faster than heat does. A cloud held up by a magnetic field cannot — squeezing raises both energies at exactly the same rate, so the ratio a cloud is born with is the one it keeps, and the only way out is to let the field leak.
Named alongside it
The objects these essays reach for when they reach for this one.
Mass-to-flux ratioFlux freezingZeeman effectFree-fall timeJeans massMagnetic critical massMolecular cloudsStar formationAngular momentum problemAngular momentum transportBinary fractionCentrifugal barrier