Scientists Solve the Mystery of When Black Holes Launch Jets and 'Burp'
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Researchers using radio telescopes have discovered that supermassive black holes fire off powerful jets in two distinct phases during their feeding cycle.
Astrophysicists have uncovered the underlying mechanism governing when black holes release powerful jets and outflows of material into space after consuming stars. The findings offer new clarity on phenomena that have puzzled researchers regarding the timing of these cosmic ejections.
Black holes are exceptionally dense cosmic objects possessing gravitational pulls so intense that neither light nor matter can cross their boundary of no return, known as the event horizon. However, researchers emphasize that these regions do not merely pull everything inward cleanly.
According to Dr Adelle Goodwin, an astrophysicist at Curtin University in Western Australia and a Forrest Research Foundation fellow, black holes operate as messy eaters. Dr Goodwin noted that objects must approach extremely close to reach the event horizon, whereas stars experience destruction considerably farther outward.
Observations of stellar destruction events reveal a phenomenon called spaghettification, where a star is stretched apart by gravitational forces. Dr Goodwin explained that only about half of the shredded star ultimately gets swallowed by the black hole during this process.
The remaining stellar material is blasted back out into space via powerful jets and outflows. These energetic ejections can sometimes attain scales massive enough to influence the entire evolutionary trajectory of an entire galaxy, a process colloquially likened to a cosmic burp.
Previously, the exact timing of these ejections remained a mystery to researchers. Documented events showed considerable variance, with some ejections occurring a single year after star destruction while others took three to five years.
To investigate the mystery, Dr Goodwin and co-author Dr Andrew Mummery from the Institute for Advanced Study examined twenty tidal disruption events—instances where supermassive black holes consume stars—using radio telescope data. Dr Goodwin highlighted that radio frequencies provide the unique capability to observe jets and outflows as they travel outward.
The study, published in the journal Nature Astronomy, revealed that supermassive black holes ranging from hundreds of thousands to billions of times the mass of the sun deploy powerful jets across two distinct feeding phases.
The initial phase takes place while the black hole feeds at very high rates. The subsequent phase emerges hundreds to thousands of days following the initial stellar destruction, once the feeding rate declines to approximately two percent of the maximum possible swallowing capacity.
This specific threshold matches triggers previously documented in stellar-mass black holes, which are smaller bodies measuring roughly ten to fifty times the mass of the sun. The research demonstrated that black holes release jets at identical points in their feeding cycles regardless of their overall size.
Dr Goodwin noted that this discovery allows scientists to accurately predict jet release timing. This predictability will help narrow observation windows and optimize the allocation of valuable telescope time.
Looking ahead, researchers hope to deepen their understanding of jet strength and its potential correlation with specific black hole properties alongside launch timing.
Dr Sara Webb, an astrophysicist at Swinburne University who did not participate in the study, commented that researchers continue working to untangle the fundamental mechanics of the universe's most extreme objects. Dr Webb stated that the study demonstrates predictable behavior in supermassive black holes across two distinct evolutionary periods and successfully bridges observations with smaller stellar-mass black holes.
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