Shear rate — where it appears
Named by 2 essays across one field — each of them below, with the objects they name alongside it.
The liquid that climbs the rod
Stir water with a rod and it is flung outward, leaving a dip at the centre. Stir a polymer solution and it climbs the rod instead. Nothing about the viscosity can produce that, however large it is made — what produces it is a second stress that appears in shear and has no Newtonian counterpart at all, growing as the square of the rate where the familiar one grows in proportion.
The sand whose friction depends on how fast it flows
A heap of sand stands at its angle of repose and starts to slide a few degrees steeper; between those angles there are steady avalanches, and their speed is decided by one number. The inertial number compares how long a grain takes to fall into a gap opened under it with how long the flow takes to open the gap. Friction rises with it, from the static value to a ceiling, and that single dependence explains why grains flow steadily on only a twelve-degree window of slopes, why a flowing layer has the velocity profile Bagnold measured, and why a deeper avalanche is faster — but not as a liquid would be.
Named alongside it
The objects these essays reach for when they reach for this one.
AvalancheConstitutive lawCreeping flowDimensionless numberFree surfaceFrictionGranular matterGranular temperatureHoop stressMaterial functionNormal stressPolymer solution