Trillion-mile gas streamer may explain tilt of triple-star system's outer planet-forming ring

A trillion mile cosmic stream of gas feeds GW Orionis
This artist's representation highlights the streamer feeding material onto the protoplanetary disk, GW Ori, creating misaligned dust rings. Credit: NSF/AUI/NRAO/B. Saxton

A team of astronomers using the Atacama Large Millimeter/submillimeter Array (ALMA) has captured a massive stream of gas—one trillion miles, or 0.2 light-years, long—feeding the young triple-star system GW Orionis. These new observations provide the clearest evidence yet for how such "streamers" can tilt and twist the disks where planets are born. The findings are published in The Astronomical Journal.

The triple stars and tilted disks of GW Orionis

These new ALMA observations focus on GW Orionis, a very young system located about 1,300 light-years away in the Orion constellation and hosting three stars encircled by multiple rings of planet-forming material. The rings in this system are famously tilted at different angles instead of lying in a single flat plane, making GW Orionis a natural laboratory for studying the formation of unusual planetary architecture.

A team led by Maria Galloway-Sprietsma, a Ph.D. candidate at the University of Florida, measured how the streamer is moving and compared its motion, known as its angular momentum, to the orientations of the system's rings. They found that the streamer's trajectory lines up closely with the outer dust ring but is strongly misaligned with the inner ring, pointing to a likely cause-and-effect connection between the infalling material and the outer ring's tilted state.

"Previous studies of GW Orionis revealed that the system's inner, middle and outer rings are misaligned, with each ring tilted at a different angle. When our team modeled the infall of this streamer, we found that the angle at which it impacts the disk is closely aligned with the outer ring," Galloway-Sprietsma said.

For decades, textbook diagrams have shown young planetary systems forming quietly from flat, orderly disks of gas and dust. This new ALMA result supports a more dynamic picture in which clumpy, turbulent streamers from the surrounding environment can reshape disks late in their evolution and potentially set planets on orbits that are tilted or even opposite to the spin of their host star.

ALMA's capabilities proved the best tool for research

"None of this would have been possible without ALMA. ALMA has the highest resolution offered for these wavelengths. Archival data allowed astronomers to see these high-resolution dust rings to model their relative misalignments, and now our observations use all three ALMA arrays—the 12-meter, 7-meter and Total Power—to zoom out and see the full extent of the streamer, so the observations with ALMA have been building year after year," Galloway-Sprietsma said.

ALMA's unique capabilities allowed Galloway-Sprietsma and her team to dig deeper into the data. "Because ALMA is such a sensitive instrument, we were able to study the kinematics of the streamer with the molecular line data," Galloway-Sprietsma added.

By observing molecular lines of 12CO and 13CO with ALMA, Galloway-Sprietsma and her team found that the total angular momentum of the streamer is much less than that of the GW Orionis disk. This means that the dynamics of this system likely represent the later stages of this infall phenomenon.

"The estimated angular momentum of the streamer is less than that of the outer disk, so this would mean that the streamer should not significantly misalign the disk any further. In the past, it likely had a greater angular momentum, and that allowed the disk to become misaligned," said Jaehan Bae, assistant professor of astronomy at the University of Florida, a co-author of the research and Galloway-Sprietsma's Ph.D. adviser.

Future research for GW Orionis

Astronomers hope to survey more young systems with streamers to see how common this mechanism is and whether it can explain other puzzling features of known exoplanet systems, such as unusual orbital tilts and chemical signatures. Future ALMA observations of GW Orionis will search for shock-tracing molecules, including sulfur-bearing species, to pinpoint exactly where the streamer slams into the disk and how that impact alters the raw material for planet formation.

Publication details

Maria Galloway-Sprietsma et al, A Streamer Driving Misalignment in the Circumtriple Disk of GW Ori, The Astronomical Journal (2026). DOI: 10.3847/1538-3881/ae8bae

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Citation: Trillion-mile gas streamer may explain tilt of triple-star system's outer planet-forming ring (2026, August 6) retrieved 6 August 2026 from https://phys.org/news/2026-08-trillion-mile-gas-streamer-tilt.html

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