Strong equivalence principle — where it appears
Named by 2 essays across one field — each of them below, with the objects they name alongside it.
The binding energy that has to fall too
Every laboratory test of the equivalence principle compares bodies whose own gravity is a part in 10²⁵ of their mass, so none of them can ask whether gravitational binding energy falls like everything else. The Earth is bound by five parts in ten billion and the Moon by twenty times less, and if that difference fell differently the Moon's orbit would lean towards the Sun once a month — by a distance lasers have been measuring since 1969.
The radiation a difference in falling would make
Gravitational waves start at the quadrupole because the equivalence principle removes the dipole: when every body's gravitational charge is its mass, the centre of charge is the centre of mass and cannot move. If a neutron star's own gravity fell even slightly differently, a binary containing one would radiate a dipole — louder than Einstein's quadrupole in slow orbits — and a pulsar with a white dwarf in an 8.5-hour orbit has been listening for it.
Named alongside it
The objects these essays reach for when they reach for this one.
Binding energyEquivalence principleBinary pulsarCentre of massDipole radiationGravitational massLunar laser rangingNull experimentPost-newtonian parametersQuadrupole radiationResonanceScalar-tensor theory