REVIEW 2 major objections 4 minor 79 references
Dark Star Clusters or Ultra-Faint Dwarf galaxies? Revisiting UMa3/U1
T0 review · 2 major / 4 minor · reviewed 2026-08-05 · deepseek-v4-flash
Pith's one-line read A black-hole-powered star cluster, not a dark-matter-dominated dwarf, can account for UMa3/U1's compactness and high mass-to-light ratio.
desk verdict A credible existence proof that a dark star cluster can mimic UMa3/U1, but the match rides on an unvaried BH-retention assumption and one post-hoc grid model — worth a serious referee, not a reclassification. read the letter →
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
The reading
What carries the argument
The central object is the BHSub, a centrally segregated subsystem of stellar-mass black holes that assembles through Spitzer instability when natal kicks are weak enough for most black holes to be retained. The BHSub continuously injects energy into the cluster through frequent few-body encounters, accelerating the evaporation of luminous stars while the black holes remain bound; when the luminous stars become super-virial (virial coefficient $Q_* > 1$ within twice the tidal radius), the cluster is in the DSC phase. The simulations use the collisional N-body code NBODY7 with stellar evolution included, and the paper measures how long a cluster lingers in this phase with the scaled lifetime $
What would settle it
Take spectra of all ~60 stars that model M5 predicts remain bound: the model's line-of-sight velocity dispersion is about 1.9 km/s, corresponding to $M_{\rm Dyn}/L_{1/2}\sim10^3\,M_\odot/L_\odot$ at the lower end of current estimates. A measured dispersion that pushes $M_{\rm Dyn}/L_{1/2}$ above about $6\times10^3\,M_\odot/L_\odot$ (the upper end of the observed range) would exceed what a BHSub-heated cluster of this size can produce, ruling out the DSC explanation for UMa3/U1 and favoring a dark-matter-dominated microgalaxy.
Extended reading notes
Core claim
The paper's central claim is that UMa3/U1, the faintest known Milky Way satellite, does not have to be a dark-matter-dominated dwarf galaxy; it can be a dark star cluster (DSC), a self-gravitating star cluster in the late stage where a centrally segregated subsystem of retained stellar-mass black holes (the BHSub) heats the luminous stars, accelerates their evaporation, and leaves the cluster super-virial with a high dynamical mass-to-light ratio. Using direct N-body simulations calibrated to UMa3/U1's observed orbit and metallicity, the authors identify model M5 (initial mass $10^5\,M_\odot$, initial 3D half-mass radius 8 pc, canonical IMF) as a strong progenitor candidate: when its bound s
Load-bearing premise
Near-complete retention of black holes after supernova kicks: the simulations assume most black holes stay in the cluster because at [Fe/H]≈−2.2 about 75% of black-hole mass is expected to be kick-free, but if actual natal kicks are larger, no central black-hole subsystem assembles and the heating/evaporation mechanism that produces the high mass-to-light ratio collapses.
Editorial extensions
If this is right
- UMa3/U1 can be classified as a self-gravitating star cluster in the DSC phase; no dark matter is required, and model M5's initial conditions are consistent with a post-gas-expulsion embedded cluster with a canonical IMF.
- The system is short-lived: the remaining ~62 bound luminous stars should escape within about 1 Gyr (and UNIONS-detectable stars within about 820 Myr), followed by disruption of the BHSub, so UMa3/U1 is seen at a special final stage.
- In the $M_{\rm Dyn}/L$–$L$ plane, DSCs trace a rising channel from $M_{\rm Dyn}/L_{1/2}\approx2$ to $10^4\,M_\odot/L_\odot$, bridging globular clusters and dwarf galaxies and covering the region occupied by faint ambiguous satellites.
- The scarcity of systems in the luminosity gap between globular clusters and faint satellites ($10^3\lesssim L/L_\odot\lesssim10^4$) is a natural outcome: DSCs pass through that luminosity range quickly (about 5.5% of their lifetime) and linger in the faint regime.
- The scenario implies low natal kicks for black holes and possibly a top-heavy IMF in some clusters, tying DSCs to black-hole merger formation and black-hole-driven stellar streams.
Reading between the lines
- If M5 is representative, UMa3/U1's remaining luminous stars should show a velocity-dispersion profile dominated by the BHSub core rather than a dark-matter cusp; this can be tested by obtaining velocities for the roughly 60 predicted members, something the current 11-member sample cannot do.
- A census that counts every compact, high-$M_{\rm Dyn}/L$ system as a dwarf galaxy would include dissolving star clusters as contamination, potentially biasing dark-matter scaling relations at the faint end.
- The same BHSub mechanism may also explain systems like Eridanus III and DELVE 1, whose velocity-dispersion upper limits permit either interpretation; looking for compact, ancient, metal-poor populations there could reveal whether they too are near the end of their cluster life.
- If DSCs are common, the rapid passage through luminosity $10^3$–$10^4\,L_\odot$ predicts that surveys should find few systems in that regime; extending survey selection functions there would test the expected ratio of intermediate-to-faint systems.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. This paper argues that the recently discovered faint Milky Way satellite UMa3/U1, which has a compact half-light radius (R_h = 3 ± 1 pc), an ancient (>11 Gyr) stellar population, and a high inferred dynamical mass-to-light ratio (M_Dyn/L ~ 1900^{+4400}_{-1600} in solar units), can be explained as a dark star cluster (DSC): an evolved self-gravitating star cluster whose central, retained black-hole subsystem heats the luminous stars, accelerates their evaporation, and produces a super-virial velocity dispersion without requiring dark matter. The authors use direct N-body simulations with NBODY7 for a grid of eight models, varying initial mass, half-mass radius, and IMF slope, with UMa3/U1-like metallicity and orbit, and all models assuming near-complete black-hole retention. They report that model M5 (M_i = 10^5 M_sun, r_h,i = 8 pc, canonical IMF) reproduces the observed R_h, M_Dyn/L, and age when the bound stellar mass drops to M* = 16 M_sun. The paper also maps DSC evolutionary tracks in the R_h-L and M_Dyn/L-L planes, arguing that DSCs occupy the region of faint, ambiguous satellites and naturally explain the scarcity of systems at intermediate luminosities.
Significance. If the central claim holds, the paper offers a purely baryonic formation channel for UMa3/U1 and similar faint ambiguous satellites, with concrete, falsifiable consequences: the system should be in a short-lived phase with a central black-hole subsystem and should dissolve within roughly 1–2 Gyr. The strengths of the work are the use of a state-of-the-art collisional N-body code with stellar evolution, a UMa3/U1-calibrated orbit, and mock-observed velocity dispersions using the same mass estimator as the observations. The paper also provides evolutionary tracks that make the DSC interpretation testable against larger samples. However, the existence proof rests on an assumed near-complete retention of black holes that is not varied or directly constrained, and the successful model is selected from a small grid. These issues do not invalidate the scenario but make the current evidence conditional rather than definitive.
major comments (2)
- [Sec. 2, BH natal-kick/retention assumption] The central mechanism and the success of model M5 depend on the assumption of 'near-complete retention of BHs formed in our models' (Sec. 2). This assumption is shared by all eight models in Table 1 and is not varied. The cited support—about 75% of BH mass being kick-free at [Fe/H]=-2.2—concerns the fraction of BH mass receiving negligible natal kicks, not the retained fraction after subsequent dynamical evolution; few-body encounters and binary recoil can eject BHs before the Spitzer instability assembles the BHSub. Because the claim that UMa3/U1 can be explained without dark matter is load-bearing on this input, I request either additional simulations with a fallback-regulated kick prescription that reduces retention, or a quantitative estimate of the minimum retained BH fraction for which M5 still matches R_h=3±1 pc and M_Dyn/L~10^3 at M*=16 M_sun. Without such a test, the conclusion
- [Sec. 3.1, Table 1 and Fig. 1] M5 is the only model in the grid satisfying all three thresholds simultaneously (R_h within 3±1 pc, M_Dyn/L within the observed range, and age >11 Gyr). The paper calls M5 'a strong progenitor candidate' and states that this 'reinforces' the classification of UMa3/U1 as a star cluster, but it does not quantify how finely tuned the initial conditions are, nor the prior probability of observing a system in the short DSC phase at exactly M*=16 M_sun (M5 spends only ~1 Gyr near this mass after ~13 Gyr of evolution). Because the claim goes beyond a bare existence proof, the authors should use their own residence-time analysis (Sec. 3.2) to give at least an order-of-magnitude estimate of the probability of catching UMa3/U1 in this phase, or explicitly limit the conclusion to 'one viable model exists' rather than 'the classification is reinforced.'
minor comments (4)
- [Sec. 3.1, Table 1] The sentence 'all modeled clusters reach the M_Dyn/L threshold of UMa3/U1' is inconsistent with Table 1: the final M_Dyn/L values of M1–M3 (0.009, 0.024, 0.065 × 10^3 M_sun/L_sun) are far below the observed lower limit (~0.3 × 10^3), and M4 (0.28 × 10^3) is marginal. Please clarify whether this statement refers to the evolutionary peak rather than the final snapshot, or correct the text.
- [Sec. 2, Eq. (1)] The IMF normalization and several numerical details (initial binary fraction, remnant-mass and kick prescriptions used by NBODY7) are not specified. Please add a sentence or reference so that the simulations are reproducible in detail.
- [Data Availability] The statement 'The data underlying this paper are available in the paper' is insufficient for a numerical study. At minimum, the M5 initial conditions and the final snapshot used for the UMa3/U1 comparison should be released, or a repository link provided.
- [Sec. 3.2, Fig. 4] The comparison of the residence-time ratio (1:2) with the observed number ratio (1:3) is presented without uncertainties or a discussion of selection effects. This is illustrative, not a quantitative test, and should be labeled as such.
Circularity Check
Partial circularity: M5's compactness is achieved by setting r_h,i against the target R_h, so the compactness match is a selected outcome rather than an independent prediction; M_Dyn/L and age remain emergent.
-
fitted input called prediction
[Section 3.1 (discussion of model grid and Table 1)]
"Consequently, the canonical IMF models were set as low density to accelerate the dominance of BHSub over luminous stars and increase M_Dyn/L, while ensuring that r_h,i remained constrained to match the final compactness of UMa3/U1."
The initial half-mass radius r_h,i is an input parameter, and the final projected half-light radius R_h is a derived output. The paper states explicitly that r_h,i was chosen to match the final compactness of UMa3/U1. Therefore M5's R_h=3.5 pc (observed 3±1 pc) is not an independent emergent prediction; it is a calibrated/selected outcome. The paper then uses this agreement, together with M_Dyn/L, to claim that M5 'successfully reproduces' UMa3/U1. The M_Dyn/L and age values are still computed from the N-body evolution and are not directly set by the input, so the circularity is partial rather than complete.
full rationale
The central derivation is a direct N-body simulation: initial masses, radii, IMF, metallicity, and orbit are specified, and the code evolves the cluster. The reported M_Dyn/L, age, and R_h are outputs of the dynamics, not input constants. There is no equation-level identity between an input and the claimed prediction. However, the paper explicitly states that the initial r_h,i for the canonical-IMF models was chosen 'to match the final compactness' of UMa3/U1. Thus the compactness match of the preferred model M5 is partly built into the initial conditions, and the abstract's claim that the model 'successfully reproduces both its compact structure and elevated M_Dyn/L' uses a fitted/selected quantity as supporting evidence. The high M_Dyn/L is also enabled by the explicit assumption of near-complete BH retention; this is a physically motivated but unvaried input, which limits the generality of the scenario but is not a circular reduction because the simulated M_Dyn/L still emerges from the N-body evolution. Overall, the paper is a plausible scenario study rather than a first-principles prediction, and the circularity is limited to the calibration of the initial radius/selection of the matching model.
Assumptions & free parameters
free parameters (4)
- Initial cluster mass M_i =
M5: 1.0e5 Msun; suite range 0.2e5 to 1.0e5 Msun
- Initial half-mass radius r_h,i =
M5: 8 pc; suite range 1 to 12 pc
- IMF high-mass slope alpha3 =
2.3 (canonical) for M5; 1.7 for M7/M8
- BH natal kick retention fraction =
Near-complete retention; about 75% of BH mass kick-free
assumptions (5)
- domain assumption NBODY7 accurately models stellar evolution, binary interactions, and black hole dynamics.
- domain assumption Low BH natal kicks allow near-complete BH retention in metal-poor clusters.
- domain assumption UMa3/U1's observed orbit can be integrated backward in a static Milky Way potential.
- domain assumption An initial Plummer model in virial equilibrium represents an embedded cluster after gas expulsion.
- domain assumption The observed line-of-sight velocity dispersion of UMa3/U1 is intrinsic rather than inflated by binaries or an outlier.
Cite this review
Pith. "Pith review of Dark Star Clusters or Ultra-Faint Dwarf galaxies? Revisiting UMa3/U1." pith.science (2026). https://pith.science/paper/OPDW3NYC
@misc{pith2026250810543,
author = {Pith},
title = {Pith review of: Dark Star Clusters or Ultra-Faint Dwarf galaxies? Revisiting UMa3/U1},
year = {2026},
howpublished = {\url{https://pith.science/paper/OPDW3NYC}},
note = {Machine review of arXiv:2508.10543}
}
read the original abstract
Owing to sparse spectroscopic observations, the classification of faint satellites as either dark matter-dominated dwarf galaxies or self-gravitating star clusters remains unresolved. The recently discovered Ursa Major III/UNIONS 1 (UMa3/U1) object, with its measured velocity dispersion, provides a rare observational anchor in this regime. Despite its cluster-like compactness, its inferred dynamical mass-to-light ratio (M_dyn/L) suggests a dark matter-dominated nature, prompting interpretations of UMa3/U1 as a microgalaxy, though current measurements remain inconclusive. Thousand-level M_dyn/L values are not unique to galaxies; self-gravitating dark star clusters (DSCs) can reach comparable levels via energy injection driven by a centrally segregated black hole subsystem (BHSub), which accelerates the evaporation of luminous stars and leads to a super-virial appearance with elevated velocity dispersion. To assess whether UMa3/U1 is a DSC, we conducted direct N-body simulations and identified a model that successfully reproduces both its compact structure and elevated M_dyn/L, supporting a self-gravitating cluster origin. We find the cluster entered the DSC phase around 4 Gyr ago, with its luminous stars expected to be depleted within the next 1 Gyr, followed by the gradual disruption of the central BHSub over the subsequent Gyr. We broaden our analysis by mapping DSC evolutionary tracks in the size versus total luminosity (L) and M_dyn/L-L spaces, showing that DSCs occupy a region overlapping with faint, ambiguous satellites. In the M_dyn/L-L diagram, DSCs trace a transitional channel bridging globular clusters and dwarf galaxies as they rise from M_dyn/L ~ 2 to 10^4 M_sun/L_sun.
Reference graph
Works this paper leans on
-
[2]
Balbinot, E., Santiago, B. X., da Costa, L., et al. 2013, ApJ, 767, 101, doi: 10.1088/0004-637X/767/2/101 Banerjee,S.2017,MNRAS,467,524,doi:10.1093/mnras/stw3392
-
[3]
2010, MNRAS, 402, 371, doi: 10.1111/j.1365-2966.2009.15880.x
Banerjee, S., Baumgardt, H., & Kroupa, P. 2010, MNRAS, 402, 371, doi: 10.1111/j.1365-2966.2009.15880.x
arXiv 2010
-
[4]
Banerjee, S., Belczynski, K., Fryer, C. L., et al. 2020, A&A, 639, A41, doi: 10.1051/0004-6361/201935332
-
[5]
2011, ApJL, 741, L12, doi: 10.1088/2041-8205/741/1/L12
Banerjee, S., & Kroupa, P. 2011, ApJL, 741, L12, doi: 10.1088/2041-8205/741/1/L12
-
[6]
2018, ARA&A, 56, 83, doi: 10.1146/annurev-astro-081817-051839
Bastian, N., & Lardo, C. 2018, ARA&A, 56, 83, doi: 10.1146/annurev-astro-081817-051839
-
[7]
2020, PASA, 37, e046, doi: 10.1017/pasa.2020.38
Baumgardt, H., Sollima, A., & Hilker, M. 2020, PASA, 37, e046, doi: 10.1017/pasa.2020.38
-
[8]
Belczynski, K., Bulik, T., Fryer, C. L., et al. 2010, ApJ, 714, 1217, doi: 10.1088/0004-637X/714/2/1217
-
[9]
Belczynski, K., Kalogera, V., Rasio, F. A., et al. 2008, ApJS, 174, 223, doi: 10.1086/521026
doi:10.1086/521026 2008
Show all 79 references
-
[10]
2008, Galactic Dynamics: Second Edition
Binney, J., & Tremaine, S. 2008, Galactic Dynamics: Second Edition
2008
-
[11]
G., & Heggie, D
Breen, P. G., & Heggie, D. C. 2013, MNRAS, 432, 2779, doi: 10.1093/mnras/stt628
2013 doi
-
[13]
D., Li, T
Cerny, W., Simon, J. D., Li, T. S., et al. 2023a, ApJ, 942, 111, doi: 10.3847/1538-4357/aca1c3
-
[14]
S., et al
Cerny, W., Drlica-Wagner, A., Li, T. S., et al. 2023b, ApJL, 953, L21, doi: 10.3847/2041-8213/aced84
-
[15]
E., Drlica-Wagner, A., et al
Cerny, W., Martínez-Vázquez, C. E., Drlica-Wagner, A., et al. 2023c, ApJ, 953, 1, doi: 10.3847/1538-4357/acdd78
-
[16]
C., Jerjen, H., Kim, D., & Schirmer, M
Conn, B. C., Jerjen, H., Kim, D., & Schirmer, M. 2018, ApJ, 852, 68, doi: 10.3847/1538-4357/aa9eda 10
2018 doi
-
[17]
Devlin, S., Baumgardt, H., & Sweet, S. M. 2025, MNRAS, 539, 2485, doi: 10.1093/mnras/staf572
2025 doi
-
[18]
2020, A&A, 640, A85, doi: 10.1051/0004-6361/201936572
Dinnbier, F., & Kroupa, P. 2020, A&A, 640, A85, doi: 10.1051/0004-6361/201936572
2020 doi
-
[19]
F., Peñarrubia, J., & Walker, M
Errani, R., Ibata, R., Navarro, J. F., Peñarrubia, J., & Walker, M. G. 2024a, ApJ, 968, 89, doi: 10.3847/1538-4357/ad402d
-
[20]
F., Smith, S
Errani, R., Navarro, J. F., Smith, S. E. T., & McConnachie, A. W. 2024b, ApJ, 965, 20, doi: 10.3847/1538-4357/ad2267
-
[21]
Errani, R., Peñarrubia, J., & Walker, M. G. 2018, MNRAS, 481, 5073, doi: 10.1093/mnras/sty2505
2018 doi
-
[22]
2011, AJ, 142, 88, doi: 10.1088/0004-6256/142/3/88
Fadely, R., Willman, B., Geha, M., et al. 2011, AJ, 142, 88, doi: 10.1088/0004-6256/142/3/88
2011 doi
- [23]
-
[24]
L., Belczynski, K., Wiktorowicz, G., et al
Fryer, C. L., Belczynski, K., Wiktorowicz, G., et al. 2012, ApJ, 749, 91, doi: 10.1088/0004-637X/749/1/91
2012 doi
-
[25]
2024, MNRAS, 535, 1475, doi: 10.1093/mnras/stae2212
Haghi, H. 2024, MNRAS, 535, 1475, doi: 10.1093/mnras/stae2212
2024 doi
-
[26]
2021, Nature Astronomy, 5, 957, doi: 10.1038/s41550-021-01392-2
Gieles, M., Erkal, D., Antonini, F., Balbinot, E., & Peñarrubia, J. 2021, Nature Astronomy, 5, 957, doi: 10.1038/s41550-021-01392-2
2021 doi
- [27]
-
[28]
H., Kroupa, P., Banerjee, S., & Baumgardt, H
Haghi, H., Zonoozi, A. H., Kroupa, P., Banerjee, S., & Baumgardt, H. 2015, MNRAS, 454, 3872, doi: 10.1093/mnras/stv2207
2015 doi
-
[29]
Harris, W. E. 1996, AJ, 112, 1487, doi: 10.1086/118116
1996 doi
-
[30]
R., Pols, O
Hurley, J. R., Pols, O. R., & Tout, C. A. 2000, MNRAS, 315, 543, doi: 10.1046/j.1365-8711.2000.03426.x
2000
-
[31]
1976, ApJ, 204, 73, doi: 10.1086/154152
Illingworth, G. 1976, ApJ, 204, 73, doi: 10.1086/154152
1976 doi
-
[32]
N., Cohen, J
Kirby, E. N., Cohen, J. G., Guhathakurta, P., et al. 2013, ApJ, 779, 102, doi: 10.1088/0004-637X/779/2/102
2013 doi
-
[33]
Koposov, S., de Jong, J. T. A., Belokurov, V., et al. 2007, ApJ, 669, 337, doi: 10.1086/521422 Koposov,S.E.,Belokurov,V.,Torrealba,G.,&Evans,N.W.2015, ApJ, 805, 130, doi: 10.1088/0004-637X/805/2/130
2007 doi
-
[34]
1997, NewA, 2, 139, doi: 10.1016/S1384-1076(97)00012-2
Kroupa, P. 1997, NewA, 2, 139, doi: 10.1016/S1384-1076(97)00012-2
1997 doi
-
[35]
1998, MNRAS, 300, 200, doi: 10.1046/j.1365-8711.1998.01892.x
Kroupa, P. 1998, MNRAS, 300, 200, doi: 10.1046/j.1365-8711.1998.01892.x
1998
-
[36]
2001, Monthly Notices of the Royal Astronomical Society, 322, 231, doi: 10.1046/j.1365-8711.2001.04022.x
Kroupa, P. 2001, Monthly Notices of the Royal Astronomical Society, 322, 231, doi: 10.1046/j.1365-8711.2001.04022.x
2001
-
[37]
2008, in The Cambridge N-Body Lectures, ed
Kroupa, P. 2008, in The Cambridge N-Body Lectures, ed. S. J
2008
-
[38]
Aarseth, C. A. Tout, & R. A. Mardling, Vol. 760, 181, doi: 10.1007/978-1-4020-8431-7_8
-
[39]
2013, in
Kroupa, P., Weidner, C., Pflamm-Altenburg, J., et al. 2013, in
2013
-
[40]
Volume 5: Galactic Structure and Stellar Populations, ed
Planets, Stars and Stellar Systems. Volume 5: Galactic Structure and Stellar Populations, ed. T. D. Oswalt & G. Gilmore, Vol. 5, 115, doi: 10.1007/978-94-007-5612-0_4
-
[41]
Kruijssen, J. M. D., Pfeffer, J. L., Chevance, M., et al. 2020, MNRAS, 498, 2472, doi: 10.1093/mnras/staa2452 Leaman,R.2012,AJ,144,183,doi:10.1088/0004-6256/144/6/183
2020 doi
-
[42]
D., Wilkinson, M
Mackey, A. D., Wilkinson, M. I., Davies, M. B., & Gilmore, G. F. 2007, MNRAS, 379, L40, doi: 10.1111/j.1745-3933.2007.00330.x
2007
-
[43]
D., Wilkinson, M
Mackey, A. D., Wilkinson, M. I., Davies, M. B., & Gilmore, G. F. 2008,MNRAS,386,65,doi:10.1111/j.1365-2966.2008.13052.x
2008
-
[44]
Marks, M., Kroupa, P., Dabringhausen, J., & Pawlowski, M. S. 2012, MNRAS, 422, 2246, doi: 10.1111/j.1365-2966.2012.20767.x
2012
-
[45]
Massana, P., Ruiz-Lara, T., Noël, N. E. D., et al. 2022, MNRAS, 513, L40, doi: 10.1093/mnrasl/slac030
2022 doi
-
[46]
H., & Helmi, A
Massari, D., Koppelman, H. H., & Helmi, A. 2019, A&A, 630, L4, doi: 10.1051/0004-6361/201936135
2019 doi
-
[47]
Mateo, M. L. 1998, ARA&A, 36, 435, doi: 10.1146/annurev.astro.36.1.435
1998 doi
-
[48]
B., et al
Mau, S., Cerny, W., Pace, A. B., et al. 2020, ApJ, 890, 136, doi: 10.3847/1538-4357/ab6c67
2020 doi
-
[49]
McConnachie, A. W. 2012, AJ, 144, 4, doi: 10.1088/0004-6256/144/1/4
2012 doi
-
[50]
E., & van der Marel, R
McLaughlin, D. E., & van der Marel, R. P. 2005, ApJS, 161, 304, doi: 10.1086/497429
2005 doi
-
[51]
1999, MNRAS, 310, 745, doi: 10.1046/j.1365-8711.1999.02982.x
Mikkola, S., & Tanikawa, K. 1999, MNRAS, 310, 745, doi: 10.1046/j.1365-8711.1999.02982.x
1999
-
[52]
1975, PASJ, 27, 533 Muñoz, R
Miyamoto, M., & Nagai, R. 1975, PASJ, 27, 533 Muñoz, R. R., Geha, M., Côté, P., et al. 2012, ApJL, 753, L15, doi: 10.1088/2041-8205/753/1/L15
1975 doi
-
[53]
2024, Universe, 10, 143, doi: 10.3390/universe10030143
Oehm, W., & Kroupa, P. 2024, Universe, 10, 143, doi: 10.3390/universe10030143
2024 doi
- [54]
-
[55]
Plummer, H. C. 1911, MNRAS, 71, 460, doi: 10.1093/mnras/71.5.460
1911 doi
-
[56]
I., Wilkinson, M
Read, J. I., Wilkinson, M. I., Evans, N. W., Gilmore, G., & Kleyna, J. T. 2006, MNRAS, 367, 387, doi: 10.1111/j.1365-2966.2005.09959.x
2006
-
[57]
2021, MNRAS, 508, 926, doi: 10.1093/mnras/stab2553
Roshan, M., Ghafourian, N., Kashfi, T., et al. 2021, MNRAS, 508, 926, doi: 10.1093/mnras/stab2553
2021 doi
-
[58]
H., Ghasemi, S
Rostami-Shirazi, A., Baumgardt, H., Zonoozi, A. H., Ghasemi, S. M., & Haghi, H. 2025, MNRAS, 536, 1332, doi: 10.1093/mnras/stae2644
2025 doi
-
[59]
2022, MNRAS, 513, 3526, doi: 10.1093/mnras/stac1070
Zonoozi, A. 2022, MNRAS, 513, 3526, doi: 10.1093/mnras/stac1070
2022 doi
-
[60]
2024a, MNRAS, 531, 4166, doi: 10.1093/mnras/stae936
Kroupa, P. 2024a, MNRAS, 531, 4166, doi: 10.1093/mnras/stae936
-
[61]
2024b, MNRAS, 531, 2563, doi: 10.1093/mnras/stad3046 11
Rostami-Shirazi, A., Khalaj, P., & Haghi, H. 2024b, MNRAS, 531, 2563, doi: 10.1093/mnras/stad3046 11
-
[62]
H., Haghi, H., & Rabiee, M
Rostami-Shirazi, A., Zonoozi, A. H., Haghi, H., & Rabiee, M. 2024c, MNRAS, 535, 3489, doi: 10.1093/mnras/stae2365
-
[63]
Simon, J. D. 2019, ARA&A, 57, 375, doi: 10.1146/annurev-astro-091918-104453
2019 doi
-
[64]
D., Li, T
Simon, J. D., Li, T. S., Ji, A. P., et al. 2024, ApJ, 976, 256, doi: 10.3847/1538-4357/ad85dd
2024 doi
-
[65]
Smith, S. E. T., Cerny, W., Hayes, C. R., et al. 2024, ApJ, 961, 92, doi: 10.3847/1538-4357/ad0d9f
2024 doi
-
[66]
Spitzer, L. S. 2014, in Dynamical Evolution of Globular Clusters (Princeton University Press)
2014
-
[67]
H., Larsen, S., Brodie, J
Strader, J., Smith, G. H., Larsen, S., Brodie, J. P., & Huchra, J. P. 2009, AJ, 138, 547, doi: 10.1088/0004-6256/138/2/547
2009 doi
-
[68]
A., Puzia, T
Taylor, M. A., Puzia, T. H., Gomez, M., & Woodley, K. A. 2015, ApJ, 805, 65, doi: 10.1088/0004-637X/805/1/65
2015 doi
-
[69]
Torrealba, G., Belokurov, V., & Koposov, S. E. 2019, MNRAS, 484, 2181, doi: 10.1093/mnras/stz071
2019 doi
-
[70]
2020, MNRAS, 491, 2413, doi: 10.1093/mnras/stz3179
Wang, L. 2020, MNRAS, 491, 2413, doi: 10.1093/mnras/stz3179
2020 doi
-
[71]
S., & Tanikawa, A
Wang, L., Fujii, M. S., & Tanikawa, A. 2021, MNRAS, 504, 5778, doi: 10.1093/mnras/stab1157
2021 doi
-
[72]
2020, MNRAS, 491, 440, doi: 10.1093/mnras/stz3033
Wang, L., Kroupa, P., Takahashi, K., & Jerabkova, T. 2020, MNRAS, 491, 440, doi: 10.1093/mnras/stz3033
2020 doi
-
[73]
2016, MNRAS, 458, 1450, doi: 10.1093/mnras/stw274
Wang, L., Spurzem, R., Aarseth, S., et al. 2016, MNRAS, 458, 1450, doi: 10.1093/mnras/stw274
2016 doi
-
[74]
C., Fragione, G., Kremer, K., et al
Weatherford, N. C., Fragione, G., Kremer, K., et al. 2021, ApJL, 907, L25, doi: 10.3847/2041-8213/abd79c
2021 doi
-
[75]
2012, AJ, 144, 76, doi: 10.1088/0004-6256/144/3/76
Willman, B., & Strader, J. 2012, AJ, 144, 76, doi: 10.1088/0004-6256/144/3/76
2012 doi
-
[76]
R., West, A
Willman, B., Blanton, M. R., West, A. A., et al. 2005, AJ, 129, 2692, doi: 10.1086/430214
2005 doi
-
[77]
D., Bullock, J
Wolf, J., Martinez, G. D., Bullock, J. S., et al. 2010, MNRAS, 406, 1220, doi: 10.1111/j.1365-2966.2010.16753.x
2010
-
[78]
2024, MNRAS, 530, 5155, doi: 10.1093/mnras/stae1174
Wu, W., Kroupa, P., & Pflamm-Altenburg, J. 2024, MNRAS, 530, 5155, doi: 10.1093/mnras/stae1174
2024 doi
-
[79]
2018, ApJ, 853, 60, doi: 10.3847/1538-4357/aaa081
Wu, X., & Kroupa, P. 2018, ApJ, 853, 60, doi: 10.3847/1538-4357/aaa081
2018 doi
-
[80]
2019, MNRAS, 487, 4012, doi: 10.1093/mnras/stz1519
Wu, X., & Kroupa, P. 2019, MNRAS, 487, 4012, doi: 10.1093/mnras/stz1519
2019 doi
-
[81]
X., Rix, H
Xue, X. X., Rix, H. W., Zhao, G., et al. 2008, ApJ, 684, 1143, doi: 10.1086/589500
2008 doi
Reviewed August 5, 2026 · model on record in the stance chip above.
Discussion (0). Continue with ORCID to comment.