Ionization: a possible explanation for the difference of mean disk sizes in star-forming regions
arXiv:2006.00019 · doi:10.1051/0004-6361/201937328
Abstract
Surveys of protoplanetary disks in star-forming regions of similar age revealed significant variations in average disk mass between some regions. For instance, disks in the Orion Nebular Cluster (ONC) and Corona Australis (CrA) are on average smaller than disks observed in Lupus, Taurus, Chamaeleon I or Ophiuchus. In contrast to previous models that study truncation of disks at a late stage of their evolution, we investigate whether disks may already be born with systematically smaller disk sizes in more massive star-forming regions as a consequence of enhanced ionization rates. Assuming various cosmic-ray ionization rates, we compute the resistivities for ambipolar diffusion and Ohmic dissipation with a chemical network, and perform 2D non-ideal magnetohydrodynamical protostellar collapse simulations. A higher ionization rate leads to stronger magnetic braking, and hence to the formation of smaller disks. Accounting for recent findings that protostars act as forges of cosmic rays and considering only mild attenuation during the collapse phase, we show that a high average cosmic-ray ionization rate in star-forming regions like the ONC or CrA can explain the detection of smaller disks in these regions. Our results show that on average a higher ionization rate leads to the formation of smaller disks. Therefore, smaller disks in regions of similar age can be the consequence of different levels of ionization, and may not exclusively be caused by disk truncation via external photoevaporation. We strongly encourage observations that allow measuring the cosmic-ray ionization degrees in different star-forming regions to test our hypothesis.
9 pages, 5 figures, accepted for publication in A&A
References in corpus (25)
- Gas- and dust evolution in protoplanetary disks
- A Steeper than Linear Disk Mass-Stellar Mass Scaling Relation
- On the diversity and statistical properties of protostellar discs
- The VLA/ALMA Nascent Disk and Multiplicity (VANDAM) Survey of Orion Protostars. A Statistical Characterization of Class 0 and I Protostellar Disks
- Global simulations of protoplanetary disks with ohmic resistivity and ambipolar diffusion
- Magnetic Braking and Protostellar Disk Formation: The Ideal MHD Limit
- Magnetic Fields in Dark Cloud Cores: Arecibo OH Zeeman Observations
- A Millimeter Continuum Size-Luminosity Relationship for Protoplanetary Disks
- Radiation Magnetohydrodynamic Simulations of Protostellar Collapse: Non-Ideal Magnetohydrodynamic Effects and Early Formation of Circumstellar Disks
- Magnetic Fields and Rotations of Protostars
- Physical properties of dusty protoplanetary disks in Lupus: evidence for viscous evolution?
- Magnetically self-regulated formation of early protoplanetary discs
- Episodic accretion: the interplay of infall and disc instabilities
- Measurement of Circumstellar Disk Sizes in the Upper Scorpius OB Association with ALMA
- The Ophiuchus DIsk Survey Employing ALMA (ODISEA): Disk Dust Mass Distributions across Protostellar Evolutionary Classes
- ALMA survey of Class II protoplanetary disks in Corona Australis: a young region with low disk masses
- SOLIS II. Carbon-chain growth in the Solar-type protocluster OMC2-FIR4
- Disk Formation Enabled by Enhanced Resistivity
- Protoplanetary disk masses in NGC 2024: Evidence for two populations
- Effect of Angular Momentum Alignment and Strong Magnetic Fields on the Formation of Protostellar Disks
- Protoplanetary Disc Response to Distant Tidal Encounters in Stellar Clusters
- The Mass Evolution of Protostellar Disks and Envelopes in the Perseus Molecular Cloud
- Ionization: a possible explanation for the difference of mean disk sizes in star-forming regions
- A Herschel view of protoplanetary disks in the Ori cluster
- The challenges of modelling microphysics: ambipolar diffusion, chemistry, and cosmic rays in MHD shocks
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- Ionization: a possible explanation for the difference of mean disk sizes in star-forming regions
- Survey of Orion Disks with ALMA (SODA) I: Cloud-level demographics of 873 protoplanetary disks
- Conditions for justifying single-fluid approximation for charged and neutral dust fluids and a smoothed particle magnetohydrodynamics method for dust-gas mixture
- ALMA ACA study of the HS/OCS ratio in low-mass protostars
- The Effects of Cosmic Rays on the Chemistry of Dense Cores
- No impact of core-scale magnetic field, turbulence, or velocity gradient on sizes of protostellar disks in Orion A
- Cosmic-ray ionization rate versus Dust fraction: Which plays a crucial role in the early evolution of the circumstellar disk?
- Linking ice and gas in the Coronet cluster in Corona Australis
- Co-evolution of dust grains and protoplanetary disks II: structure and evolution of protoplanetary disks; an analytical approach
- The VLA/ALMA Nascent Disk and Multiplicity (VANDAM) Survey of Orion Protostars VI. Insights from Radiative Transfer Modeling