REVIEW 3 major objections 4 minor 40 references
Partial Differentiation of Callisto as Possible Evidence for Pebble Accretion
T0 review · 3 major / 4 minor · reviewed 2026-08-06 · deepseek-v4-flash
Pith's one-line read Callisto's partially differentiated interior can only be explained by pebble accretion, making the moon a possible first observational fingerprint of the mechanism.
desk verdict Clean parameter study; main 'only pebble accretion' claim rides entirely on an underived subsurface-energy fraction. 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 argument is carried by the subsurface energy-deposition fraction $\eta$, defined in the paper's energy-balance equations: it is the share of an impactor's kinetic energy deposited beneath the surface, where radiative cooling does not act. Satellitesimal accretion is assigned $\eta = 0.1$ to $0.3$ following earlier impact studies, while pebble accretion is assigned $\eta = 0$ because centimeter-to-meter pebbles stop at the surface. The model combines this with an accretion rate $\dot M \propto M^{2/3}$ for both mechanisms, impact velocities that include gas-drag-limited settling $v_{\rm set} = gSt/\Omega_K$, and $^{26}$Al radiogenic heating, to compute the melt mass fraction $m_{\rm melt}$ by comparing internal temperature with the pressure-dependent ice melting curve. The $\eta$ contrast alone is what separates the two scenarios: the large- and small-pebble runs coincide exactly with the $\eta=0$ 'Cold-limit' satellitesimal case, and only the fragmentation-limited pebbles receive additional protection from reduced impact velocity.
What would settle it
Measure, by impact experiment or computer simulation, how much kinetic energy centimeter-to-meter ice-rock projectiles deposit beneath the impact point at speeds near Callisto's escape velocity ($\sim2.4$ km/s); if the buried fraction exceeds a few percent, pebble accretion would heat the subsurface much like satellitesimal accretion and the paper's proposed distinction would collapse.
Extended reading notes
Core claim
The central claim is that Callisto's measured normalized moment of inertia, $C/(M_sR_s^2) = 0.3549 \pm 0.0042$, can be reproduced only if the moon formed by accreting pebbles rather than satellitesimals. In the model, satellitesimal impactors deposit a fraction $\eta = 0.1$ to $0.3$ of their kinetic energy below the surface, where radiative cooling is ineffective, and this produces melt mass fractions $m_{\rm melt}$ exceeding 0.5 in the Cold-accretion case and 0.9 in the Hot-accretion case across formation periods from 0.5 to 20 Myr and start times from 0.5 to 10 Myr. Pebble impactors deposit essentially no energy below the surface ($\eta = 0$), and fragmentation-limited pebbles with Stokes number $St = 0.001$ are further slowed by aerodynamic drag, keeping the melt fraction at or below the observed $m_{\rm melt} \sim 1/3$ for formation periods longer than about 1.2 Myr and for late-enough start times. Only the 'Cold-limit' satellitesimal case with $\eta = 0$, which the author argues is unrealistic for kilometer-sized impactors, avoids differentiation; therefore, if Callisto's partial differentiation is confirmed by JUICE, satellitesimal accretion is ruled out and pebble accretion is the only viable formation mechanism.
Load-bearing premise
The conclusion rests on the assumption that pebble impacts deposit essentially no kinetic energy below Callisto's surface, while satellitesimal impacts bury 10 to 30 percent of theirs; if real pebbles bury even a few percent at depth, or real satellitesimals bury less than 10 percent, the two formation scenarios would no longer be cleanly separated.
Editorial extensions
If this is right
- If JUICE confirms Callisto is only partially differentiated, satellitesimal accretion is excluded as the formation mechanism and Callisto becomes the first observed case of pebble accretion building a large body.
- Ganymede's full differentiation is not produced by pebble accretion in this model, so Ganymede requires additional post-formation heating to explain its fully differentiated state.
- For Callisto, the model requires formation lasting at least about 1.2 Myr and starting late enough (roughly $t_{\rm start} \gtrsim 2$ Myr) to avoid $^{26}$Al melting; these are concrete, testable conditions on the accretion history.
- The critical Stokes number for Callisto is $St_{\rm crit} \simeq 0.0086$, so aerodynamic drag matters only for the small, fragmentation-limited pebbles; Ganymede's larger critical value, $St_{\rm crit} \simeq 0.02$, means small pebbles are decelerated there more easily, offering a partial handle on why the two moons differ.
Reading between the lines
- If the central claim holds, Callisto's measured moment of inertia could be inverted into constraints on pebble size and formation timescale, since the predicted melt fraction depends on both.
- The same $\eta$-based reasoning may apply to other partially differentiated icy bodies, such as medium-sized moons of Saturn or large Kuiper belt objects; finding more examples would show whether pebble-built, surface-heated accretion is a common formation mode rather than a Callisto-specific outcome.
- The paper stops at melting during accretion; an editorial extension is to model the long-term thermal evolution of the partially differentiated structure with long-lived radioisotopes and convection to see whether the observed state survives to the present day.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper argues that Callisto's partially differentiated interior, inferred from Galileo gravity data, can only be explained by pebble accretion rather than satellitesimal accretion. The author sets up a two-layer energy balance model in which a fraction η of impact kinetic energy is deposited below the surface, uses analytic accretion rates for the two scenarios, and computes melt mass fractions over broad ranges of formation timescales and start times. The central result is that satellitesimal accretion with η=0.1–0.3 leads to widespread melting (mmelt≳0.5), whereas pebble accretion with η=0 can keep mmelt≤1/3 for formation times longer than ~1.2 Myr, matching the observationally inferred partial differentiation.
Significance. If the scenario holds, the paper would provide a novel observational discriminator between accretion mechanisms in a satellite context, with implications for planet formation. The work is clearly structured, uses simple analytic models, and explores a wide parameter grid, including a comparison with Ganymede. It also transparently lists the assumptions and includes an appendix on 26Al abundance. However, the central conclusion rests on a small number of assumed parameters, especially the subsurface energy fraction η, which the paper does not derive from impact physics. The significance is therefore conditional on whether the η dichotomy between pebbles and satellitesimals is physically justified.
major comments (3)
- The entire discrimination between the accretion scenarios is carried by the assumed subsurface energy fraction η: pebble accretion sets η=0 while satellitesimal accretion sets η=0.1–0.3. As the paper itself notes in Section 3.1, the Large and Small pebble results are identical to the Cold-limit satellitesimal case (η=0) by construction. In Fig. 3, the difference between the 'Cold accretion' panel (η=0.1, mmelt>0.5) and the 'Large pebbles' panel (η=0, mmelt≤1/3) is entirely due to this assumed η contrast. The paper does not derive η from impactor size, velocity, porosity, or target properties, and it does not provide a sensitivity analysis. If pebble impacts deposit even a few percent of their energy below the radiative surface (e.g., η≈0.02–0.05), the pebble panels of Fig. 3 should interpolate toward the Cold accretion result and the central claim that pebble accretion 'can maintain' partial differentiation collapses. The authors should either derive η from microphysical impact models or show that the conclusions are robust to a small nonzero η for pebbles and to the uncertain range for satellitesimals.
- The paper acknowledges that thermal blanketing by a water-vapor atmosphere, other radiogenic isotopes, hydration heat, and long-term convection are ignored, but then dismisses these effects with the statement that 'such additional heat sources do not alter the conclusions of this paper; only pebble accretion has a chance to explain the partially differentiated interior of Callisto.' This is not a valid dismissal for the positive claim that pebble accretion can maintain partial differentiation. If thermal blanketing is effective at Callisto's mass (which is just above the ~0.02 Earth-mass threshold cited from Johansen et al. 2023), the pebble case would experience additional melting and might no longer reproduce mmelt≤1/3. The paper does not provide a bound on the magnitude of these ignored effects for the specific Callisto parameters, so the 'can be maintained' conclusion is not robust to the paper's own acknowledged omissions.
- The thermal model assumes instantaneous radiative cooling at the surface and ignores heat conduction, convection, and latent heat within the satellite. These processes can redistribute heat from the outer accreted layers toward the interior, potentially changing the melt fraction even for fixed η. The paper does not justify that the two-layer energy balance captures the relevant physics for a growing Callisto; it simply adopts the framework. A quantitative estimate of the importance of conduction/convection for the parameters considered, or a comparison with a more complete thermal model, would be needed to support the term 'robustly demonstrate' used in the abstract and conclusions.
minor comments (4)
- The symbol η is used both for the subsurface energy fraction (Eqs. 1–2) and for the headwind prefactor ηhw in Eq. (11), which is confusing; please use a distinct symbol such as η_hw in the relative velocity expression.
- The text states 'More than 90 wt% of Callisto is differentiated' but mmelt is defined as a mass fraction normalized by the total satellite mass; please use consistent terminology (e.g., 'more than 90% of the mass' rather than 'wt%' if that is intended).
- The panels for 'Large pebbles' and 'Small pebbles' appear identical, which is a consequence of the assumed impact velocities; consider merging or explicitly stating in the caption that they are indistinguishable in this model.
- The citation to Bennacer et al. (2025) is used to justify η=0 for pebbles, but that paper may not have analyzed pebble-sized impactors in the same regime; please clarify the exact basis for this assumption and whether it holds for the pebble sizes considered here.
Circularity Check
Large/Small-pebble 'predictions' are the assumed eta=0 Cold-limit case relabeled; only Fragmentation-limited adds derived pebble physics.
-
self definitional
[Section 2.2 (eta=0 assumed for pebbles); Sections 3.1-3.2 (Large/Small pebbles identical to Cold-limit); Section 4.1 (same vimp)]
"In the case of pebble accretion, I also assume eta = 0, because the subsurface energy deposition must be negligible. ... In Large pebbles and Small pebbles, the temperature distribution is the same as that of Cold-limit accretion, where all these cases assume eta = 0. ... the distribution of the melt mass fractions of Large pebbles and Small pebbles is almost the same as that of Cold-limit accretion."
Equations (1)-(2) contain only one subsurface heating term, eta*(Mdot*vimp^2)/(8*pi*R^2), and the melt fraction mmelt (Eq. 17) is computed entirely from the resulting T_sub and T_cur. For Large and Small pebbles, Section 4.1 shows vimp = vesc, the same value as for satellitesimal impactors (Eq. 6), so the pebble panels differ from the satellitesimal panels only through the chosen eta. Setting eta=0 for pebbles makes Eqs. (1)-(2) mathematically identical to the Cold-limit satellitesimal case, and the paper explicitly states that the temperature distribution and mmelt maps coincide.
full rationale
The thermal calculation itself is self-contained: given Mdot, vimp, eta, and 26Al heating, Eqs. (1)-(17) determine the melt fraction, and the Ganymede comparison and Appendix A are honest parameter explorations. The satellitesimal 'cannot differentiate' branch rests on the literature range eta=0.1-0.3 (Monteux et al. 2014), which is an external input rather than a circularity; its vulnerability is that the paper calls the result 'inevitable' while the eta range is uncertain, but that is a correctness/fragility concern. The circular element is confined to the pebble branch: for Large and Small pebbles, the paper's own text shows that the results coincide with the Cold-limit satellitesimal case, which is nothing other than the eta=0 assumption already made in Section 2.2; the claimed ability of pebble accretion to maintain partial differentiation is therefore, for those cases, the input relabeled as output. The Fragmentation-limited case supplies one genuinely derived pebble effect (gas-drag-limited impact velocity, St_crit=0.0086), so the paper is not wholly circular; nevertheless the abstract's headline reason, 'Pebbles can release their impact energy at the surface', is exactly the assumed eta=0, and the conclusions present it as a demonstrated property. Score 6 reflects this partial, construction-level circularity.
Assumptions & free parameters
free parameters (11)
- Subsurface energy fraction for satellitesimal accretion (eta_sat) =
0.3 (Hot), 0.1 (Cold), 0 (Cold-limit)
- Subsurface energy fraction for pebble accretion (eta_peb) =
0
- Pebble Stokes number St =
0.1, 0.01, 0.001
- Initial mass for accretion M0 =
3e23 g
- Circumplanetary gas surface density Sigma_g at Callisto =
9e3 g/cm^2
- Disk temperature Tdisk =
110 K (Callisto), 160 K (Ganymede)
- Rock mass fraction mr =
0.44 (Callisto), 0.52 (Ganymede)
- Initial 26Al heating rate q26(0) =
1.82e-7 W/kg
- Turbulence parameter alpha =
1e-4
- Critical fragmentation velocity vcr =
0.5 m/s
- Accretion mass-growth index q =
2/3
assumptions (6)
- domain assumption Callisto's observed normalized MoI (0.3549 +/- 0.0042) implies partial differentiation with about one-third outer ice shell under hydrostatic equilibrium.
- ad hoc to paper The layered energy balance model (Eqs. 1 and 2) captures the thermal state, assuming instantaneous radiative cooling at the surface and no heat conduction, convection, or latent heat.
- domain assumption 26Al is the only significant short-lived radiogenic heat source during satellite formation.
- domain assumption Satellitesimals deposit eta between 0.1 and 0.3 of their impact energy below the surface.
- domain assumption Pebbles of size less than about 1 meter deposit negligible impact energy below the surface (eta = 0).
- domain assumption The circumplanetary disk parameters (Sigma_g, Tdisk, alpha) apply uniformly during Callisto's formation.
Cite this review
Pith. "Pith review of Partial Differentiation of Callisto as Possible Evidence for Pebble Accretion." pith.science (2026). https://pith.science/paper/OVWGUPJD
@misc{pith2026250702544,
author = {Pith},
title = {Pith review of: Partial Differentiation of Callisto as Possible Evidence for Pebble Accretion},
year = {2026},
howpublished = {\url{https://pith.science/paper/OVWGUPJD}},
note = {Machine review of arXiv:2507.02544}
}
read the original abstract
"Planetesimal or pebble" is one of the most fundamental open questions in planet formation theory. Similarly, "satellitesimal or pebble" remains unsettled regarding the formation of the Galilean satellites. I focus on a unique characteristic of Callisto--its interior is estimated to be only partially differentiated based on gravitational field measurements. I robustly demonstrate that such a state is not achievable through satellitesimal accretion, which inevitably leads to significant differentiation, but can be maintained with pebble accretion. Pebbles can release their impact energy at the surface of the satellite, allowing efficient radiative cooling, and their impact velocities can be reduced by aerodynamic drag from the circumplanetary gas disk. If future missions such as JUpiter ICy moons Explorer (JUICE) confirm that Callisto is indeed only partially differentiated, it could provide the first observed evidence for the pebble accretion mechanism--not only in the context of satellite formation, but also in the broader framework of planet formation.
Figures
Figures from the paper (3 more)
Reference graph
Works this paper leans on
-
[1]
, " * write output.state after.block = add.period write newline
ENTRY address archivePrefix author booktitle chapter doi edition editor eprint howpublished institution journal key month number organization pages publisher school series title misctitle type volume year version url label extra.label sort.label short.list INTEGERS output.state before.all mid.sentence after.sentence after.block FUNCTION init.state.consts ...
-
[2]
write newline
" write newline "" before.all 'output.state := FUNCTION format.url url empty "" new.block "" url * "" * if FUNCTION format.eprint eprint empty "" archivePrefix empty "" archivePrefix "arXiv" = new.block " " eprint * " " * new.block " " eprint * " " * if if if FUNCTION format.doi doi empty "" " " doi * " " * if FUNCTION format.pid doi empty eprint empty ur...
-
[3]
/xN3: oo +T 7l bUѸ|f N FJC 덩gܗcPF Q;8m^DƿxA@;yQ fjFPec^k'RN
thebibliography [1] 20pt to REFERENCES 6pt =0pt \@twocolumntrue 12pt -12pt 10pt plus 3pt =0pt =0pt =1pt plus 1pt =0pt =0pt -12pt =13pt plus 1pt =20pt =13pt plus 1pt \@M =10000 =-1.0em =0pt =0pt 0pt =0pt =1.0em @enumiv\@empty 10000 10000 `\.\@m \@noitemerr \@latex@warning Empty `thebibliography' environment \@ifnextchar \@reference \@latexerr Missing key o...
work page 2017
-
[4]
Adachi , I., Hayashi , C., & Nakazawa , K. 1976, title The gas drag effect on the elliptical motion of a solid body in the primordial solar nebula. , Progress of Theoretical Physics, 56, 1756, 10.1143/PTP.56.1756
-
[5]
Anderson , J. D., Jacobson , R. A., McElrath , T. P., et al. 2001, title Shape, Mean Radius, Gravity Field, and Interior Structure of Callisto , , 153, 157, 10.1006/icar.2001.6664
-
[6]
Barr , A. C., & Canup , R. M. 2008, title Constraints on gas giant satellite formation from the interior states of partially differentiated satellites , , 198, 163, 10.1016/j.icarus.2008.07.004
-
[7]
Barr , A. C., & Canup , R. M. 2010, title Origin of the Ganymede-Callisto dichotomy by impacts during the late heavy bombardment , Nature Geoscience, 3, 164, 10.1038/ngeo746
-
[8]
Bennacer , Y., Mousis , O., Monnereau , M., Hue , V., & Schneeberger , A. 2025, title Conditions for Accretion Favoring an Unmelted Callisto and a Differentiated Ganymede , , 6, 138, 10.3847/PSJ/add719
Show all 40 references
-
[9]
M., & Ward, W
Canup, R. M., & Ward, W. R. 2006, title A common mass scaling for satellite systems of gaseous planets, Nature, 441, 834, 10.1038/nature04860
2006 doi
-
[10]
2022, title Callisto and Europa Gravity Measurements from JUICE 3GM Experiment Simulation , , 3, 199, 10.3847/PSJ/ac83c4
Cappuccio , P., Di Benedetto , M., Durante , D., & Iess , L. 2022, title Callisto and Europa Gravity Measurements from JUICE 3GM Experiment Simulation , , 3, 199, 10.3847/PSJ/ac83c4
2022 doi
-
[11]
2023, in Astronomical Society of the Pacific Conference Series, Vol
Drazkowska , J., Bitsch , B., Lambrechts , M., et al. 2023, in Astronomical Society of the Pacific Conference Series, Vol. 534, Protostars and Planets VII, ed. S. Inutsuka , Y. Aikawa , T. Muto , K. Tomida , & M. Tamura , 717, 10.48550/arXiv.2203.09759
-
[12]
N., Antsyshkin , D
Dunaeva , A. N., Antsyshkin , D. V., & Kuskov , O. L. 2010, title Phase diagram of H _ 2 O: Thermodynamic functions of the phase transitions of high-pressure ices , Solar System Research, 44, 202, 10.1134/S0038094610030044
2010 doi
-
[13]
2016, title The radial dependence of pebble accretion rates: A source of diversity in planetary systems
Ida , S., Guillot , T., & Morbidelli , A. 2016, title The radial dependence of pebble accretion rates: A source of diversity in planetary systems. I. Analytical formulation , , 591, A72, 10.1051/0004-6361/201628099
2016 doi
-
[14]
Jacobsen , B., Yin , Q.-z., Moynier , F., et al. 2008, title ^ 26 Al- ^ 26 Mg and ^ 207 Pb- ^ 206 Pb systematics of Allende CAIs: Canonical solar initial ^ 26 Al/ ^ 27 Al ratio reinstated , Earth and Planetary Science Letters, 272, 353, 10.1016/j.epsl.2008.05.003
2008 doi
-
[15]
2023, title Anatomy of rocky planets formed by rapid pebble accretion
Johansen , A., Ronnet , T., Schiller , M., Deng , Z., & Bizzarro , M. 2023, title Anatomy of rocky planets formed by rapid pebble accretion. II. Differentiation by accretion energy and thermal blanketing , , 671, A75, 10.1051/0004-6361/202142142
2023 doi
-
[16]
2023, title The interplay between pebble and planetesimal accretion in population synthesis models and its role in giant planet formation , , 674, A144, 10.1051/0004-6361/202245641
Kessler , A., & Alibert , Y. 2023, title The interplay between pebble and planetesimal accretion in population synthesis models and its role in giant planet formation , , 674, A144, 10.1051/0004-6361/202245641
2023 doi
-
[17]
1998, title Oligarchic Growth of Protoplanets , , 131, 171, 10.1006/icar.1997.5840
Kokubo , E., & Ida , S. 1998, title Oligarchic Growth of Protoplanets , , 131, 171, 10.1006/icar.1997.5840
1998
-
[18]
2002, title Formation of Protoplanet Systems and Diversity of Planetary Systems , , 581, 666, 10.1086/344105
Kokubo , E., & Ida , S. 2002, title Formation of Protoplanet Systems and Diversity of Planetary Systems , , 581, 666, 10.1086/344105
2002 doi
-
[19]
2012, title Rapid growth of gas-giant cores by pebble accretion , , 544, A32, 10.1051/0004-6361/201219127
Lambrechts , M., & Johansen , A. 2012, title Rapid growth of gas-giant cores by pebble accretion , , 544, A32, 10.1051/0004-6361/201219127
2012 doi
-
[20]
K., Trinquier , A., Paton , C., et al
Larsen , K. K., Trinquier , A., Paton , C., et al. 2011, title Evidence for Magnesium Isotope Heterogeneity in the Solar Protoplanetary Disk , , 735, L37, 10.1088/2041-8205/735/2/L37
2011 doi
-
[21]
Liu , B., & Ormel , C. W. 2018, title Catching drifting pebbles. I. Enhanced pebble accretion efficiencies for eccentric planets , , 615, A138, 10.1051/0004-6361/201732307
2018 doi
-
[22]
H., & Yang , C.-C
Lyra , W., Johansen , A., Ca \ n as , M. H., & Yang , C.-C. 2023, title An Analytical Theory for the Growth from Planetesimals to Planets by Polydisperse Pebble Accretion , , 946, 60, 10.3847/1538-4357/acaf5b
2023 doi
-
[23]
2014, title Can large icy moons accrete undifferentiated? , , 237, 377, 10.1016/j.icarus.2014.04.041
Monteux , J., Tobie , G., Choblet , G., & Le Feuvre , M. 2014, title Can large icy moons accrete undifferentiated? , , 237, 377, 10.1016/j.icarus.2014.04.041
2014 doi
-
[24]
J., Hasegawa , Y., et al
Nakatani , R., Turner , N. J., Hasegawa , Y., et al. 2023, title A Primordial Origin for the Gas-rich Debris Disks around Intermediate-mass Stars , , 959, L28, 10.3847/2041-8213/ad0ed8
2023 doi
-
[25]
2016, title Sintering-induced Dust Ring Formation in Protoplanetary Disks: Application to the HL Tau Disk, The Astrophysical Journal, 821, 82
Okuzumi, S., Momose, M., Sirono, S., Kobayashi, H., & Tanaka, H. 2016, title Sintering-induced Dust Ring Formation in Protoplanetary Disks: Application to the HL Tau Disk, The Astrophysical Journal, 821, 82. http://stacks.iop.org/0004-637X/821/i=2/a=82
2016
-
[26]
2019, title Nonsticky Ice at the Origin of the Uniformly Polarized Submillimeter Emission from the HL Tau Disk , , 878, 132, 10.3847/1538-4357/ab204d
Okuzumi , S., & Tazaki , R. 2019, title Nonsticky Ice at the Origin of the Uniformly Polarized Submillimeter Emission from the HL Tau Disk , , 878, 132, 10.3847/1538-4357/ab204d
2019 doi
- [27]
-
[28]
W., & Klahr , H
Ormel , C. W., & Klahr , H. H. 2010, title The effect of gas drag on the growth of protoplanets. Analytical expressions for the accretion of small bodies in laminar disks , , 520, A43, 10.1051/0004-6361/201014903
2010 doi
-
[29]
B., & Murray-Clay , R
Perets , H. B., & Murray-Clay , R. A. 2011, title Wind-shearing in Gaseous Protoplanetary Disks and the Evolution of Binary Planetesimals , , 733, 56, 10.1088/0004-637X/733/1/56
2011 doi
-
[30]
2020, title Formation of moon systems around giant planets
Ronnet , T., & Johansen , A. 2020, title Formation of moon systems around giant planets. Capture and ablation of planetesimals as foundation for a pebble accretion scenario , , 633, A93, 10.1051/0004-6361/201936804
2020 doi
-
[31]
2017, title Pebble Accretion at the Origin of Water in Europa , , 845, 92, 10.3847/1538-4357/aa80e6
Ronnet , T., Mousis , O., & Vernazza , P. 2017, title Pebble Accretion at the Origin of Water in Europa , , 845, 92, 10.3847/1538-4357/aa80e6
2017 doi
-
[32]
R., & Ida , S
Sasaki , T., Stewart , G. R., & Ida , S. 2010, title Origin of the Different Architectures of the Jovian and Saturnian Satellite Systems , , 714, 1052, 10.1088/0004-637X/714/2/1052
2010 doi
-
[33]
D., Spohn , T., & McKinnon , W
Schubert , G., Anderson , J. D., Spohn , T., & McKinnon , W. B. 2004, in Jupiter. The Planet, Satellites and Magnetosphere, ed. F. Bagenal , T. E. Dowling , & W. B. McKinnon , Vol. 1, 281--306
2004
-
[34]
2017, title Satellitesimal Formation via Collisional Dust Growth in Steady Circumplanetary Disks , , 846, 81, 10.3847/1538-4357/aa8454
Shibaike , Y., Okuzumi , S., Sasaki , T., & Ida , S. 2017, title Satellitesimal Formation via Collisional Dust Growth in Steady Circumplanetary Disks , , 846, 81, 10.3847/1538-4357/aa8454
2017 doi
-
[35]
W., Ida , S., Okuzumi , S., & Sasaki , T
Shibaike , Y., Ormel , C. W., Ida , S., Okuzumi , S., & Sasaki , T. 2019, title The Galilean Satellites Formed Slowly from Pebbles , , 885, 79, 10.3847/1538-4357/ab46a7
2019 doi
-
[36]
R., & Ida , S
Stewart , G. R., & Ida , S. 2000, title Velocity Evolution of Planetesimals: Unified Analytical Formulas and Comparisons with N-Body Simulations , , 143, 28, 10.1006/icar.1999.6242
2000
-
[37]
Thrane , K., Bizzarro , M., & Baker , J. A. 2006, title Extremely Brief Formation Interval for Refractory Inclusions and Uniform Distribution of ^ 26 Al in the Early Solar System , , 646, L159, 10.1086/506910
2006 doi
-
[38]
2024, title Support for fragile porous dust in a gravitationally self-regulated disk around IM Lup , Nature Astronomy, 8, 1148, 10.1038/s41550-024-02308-6
Ueda , T., Tazaki , R., Okuzumi , S., Flock , M., & Sudarshan , P. 2024, title Support for fragile porous dust in a gravitationally self-regulated disk around IM Lup , Nature Astronomy, 8, 1148, 10.1038/s41550-024-02308-6
2024 doi
-
[39]
2024, title The nucleosynthetic fingerprint of the outermost protoplanetary disk and early Solar System dynamics , Science Advances, 10, eadp1613, 10.1126/sciadv.adp1613
van Kooten , E., Zhao , X., Franchi , I., et al. 2024, title The nucleosynthetic fingerprint of the outermost protoplanetary disk and early Solar System dynamics , Science Advances, 10, eadp1613, 10.1126/sciadv.adp1613
2024 doi
-
[40]
Weidenschilling , S. J. 1977, title Aerodynamics of solid bodies in the solar nebula. , Monthly Notices of the Royal Astronomical Society, 180, 57, 10.1093/mnras/180.2.57
1977 doi
Reviewed August 6, 2026 · model on record in the stance chip above.
Discussion (0). Continue with ORCID to comment.