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Radial and vertical dust transport inhibit refractory carbon depletion in protoplanetary disks

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arxiv 1809.01648 v1 pith:WLPFRE6N submitted 2018-09-05 astro-ph.EP

Radial and vertical dust transport inhibit refractory carbon depletion in protoplanetary disks

classification astro-ph.EP
keywords carbonradialtransportdepletiondiskgrainsrefractorydust
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The Earth is strongly depleted in carbon compared to the dust in the ISM, implying efficient removal of refractory carbon before parent body formation. It has been argued that grains get rid of their carbon through oxidation and photolysis in the exposed upper disk layers. We assess the efficacy of these C-removal mechanisms accounting for the vertical and radial transport of grains. We obtain the carbon and carbon free mass budget of solids by solving two 1D advection-diffusion equations, accounting for the dust grain size distribution and radial transport. The carbon removal acts on the fraction of the grains that are in the exposed layer and requires efficient vertical transport. In models without radial transport, oxidation and photolysis can destroy most of the refractory carbon in terrestrial planet formation region. But it only reaches the observed depletion levels for extreme parameter combinations and requires that parent body formation was delayed by 1 Myr. Adding radial transport of solids prevents the depletion entirely, leaving refractory carbon equally distributed throughout the disk. It is unlikely that the observed carbon depletion can ultimately be attributed to mechanisms operating on small grains in the disk surface layers. Other mechanisms need to be studied, for example flash heating events or FU Ori outbursts in order to remove carbon quickly and deeply. However, a sustained drift barrier or strongly reduced radial grain mobility are necessary to prevent replenishment of carbon from the outer disk.

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Cited by 2 Pith papers

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  1. Accretion Burst Crystallizes Silicates in a Planet-Forming Disk

    astro-ph.EP 2026-07 conditional novelty 7.0

    During an accretion burst of the embedded protostar EC 53, JWST mid-infrared spectra reveal newly appearing crystalline silicate emission, indicating in-situ thermal annealing of dust in the hot inner disk.

  2. Chemical Divergence and Water Depletion: Gas Properties of Evolved Upper Scorpius Disks Revealed by JWST/MIRI

    astro-ph.EP 2026-06 unverdicted novelty 7.0

    JWST/MIRI survey of 2-6 Myr Upper Scorpius disks finds diverse chemotypes, 10-1000x lower water luminosities, and evidence that outer dust traps control inner-disk chemistry.