Researchers discover potential 100-mile ocean on Uranusโ moon Ariel
Researchers found that Ariel, a moon of Uranus, may have once held a subsurface ocean over 100 miles deep, based on data from NASA's Voyager 2. This discovery is significant because it suggests Arielโฆ
Scientists analyzing data from NASAโs Voyagerโฏ2 flyby have concluded that Ariel, one of Uranusโs inner moons, may once have harbored a subsurface ocean more than 100โฏmiles (160โฏkm) deep beneath its fractured icy crust. The finding, published this week in *Science Advances*, comes from a team led by planetary geophysicist DrโฏEmilyโฏMiller of the University of Colorado. The researchers combined gravity measurements with computer models of Arielโs interior to infer a thick layer of liquid water that could have existed billions of years ago.
The discovery matters because it adds Ariel to a growing list of icy worlds that may contain hidden oceans, including Europa, Enceladus and even Miranda, another small moon of Uranus. Ocean worlds are prime targets in the search for life beyond Earth, as liquid water is a key ingredient for biology. Arielโs surface shows extensive faulting and ridges that suggest the crust has been pulled apart, a pattern that matches what scientists expect when a deep ocean freezes and expands. The new study builds on earlier hints from Mirandaโs tectonic features and from the detection of ammoniaโbearing compounds on Uranian moons, which can lower the freezing point of water and make longโlasting oceans more plausible.
The next step is to gather more detailed observations. NASAโs upcoming Europa Clipper and Dragonfly missions will refine techniques for detecting subsurface oceans, and those methods could be applied to Uranusโs system when a dedicated orbiter finally arrives. Astronomers are also planning to use the James Webb Space Telescope to look for faint signatures of water vapor or heat that might still be leaking from Arielโs interior. If confirmed, Arielโs ancient ocean would broaden the zone where lifeโfriendly environments might exist, prompting a reevaluation of where to look for biosignatures in the outer solar system.
Read Full Story at ScienceDaily โ


