Insights into the first and second hydrostatic core stages from numerical simulations
arXiv:2312.03039 · doi:10.3389/fspas.2023.1288730
Abstract
The theory of how low mass stars form from the collapse of a dense molecular cloud core has been well-established for decades. Thanks to significant progress in computing and numerical modelling, more physical models have been developed and a wider parameter space explored to understand the early stages of star formation more fully. In this review, I describe the expected physical properties of the first and second core stages and how the inclusion of different physics affects those predicted characteristics. I provide an overview of chemical models and synthetic observations, looking towards the positive identification of the first core in nature, which remains elusive. However, there are a few likely candidate first cores, which are listed, and I briefly discuss the recent progress in characterising the youngest protostellar sources. Chemistry will be instrumental in the firm identification of the first core so we require robust theoretical predictions of the chemical evolution of protostellar cores, especially of the first and second core outflows. Looking ahead, simulations can shed light on how the protostellar collapse phase shapes the evolution of the protostellar disc. Simulations of dust evolution during protostellar core collapse show there is significant enhancement in grain size and abundance towards the centre of the core. Chemical models show that the warm, dense conditions of the first core drive chemical evolution. There is a wide scope for further study of the role that the first and second core stages play in determining the structure and composition of the protostellar disc and envelope and, of course, the eventual influence on the formation of planets.
Review article for Frontiers in Astronomy & Space Sciences. 20 pages + references
References in corpus (39)
- Magnetic processes in a collapsing dense core. I Accretion and Ejection
- Magnetic Braking and Protostellar Disk Formation: The Ideal MHD Limit
- Molecular Evolution and Star Formation: From Prestellar Cores to Protostellar Cores
- Formation of a Keplerian disk in the infalling envelope around L1527 IRS: transformation from infalling motions to Kepler motions
- Radiation Magnetohydrodynamic Simulations of Protostellar Collapse: Non-Ideal Magnetohydrodynamic Effects and Early Formation of Circumstellar Disks
- Magnetic processes in a collapsing dense core. II Fragmentation. Is there a fragmentation crisis ?
- Radiative transfer and the energy equation in SPH simulations of star formation
- Effects of Ohmic and ambipolar diffusion on the formation and evolution of the first cores, protostars and circumstellar discs
- The dynamics of collapsing cores and star formation
- Second Core Formation and High Speed Jets: Resistive MHD Nested Grid Simulations
- Radiation Magnetohydrodynamics Simulation of Proto-Stellar Collapse: Two-Component Molecular Outflow
- Evolution of Rotating Molecular Cloud Core with Oblique Magnetic Field
- Exposed Long-lifetime First-core: A New Model of First Cores Based on Radiation Hydrodynamics
- The Central 1000 au of a Pre-stellar Core Revealed with ALMA. II. Almost Complete Freeze-out
- Nascent bipolar outflows associated with the first hydrostatic core candidates Barnard 1b-N and 1b-S
- The First Two Thousand Years of Star Formation
- Revealing H2D+ depletion and compact structure in starless and protostellar cores with ALMA
- Protostellar collapse: the conditions to form dust rich protoplanetary disks
- Protostellar collapse simulations in spherical geometry with dust coagulation and fragmentation
- Two Extreme Young Objects in Barnard 1-b
- On the dynamics of dust during protostellar collapse
- Small dust grain dynamics on adaptive mesh-refinement grids. I. Methods
- The impact of non-ideal magnetohydrodynamic processes on discs, outflows, counter-rotation and magnetic walls during the early stages of star formation
- Birth of convective low-mass to high-mass second Larson cores
- Modeling the chemical evolution of a collapsing prestellar core in two spatial dimensions
- Testing protostellar disk formation models with ALMA observations
- ALMA observations of envelopes around first hydrostatic core candidates
- Detection of Irregular, Sub-mm Opaque Structures in the Orion Molecular Clouds: Protostars within 10000 years of formation?
- An Efficient Radiative Cooling Approximation for Use in Hydrodynamic Simulations
- Non-ideal MHD simulations of subcritical prestellar cores with non-equilibrium chemistry
- Early Planet Formation in Embedded Disks (eDisk) IX: High-resolution ALMA Observations of the Class 0 Protostar R CrA IRS5N and its surrounding
- A low-velocity bipolar outflow from a deeply embedded object in Taurus revealed by the Atacama Compact Array
- Synthetic molecular line observations of the first hydrostatic core from chemical calculations
- Implementation of dust particles in three-dimensional magnetohydrodynamics simulation: Dust dynamics in a collapsing cloud core
- Ambipolar diffusion and the molecular abundances in prestellar cores
- The dynamically young outflow of the Class 0 protostar Cha-MMS1
- What can the SEDs of first hydrostatic core candidates reveal about their nature?
- Confirmation of the outflow in L1451-mm: SiO line and CHOH maser detections
- Differences in chemical evolution between isolated and embedded prestellar cores