REVIEW 6 minor 85 references
The effect of radiation pressure on the dispersal of photoevaporating discs
T0 review · 0 major / 6 minor · reviewed 2026-08-11 · deepseek-v4-flash
Pith's one-line read Radiation pressure cannot solve the relic disc problem: dust outflows remove material 5–10 times too slowly.
desk verdict The definitive 2D test shows radiation pressure does not solve the relic disc problem, and the negative result is robust and likely conservative. 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 load-bearing element is the balance of forces on a dust grain just above the disc photosphere: radiation pressure acts radially outward, gravity acts radially inward, and the grain's centrifugal force alone cannot lift its trajectory above a flared disc surface. Escape therefore requires vertical drag from the photoevaporative wind, which the simulations prescribe through a vertical gas velocity $v_{g,Z}=\dot{\Sigma}_{\rm wind}/\rho_g$. The code tracks a dust size distribution from $0.1\,\mu$m to $50$ cm, computes the radiation force per grain size via wavelength-dependent opacities and a 2D optical depth to the star, and removes any dust that crosses the wind base, defined by a neutral hydrogen column of $10^{21}\,\mathrm{cm}^{-2}$. The crucial diagnostic is the angle of the grain trajectory relative to the photosphere; micron-sized grains have trajectories that point back into the disc interior, so the outflow is geometrically unable to carry them away. A related mechanism is the pile-up of 'levitating' micron-sized grains at heights where wind drag balances settling, which sets the photosphere height and controls how much dust is exposed to direct stellar radiation.
What would settle it
Run the same dust-growth and radiative-transfer calculation with a full 2D gas velocity solution for the photoevaporative wind; if micron-sized grains at the inner rim then cross the wind base at rates above roughly $10^{-6}\,M_\oplus$ yr$^{-1}$, the paper's central negative result is overturned. Alternatively, a survey finding non-accreting transition discs with X-ray winds whose mid-IR excess fades within a few $10^5$ yr would contradict the predicted clearing timescales.
Extended reading notes
Core claim
The paper's central claim is that radiation-pressure-driven dust outflows remove dust from photoevaporating transition discs too slowly, by factors of 5–10, to prevent the inner edge of the outer disc from remaining optically thick to mid-infrared radiation for longer than observed. The simulations show that sub-micron grains are accelerated along trajectories that leave the disc, but micron-sized grains—which carry much of the outflow mass—are pushed radially outward and then re-enter the disc because their trajectories lie below the photosphere; the radial mass flux consequently falls by at least an order of magnitude between the dust trap and twice its radius. The trap is replenished by inward radial drift and by the outward sweeping of dust as photoevaporation pushes the gas inner rim outward, so in the fiducial models the dust-trap mass increases over 1 Myr after gap opening. The exception is an EUV wind with a smooth mass-loss profile and an unusually high photon flux, which leads to low dust masses at gap opening and a low photosphere that lets larger grains escape; in those runs the near-to-mid-IR excess fades within about 0.25–0.8 Myr. The authors conclude that the relic disc problem is not solved by radiation pressure, and that solutions must instead come from reducing the dust mass at gap opening or from revising the photoevaporation models themselves.
Load-bearing premise
The load-bearing assumption is that the photoevaporative wind can be treated as a purely vertical gas flow with the vertical velocity set by mass conservation, which exaggerates the upward drag on dust at the inner rim; if the real wind launches dust inward instead, the dust mass-loss rates computed here are upper limits.
Editorial extensions
If this is right
- In the X-ray O11 and P19 photoevaporation models, radiation pressure does not reduce the dust-trap mass; the trap mass typically increases over 1 Myr after gap opening, so the discs remain mid-IR bright for too long.
- The only successful cases are EUV winds with smooth mass-loss profiles and unusually high photon fluxes, where dust disperses within about 0.25–0.8 Myr; these require gas mass-loss rates above about $5\times10^{-9}\,M_\odot$ yr$^{-1}$ and dust masses below about $1\,M_\oplus$ at gap opening.
- Radiation pressure competes with wind entrainment: it pushes dust outward and reduces the mass flux crossing the wind base at the inner rim, so including radiation pressure can lower, not raise, the dust lost to the wind.
- The photosphere in photoevaporating discs is shaped by outflow grains rather than by shadowing from a hot inner rim, so the disc appears flared in scattered light even when the gas scale height is lower.
- If current X-ray wind models overestimate gas mass-loss rates, as suggested by more recent hydrodynamic models, the computed dust mass-loss rates are upper limits and the negative conclusion becomes stronger.
Reading between the lines
- Because dust mass-loss scales sub-linearly with dust surface density, discs that have already lost mass to planetesimal formation should show faster mid-IR fading after gap opening; this is testable with surveys that compare transition-disc lifetimes to initial dust masses.
- The result that photosphere height is set by levitating outflow grains rather than shadowing implies that scattered-light scale-height measurements may overestimate vertical mixing; comparing scattered-light scale heights with gas scale heights from CO observations in photoevaporating discs would test this.
- The vertical-drag prescription is likely generous to dust escape, so a full 2D gas velocity solution that includes the inward radial component of the wind at the inner rim would probably strengthen the negative conclusion rather than reverse it.
- For discs evolving under MHD winds or external photoevaporation, where the gas outer radius shrinks and inward dust flux increases, radiation-pressure clearing should be even less efficient than in the purely viscous discs modelled here.
Signed reviews
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper investigates whether radiation-pressure-driven dust outflows can resolve the 'relic disc' problem in photoevaporating protoplanetary discs, in which models predict a population of non-accreting, large-cavity discs that is rarely observed. Using the cuDisc code, the authors couple 2D (R,Z) dust dynamics, coagulation/fragmentation, radiative transfer, and parameterised internal photoevaporation, evolving discs through the primordial phase in 1D and then through outer-disc dispersal in 2D. They measure dust mass-loss rates from the inner dust trap and run evolutionary simulations over ~1 Myr for three wind models (X-ray O11, X-ray P19, EUV), two stellar masses, and several fragmentation velocities and ionising fluxes. The central finding is that, in most of parameter space, radiation-pressure-driven outflows remove dust at rates roughly 5-10 times too small to deplete the dust trap against refilling, so radiation pressure does not solve the relic disc problem within current photoevaporation models; only smooth, EUV-like wind profiles with atypically high ionising fluxes and low dust masses at gap opening clear the trap on the required timescale. The paper also finds that the photosphere height is controlled by levitating micron-sized grains in the outflow rather than by inner-rim shadowing, and it presents synthetic SEDs and scattered-light images.
Significance. If the result holds, it closes a proposed solution to the relic disc problem and redirects attention to other dispersal mechanisms or to processes that reduce the dust mass at gap opening. The study is significant for its scope: it is, to my knowledge, the first global 2D treatment of radiation-pressure dust outflows in photoevaporating discs that includes coagulation/fragmentation and radiative transfer, with a parameter study spanning three wind models and a range of stellar and dust parameters. The public availability of cuDisc, the explicit discussion of approximation caveats, and the synthetic observations tied to a real non-accreting transition disc are concrete strengths. Importantly, the main simplifications (purely vertical wind, removal at the wind base, and use of extinction opacity for radiation pressure) all tend to overestimate dust removal, so the central negative result is conservative rather than fragile.
minor comments (6)
- [§3.2.1, Eq. (5)] The purely vertical wind prescription and the use of hydrostatic gas density in the wind region may overestimate vertical drag on dust near the inner rim, and the neglected radially inward launch of the wind would also reduce outward dust transport; because both effects bias the calculation in favour of dust removal, the central negative result is conservative. I recommend stating this one-sidedness explicitly in §8 and in the abstract rather than only in the §4 caveat.
- [§3.2.3, Eq. (6)] The radiation-pressure force per unit volume uses the extinction opacity κ_ext; for dust with anisotropic scattering the momentum-transfer efficiency should be κ_abs + (1-g)κ_sca. Using κ_ext overestimates the force, again in the conservative direction for the main conclusion, but the manuscript should either use the proper combination or add a sentence explaining why the difference is unimportant.
- [Table 1] The stellar radii are listed as '1.7 R_*' and '1.1 R_*'; these should be solar radii (R_sun) to avoid ambiguity, and the units in the table should be made consistent.
- [§3.2] Please clarify whether the 2D gas density, assumed hydrostatic, is recomputed as the dust distribution and temperature evolve during the 2D phase; if it is fixed at the initial condition, state this and comment on the expected effect on the vertical drag in Eq. (5).
- [§5.2.3] For the successful low-flux EUV case (Φ=10^43 s−1) the disc age at gap opening is 12 Myr, at the high end of observed disc lifetimes; this should be flagged more prominently when presenting this case as satisfying the observational constraints.
- [§3.2] There is a typo in the description of the solver: 'Godonuv' should be 'Godunov'.
Circularity Check
No circularity: negative result is a simulation output compared with, not fitted to, observed constraints.
full rationale
The paper's central claim is a negative result: radiation-pressure-driven dust outflows, within current photoevaporation models, cannot deplete the dust trap on the required timescales. The dust mass-loss rates quoted in Sections 4 and 5 are outputs of the cuDisc simulations, not parameters fitted to the relic-disc observations. The photoevaporation wind profiles (X-ray O11, X-ray P19, EUV) are external inputs with fixed strengths (L_X or Phi); the EUV flux is admittedly atypically large and is chosen to match X-ray gas mass-loss rates, but the paper does not present the EUV success as a validated prediction—it explicitly calls the conclusion unsatisfying. The required mass-loss rate of about 1e-6 M_earth/yr is derived from the observational constraint that dispersal must occur within roughly 1e5 years and typical trap masses, and is then compared with, not fitted to, the simulated rates. The vertical wind assumption v_g,Z = Sigma_wind/rho_g (Eq. 5) is a stated approximation with acknowledged caveats; if anything, overestimating vertical drag at the very inner rim would bias the simulation toward more dust removal, which would strengthen rather than create the negative conclusion. Self-citations to Owen et al. (2011), Picogna et al. (2019), and Robinson et al. (2024) are references to wind models and code infrastructure that are independently published and are not used to define the target result. No equation is defined in terms of the conclusion, no fitted parameter is renamed as a prediction, and the comparison against observations is external. Therefore no significant circularity is present.
Assumptions & free parameters
free parameters (5)
- EUV ionising flux Phi =
1e43 and 5e43 photons per second
- Turbulence parameter alpha =
2.5e-3
- Dust fragmentation velocity v_frag =
5, 10, and 20 m/s
- Dust-to-gas ratio floor =
1e-12
- Wind base column density =
1e21 cm^-2
assumptions (5)
- domain assumption The photoevaporative wind can be approximated as a purely vertical gas flow with velocity v_{g,Z} = dot-Sigma_wind / rho_g (Section 3.2.1).
- domain assumption Dust that crosses the wind base is lost from the system (Section 3.2.4).
- domain assumption The gas density in the wind region is hydrostatic (Section 3.2.1).
- domain assumption The disc is axisymmetric and the gas is evolved in 1D (Section 3.2).
- domain assumption Dust growth and fragmentation are described by the Smoluchowski equation with a fixed grid of grain sizes (Section 3.2).
invented entities (1)
-
Levitating grains
independent evidence
Cite this review
Pith. "Pith review of The effect of radiation pressure on the dispersal of photoevaporating discs." pith.science (2026). https://pith.science/paper/YVOJZLO3
@misc{pith2026241205054,
author = {Pith},
title = {Pith review of: The effect of radiation pressure on the dispersal of photoevaporating discs},
year = {2026},
howpublished = {\url{https://pith.science/paper/YVOJZLO3}},
note = {Machine review of arXiv:2412.05054}
}
abstract
Observed IR excesses indicate that protoplanetary discs evolve slowly for the majority of their lifetime before losing their near- and mid-IR excesses on short timescales. Photoevaporation models can explain this "two-timescale" nature of disc evolution through the removal of inner regions of discs after a few million years. However, they also predict the existence of a population of non-accreting discs with large cavities. Such discs are scarce within the observed population, suggesting the models are incomplete. We explore whether radiation-pressure-driven outflows are able to remove enough dust to fit observations. We simulate these outflows using cuDisc, including dust dynamics, growth/fragmentation, radiative transfer and a parameterisation of internal photoevaporation. We find that, in most cases, dust mass-loss rates are around 5-10 times too small to meet observational constraints. Particles are launched from the disc inner rim, however grains larger than around a micron do not escape in the outflow, meaning mass-loss rates are too low for the initial dust masses at gap-opening. Only systems that have smooth photoevaporation profiles with gas mass-loss rates $>\sim 5 \times 10^{-9}$ $M_\odot$ yr$^{-1}$ and disc dust masses $<\sim$1 $M_\oplus$ at the time of gap opening can meet observational constraints; in the current models these manifest as EUV winds driven by atypically large high-energy photon fluxes. We also find that the height of the disc's photosphere is controlled by small grains in the outflow as opposed to shadowing from a hot inner rim; the effect of this can be seen in synthetic scattered light observations.
Figures
Figures from the paper (14 more)
Reference graph
Works this paper leans on
-
[1]
write newline
" write newline "" before.all 'output.state := FUNCTION fin.entry write newline FUNCTION new.block output.state before.all = 'skip after.block 'output.state := if FUNCTION new.sentence output.state after.block = 'skip output.state before.all = 'skip after.sentence 'output.state := if if FUNCTION not #0 #1 if FUNCTION and 'skip pop #0 if FUNCTION or pop #1...
-
[4]
Alexander R. D., Clarke C. J., Pringle J. E., 2006b, @doi [ ] 10.1111/j.1365-2966.2006.10294.x , https://ui.adsabs.harvard.edu/abs/2006MNRAS.369..229A 369, 229
arXiv 2006
-
[5]
Armitage P. J., Simon J. B., Martin R. G., 2013, @doi [ ] 10.1088/2041-8205/778/1/L14 , https://ui.adsabs.harvard.edu/abs/2013ApJ...778L..14A 778, L14
-
[6]
H., 1996, @doi [ ] 10.1086/310200 , https://ui.adsabs.harvard.edu/abs/1996ApJ...467L..77A 467, L77
Artymowicz P., Lubow S. H., 1996, @doi [ ] 10.1086/310200 , https://ui.adsabs.harvard.edu/abs/1996ApJ...467L..77A 467, L77
doi:10.1086/310200 1996
-
[7]
Bai X.-N., 2016, @doi [ ] 10.3847/0004-637X/821/2/80 , https://ui.adsabs.harvard.edu/abs/2016ApJ...821...80B 821, 80
-
[8]
Bai X.-N., Stone J. M., 2013, @doi [ ] 10.1088/0004-637X/769/1/76 , https://ui.adsabs.harvard.edu/abs/2013ApJ...769...76B 769, 76
-
[9]
Balbus S. A., Hawley J. F., 1991, @doi [ ] 10.1086/170270 , https://ui.adsabs.harvard.edu/abs/1991ApJ...376..214B 376, 214
doi:10.1086/170270 1991
-
[10]
Birnstiel T., 2018, birnstiel/dsharp\_opac: revised release of package, @doi 10.5281/zenodo.1495277 , https://doi.org/10.5281/zenodo.1495277
Show all 85 references
-
[11]
P., Brauer F., 2009, @doi [ ] 10.1051/0004-6361/200912452 , https://ui.adsabs.harvard.edu/abs/2009A&A...503L...5B 503, L5
Birnstiel T., Dullemond C. P., Brauer F., 2009, @doi [ ] 10.1051/0004-6361/200912452 , https://ui.adsabs.harvard.edu/abs/2009A&A...503L...5B 503, L5
2009 doi
-
[12]
P., Brauer F., 2010, @doi [ ] 10.1051/0004-6361/200913731 , https://ui.adsabs.harvard.edu/abs/2010A&A...513A..79B 513, A79
Birnstiel T., Dullemond C. P., Brauer F., 2010, @doi [ ] 10.1051/0004-6361/200913731 , https://ui.adsabs.harvard.edu/abs/2010A&A...513A..79B 513, A79
2010 doi
-
[13]
W., Dullemond C
Birnstiel T., Ormel C. W., Dullemond C. P., 2011, @doi [ ] 10.1051/0004-6361/201015228 , https://ui.adsabs.harvard.edu/abs/2011A&A...525A..11B 525, A11
2011 doi
-
[14]
Birnstiel T., Klahr H., Ercolano B., 2012, @doi [ ] 10.1051/0004-6361/201118136 , https://ui.adsabs.harvard.edu/abs/2012A&A...539A.148B 539, A148
2012 doi
-
[15]
Birnstiel T., et al., 2018, @doi [ ] 10.3847/2041-8213/aaf743 , 869, L45
2018 doi
-
[16]
D., Payne D
Blandford R. D., Payne D. G., 1982, @doi [ ] 10.1093/mnras/199.4.883 , https://ui.adsabs.harvard.edu/abs/1982MNRAS.199..883B 199, 883
1982 doi
-
[17]
A., Clarke C
Booth R. A., Clarke C. J., 2021, @doi [ ] 10.1093/mnras/stab090 , https://ui.adsabs.harvard.edu/abs/2021MNRAS.502.1569B 502, 1569
2021 doi
-
[18]
I., Goldreich P., 1997, @doi [ ] 10.1086/304869 , https://ui.adsabs.harvard.edu/abs/1997ApJ...490..368C 490, 368
Chiang E. I., Goldreich P., 1997, @doi [ ] 10.1086/304869 , https://ui.adsabs.harvard.edu/abs/1997ApJ...490..368C 490, 368
1997 doi
-
[19]
D., 2016, @doi [ ] 10.3847/0004-637X/823/2/102 , https://ui.adsabs.harvard.edu/abs/2016ApJ...823..102C 823, 102
Choi J., Dotter A., Conroy C., Cantiello M., Paxton B., Johnson B. D., 2016, @doi [ ] 10.3847/0004-637X/823/2/102 , https://ui.adsabs.harvard.edu/abs/2016ApJ...823..102C 823, 102
2016 doi
-
[20]
A., et al., 2010, @doi [ ] 10.1088/0004-637X/712/2/925 , https://ui.adsabs.harvard.edu/abs/2010ApJ...712..925C 712, 925
Cieza L. A., et al., 2010, @doi [ ] 10.1088/0004-637X/712/2/925 , https://ui.adsabs.harvard.edu/abs/2010ApJ...712..925C 712, 925
2010 doi
-
[21]
J., Gendrin A., Sotomayor M., 2001, @doi [ ] 10.1046/j.1365-8711.2001.04891.x , https://ui.adsabs.harvard.edu/abs/2001MNRAS.328..485C 328, 485
Clarke C. J., Gendrin A., Sotomayor M., 2001, @doi [ ] 10.1046/j.1365-8711.2001.04891.x , https://ui.adsabs.harvard.edu/abs/2001MNRAS.328..485C 328, 485
2001
-
[22]
Coleman G. A. L., Mroueh J. K., Haworth T. J., 2024, @doi [ ] 10.1093/mnras/stad3692 , https://ui.adsabs.harvard.edu/abs/2024MNRAS.527.7588C 527, 7588
2024 doi
-
[23]
S., 1969, @doi [ ] 10.1029/JB074i010p02531 , https://ui.adsabs.harvard.edu/abs/1969JGR....74.2531D 74, 2531
Dohnanyi J. S., 1969, @doi [ ] 10.1029/JB074i010p02531 , https://ui.adsabs.harvard.edu/abs/1969JGR....74.2531D 74, 2531
1969 doi
-
[24]
T., 2003, @doi [ ] 10.1086/379123 , https://ui.adsabs.harvard.edu/abs/2003ApJ...598.1026D 598, 1026
Draine B. T., 2003, @doi [ ] 10.1086/379123 , https://ui.adsabs.harvard.edu/abs/2003ApJ...598.1026D 598, 1026
2003 doi
-
[25]
Dubrulle B., Morfill G., Sterzik M., 1995, @doi [ ] 10.1006/icar.1995.1058 , https://ui.adsabs.harvard.edu/abs/1995Icar..114..237D 114, 237
1995
-
[26]
P., Dominik C., Natta A., 2001, @doi [ ] 10.1086/323057 , https://ui.adsabs.harvard.edu/abs/2001ApJ...560..957D 560, 957
Dullemond C. P., Dominik C., Natta A., 2001, @doi [ ] 10.1086/323057 , https://ui.adsabs.harvard.edu/abs/2001ApJ...560..957D 560, 957
2001 doi
-
[27]
Dullemond C. P., Juhasz A., Pohl A., Sereshti F., Shetty R., Peters T., Commercon B., Flock M., 2012, RADMC-3D: A multi-purpose radiative transfer tool , Astrophysics Source Code Library, record ascl:1202.015
2012
-
[28]
E., 2016, @doi [ ] 10.1093/mnras/stw1179 , https://ui.adsabs.harvard.edu/abs/2016MNRAS.460.3472E 460, 3472
Ercolano B., Owen J. E., 2016, @doi [ ] 10.1093/mnras/stw1179 , https://ui.adsabs.harvard.edu/abs/2016MNRAS.460.3472E 460, 3472
2016 doi
-
[29]
Ercolano B., Pascucci I., 2017, @doi [Royal Society Open Science] 10.1098/rsos.170114 , https://ui.adsabs.harvard.edu/abs/2017RSOS....470114E 4, 170114
2017 doi
-
[30]
J., Drake J
Ercolano B., Clarke C. J., Drake J. J., 2009, @doi [ ] 10.1088/0004-637X/699/2/1639 , https://ui.adsabs.harvard.edu/abs/2009ApJ...699.1639E 699, 1639
2009 doi
-
[31]
Ercolano B., Picogna G., Monsch K., 2023, @doi [ ] 10.1093/mnrasl/slad123 , https://ui.adsabs.harvard.edu/abs/2023MNRAS.526L.105E 526, L105
2023 doi
-
[32]
Espaillat C., Andrews S., Powell D., Feldman D., Qi C., Wilner D., D'Alessio P., 2015, @doi [ ] 10.1088/0004-637X/807/2/156 , https://ui.adsabs.harvard.edu/abs/2015ApJ...807..156E 807, 156
2015 doi
-
[33]
S., McCarthy I
Font A. S., McCarthy I. G., Johnstone D., Ballantyne D. R., 2004, @doi [ ] 10.1086/383518 , https://ui.adsabs.harvard.edu/abs/2004ApJ...607..890F 607, 890
2004 doi
-
[34]
Franz R., Picogna G., Ercolano B., Casassus S., Birnstiel T., Rab C., P \'e rez S., 2022, @doi [ ] 10.1051/0004-6361/202142785 , https://ui.adsabs.harvard.edu/abs/2022A&A...659A..90F 659, A90
2022 doi
-
[35]
F., 1996, @doi [ ] 10.1086/176735 , https://ui.adsabs.harvard.edu/abs/1996ApJ...457..355G 457, 355
Gammie C. F., 1996, @doi [ ] 10.1086/176735 , https://ui.adsabs.harvard.edu/abs/1996ApJ...457..355G 457, 355
1996 doi
-
[36]
J., 2019, @doi [ ] 10.3847/1538-4357/ab311a , https://ui.adsabs.harvard.edu/abs/2019ApJ...882...33G 882, 33
Giacalone S., Teitler S., K \"o nigl A., Krijt S., Ciesla F. J., 2019, @doi [ ] 10.3847/1538-4357/ab311a , https://ui.adsabs.harvard.edu/abs/2019ApJ...882...33G 882, 33
2019 doi
-
[37]
Gorti U., Hollenbach D., 2009, @doi [ ] 10.1088/0004-637X/690/2/1539 , https://ui.adsabs.harvard.edu/abs/2009ApJ...690.1539G 690, 1539
2009 doi
-
[38]
Hardy A., et al., 2015, , 583, A66
2015
-
[39]
Hartmann L., Calvet N., Gullbring E., D'Alessio P., 1998, @doi [ ] 10.1086/305277 , https://ui.adsabs.harvard.edu/abs/1998ApJ...495..385H 495, 385
1998 doi
-
[40]
J., Clarke C
Haworth T. J., Clarke C. J., Owen J. E., 2016, , 457, 1905
2016
-
[41]
Henning T., Stognienko R., 1996, , https://ui.adsabs.harvard.edu/abs/1996A&A...311..291H 311, 291
1996
-
[42]
Hollenbach D., Johnstone D., Lizano S., Shu F., 1994, @doi [ ] 10.1086/174276 , https://ui.adsabs.harvard.edu/abs/1994ApJ...428..654H 428, 654
1994 doi
-
[43]
A., Clarke C
Hutchison M. A., Clarke C. J., 2021, @doi [ ] 10.1093/mnras/staa3608 , https://ui.adsabs.harvard.edu/abs/2021MNRAS.501.1127H 501, 1127
2021 doi
-
[44]
Komaki A., Nakatani R., Yoshida N., 2021, @doi [ ] 10.3847/1538-4357/abe2af , https://ui.adsabs.harvard.edu/abs/2021ApJ...910...51K 910, 51
2021 doi
-
[45]
E., 1974, @doi [ ] 10.1093/mnras/168.3.603 , https://ui.adsabs.harvard.edu/abs/1974MNRAS.168..603L 168, 603
Lynden-Bell D., Pringle J. E., 1974, @doi [ ] 10.1093/mnras/168.3.603 , https://ui.adsabs.harvard.edu/abs/1974MNRAS.168..603L 168, 603
1974 doi
-
[46]
F., Ansdell M., Rosotti G
Manara C. F., Ansdell M., Rosotti G. P., Hughes A. M., Armitage P. J., Lodato G., Williams J. P., 2023, in Inutsuka S., Aikawa Y., Muto T., Tomida K., Tamura M., eds, Astronomical Society of the Pacific Conference Series Vol. 534, Protostars and Planets VII. p. 539 ( @eprint a...
-
[47]
S., Rumpl W., Nordsieck K
Mathis J. S., Rumpl W., Nordsieck K. H., 1977, @doi [ ] 10.1086/155591 , https://ui.adsabs.harvard.edu/abs/1977ApJ...217..425M 217, 425
1977 doi
-
[48]
Nakatani R., Hosokawa T., Yoshida N., Nomura H., Kuiper R., 2018, @doi [ ] 10.3847/1538-4357/aad9fd , https://ui.adsabs.harvard.edu/abs/2018ApJ...865...75N 865, 75
2018 doi
-
[49]
Ohtsuki K., Nakagawa Y., Nakazawa K., 1990, @doi [ ] 10.1016/0019-1035(90)90015-2 , https://ui.adsabs.harvard.edu/abs/1990Icar...83..205O 83, 205
1990 doi
-
[50]
E., Clarke C
Owen J. E., Clarke C. J., 2012, @doi [ ] 10.1111/j.1745-3933.2012.01334.x , https://ui.adsabs.harvard.edu/abs/2012MNRAS.426L..96O 426, L96
2012
-
[51]
E., Kollmeier J
Owen J. E., Kollmeier J. A., 2019, @doi [ ] 10.1093/mnras/stz1591 , https://ui.adsabs.harvard.edu/abs/2019MNRAS.487.3702O 487, 3702
2019 doi
-
[52]
E., Ercolano B., Clarke C
Owen J. E., Ercolano B., Clarke C. J., Alexander R. D., 2010, @doi [ ] 10.1111/j.1365-2966.2009.15771.x , https://ui.adsabs.harvard.edu/abs/2010MNRAS.401.1415O 401, 1415
2010
-
[54]
E., Ercolano B., Clarke C
Owen J. E., Ercolano B., Clarke C. J., 2011b, @doi [ ] 10.1111/j.1365-2966.2010.17818.x , https://ui.adsabs.harvard.edu/abs/2011MNRAS.412...13O 412, 13
2010
-
[55]
E., Clarke C
Owen J. E., Clarke C. J., Ercolano B., 2012, , 422, 1880
2012
-
[56]
E., Hudoba de Badyn M., Clarke C
Owen J. E., Hudoba de Badyn M., Clarke C. J., Robins L., 2013, , 436, 1430
2013
-
[57]
P., Brooks K
Pascucci I., Ricci L., Gorti U., Hollenbach D., Hendler N. P., Brooks K. J., Contreras Y., 2014, @doi [ ] 10.1088/0004-637X/795/1/1 , https://ui.adsabs.harvard.edu/abs/2014ApJ...795....1P 795, 1
2014 doi
-
[58]
Perez-Becker D., Chiang E., 2011, @doi [ ] 10.1088/0004-637X/727/1/2 , https://ui.adsabs.harvard.edu/abs/2011ApJ...727....2P 727, 2
2011 doi
-
[59]
E., Weber M
Picogna G., Ercolano B., Owen J. E., Weber M. L., 2019, @doi [ ] 10.1093/mnras/stz1166 , https://ui.adsabs.harvard.edu/abs/2019MNRAS.487..691P 487, 691
2019 doi
-
[60]
E., 1981, @doi [ ] 10.1146/annurev.aa.19.090181.001033 , https://ui.adsabs.harvard.edu/abs/1981ARA&A..19..137P 19, 137
Pringle J. E., 1981, @doi [ ] 10.1146/annurev.aa.19.090181.001033 , https://ui.adsabs.harvard.edu/abs/1981ARA&A..19..137P 19, 137
1981
-
[61]
E., Norman C
Pudritz R. E., Norman C. A., 1983, @doi [ ] 10.1086/161481 , https://ui.adsabs.harvard.edu/abs/1983ApJ...274..677P 274, 677
1983 doi
-
[62]
Rab C., et al., 2022, @doi [ ] 10.1051/0004-6361/202244362 , https://ui.adsabs.harvard.edu/abs/2022A&A...668A.154R 668, A154
2022 doi
-
[63]
P., 2012, @doi [ ] 10.1111/j.1365-2966.2011.19834.x , https://ui.adsabs.harvard.edu/abs/2012MNRAS.419.1701R 419, 1701
Reg \'a ly Z., Juh \'a sz A., S \'a ndor Z., Dullemond C. P., 2012, @doi [ ] 10.1111/j.1365-2966.2011.19834.x , https://ui.adsabs.harvard.edu/abs/2012MNRAS.419.1701R 419, 1701
2012
-
[64]
J., 2010, @doi [ ] 10.1051/0004-6361/200913403 , https://ui.adsabs.harvard.edu/abs/2010A&A...512A..15R 512, A15
Ricci L., Testi L., Natta A., Neri R., Cabrit S., Herczeg G. J., 2010, @doi [ ] 10.1051/0004-6361/200913403 , https://ui.adsabs.harvard.edu/abs/2010A&A...512A..15R 512, A15
2010 doi
-
[65]
W., 2000, @doi [ ] 10.1086/309198 , https://ui.adsabs.harvard.edu/abs/2000ApJ...539..258R 539, 258
Richling S., Yorke H. W., 2000, @doi [ ] 10.1086/309198 , https://ui.adsabs.harvard.edu/abs/2000ApJ...539..258R 539, 258
2000 doi
-
[66]
A., Owen J
Robinson A., Booth R. A., Owen J. E., 2024, @doi [ ] 10.1093/mnras/stae624 , https://ui.adsabs.harvard.edu/abs/2024MNRAS.529.1524R 529, 1524
2024 doi
-
[67]
D., Booth R
Sellek A. D., Booth R. A., Clarke C. J., 2020, @doi [ ] 10.1093/mnras/stz3528 , https://ui.adsabs.harvard.edu/abs/2020MNRAS.492.1279S 492, 1279
2020 doi
-
[68]
D., Grassi T., Picogna G., Rab C., Clarke C
Sellek A. D., Grassi T., Picogna G., Rab C., Clarke C. J., Ercolano B., 2024, @doi [ ] 10.1051/0004-6361/202450171 , https://ui.adsabs.harvard.edu/abs/2024A&A...690A.296S 690, A296
2024 doi
-
[69]
I., Sunyaev R
Shakura N. I., Sunyaev R. A., 1973, , 24, 337
1973
-
[70]
H., Shang H., Lee T., 1996, @doi [Science] 10.1126/science.271.5255.1545 , https://ui.adsabs.harvard.edu/abs/1996Sci...271.1545S 271, 1545
Shu F. H., Shang H., Lee T., 1996, @doi [Science] 10.1126/science.271.5255.1545 , https://ui.adsabs.harvard.edu/abs/1996Sci...271.1545S 271, 1545
1996
-
[71]
F., Tazzari M., 2023, @doi [ ] 10.3847/2041-8213/acf048 , https://ui.adsabs.harvard.edu/abs/2023ApJ...954L..13S 954, L13
Somigliana A., Testi L., Rosotti G., Toci C., Lodato G., Tabone B., Manara C. F., Tazzari M., 2023, @doi [ ] 10.3847/2041-8213/acf048 , https://ui.adsabs.harvard.edu/abs/2023ApJ...954L..13S 954, L13
2023 doi
-
[72]
M., Gardiner T., 2009, @doi [New Astronomy] https://doi.org/10.1016/j.newast.2008.06.003 , 14, 139
Stone J. M., Gardiner T., 2009, @doi [New Astronomy] https://doi.org/10.1016/j.newast.2008.06.003 , 14, 139
2009 doi
-
[73]
M., Strom S
Strom K. M., Strom S. E., Edwards S., Cabrit S., Skrutskie M. F., 1989, @doi [ ] 10.1086/115085 , https://ui.adsabs.harvard.edu/abs/1989AJ.....97.1451S 97, 1451
1989 doi
-
[74]
R., Bessell M
Sung H., Stauffer J. R., Bessell M. S., 2009, @doi [ ] 10.1088/0004-6256/138/4/1116 , https://ui.adsabs.harvard.edu/abs/2009AJ....138.1116S 138, 1116
2009 doi
-
[75]
P., Cridland A
Tabone B., Rosotti G. P., Cridland A. J., Armitage P. J., Lodato G., 2022, @doi [ ] 10.1093/mnras/stab3442 , https://ui.adsabs.harvard.edu/abs/2022MNRAS.512.2290T 512, 2290
2022 doi
-
[76]
Takeuchi T., Lin D. N. C., 2003, @doi [ ] 10.1086/376496 , https://ui.adsabs.harvard.edu/abs/2003ApJ...593..524T 593, 524
2003 doi
-
[77]
Tanaka H., Inaba S., Nakazawa K., 1996, @doi [Icarus] https://doi.org/10.1006/icar.1996.0170 , 123, 450
1996
-
[78]
Wang L., Goodman J., 2017, @doi [ ] 10.3847/1538-4357/aa8726 , https://ui.adsabs.harvard.edu/abs/2017ApJ...847...11W 847, 11
2017 doi
-
[79]
G., Brandt R
Warren S. G., Brandt R. E., 2008, @doi [Journal of Geophysical Research (Atmospheres)] 10.1029/2007JD009744 , https://ui.adsabs.harvard.edu/abs/2008JGRD..11314220W 113, D14220
2008 doi
-
[80]
L., Ercolano B., Picogna G., Hartmann L., Rodenkirch P
Weber M. L., Ercolano B., Picogna G., Hartmann L., Rodenkirch P. J., 2020, @doi [ ] 10.1093/mnras/staa1549 , https://ui.adsabs.harvard.edu/abs/2020MNRAS.496..223W 496, 223
2020 doi
-
[81]
Weder J., Mordasini C., Emsenhuber A., 2023, @doi [ ] 10.1051/0004-6361/202243453 , https://ui.adsabs.harvard.edu/abs/2023A&A...674A.165W 674, A165
2023 doi
-
[82]
J., Haworth T
Winter A. J., Haworth T. J., 2022, @doi [European Physical Journal Plus] 10.1140/epjp/s13360-022-03314-1 , https://ui.adsabs.harvard.edu/abs/2022EPJP..137.1132W 137, 1132
2022 doi
-
[83]
C., Pani \'c O., Kennedy G
Wyatt M. C., Pani \'c O., Kennedy G. M., Matr \`a L., 2015, @doi [ ] 10.1007/s10509-015-2315-6 , https://ui.adsabs.harvard.edu/abs/2015Ap&SS.357..103W 357, 103
2015 doi
-
[84]
G., Mennella V., Colangeli L., Bussoletti E., 1996, @doi [ ] 10.1093/mnras/282.4.1321 , https://ui.adsabs.harvard.edu/abs/1996MNRAS.282.1321Z 282, 1321
Zubko V. G., Mennella V., Colangeli L., Bussoletti E., 1996, @doi [ ] 10.1093/mnras/282.4.1321 , https://ui.adsabs.harvard.edu/abs/1996MNRAS.282.1321Z 282, 1321
1996 doi
-
[85]
van Boekel R., Min M., Waters L. B. F. M., de Koter A., Dominik C., van den Ancker M. E., Bouwman J., 2005, @doi [ ] 10.1051/0004-6361:20042339 , https://ui.adsabs.harvard.edu/abs/2005A&A...437..189V 437, 189
2005 doi
-
[86]
van Leer B., 1974, @doi [Journal of Computational Physics] https://doi.org/10.1016/0021-9991(74)90019-9 , 14, 361
1974 doi
-
[87]
W., van Terwisga S., Mer \' n B., Herczeg G., Ligterink N
van der Marel N., Verhaar B. W., van Terwisga S., Mer \' n B., Herczeg G., Ligterink N. F. W., van Dishoeck E. F., 2016, @doi [ ] 10.1051/0004-6361/201628075 , https://ui.adsabs.harvard.edu/abs/2016A&A...592A.126V 592, A126
2016 doi
-
[88]
van der Marel N., et al., 2018, @doi [ ] 10.3847/1538-4357/aaaa6b , https://ui.adsabs.harvard.edu/abs/2018ApJ...854..177V 854, 177
2018 doi
Reviewed August 11, 2026 · model on record in the stance chip above.
Discussion (0). Continue with ORCID to comment.