Historical eclipses
Eight solar eclipses that mattered to science, to the historical record or to observation, in date order. The data sits in the app itself; Open in the app brings up the map and the circumstances on the ground.
For eclipses more than five hundred years old, the computed path and times depend on ΔT, the difference between the rotation of the Earth and a uniform clock. For those centuries ΔT is an estimate, so the times and places here are approximate. Nor is the link to a historical source always beyond doubt.
15 June 763 BCE · the Assyrian eclipse
An Assyrian list of year names records, in the year of Bur-Sagale, that the sun was eclipsed in the month of Simanu; the same entry mentions a revolt in the city of Ashur. That list runs on into years that can be dated independently, so this eclipse fixes the chronology of the ancient Near East to a single day. Every Assyrian and Babylonian date before it hangs on that one anchor. The path ran across northern Mesopotamia, near Nineveh. It does assume that the scribe meant a total eclipse and not a partial one.
Open in the app · Wikipedia: Assyrian eclipse
28 May 585 BCE · the eclipse of Thales
Herodotus writes that a battle between the Medes and the Lydians broke off when day turned into night, and that Thales of Miletus had predicted the eclipse. Frightened by the darkness, both sides stopped fighting and made peace, sealed by a marriage between the two royal houses and brokered by the rulers of Cilicia and Babylon; the war had already run for five years. This is the only solar eclipse ever said to have stopped a war, and there is no second example. The path fits Anatolia, which makes the classical date plausible, though other years have been proposed. Whether Thales really predicted it, and how, is something historians still disagree about.
Open in the app · Wikipedia: Eclipse of Thales
22 December 968 · an early description of the corona
A Byzantine eyewitness account from Constantinople, by Leo the Deacon, describes how the sun disappeared, how stars came out in the middle of the day, and how a narrow, dim glow stood around the darkened disc. That glow is one of the earliest descriptions in which the solar corona is recognisable. Leo also records the fear in the city, because a darkening sun was read as a sign. The corona can only be seen by eye during totality, so he must have been standing inside the path.
Open in the app · Wikipedia: Corona
3 May 1715 · Halley’s eclipse
Edmond Halley published a map of the expected path across England beforehand and asked observers to send in their contact times, so that he could check his prediction against them. It was the first time an eclipse was treated as a joint measuring project, and the timings he received let him improve the position of the Moon in the tables of his day. His path was off by a few tens of kilometres, and he reported that as openly as the part he got right. The sheet also brought the idea of a path of totality to a wide public, and it counts as one of the first maps built around a single subject.
Open in the app · Wikipedia: Solar eclipse of 3 May 1715
15 May 1836 · Baily’s beads
Francis Baily watched this annular eclipse from Scotland and described how the last thread of light along the Moon's edge breaks up into separate beads, because it shines through the valleys between the mountains on the Moon. The phenomenon had been noticed before, by Halley among others, but it was Baily's account that stuck, and it has carried his name ever since. It is still the sign that totality is about to begin or has just ended. His report also set off a wave of expeditions to later eclipses, which is how watching an eclipse became real fieldwork.
Open in the app · Wikipedia: Baily’s beads
28 July 1851 · the first photograph of an eclipse
At Königsberg Observatory, Johann Julius Friedrich Berkowski made the first known photograph of a total solar eclipse: a daguerreotype with about a minute and a half of exposure through a small telescope, with the corona around the black disc. From that moment on, photography at an eclipse was a measuring instrument and no longer only a report. The plate also helped settle a running argument, because the corona had been dismissed as an illusion of the eye or of the atmosphere. What a photograph holds can be measured again later, by someone who was not there.
Open in the app · Wikipedia: Solar eclipse of 28 July 1851
18 August 1868 · helium
In the spectrum of the sun's edge, observers in India and Siam saw a yellow line during this eclipse that matched no known element. It was soon put down to a new element: helium, which was not isolated on Earth until nearly thirty years later. Helium is therefore the first element found beyond the Earth before it was found on the Earth itself. At the same eclipse, Jules Janssen saw how prominences can be observed on any clear day, without waiting for the Moon, and that freed solar physics from the eclipse calendar.
Open in the app · Wikipedia: Solar eclipse of 18 August 1868
29 May 1919 · a test of Einstein’s relativity
Two British expeditions, to Príncipe off the coast of Africa and to Sobral in Brazil, photographed the star field around the eclipsed sun to see whether the sun's gravity bends starlight. The measured deflection of nearly two arcseconds fitted general relativity rather than Newton, and the announcement in November 1919 made Einstein famous the world over. Not all the plates were usable: the main instrument at Sobral was out of focus, and its result was set aside. That choice has been argued over ever since. Later measurements, using radio sources instead of stars, have confirmed the deflection far more precisely.