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Why Does the Weather at Saturn's North Pole Form a Six-Sided Shape?

Category: Space & Astronomy

Two pictures of the same spot, taken by different spacecraft about 28 years apart. Both show the north pole of Saturn, and both show the same thing: a ring of wind and cloud with six straight sides. On Earth, a big storm swirls in a round shape and is usually gone in about a week. This one has corners, and it was still there after almost three decades.

This article follows one question: how can wind blow in a six-sided ring, and why does the ring last? It starts with what the ring is, then visits a spinning tank of water in an English laboratory, and ends with a new ten-sided shape at the other pole.

1. A Six-Sided Ring of Wind Circles Saturn's North Pole

The six-sided shape first showed up in pictures from the two Voyager spacecraft in the early 1980s. It is a jet stream: a fast river of wind that flows around the pole along a six-sided path, at about 77 degrees north latitude. NASA describes it as wider than two Earths side by side, with wind believed to blow at around 100 meters per second (220 miles per hour)[1].

Then the north pole moved into winter. For about 15 years it sat in winter darkness, and Cassini, a NASA spacecraft that reached Saturn in 2004, could not photograph the pole well at first. When spring light returned, Cassini took the first full pictures of the hexagon in about 30 years, and it was still there[1][2]. That is far longer than an Earth hurricane, which lasts about a week[2].

So the hexagon is a puzzle on two counts: why corners, and why so long-lived? The first has an answer that starts with a river.

2. A Jet Stream That Wiggles Six Times Forms a Hexagon

Earth has jet streams too. NOAA describes them as narrow bands of strong wind high in the atmosphere that meander around the globe, dipping and rising, and sometimes splitting[3]. They can top 275 miles per hour (442 kilometers per hour)[3], so strong wind alone is not what makes the hexagon unusual. The odd part is the shape: a jet whose wiggles are so regular that it closes into a polygon.

A simple way to picture it is a river with bends. The water keeps moving, but the bends stay where they are. At Saturn's pole the river is a ring around the pole, and it has six bends. In scientists' terms, six waves travel around the pole along with the jet, so the pattern looks stuck in place compared with the atmosphere around it[4].

Researchers who studied Cassini and ground-based pictures from 2008 to 2014 interpret the hexagon as a vertically trapped Rossby wave on the polar jet. A Rossby wave is a very large, slow ripple in a spinning atmosphere. They found the corners turning with a steady period of 10 hours 39 minutes 23.01 seconds[5].

3. A Spinning Tank of Water in Oxford Also Made a Six-Sided Shape

An idea like this needs a test. At Oxford University in England, researchers filled a tank with water and glycerol, added white tracer particles so the flow would show up, and set the tank on a turntable. A disc or ring turned at a different speed from the rest of the tank, which crudely copies the speed difference on the edges of Saturn's jet[6].

The flow was unstable. It developed meanders and small swirls, and these eventually settled into a six-sided pattern[6]. Other settings gave other polygons, so six was one possible result, not the only one[7]. The Oxford team was careful about what this proves: the experiment does not show that Saturn's hexagon forms in the same way, only that it could[6].

4. How Can a Wind Pattern Stay the Same for Decades?

The 2014 study offers a proposal: the hexagon and the jet may reach deep into the atmosphere, anchored in layers that the seasons barely touch[5][8]. The jet's shape stayed essentially unchanged through the long polar night[5]. A proposal is not an answer, and NASA scientists say plainly that they do not know what controls the path the stream takes[2].

There is a bonus clue in the steady turning. If the hexagon is rooted deep, its rotation could reveal how fast Saturn itself spins, which has been hard to pin down by other methods such as radio emissions or the planet's gravity[5][8].

5. The Hexagon's Color Changed but Its Shape Did Not

Between 2012 and 2016, Cassini pictures show the area inside the hexagon changing from bluish to golden. NASA's leading explanation is that more sunlight on the pole produced more photochemical haze as the north pole approached its summer solstice in 2017. NASA also notes that other effects, such as changes in air circulation, could play a part[9].

Saturn's seasons last around seven Earth years[4], so this was a slow change. The jet seems to act as a barrier: Cassini images show fewer large haze particles inside the hexagon and more outside[10]. The color shifted with the seasons, while the six-sided outline stayed put.

6. A Ten-Sided Shape Is Now Growing at Saturn's South Pole

In September 2026, a team led by Agustín Sánchez-Lavega of the University of the Basque Country in Spain published a paper in Science Advances about a 10-sided atmospheric wave around Saturn's south pole. Ground-based observers noticed it in 2024 and 2025 images, and Hubble Space Telescope data showed it was already there in 2023[11]. It is the first large, regular-sided jet pattern seen in Saturn's southern hemisphere[12].

It also behaves differently from the north. NASA's Amy Simon said the hexagon has been there every time anyone has looked, for more than 40 years, but the new feature "appears to be strengthening"[11]. The researchers are only starting to piece together its history, so nobody can yet say why the north has six sides and the south has ten[12].

How to Follow the Hexagon Story Yourself

  • Spin some water. Pour water into a wide, shallow dish on a table and sprinkle on a little pepper. Stir gently once and watch the specks. Wipe up any spilled water afterward, and keep the pepper away from your eyes and mouth. Do the ones at the edge and the middle move at different speeds? This will not make a hexagon. It only shows that one body of water can flow differently in different places, which is the starting point of the Oxford experiment.
  • Look at Earth's jet stream. Many national weather services publish maps of high-altitude winds. Find one and look for wiggles in the fast band. Can you spot bends like the "river with bends" picture in section 2?
  • Compare two pictures. NASA's image pages for Cassini show the 2012 and 2016 views of the pole. Put them side by side. What changed, and what did not?
  • Find Saturn in the sky. Saturn is easy to spot on many nights, and a small telescope shows its rings. The hexagon is not something to expect from a basic backyard setup.

Sources

This article is a personal summary based on the public sources listed below.

  1. NASA/JPL, "Saturn's Mysterious Hexagon Emerges from Winter Darkness" (December 9, 2009). https://www.jpl.nasa.gov/news/saturns-mysterious-hexagon-emerges-from-winter-darkness/ (Fetched through a summarizing tool, not read word for word. It supplies the early-1980s Voyager discovery, the latitude of about 77 degrees north, the width of more than two Earths, the wind of about 100 meters per second, and the winter darkness. The 15-year length of the darkness is the figure in that summary. Wind estimates differ by source: another study reports top speeds near 120 meters per second.)
  2. NASA/JPL, image page PIA11682, "Spring Reveals Saturn's Hexagon Jet Stream." https://www.jpl.nasa.gov/images/pia11682-spring-reveals-saturns-hexagon-jet-stream/ (Fetched through a summarizing tool. It supplies the comparison with Earth hurricanes of about a week, the near-30-year persistence, and the statement that scientists do not know what controls the stream's path.)
  3. NOAA, "Jet Stream" (National Weather Service JetStream online weather school). https://www.noaa.gov/jetstream/global/jet-stream (Fetched through a summarizing tool. It supplies meandering and speeds above 275 mph (442 km/h). It does not use the term Rossby wave.)
  4. Astronomy magazine, "What is the hexagon at Saturn's north pole and what causes it?" https://www.astronomy.com/science/what-is-the-hexagon-at-saturns-north-pole-and-what-causes-it/ (Fetched through a summarizing tool. It supplies the six waves moving with the jet and the seasons of about seven Earth years.)
  5. A. Sánchez-Lavega and colleagues, "The long-term steady motion of Saturn's hexagon and the stability of its enclosed jet stream under seasonal changes," Geophysical Research Letters 41(5), 1425-1431 (2014). https://dsp.tecnalia.com/items/bbeeb3ce-81f1-403a-938f-b418903fda9f (Only the abstract, as quoted in a search result, was seen. The full paper was not read. The rotation period, the Rossby-wave interpretation, and the deep-rooted proposal come from that abstract.)
  6. Phys.org, "Fluid clue to Saturn's hexagon" (April 2010), on the Oxford experiment (Aguiar et al., Icarus 206, 755-763, 2010). https://phys.org/news/2010-04-fluid-clue-saturn-hexagon-video.html (Fetched through a summarizing tool; the Icarus paper itself was not read. The tank setup, the six-sided result, and the researchers' caveat come from this news report of the work.)
  7. Wikipedia, "Saturn's hexagon." https://en.wikipedia.org/wiki/Saturn's_hexagon (A secondary source, used only for the point that other settings gave other polygons. Its wording is three- to eight-sided shapes.)
  8. EARTH Magazine, "Saturn's polar hexagon stable over time." https://www.earthmagazine.org/article/saturns-polar-hexagon-stable-over-time/ (Fetched through a summarizing tool. It supplies jet-stream winds reaching 120 meters per second, the deep-rooted explanation, and the difficulty of fixing Saturn's rotation by radio or gravity.)
  9. NASA, "Changing Colors in Saturn's North" (Cassini images, 2012-2016). https://www.nasa.gov/?p=424220 (Fetched through a summarizing tool. It supplies the 2012-2016 change from bluish to golden, the haze explanation, and NASA's caution about other possible effects.)
  10. NASA/JPL, image page PIA17652, "In Full View, Saturn's Streaming Hexagon." https://www.jpl.nasa.gov/images/pia17652-in-full-view-saturns-streaming-hexagon/ (Fetched through a summarizing tool. It supplies the haze-particle difference inside and outside the hexagon and the jet acting as a barrier.)
  11. NASA Science, "NASA's Hubble Tracks New Decagon Encircling Saturn's South Pole" (September 2, 2026). https://science.nasa.gov/missions/hubble/nasas-hubble-tracks-new-decagon-encircling-saturns-south-pole/ (Fetched through a summarizing tool. It supplies the lead author, the 2023 to 2025 observations, the journal, and Amy Simon's remark. It gave no wind speed or size for the decagon, so the article states none.)
  12. Space Telescope Science Institute, news release 2026-022, same title. https://www.stsci.edu/contents/news-releases/2026/news-2026-022 (Fetched through a summarizing tool. It supplies "first large, regular-sided jet pattern" in the southern hemisphere and that researchers are only starting to piece together its history.)

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