Pith. sign in

REVIEW 2 major objections 5 minor 93 references

A 2D hydrodynamic simulation shows that a star rotating at 80% of its breakup rate can build a decretion disc purely through boundary layer viscosity, while 70% rotation cannot.

Reviewed by Pith at T0; open to challenge. T0 means a machine referee read the full paper against a public rubric. the ladder, T0–T4 →

T0 review · deepseek-v4-flash

2026-08-01 11:47 UTC pith:IF2GHTB5

load-bearing objection First 2D sims of boundary-layer decretion disc formation around a star with no initial disc; the mechanism is plausible and worth engaging, but the artificial spin-forcing and the density-floor caveat make the threshold claim weaker than the abstract suggests. the 2 major comments →

arxiv 2607.19757 v1 pith:IF2GHTB5 submitted 2026-07-22 astro-ph.SR astro-ph.EP

2D hydrodynamical simulations of Be star decretion disc formation through boundary layer effects

classification astro-ph.SR astro-ph.EP
keywords Be starsdecretion discsboundary layerhydrodynamical simulationsviscous accretionstellar rotationbreakup rotationcircumstellar discs
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved

The pith

A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.

This paper asks what builds the decretion disc around a Be star—a massive star spinning close to, but below, its breakup rate. The authors simulate, in two dimensions, the outer envelope of such a star with no pre-existing disc, spin it up to a fraction of breakup, and switch on viscosity. They find that when the star rotates at 80% of breakup, the boundary layer between star and disc transports angular momentum outward and drives a steady outflow that assembles a Keplerian viscous decretion disc; at 70% (or slower) rotation, no disc forms. This offers a purely hydrodynamical mechanism for disc formation at sub-breakup rotation, without magnetic fields or pulsations, and it matches the observed spin distribution of Be stars.

Core claim

The central claim is that boundary layer effects alone—viscosity acting in the thin region where rotation drops from the stellar spin rate to the near-Keplerian rate—can form a decretion disc around a star rotating below breakup. In the authors' 2D simulations with a disc aspect ratio h/r = 0.1, a star rotating at 0.8 of the breakup rate launches a disc whose surface density matches the analytic decretion-disc solution and whose rotation is >95% Keplerian outward to 2 R*, while a star at 0.7 of breakup fails to launch a disc. The paper further shows that a 1D model reproduces the 2D result, and it argues that the required rotation threshold depends on the disc aspect ratio, so thinner discs

What carries the argument

The boundary layer: the thin radial zone between the stellar envelope and the disc where the azimuthal velocity transitions from the star's rotation rate to the Keplerian rate. Viscosity (modeled as Shakura–Sunyaev alpha-viscosity, alpha = 0.1 at R*) in that layer transfers angular momentum outward; when the star spins fast enough, material in the layer gains angular momentum and is flung outward, building a decretion disc. The threshold for decretion emerges from the balance between this viscous transport and the star's rotational support, and it depends on the disc aspect ratio.

Load-bearing premise

The simulations force the star's interior rotation to a prescribed value by continually adding angular momentum inside 0.96 R*; if the disc is an artifact of this forcing rather than a self-consistent boundary layer, the central claim would not hold.

What would settle it

An observation of a Be star with an equatorial rotation rate at or below 0.7 of breakup and a disc aspect ratio of about 0.1 that still possesses a steady decretion disc would contradict the predicted threshold. Alternatively, re-running the 0.8-of-breakup case with the interior angular-momentum injection removed (letting the stellar envelope evolve self-consistently) and finding that no disc forms would show the result depends on the artificial forcing.

Watch this falsifier — get emailed when new claim-graph text bears on it.

If this is right

  • If true, Be star discs can form hydrodynamically at the observed 70–80% breakup rotation rates, with no need for magnetic fields or non-radial pulsations.
  • The boundary layer mechanism naturally regulates stellar spin: as the disc carries angular momentum away, it may hold the star near the decretion threshold.
  • The same physics should apply to other rapidly rotating stars and to circumplanetary discs, giving a unified picture of decretion-disc formation.
  • The good 1D–2D agreement means 1D viscous models can reliably be used to explore parameter space for Be disc formation.

Where Pith is reading between the lines

These are editorial extensions of the paper, not claims the author makes directly.

  • The sharp threshold between 0.7 and 0.8 of breakup suggests a bifurcation: stars may either settle into a disc-free, slightly slower state or tip into a disc-bearing state, with the disc acting as an angular-momentum sink that keeps the star near critical rotation.
  • A testable prediction: stars with thicker discs (larger h/r) should have a decretion threshold below 0.8 of breakup, while thin-disc stars (h/r ~ 0.04, as inferred for zeta Tau) should require spin closer to breakup; comparing v sin i with disc opening angles could discriminate this mechanism from magnetic or pulsation models.
  • Because the 0.7 case is sensitive to the numerical density floor, the true physical threshold may be slightly different; a resolution or floor study could locate it precisely.
  • The mechanism implies that a single star spinning up over its main-sequence lifetime to ~80% of breakup should spontaneously grow a disc, making the single-star formation channel more plausible than previously thought.

Editorial analysis

A structured set of objections, weighed in public.

Desk editor's note, referee report, simulated authors' rebuttal, and a circularity audit.

Referee Report

2 major / 5 minor

Summary. The paper reports the first 2D axisymmetric hydrodynamical simulations (Athena++) of Be-star decretion disc formation through a viscous boundary layer, starting from a rotating stellar envelope with no initial disc. For a disc aspect ratio h/r=0.1 at R*, the authors find that a star rotating at 0.8Ωb develops an outward-flowing, near-Keplerian viscous decretion disc, while 0.7Ωb and 0.3Ωb do not. The 0.8Ωb result is compared with a 1D viscous model and with the analytic surface-density profile for a decretion disc, and the paper concludes that boundary-layer effects alone can hydrodynamically build Be star discs and may regulate stellar spin.

Significance. If the mechanism is correct, this would fill a long-standing gap: Be stars rotate below breakup, and the extra angular momentum required to launch a Keplerian decretion disc has previously been attributed to magnetic torques or non-radial pulsations, both with limitations. The paper is the first to demonstrate in 2D that a purely viscous boundary layer can produce a decretion disc from a star with no initial disc, and the explicit evaluation of radial mass and angular-momentum fluxes is a methodological strength. The comparison with a 1D model provides a useful bridge to analytic work. However, as detailed below, the continuous artificial spin-forcing inside 0.96R* and the density-floor contamination in the 0.7Ωb case mean the present evidence does not yet establish the 'boundary layer alone' claim advertised in the abstract.

major comments (2)
  1. [§2.1, stage 2; Fig. 3] The central claim is that boundary-layer effects alone launch the disc, but throughout stage 2 the angular velocity interior to r=0.96R* is continuously forced to the desired value, with angular momentum injected every timestep (for the 0.7Ωb case at 8 times the stage-1 rate). This is an external torque, not a self-consistent stellar boundary layer. Without quantifying the angular-momentum loss rate J̇ in Fig. 3 against the stellar spin reservoir, or evolving the stellar spin, the simulation demonstrates that a sustained central torque can maintain a decretion disc, but not that the star's own rotational energy provides the required flux. Please add a spin-down timescale estimate and/or a test with a freely evolving stellar spin, or explicitly reframe the conclusion as demonstrating a sufficient central torque rather than the boundary layer alone.
  2. [§3, 0.7Ωb case] The 0.7Ωb case is used to support the claimed threshold for decretion, yet the text admits that density-floor material develops an inward radial mass flux that 'may compete with the ability of the boundary layer to launch the disc' when the resulting disc density is near the floor. Since the only difference between the successful 0.8Ωb and failed 0.7Ωb cases is a factor 1.14 in Ω, the numerical floor directly compromises the key negative result. A convergence study with a lower density floor, or at least a quantitative comparison of the floor's radial mass flux with the boundary-layer flux, is needed before the threshold can be considered robust.
minor comments (5)
  1. [§2.1, Eq. (4)] The text says 'setting the kinematic viscosity ν=α c_s^2/Ω_K to a non-zero constant' and then states that α is a decreasing function of radius. This is confusing: if ν is constant at its r=R* value, then α∝r^(3/2); if α is constant, ν is not. Please clarify that ν is fixed by α=0.1 at r=R*.
  2. [Fig. 4] The 1D surface density is 'scaled to match the inner portions of the 2D simulation's inner disk' and the analytic curve uses R_t=8R* chosen as the truncation radius. These are fitting choices, not parameter-free predictions; the caption and text should state this explicitly so the 'good agreement' is not over-interpreted.
  3. [§2.1, Fig. 1 caption] The region r<0.96R* is marked 'non-physical' in figures but the main text describes the forcing there only as a numerical device. Since the external torque in that region is load-bearing for the interpretation, this caveat should appear in §2.1 itself rather than only in figure captions.
  4. [§2.2] Typo: 'minmoid limiter' should be 'minmod limiter'.
  5. [§3] The statement 'Ω/Ω_K is greater than 0.95 for r between 1.2R* and 2R*' is useful, but consider also reporting the value at the disc inner edge (r≲1.1R*), where the boundary-layer deviation is largest, to more clearly separate the Keplerian disc from the boundary layer.

Circularity Check

0 steps flagged

No significant circularity: the 2D disc-formation result is a direct numerical experiment, not a reduction to its inputs.

full rationale

No circularity found. The central claim—that a 2D viscous boundary layer can build a decretion disc around a star at 0.8Ωb with no initial disc—is a direct numerical outcome of the Athena++ simulations, not an equation-level reduction. The angular-momentum forcing inside r<0.96R* (§2.1, 'We continue forcing the angular velocity interior to r=0.96R* to the desired value throughout stage 2') is a stated, non-physical boundary condition and a genuine physical limitation (finite stellar spin-down is not computed), but it does not make the disc-formation result circular: the same forcing fails at 0.7Ωb, and the paper explicitly notes density-floor material 'may compete with the ability of the boundary layer to launch the disc' in that case. The comparison to the Carciofi & Bjorkman (2008) analytic surface-density profile uses a truncation radius R_t ≈ 8R* chosen to represent the expanding outer edge, but this is illustrative and not load-bearing. The 1D comparison is a consistency check rather than the source of the claimed mechanism; the self-citations to Martin et al. (2025a,b) supply context and the j parameter, whose origin is credited to Popham & Narayan (1991), Paczynski (1991), and Lee (2013). No fitted parameter is renamed as a prediction, and no uniqueness theorem is imported. The manuscript's own caveats about stellar modeling are physical-modeling limitations, not circular definitions.

Axiom & Free-Parameter Ledger

7 free parameters · 6 axioms · 0 invented entities

The paper contributes a numerical demonstration, not a derivation from first principles, so its load-bearing inputs are physical and numerical modeling choices. The most important free parameters are α=0.1 and h/r=0.1, plus the ad hoc spin-forcing profile and density floor. There are no newly invented physical entities; the boundary-layer mechanism is adopted from prior work.

free parameters (7)
  • disc aspect ratio h/r at R* = 0.1 (via chosen sound speed c_s)
    Chosen to match observed Be disc opening angles; physically could be 0.04–0.36, and the threshold depends on it.
  • Shakura-Sunyaev alpha viscosity = 0.1 at R* (ν = α c_s^2/Ω_K)
    Standard viscous efficiency chosen by hand; angular momentum transport rate depends on it.
  • stellar rotation rates Ω*/Ωb = 0.3, 0.7, 0.8
    Sampled across observed Be spin distribution; only three values, so the threshold location is not determined.
  • density floor = 1e-8 M*/R*^3
    Numerical floor; authors state it may influence the 0.7 case.
  • rotation forcing profile and rate = logistic width 400, increment 4π×10^-5 rotations/orbit/timestep, damping 0.0016
    Ad hoc numerical construction to set stellar spin; not based on stellar structure.
  • inner boundary radius = 0.9 R*
    Limits model to outer envelope; not motivated by physics.
  • analytic truncation radius R_t in Fig. 4 = 8 R*
    Used to overplot analytic decretion surface density; chosen to match the outer disc, not predicted.
axioms (6)
  • domain assumption Isothermal equation of state P = c_s^2 ρ with constant c_s throughout envelope and disc
    Used in §2.1; disc is flared because c_s is constant, but this neglects radiative heating and cooling.
  • domain assumption Shakura-Sunyaev α-viscosity with ν = α c_s^2/Ω_K (Eq. 4)
    Viscous angular momentum transport is parametrized; α = 0.1 at R*.
  • domain assumption Axisymmetry in φ, 2D (r,θ) simulation
    The setup states the simulation is azimuthally symmetric; this excludes non-axisymmetric instabilities and any 3D effects.
  • ad hoc to paper Stellar envelope rotation is continuously forced inside 0.96R*
    This is the artificial driver; if it supplies the angular momentum, the 'boundary layer effect' claim is weakened.
  • domain assumption Gravity treated as a point mass; envelope mass and self-gravity neglected
    Stated in §2.1; valid only if the envelope mass is truly small.
  • domain assumption No magnetic fields are included
    Stated in the abstract and conclusions; magnetic launching mechanisms are explicitly outside the model.

pith-pipeline@v1.3.0-alltime-deepseek · 10520 in / 12703 out tokens · 113474 ms · 2026-08-01T11:47:05.942773+00:00 · methodology

0 comments
read the original abstract

Be stars are massive main-sequence stars rotating close to their breakup rate. They possess a decretion disc of material built up due to mass loss from the star, however, there is not a consensus to the mechanism responsible for the formation of the disc because of their sub-breakup spin rates. We present the first 2D hydrodynamical simulations of the formation of a Be star decretion disc from a rapidly rotating star due to boundary layer effects that reduce the rotation rate of the disc close to the star. In our simulations with a disc aspect ratio of $h/r=0.1$, a decretion disc forms around a star rotating with $80 \%$ of the breakup rate, but fails when rotating at $70 \%$ of the breakup rate. For a thinner disc, a faster stellar spin may be needed to form a dynamically important decretion disc. We also demonstrate good agreement between 1D and 2D models. Although this work does not consider the presence of magnetic fields and the angular momentum transport is through viscosity, our results robustly show a Be star disc may be built up hydrodynamically through boundary layer effects, and may play an essential role in regulating the stellar spin.

Figures

Figures reproduced from arXiv: 2607.19757 by Jiayin Dong, Madeline Overton, Rebecca G. Martin, Zhaohuan Zhu.

Figure 1
Figure 1. Figure 1: The surface density (upper panel) and the midplane angular velocity (lower panel) as a function of radial distance from the star. The orange, teal, and pink lines distinguish the three simulations with a stellar rotation of 0.8 Ωb, 0.7 Ωb, and 0.3 Ωb respectively. The gray region represents 𝑟 < 0.96 𝑅∗ where the angular velocity is modified, and is non-physical . for the surface density and the radial velo… view at source ↗
Figure 2
Figure 2. Figure 2: Snapshots of the density for the Ω∗ = 0.8 Ωb case at 𝑡 = 0 𝑃orb (left), the end of stage 1 (middle), and the end of stage 2 (right). of the Ω∗/Ωb = 0.3 case does not change significantly as the rotation rate is increased throughout stage 1. The bottom panel of [PITH_FULL_IMAGE:figures/full_fig_p004_2.png] view at source ↗
Figure 3
Figure 3. Figure 3: Time averaged mass flux (top panel) and time averaged angular momentum flux (bottom panel). Both quantities are averaged over 100 𝑃orb at the end of stage 2. Positive values of 𝑀¤ and 𝐽¤ indicate decretion and outwards transport of angular momentum. The gray region represents 𝑟 < 0.96 𝑅∗ where the angular velocity is modified, and is non-physical. increases compared to its stage 1 values but remains a decr… view at source ↗
Figure 4
Figure 4. Figure 4: The comparison between the 2D and 1D simulations is shown for surface density (leftmost panel), mass accretion rate (middle panel), and radial velocity (𝑀¤ /(2𝜋𝑟Σ), rightmost panel). The snapshot from the 1D simulation is taken at 510 𝑃orb, while quantities are averaged over the final 100 orbits for 2D simulations. In the leftmost panel, the dashed curve shows the analytical solution for the disk surface d… view at source ↗

discussion (0)

Sign in with ORCID, Apple, or X to comment. Anyone can read and Pith papers without signing in.

Reference graph

Works this paper leans on

93 extracted references · 21 canonical work pages · 1 internal anchor

  1. [1]

    , keywords =

    Wave-rotation interaction and episodic mass-loss in Be stars. , keywords =

  2. [2]

    , keywords =

    Investigating the lack of main-sequence companions to massive Be stars. , keywords =. doi:10.1051/0004-6361/202037640 , archivePrefix =. 2006.13229 , primaryClass =

  3. [3]

    doi:10.1093/mnras/sty973 , keywords =

    2018 , month = jul, journal =. doi:10.1093/mnras/sty973 , keywords =

  4. [4]

    Carciofi, A. C. and Bjorkman, J. E. , year=. Non‐LTE Monte Carlo Radiative Transfer. II. Nonisothermal Solutions for Viscous Keplerian Disks , volume=. The Astrophysical Journal , publisher=. doi:10.1086/589875 , number=

  5. [5]

    Active OB Stars: Structure, Evolution, Mass Loss, and Critical Limits , year = 2011, editor =

    The circumstellar discs of Be stars. Active OB Stars: Structure, Evolution, Mass Loss, and Critical Limits , year = 2011, editor =. doi:10.1017/S1743921311010738 , archivePrefix =. 1009.3969 , primaryClass =

  6. [6]

    Galaxies , keywords =

    Mass Loss in Be Stars: News from Two Fronts. Galaxies , keywords =. doi:10.3390/galaxies13040077 , adsurl =

  7. [7]

    , keywords =

    A Be-type star with a black-hole companion. , keywords =. doi:10.1038/nature12916 , archivePrefix =. 1401.3711 , primaryClass =

  8. [8]

    , keywords =

    Radiation Hydrodynamic Simulations of Massive Stars in Gas-rich Environments: Accretion of AGN Stars Suppressed by Thermal Feedback. , keywords =. doi:10.3847/1538-4357/ad6dd4 , archivePrefix =. 2408.12017 , primaryClass =

  9. [9]

    , keywords =

    A Statistical Study of Threshold Rotation Rates for the Formation of Disks around Be Stars. , keywords =. doi:10.1086/491696 , archivePrefix =. astro-ph/0507718 , primaryClass =

  10. [10]

    doi:10.3847/1538-4357/ac1941 , keywords =

    2021 , month = nov, journal =. doi:10.3847/1538-4357/ac1941 , keywords =

  11. [11]

    , keywords =

    Evolution towards the critical limit and the origin of Be stars. , keywords =. doi:10.1051/0004-6361:20078095 , archivePrefix =. 0711.1735 , primaryClass =

  12. [12]

    , keywords =

    Self-consistent 2D models of fast-rotating early-type stars. , keywords =. doi:10.1051/0004-6361/201220844 , archivePrefix =. 1212.0778 , primaryClass =

  13. [13]

    doi:10.1093/mnras/stz424 , keywords =

    2019 , month = may, journal =. doi:10.1093/mnras/stz424 , keywords =

  14. [14]

    doi:10.3847/2041-8213/ab3920 , keywords =

    2019 , month = aug, journal =. doi:10.3847/2041-8213/ab3920 , keywords =

  15. [15]

    doi:10.3847/2041-8213/ab2fd8 , keywords =

    2019 , month = aug, journal =. doi:10.3847/2041-8213/ab2fd8 , keywords =

  16. [16]

    doi:10.3847/2041-8213/ac4029 , keywords =

    2021 , month = dec, journal =. doi:10.3847/2041-8213/ac4029 , keywords =

  17. [17]

    Accretion Power in Astrophysics: Third Edition

  18. [18]

    Boundary Layers of Circumplanetary Disks around Spinning Planets. I. Effects of Rossby Waves. , keywords =. doi:10.3847/1538-4357/acac9c , archivePrefix =. 2212.02311 , primaryClass =

  19. [19]

    Boundary Layers of Circumplanetary Disks around Spinning Planets. II. Global Modes with Azimuthal Magnetic Fields. , keywords =. doi:10.3847/1538-4357/ad7584 , archivePrefix =. 2408.16376 , primaryClass =

  20. [20]

    , keywords =

    On the structure of Be star disks. , keywords =

  21. [21]

    , keywords =

    The single star path to Be stars. , keywords =. doi:10.1051/0004-6361/201937018 , archivePrefix =. 1912.05290 , primaryClass =

  22. [22]

    1973 , month = nov, journal =

  23. [23]

    doi:10.1086/151309 , adsurl =

    1972 , month = feb, journal =. doi:10.1086/151309 , adsurl =

  24. [24]

    , keywords =

    Local Radiation Hydrodynamic Simulations of Massive Star Envelopes at the Iron Opacity Peak. , keywords =. doi:10.1088/0004-637X/813/1/74 , archivePrefix =. 1509.05417 , primaryClass =

  25. [25]

    , keywords =

    Outbursts of luminous blue variable stars from variations in the helium opacity. , keywords =. doi:10.1038/s41586-018-0525-0 , archivePrefix =. 1809.10187 , primaryClass =

  26. [26]

    , keywords =

    Ultraviolet Spectropolarimetry: on the origin of rapidly rotating B stars. , keywords =. doi:10.1007/s10509-022-04127-5 , archivePrefix =. 2111.07926 , primaryClass =

  27. [27]

    , keywords =

    Interferometric Detections of sdO Companions Orbiting Three Classical Be Stars. , keywords =. doi:10.3847/1538-4357/ac4266 , archivePrefix =. 2112.05073 , primaryClass =

  28. [28]

    , keywords =

    VLTI/GRAVITY enables the determination of the first dynamical masses of a classical Be + stripped and bloated pre-subdwarf binary. , keywords =. doi:10.1051/0004-6361/202453248 , archivePrefix =. 2501.04103 , primaryClass =

  29. [29]

    , keywords =

    Viscous excretion discs around Be stars. , keywords =. doi:10.1093/mnras/250.2.432 , adsurl =

  30. [30]

    , keywords =

    Viscous Decretion Discs around Rapidly Rotating Stars. , keywords =. doi:10.1093/pasj/65.6.122 , archivePrefix =. 1304.6471 , primaryClass =

  31. [31]

    , keywords =

    Einstein Probe Discovery of EP J005245.1‑722843: A Rare Be White Dwarf Binary in the Small Magellanic Cloud?. , keywords =. doi:10.3847/2041-8213/ad9580 , archivePrefix =. 2407.21371 , primaryClass =

  32. [34]

    doi:10.1088/0004-637X/810/2/105 , archiveprefix =

    2015 , month = sep, journal =. doi:10.1088/0004-637X/810/2/105 , archiveprefix =. 1508.00931 , primaryclass =

  33. [35]

    doi:10.1093/mnras/stw605 , archiveprefix =

    2016 , month = jun, journal =. doi:10.1093/mnras/stw605 , archiveprefix =. 1603.03135 , primaryclass =

  34. [36]

    2016 , month = sep, journal =

  35. [37]

    doi:10.3847/2041-8213/835/2/L28 , archiveprefix =

    2017 , month = feb, journal =. doi:10.3847/2041-8213/835/2/L28 , archiveprefix =. 1702.00545 , primaryclass =

  36. [38]

    doi:10.1093/mnras/sty1648 , archiveprefix =

    2018 , month = sep, journal =. doi:10.1093/mnras/sty1648 , archiveprefix =. 1806.08388 , primaryclass =

  37. [39]

    doi:10.1016/j.newast.2019.01.001 , keywords =

    2019 , month = jul, journal =. doi:10.1016/j.newast.2019.01.001 , keywords =

  38. [40]

    doi:10.1093/mnras/stz2250 , keywords =

    2019 , month = oct, journal =. doi:10.1093/mnras/stz2250 , keywords =

  39. [41]

    doi:10.3847/1538-4357/ab0bb7 , keywords =

    2019 , month = apr, journal =. doi:10.3847/1538-4357/ab0bb7 , keywords =

  40. [42]

    doi:10.1093/mnras/staa1674 , keywords =

    2020 , month = aug, journal =. doi:10.1093/mnras/staa1674 , keywords =

  41. [43]

    doi:10.3847/2041-8213/ac54b4 , keywords =

    2022 , month = mar, journal =. doi:10.3847/2041-8213/ac54b4 , keywords =

  42. [44]

    doi:10.1093/mnrasl/slac090 , keywords =

    2022 , month = oct, journal =. doi:10.1093/mnrasl/slac090 , keywords =

  43. [45]

    doi:10.1111/j.1745-3933.2012.01290.x , archiveprefix =

    2012 , month = sep, journal =. doi:10.1111/j.1745-3933.2012.01290.x , archiveprefix =. 1207.4284 , primaryclass =

  44. [46]

    doi:10.1093/mnrasl/sls003 , archiveprefix =

    2013 , month = jan, journal =. doi:10.1093/mnrasl/sls003 , archiveprefix =. 1211.0023 , primaryclass =

  45. [47]

    doi:10.1093/mnras/stt1051 , archiveprefix =

    2013 , month = sep, journal =. doi:10.1093/mnras/stt1051 , archiveprefix =. 1306.5243 , primaryclass =

  46. [48]

    doi:10.1088/2041-8205/740/1/L6 , archiveprefix =

    2011 , month = oct, journal =. doi:10.1088/2041-8205/740/1/L6 , archiveprefix =. 1108.4960 , primaryclass =

  47. [49]

    doi:10.1093/mnras/stt1917 , archiveprefix =

    2014 , month = jan, journal =. doi:10.1093/mnras/stt1917 , archiveprefix =. 1310.2294 , primaryclass =

  48. [50]

    doi:10.1093/mnras/stt580 , archiveprefix =

    2013 , month = jun, journal =. doi:10.1093/mnras/stt580 , archiveprefix =. 1304.4647 , primaryclass =

  49. [51]

    doi:10.1111/j.1365-2966.2007.12349.x , archiveprefix =

    2007 , month = nov, journal =. doi:10.1111/j.1365-2966.2007.12349.x , archiveprefix =. 0708.2034 , keywords =

  50. [55]

    doi:10.1111/j.1365-2966.2009.15777.x , archiveprefix =

    2010 , month = jan, journal =. doi:10.1111/j.1365-2966.2009.15777.x , archiveprefix =. 0910.0018 , primaryclass =

  51. [59]

    doi:10.1088/2041-8205/790/2/L34 , archiveprefix =

    2014 , month = aug, journal =. doi:10.1088/2041-8205/790/2/L34 , archiveprefix =. 1407.5676 , primaryclass =

  52. [60]

    doi:10.1088/2041-8205/792/2/L33 , archiveprefix =

    2014 , month = sep, journal =. doi:10.1088/2041-8205/792/2/L33 , archiveprefix =. 1409.1226 , primaryclass =

  53. [61]

    , keywords =

    Decretion disc size in Be/X-ray binaries depends upon the disc aspect ratio. , keywords =. doi:10.1093/mnras/stae1143 , archivePrefix =. 2404.17976 , primaryClass =

  54. [62]

    doi:10.1093/mnrasl/slaf019 , keywords =

    2025 , month = may, journal =. doi:10.1093/mnrasl/slaf019 , keywords =

  55. [63]

    , keywords =

    Primordial planet spin driven by boundary layer effects in a decretion disc. , keywords =. doi:10.1093/mnrasl/slaf090 , archivePrefix =. 2508.09273 , primaryClass =

  56. [64]

    doi:10.1111/j.1745-3933.2008.00545.x , archiveprefix =

    2008 , month = nov, journal =. doi:10.1111/j.1745-3933.2008.00545.x , archiveprefix =. 0808.2139 , keywords =

  57. [65]

    doi:10.1111/j.1365-2966.2011.18228.x , keywords =

    2011 , month = may, journal =. doi:10.1111/j.1365-2966.2011.18228.x , keywords =

  58. [66]

    doi:10.1016/0021-9991(89)90032-6 , keywords =

    1989 , month = may, journal =. doi:10.1016/0021-9991(89)90032-6 , keywords =

  59. [67]

    doi:10.1093/mnras/stab3328 , keywords =

    2022 , month = feb, journal =. doi:10.1093/mnras/stab3328 , keywords =

  60. [68]

    , keywords =

    An investigation of the magnetic properties of the classical Be star Ori by the MiMeS Collaboration. , keywords =. doi:10.1111/j.1365-2966.2012.21833.x , adsurl =

  61. [69]

    , keywords =

    Transport of angular momentum by stochastically excited waves as an explanation for the outburst of the rapidly rotating Be star HD49330. , keywords =. doi:10.1051/0004-6361/201935858 , archivePrefix =. 2007.08977 , primaryClass =

  62. [70]

    On the nature of Be/X-ray binaries

    On the nature of Be/X-ray binaries. , keywords =. doi:10.48550/arXiv.astro-ph/9807158 , archivePrefix =. astro-ph/9807158 , primaryClass =

  63. [71]

    , keywords =

    Be Star Disks: Powered by a Nonzero Central Torque. , keywords =. doi:10.3847/2041-8213/abd17e , archivePrefix =. 2012.04657 , primaryClass =

  64. [72]

    , keywords =

    Accretion discs with non-zero central torque. , keywords =. doi:10.1016/j.newast.2020.101493 , archivePrefix =. 2008.07565 , primaryClass =

  65. [73]

    , keywords =

    Viscous Transonic Decretion in Disks of Be Stars. , keywords =. doi:10.1093/pasj/53.1.119 , archivePrefix =. astro-ph/0010517 , primaryClass =

  66. [74]

    I - Nonradial pulsation theory of massive stars

    Connection between nonradial pulsations and stellar winds in massive stars. I - Nonradial pulsation theory of massive stars. , keywords =. doi:10.1086/131713 , adsurl =

  67. [75]

    Monthly Notices of the Royal Astronomical Society: Letters , volume =

    Overton, Madeline and Martin, Rebecca G and Lubow, Stephen H and Lepp, Stephen , year =. Monthly Notices of the Royal Astronomical Society: Letters , volume =. doi:10.1093/mnrasl/slad172 , issn =

  68. [76]

    Overton, Madeline and Zhu, Zhaohuan and Martin, Rebecca G and Dong, Jiayin , title =

  69. [77]

    , keywords =

    A Polytropic Model of an Accretion Disk, a Boundary Layer, and a Star. , keywords =. doi:10.1086/169846 , adsurl =

  70. [78]

    and Vieira, Rodrigo G

    Panoglou, Despina and Carciofi, Alex C. and Vieira, Rodrigo G. and Cyr, Isabelle H. and Jones, Carol E. and Okazaki, Atsuo T. and Rivinius, Thomas , year =. Monthly Notices of the Royal Astronomical Society , volume =. doi:10.1093/mnras/stw1508 , issn =

  71. [79]

    , keywords =

    The formation of Be stars through close binary evolution. , keywords =

  72. [80]

    , keywords =

    Does Accretion Cease When a Star Approaches Breakup?. , keywords =. doi:10.1086/169847 , adsurl =

  73. [81]

    , keywords =

    On the rotational velocities of Be and Be-shell stars. , keywords =. doi:10.1093/mnras/280.3.L31 , adsurl =

  74. [82]

    , keywords =

    The properties of external accretion discs. , keywords =. doi:10.1093/mnras/248.4.754 , adsurl =

  75. [83]

    , keywords =

    Constraints on the Geometry of Circumstellar Envelopes: Optical Interferometric and Spectropolarimetric Observations of Seven Be Stars. , keywords =. doi:10.1086/303854 , adsurl =

  76. [84]

    doi:10.1093/mnras/stae1787 , keywords =

    2024 , month = sep, journal =. doi:10.1093/mnras/stae1787 , keywords =

  77. [85]

    Rapidly rotating B stars with viscous Keplerian decretion disks

    Classical Be stars. Rapidly rotating B stars with viscous Keplerian decretion disks. , keywords =. doi:10.1007/s00159-013-0069-0 , archivePrefix =. 1310.3962 , primaryClass =

  78. [86]

    Classical Be stars , editor =

    Thomas Rivinius and Robert Klement , keywords =. Classical Be stars , editor =. Encyclopedia of Astrophysics (First Edition) , publisher =. 2026 , isbn =. doi:https://doi.org/10.1016/B978-0-443-21439-4.00042-0 , url =

  79. [87]

    , keywords =

    Be/X-ray binaries. , keywords =. doi:10.1007/s10509-010-0575-8 , archivePrefix =. 1101.5036 , primaryClass =

  80. [88]

    , keywords =

    On the Formation of Be Stars through Binary Interaction. , keywords =. doi:10.1088/0004-637X/796/1/37 , archivePrefix =. 1410.0100 , primaryClass =

Showing first 80 references.