Bulk viscosity — where it appears
Named by 3 essays across one field — each of them below, with the objects they name alongside it.
Also named here as transport coefficient — the same set of essays touches all of them, so they are one junction rather than several.
The viscosity nobody uses
A fluid has two viscosities. One resists a change of shape and appears in every viscous calculation; the other resists a change of volume, was set to zero by Stokes in 1845 in a paper that says he had no argument for doing so, and for carbon dioxide is fifteen hundred times larger than the one everybody quotes.
The largest bulk viscosity is the first to expire
A bulk viscosity is not a separate property of a gas. It is the time a molecule's internal motion takes to catch up with a compression, multiplied by the pressure and by how much heat capacity lags, and read from below that time's frequency. So the coefficient that is largest is the one that stops being a coefficient soonest: carbon dioxide's fifteen-hundred-fold value is ten per cent wrong at 24 kHz, and on Mars it is two speeds of sound in the audible band.
A bulk viscosity holds a shock together until it splits
Carbon dioxide's bulk viscosity, fifteen hundred times its shear viscosity, is a vibrational relaxation seen from below its frequency, and a shock is where that description is tested hardest. Carried through a steady shock, the relaxation reproduces the coefficient exactly for the weakest shocks. At a pressure rise of nine and a half per cent the shock outruns the frozen sound speed and splits into a jump and a tail, and the coefficient then draws a shock that does not exist.
Named alongside it
The objects these essays reach for when they reach for this one.
DissipationTransport coefficientCompressibilityModel limitRelaxationShock structureSound absorptionDispersionDissipation functionEntropyRankine–Hugoniot conditionsRate of strain