Published · yesterdayScience3 min read
The spin the tidal disruption models left out may explain fading black hole flares
A Syracuse-led team says a star that arrives already rotating fast cannot be spun up much further, which lets each weaker pass finally look weaker. Four of about ten known repeaters fade.
Written for builders.See today for builders

What happened
- A Syracuse University team, publishing in The Astrophysical Journal, has shown that the star's spin may explain why successive flares from repeating partial tidal disruption events grow dimmer. The study was led by doctoral student Ananya Bandopadhyay with postdoctoral researcher Benjamin Amend and associate professor Eric Coughlin, plus colleagues at other institutions.
- In a repeating partial tidal disruption event, a star that is not completely torn apart keeps orbiting the black hole and loses more material at each close pass, with passes a few months to several years apart, producing a new flare each time.
- Of the roughly 10 repeating systems identified to date, four have produced flares that grow progressively dimmer.
- The four dimming systems are about 40 percent of the roughly ten known repeating systems, leaving about six that do not dim.
- Previous hydrodynamical simulations showed that even as the material lost decreased with each encounter, the predicted flares retained roughly the same brightness.
Compiled by The ScientistSomething wrong?How this is made
Why it matters
Brightness in these models tracks a ratio rather than a mass. The flare peaks with the rate at which stripped debris falls back onto the black hole, which is roughly the material removed divided by the time it takes to return [14]. Earlier hydrodynamical runs had the numerator shrinking pass after pass, which should have produced fading and did not [5]. The reason sat in the group's own earlier work: the tidal field that strips material also torques the survivor, so the star leaves each encounter spinning faster and the smaller amount of debris comes back over a shorter window [6]. Both terms fall together, and the predicted light curve barely moves.
The new result closes that loop by capping the spin-up. A star already rotating quickly on arrival is not spun up significantly by each passage, the fallback time stays roughly fixed, and declining mass loss finally shows up as a declining peak fallback rate and a dimmer flare [7]. Bandopadhyay calls the fast initial rotation "a new ingredient" [9], and says the problem had puzzled the group for two years [8].
It is worth being clear about what kind of ingredient it is. Initial spin is not new physics; it is an initial condition, set before the first encounter and not something an observer can go and measure. Nothing in this system is seen directly. The black hole emits no light, and the flare, debris radiating over days to months as it accretes, is the whole of the evidence [12]. So the model gains a parameter it can fit, and the fading light curve is the only handle on it.
That matters because the dimmers are a minority. Four of roughly ten known repeating systems fade [3], about 40 percent [4], and the other six have to emerge from the same physics with a different setting. Stellar structure already supplies part of that spread: Bandopadhyay likens a low-mass star to a fluffy meringue that grows more vulnerable to the tidal force, while a heavier star with an onion-like interior sheds outer layers and keeps a dense core relatively untouched, losing decreasing amounts each time [11]. Spin now sits alongside mass and structure as something a system's history has to deliver.
History is where the paper ends up. It asks why the star would already be rotating so rapidly [15], and that question lands next to one Coughlin states plainly: it is "extremely difficult" to bind a star to a supermassive black hole tightly enough that it orbits in a matter of months, "and yet they seem to do so in rpTDEs" [10]. Whatever channel produces these systems now has to produce the tight orbit and the fast rotation together. Until it does, the dimming is accounted for by an assumption that is itself unaccounted for.
Claim ledger
Ranked by verification strength, evidence, and original report placement.
- [1]
A Syracuse University team, publishing in The Astrophysical Journal, has shown that the star's spin may explain why successive flares from repeating partial tidal disruption events grow dimmer. The study was led by doctoral student Ananya Bandopadhyay with postdoctoral researcher Benjamin Amend and associate professor Eric Coughlin, plus colleagues at other institutions.
ReportedView cited source - [2]
In a repeating partial tidal disruption event, a star that is not completely torn apart keeps orbiting the black hole and loses more material at each close pass, with passes a few months to several years apart, producing a new flare each time.
ReportedView cited source - [3]
Of the roughly 10 repeating systems identified to date, four have produced flares that grow progressively dimmer.
ReportedView cited source - [5]
Previous hydrodynamical simulations showed that even as the material lost decreased with each encounter, the predicted flares retained roughly the same brightness.
ReportedView cited source - [6]
The team's earlier work found that the black hole's tidal forces exert a torque that makes the star spin faster with each close encounter, so although less material falls back, it returns over a shorter period, keeping the predicted flare at roughly the same brightness.
ReportedView cited source - [7]
The new study found that a star already spinning rapidly before its first encounter is prevented from being significantly spun up during each passage; the fallback timescale stays relatively constant, so as the star loses less material each time, the peak fallback rate and the predicted flare brightness can decline.
ReportedView cited source
Sources & coverage · 2 publishers
The reporting this story was synthesized from, earliest first. Every link goes to the original.
- sciencedaily.com15h agoBlack holes keep tearing these stars apart, but they survive
Additional citations
- Ananya Bandopadhyay, Syracuse University
- Eric Coughlin, Syracuse University


