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Earth’s geographic poles wander more than we had thought

Earth’s geographic poles wander more than we had thought

newscientist.com 01.10.2026 20:00 6 views
A phenomenon known as true polar wander, different to the movement of the magnetic poles, may be more common and more dramatic than previously known

The Earth’s geographic poles – the points where the imaginary axis of the planet’s rotation is located – may be far less immutable than previously known, with a new study finding that ancient sea-level changes provide a clue to their movement. Earth has two main pairs of poles: its magnetic poles, resulting from its magnetic field, and its geographic poles based on its rotation. The magnetic poles are constantly in movement and are often hundreds of kilometres away from the geographic north and south poles.

They can even flip altogether. The geographic poles are much more stable. But they can move a little, through a phenomenon called true polar wander.

This is driven by the way plate tectonics and mantle convection slowly redistribute mass in Earth’s mantle and affect the planet’s spin. Huge hot blobs inside Earth may have made its magnetic field wonky When the spin of the planet is thrown out of whack, the solid outer layers of the globe begin to move in order to help Earth find a new stable spin equilibrium. This has the effect of moving the geographic poles.

However, until now much of the evidence for true polar-wandering events has come from ancient magnetic data locked inside rocks that formed millions of years ago, and this evidence has yielded confusing and conflicting results about the frequency and scale of the events. So, Domeier and his team took a different approach. They analysed the geological record of sea-level change looking for distinctive signals that might be expected during a true polar-wander event.

Because of the way ocean water can more quickly adjust to the centrifugal potential changes than the rocky sea floor, true polar-wander events are expected to leave a telltale pattern. Sea level will rise in one half of the northern hemisphere and fall in the other half, and it will also rise in one half of the southern hemisphere and fall in the other half. The northern and southern hemisphere signals are reversed, however, so if it is the western side of the northern hemisphere that experiences sea-level rise, it will be the eastern side of the southern hemisphere that does so, too, creating a beach ball-like global pattern.

On the time scales we experience, the events would be unnoticeable. But over longer periods of geological time, a wandering pole changes the distribution of land and sea. Why geologists can’t agree on when the Anthropocene Epoch began For instance, from their analysis of ancient sea-level patterns, Domeier and his colleagues discovered that the geographic poles moved dramatically, over periods of around 10 million years, four times in the geological past: at 20, 90, 140 and 190 million years ago.

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