Over the next several hundred million years, Earth could face numerous unexpected consequences, all due to the distance slowly yet steadily developing between the planet and its only moon. In what is coming to be defined as one of the most precisely known physical quantities in all of contemporary planetary science, the Moon is moving away from Earth at the speed of 3.83 centimetres annually, with a formal uncertainty of approximately 0.09 millimetres.The number is based on the current best interpretation of five decades of lunar laser ranging data. It has been directly measured, thousands of times over, from multiple observatories on three continents, by firing laser pulses at retroreflector arrays that Apollo astronauts left on the lunar surface between 1969 and 1971.On the human timescale, the rate is roughly the rate at which human fingernails grow. Over a human lifetime, it accumulates to approximately three metres. Over the span of recorded human civilisation, roughly five thousand years, it accumulates to approximately 190 metres. On these timescales, the Moon is, for all practical purposes, sitting where it has always sat. But on geological timescales, the picture is substantially different and worrying.
The measurements
The moon is receding away and the value has been robust to sub-millimetre precision for approximately three decades.
Apollo 11 astronauts Neil Armstrong and Buzz Aldrin deployed the first laser reflector array on the lunar surface in July 1969, at the Sea of Tranquillity. The array contained one hundred quartz-glass corner-cube prisms, small pyramidal reflectors with the specific optical property that any incident beam of light is returned along its exact incoming direction. The Apollo 14 and Apollo 15 missions deployed additional arrays in 1971. The Apollo 15 array, the largest, contains three hundred corner cubes and remains the workhorse of modern ranging campaigns. Two Soviet lunar rovers, Lunokhod 1 and Lunokhod 2, carried French-built retroreflector panels of their own.According to a summary of the ongoing programme published by NASA’s Jet Propulsion Laboratory, four observatories currently perform routine lunar laser ranging: one in New Mexico, one in France, one in Italy and one in Germany. The most precise of these is the Apache Point Observatory Lunar Laser-ranging Operation, or APOLLO, at the 3.5-metre telescope in southern New Mexico. According to the APOLLO project’s own documentation at the University of California San Diego, the ranging precision is now approximately one millimetre in Earth-Moon distance, based on timing the round-trip travel of a laser pulse to a precision of a few picoseconds.According to a report by Science Blog, every year this measurement returns in a slightly larger number. The moon is receding away and the value has been robust to sub-millimetre precision for approximately three decades.
Why so far?
The physical process behind the recession has been explained as tidal friction, which operates through the specific combination of Earth’s rotation, the Moon’s gravity and the geometry of Earth’s oceans and crust. The Moon’s gravity is stronger on the side of Earth facing it than on the far side, because gravity falls off with distance. The differential pull stretches Earth into a subtle oval, with tidal bulges rising on both the near and far sides. On Earth’s oceans, those bulges are what produce the tides. In Earth’s rocky interior, the same process produces smaller but measurable body tides in the solid crust.Moreover, Earth rotates faster than the Moon orbits. One Earth rotation takes 24 hours and one lunar orbit takes 27.3 days. As Earth spins on its axis, it drags the tidal bulges slightly ahead of the line between Earth’s centre and the Moon. The near-side bulge does not sit directly beneath the Moon. It sits slightly ahead of the Moon in the direction Earth is rotating. This off-axis bulge exerts a small gravitational tug on the Moon in the forward direction of its orbit. With added energy, the orbit is widened. Thus, the Moon climbs into a higher orbit each year.By the conservation of angular momentum, the energy the Moon gains has to come from somewhere, and it comes from Earth’s rotational spin. Earth slows down. The day lengthens. The Moon recedes.

