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Bizarre weather on other worlds: 4 examples

Orange waterfall-like wall with spacesuited person with umbrella floating in front of it.

This comic-book-style illustration by Swiss graphic novelist Frederik Peeters shows a closeup view of the evening border of the exoplanet WASP-76b. The ultra-hot giant exoplanet has a day side where temperatures climb above 2,400 degrees Celsius (4,000 degrees F), high enough to vaporize metals. Strong winds carry iron vapor to the cooler night side where it condenses into iron droplets. Theoretical studies show that a planet like WASP-76b, with an extremely hot day side and colder night side, would have a gigantic condensation front in the form of a cloud cascade at its evening border, the transition from day to night, as depicted here. Image via Frederik Peeters/ ESA.

By Ian Whittaker, Nottingham Trent University

When Oscar Wilde said “conversation about the weather is the last refuge of the unimaginative,” he was unaware of some of the more extreme weather on planets and moons other than Earth.

Since the discovery of the first exoplanet in 1992, more than 4,000 planets have been discovered orbiting stars other than our own.

The continuing research with exoplanets involves trying to identify their atmospheric composition, specifically to answer the question of whether life could exist there. In this search for life, though, astronomers have found a huge variety of potential worlds out there.

Here are four examples of bizarre weather on other astronomical bodies, to show how varied an exoplanet atmosphere could be.

Huge dark red cloud bank with glowing drops pelting down.

Artist’s impression of the night side of WASP-76b. Image via ESO/ M. Kornmesser.

1. Iron rain on WASP-76b

WASP-76 is a large, hot exoplanet discovered in 2013. The surface of this monster planet – roughly twice the size of Jupiter – is about 2,200 degrees Celsius (4,000 degrees Fahrenheit). This means a lot of material that would be solid on Earth melts and vaporizes on WASP-76b.

As described in a particularly famous 2020 study, these materials include iron. At the day side of the planet, facing towards its star, this iron is turned to a gas. It rises in the atmosphere and flows towards the night side.

When this gaseous iron reaches the night side of the planet, where the temperature is cooler, the iron then condenses back into a liquid and falls towards the surface. This is currently the only example we have of a planet with temperature changes specific enough to allow it to literally rain iron at night.

Yellow lakes amid brownish landscape.

Artist’s impression of the surface of Titan covered in methane lakes. Image via NASA/ JPL-Caltech.

2. Methane lakes on Titan

Rather than being a planet, Titan is the largest moon of Saturn. It’s particularly interesting because it has a substantial atmosphere which is rare for a moon that orbits a planet.

The moon has a surface where liquid flows, like rivers on Earth. Unlike Earth, this liquid isn’t water, but a mixture of different hydrocarbons. On Earth we would use these chemicals (ethane and methane) for fuel, but on Titan it’s cold enough that they stay liquid and form lakes.

It’s thought ice volcanoes sporadically shoot these hydrocarbons into the atmosphere as a gas to form clouds which then condense and form rain. This precipitation is not like the standard showers we might experience on Earth; it only rains about 0.1% of the time, with drops that are bigger (estimated at around 1 cm or .6 inch) and fall five times slower, due to reduced gravity and increased drag.

2 views of Mars with vivid features on left and smooth featureless surface on right.

Mars before (left) and during (right) a dust storm. Image via NASA/ JPL-Caltech/ MSSS.

3. Winds on Mars

Mars has a completely different weather system to Earth, mainly because of how dry the planet is and how thin the atmosphere is. Without a significant magnetic field, the atmosphere of Mars is open to the magnetic field of the sun, which strips the upper atmosphere away. This has left a thin atmosphere, comprosed mostly of carbon dioxide.

The recent first powered flight on Mars by the NASA helicopter Ingenuity was amazing, not only for the exploration factor but because rotor blades provide so little lift in the thin atmosphere, which is roughly 2% of that on the Earth’s surface. Its counter to this thin atmosphere is a double set of large blades rotating at around 2,500 revolutions per minute, roughly equivalent to a drone rotor speed but much faster than a passenger helicopter.

While the Martian atmosphere is thin, it certainly isn’t calm. Average wind speeds of 30 km/h (20 mph) are enough to move the surface material around, and early observations from the Viking lander measured wind speeds up to 110 km/h (70 mph).

The prospect of high-speed sand and dust storms may seem a major issue for exploring the planet, but the atmosphere is thin so the pressure is tiny. For example, the scene in the film “The Martian” where the rocket blows over simply wouldn’t happen. Mars is also famous for having large-scale dust storms which obscure the view of the surface and can last for weeks at a time.

An egg-shaped, fuzzy purple blob with lightning-like streaks coming out of the bottom.

What a sprite could look like in Jupiter’s atmosphere. Image via NASA/ JPL-Caltech/ SwRI.

4. Lightning on Jupiter

In 1979, Voyager 1 flew past Jupiter and saw lightning strikes. Then in 2016, the Juno mission performed an in-depth look at lightning storms on Jupiter.

On the Earth, most of the lightning is concentrated near the equator. But on Jupiter the stability of the atmosphere means most convection and turbulence occurs near the polar regions, which is where the lightning strikes mainly happen. Instead of the Earth-based lightning generation method of supercooled water droplets colliding with ice, on Jupiter a charge builds up in snowballs of ammonia. This ammonia acts as an antifreeze for the water, keeping it liquid at much higher altitudes.

Jupiter even has less commonly known lightning called sprites and elves. Sprites are formed from lightning which rises from the clouds toward the upper atmosphere and creates a short-lived reddish glow, while elves are rings formed when the lightning strike reaches the charged part of our atmosphere (the ionosphere). These were predicted in 1921, but were not photographed on Earth until 1989, mainly due to storm clouds being in the way.

These so-called transient luminous events have now been observed on Jupiter as well, providing important information on the Jovian atmosphere as well as how these lightning formations are created and sustained.

While there are many different possibilities for weather on exoplanets, the biggest challenge is observing them in enough detail to identify what their atmosphere – if they have one – is composed of.

The next discovery of an exoplanet weather system could be Earth-like, it could be similar to one of the examples above, or it could be something even more incredible.

Ian Whittaker, Senior Lecturer in Physics, Nottingham Trent University

This article is republished from The Conversation under a Creative Commons license. Read the original article.

Bottom line: Four examples of strange weather on alien worlds.

The Conversation

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